2 Copyright (C) 2000, 2001, 2002, 2003, 2004,
3 2005, 2007, 2008, 2009, 2010, 2011, 2012 Free Software Foundation, Inc.
4 Written by Mark Mitchell <mark@codesourcery.com>.
6 This file is part of GCC.
8 GCC is free software; you can redistribute it and/or modify it
9 under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3, or (at your option)
13 GCC is distributed in the hope that it will be useful, but
14 WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
16 General Public License for more details.
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
24 #include "coretypes.h"
31 #include "c-family/c-pragma.h"
34 #include "diagnostic-core.h"
37 #include "c-family/c-common.h"
38 #include "c-family/c-objc.h"
40 #include "tree-pretty-print.h"
46 /* The cp_lexer_* routines mediate between the lexer proper (in libcpp
47 and c-lex.c) and the C++ parser. */
49 static cp_token eof_token
=
51 CPP_EOF
, RID_MAX
, 0, PRAGMA_NONE
, false, false, false, 0, { NULL
}
54 /* The various kinds of non integral constant we encounter. */
55 typedef enum non_integral_constant
{
57 /* floating-point literal */
61 /* %<__FUNCTION__%> */
63 /* %<__PRETTY_FUNCTION__%> */
71 /* %<typeid%> operator */
73 /* non-constant compound literals */
81 /* an array reference */
87 /* the address of a label */
101 /* calls to overloaded operators */
105 /* a comma operator */
107 /* a call to a constructor */
109 /* a transaction expression */
111 } non_integral_constant
;
113 /* The various kinds of errors about name-lookup failing. */
114 typedef enum name_lookup_error
{
119 /* is not a class or namespace */
121 /* is not a class, namespace, or enumeration */
125 /* The various kinds of required token */
126 typedef enum required_token
{
128 RT_SEMICOLON
, /* ';' */
129 RT_OPEN_PAREN
, /* '(' */
130 RT_CLOSE_BRACE
, /* '}' */
131 RT_OPEN_BRACE
, /* '{' */
132 RT_CLOSE_SQUARE
, /* ']' */
133 RT_OPEN_SQUARE
, /* '[' */
137 RT_GREATER
, /* '>' */
139 RT_ELLIPSIS
, /* '...' */
143 RT_COLON_SCOPE
, /* ':' or '::' */
144 RT_CLOSE_PAREN
, /* ')' */
145 RT_COMMA_CLOSE_PAREN
, /* ',' or ')' */
146 RT_PRAGMA_EOL
, /* end of line */
147 RT_NAME
, /* identifier */
149 /* The type is CPP_KEYWORD */
151 RT_DELETE
, /* delete */
152 RT_RETURN
, /* return */
153 RT_WHILE
, /* while */
154 RT_EXTERN
, /* extern */
155 RT_STATIC_ASSERT
, /* static_assert */
156 RT_DECLTYPE
, /* decltype */
157 RT_OPERATOR
, /* operator */
158 RT_CLASS
, /* class */
159 RT_TEMPLATE
, /* template */
160 RT_NAMESPACE
, /* namespace */
161 RT_USING
, /* using */
164 RT_CATCH
, /* catch */
165 RT_THROW
, /* throw */
166 RT_LABEL
, /* __label__ */
167 RT_AT_TRY
, /* @try */
168 RT_AT_SYNCHRONIZED
, /* @synchronized */
169 RT_AT_THROW
, /* @throw */
171 RT_SELECT
, /* selection-statement */
172 RT_INTERATION
, /* iteration-statement */
173 RT_JUMP
, /* jump-statement */
174 RT_CLASS_KEY
, /* class-key */
175 RT_CLASS_TYPENAME_TEMPLATE
, /* class, typename, or template */
176 RT_TRANSACTION_ATOMIC
, /* __transaction_atomic */
177 RT_TRANSACTION_RELAXED
, /* __transaction_relaxed */
178 RT_TRANSACTION_CANCEL
/* __transaction_cancel */
183 static cp_lexer
*cp_lexer_new_main
185 static cp_lexer
*cp_lexer_new_from_tokens
186 (cp_token_cache
*tokens
);
187 static void cp_lexer_destroy
189 static int cp_lexer_saving_tokens
191 static cp_token
*cp_lexer_token_at
192 (cp_lexer
*, cp_token_position
);
193 static void cp_lexer_get_preprocessor_token
194 (cp_lexer
*, cp_token
*);
195 static inline cp_token
*cp_lexer_peek_token
197 static cp_token
*cp_lexer_peek_nth_token
198 (cp_lexer
*, size_t);
199 static inline bool cp_lexer_next_token_is
200 (cp_lexer
*, enum cpp_ttype
);
201 static bool cp_lexer_next_token_is_not
202 (cp_lexer
*, enum cpp_ttype
);
203 static bool cp_lexer_next_token_is_keyword
204 (cp_lexer
*, enum rid
);
205 static cp_token
*cp_lexer_consume_token
207 static void cp_lexer_purge_token
209 static void cp_lexer_purge_tokens_after
210 (cp_lexer
*, cp_token_position
);
211 static void cp_lexer_save_tokens
213 static void cp_lexer_commit_tokens
215 static void cp_lexer_rollback_tokens
217 static void cp_lexer_print_token
218 (FILE *, cp_token
*);
219 static inline bool cp_lexer_debugging_p
221 static void cp_lexer_start_debugging
222 (cp_lexer
*) ATTRIBUTE_UNUSED
;
223 static void cp_lexer_stop_debugging
224 (cp_lexer
*) ATTRIBUTE_UNUSED
;
226 static cp_token_cache
*cp_token_cache_new
227 (cp_token
*, cp_token
*);
229 static void cp_parser_initial_pragma
232 static tree cp_literal_operator_id
235 /* Manifest constants. */
236 #define CP_LEXER_BUFFER_SIZE ((256 * 1024) / sizeof (cp_token))
237 #define CP_SAVED_TOKEN_STACK 5
241 /* The stream to which debugging output should be written. */
242 static FILE *cp_lexer_debug_stream
;
244 /* Nonzero if we are parsing an unevaluated operand: an operand to
245 sizeof, typeof, or alignof. */
246 int cp_unevaluated_operand
;
248 /* Dump up to NUM tokens in BUFFER to FILE starting with token
249 START_TOKEN. If START_TOKEN is NULL, the dump starts with the
250 first token in BUFFER. If NUM is 0, dump all the tokens. If
251 CURR_TOKEN is set and it is one of the tokens in BUFFER, it will be
252 highlighted by surrounding it in [[ ]]. */
255 cp_lexer_dump_tokens (FILE *file
, VEC(cp_token
,gc
) *buffer
,
256 cp_token
*start_token
, unsigned num
,
257 cp_token
*curr_token
)
259 unsigned i
, nprinted
;
263 fprintf (file
, "%u tokens\n", VEC_length (cp_token
, buffer
));
269 num
= VEC_length (cp_token
, buffer
);
271 if (start_token
== NULL
)
272 start_token
= VEC_address (cp_token
, buffer
);
274 if (start_token
> VEC_address (cp_token
, buffer
))
276 cp_lexer_print_token (file
, VEC_index (cp_token
, buffer
, 0));
277 fprintf (file
, " ... ");
282 for (i
= 0; VEC_iterate (cp_token
, buffer
, i
, token
) && nprinted
< num
; i
++)
284 if (token
== start_token
)
291 if (token
== curr_token
)
292 fprintf (file
, "[[");
294 cp_lexer_print_token (file
, token
);
296 if (token
== curr_token
)
297 fprintf (file
, "]]");
303 case CPP_CLOSE_BRACE
:
313 if (i
== num
&& i
< VEC_length (cp_token
, buffer
))
315 fprintf (file
, " ... ");
316 cp_lexer_print_token (file
, VEC_index (cp_token
, buffer
,
317 VEC_length (cp_token
, buffer
) - 1));
320 fprintf (file
, "\n");
324 /* Dump all tokens in BUFFER to stderr. */
327 cp_lexer_debug_tokens (VEC(cp_token
,gc
) *buffer
)
329 cp_lexer_dump_tokens (stderr
, buffer
, NULL
, 0, NULL
);
333 /* Dump the cp_parser tree field T to FILE if T is non-NULL. DESC is the
334 description for T. */
337 cp_debug_print_tree_if_set (FILE *file
, const char *desc
, tree t
)
341 fprintf (file
, "%s: ", desc
);
342 print_node_brief (file
, "", t
, 0);
347 /* Dump parser context C to FILE. */
350 cp_debug_print_context (FILE *file
, cp_parser_context
*c
)
352 const char *status_s
[] = { "OK", "ERROR", "COMMITTED" };
353 fprintf (file
, "{ status = %s, scope = ", status_s
[c
->status
]);
354 print_node_brief (file
, "", c
->object_type
, 0);
355 fprintf (file
, "}\n");
359 /* Print the stack of parsing contexts to FILE starting with FIRST. */
362 cp_debug_print_context_stack (FILE *file
, cp_parser_context
*first
)
365 cp_parser_context
*c
;
367 fprintf (file
, "Parsing context stack:\n");
368 for (i
= 0, c
= first
; c
; c
= c
->next
, i
++)
370 fprintf (file
, "\t#%u: ", i
);
371 cp_debug_print_context (file
, c
);
376 /* Print the value of FLAG to FILE. DESC is a string describing the flag. */
379 cp_debug_print_flag (FILE *file
, const char *desc
, bool flag
)
382 fprintf (file
, "%s: true\n", desc
);
386 /* Print an unparsed function entry UF to FILE. */
389 cp_debug_print_unparsed_function (FILE *file
, cp_unparsed_functions_entry
*uf
)
392 cp_default_arg_entry
*default_arg_fn
;
395 fprintf (file
, "\tFunctions with default args:\n");
397 VEC_iterate (cp_default_arg_entry
, uf
->funs_with_default_args
, i
,
401 fprintf (file
, "\t\tClass type: ");
402 print_node_brief (file
, "", default_arg_fn
->class_type
, 0);
403 fprintf (file
, "\t\tDeclaration: ");
404 print_node_brief (file
, "", default_arg_fn
->decl
, 0);
405 fprintf (file
, "\n");
408 fprintf (file
, "\n\tFunctions with definitions that require "
409 "post-processing\n\t\t");
410 for (i
= 0; VEC_iterate (tree
, uf
->funs_with_definitions
, i
, fn
); i
++)
412 print_node_brief (file
, "", fn
, 0);
415 fprintf (file
, "\n");
417 fprintf (file
, "\n\tNon-static data members with initializers that require "
418 "post-processing\n\t\t");
419 for (i
= 0; VEC_iterate (tree
, uf
->nsdmis
, i
, fn
); i
++)
421 print_node_brief (file
, "", fn
, 0);
424 fprintf (file
, "\n");
428 /* Print the stack of unparsed member functions S to FILE. */
431 cp_debug_print_unparsed_queues (FILE *file
,
432 VEC(cp_unparsed_functions_entry
, gc
) *s
)
435 cp_unparsed_functions_entry
*uf
;
437 fprintf (file
, "Unparsed functions\n");
438 for (i
= 0; VEC_iterate (cp_unparsed_functions_entry
, s
, i
, uf
); i
++)
440 fprintf (file
, "#%u:\n", i
);
441 cp_debug_print_unparsed_function (file
, uf
);
446 /* Dump the tokens in a window of size WINDOW_SIZE around the next_token for
447 the given PARSER. If FILE is NULL, the output is printed on stderr. */
450 cp_debug_parser_tokens (FILE *file
, cp_parser
*parser
, int window_size
)
452 cp_token
*next_token
, *first_token
, *start_token
;
457 next_token
= parser
->lexer
->next_token
;
458 first_token
= VEC_address (cp_token
, parser
->lexer
->buffer
);
459 start_token
= (next_token
> first_token
+ window_size
/ 2)
460 ? next_token
- window_size
/ 2
462 cp_lexer_dump_tokens (file
, parser
->lexer
->buffer
, start_token
, window_size
,
467 /* Dump debugging information for the given PARSER. If FILE is NULL,
468 the output is printed on stderr. */
471 cp_debug_parser (FILE *file
, cp_parser
*parser
)
473 const size_t window_size
= 20;
475 expanded_location eloc
;
480 fprintf (file
, "Parser state\n\n");
481 fprintf (file
, "Number of tokens: %u\n",
482 VEC_length (cp_token
, parser
->lexer
->buffer
));
483 cp_debug_print_tree_if_set (file
, "Lookup scope", parser
->scope
);
484 cp_debug_print_tree_if_set (file
, "Object scope",
485 parser
->object_scope
);
486 cp_debug_print_tree_if_set (file
, "Qualifying scope",
487 parser
->qualifying_scope
);
488 cp_debug_print_context_stack (file
, parser
->context
);
489 cp_debug_print_flag (file
, "Allow GNU extensions",
490 parser
->allow_gnu_extensions_p
);
491 cp_debug_print_flag (file
, "'>' token is greater-than",
492 parser
->greater_than_is_operator_p
);
493 cp_debug_print_flag (file
, "Default args allowed in current "
494 "parameter list", parser
->default_arg_ok_p
);
495 cp_debug_print_flag (file
, "Parsing integral constant-expression",
496 parser
->integral_constant_expression_p
);
497 cp_debug_print_flag (file
, "Allow non-constant expression in current "
498 "constant-expression",
499 parser
->allow_non_integral_constant_expression_p
);
500 cp_debug_print_flag (file
, "Seen non-constant expression",
501 parser
->non_integral_constant_expression_p
);
502 cp_debug_print_flag (file
, "Local names and 'this' forbidden in "
504 parser
->local_variables_forbidden_p
);
505 cp_debug_print_flag (file
, "In unbraced linkage specification",
506 parser
->in_unbraced_linkage_specification_p
);
507 cp_debug_print_flag (file
, "Parsing a declarator",
508 parser
->in_declarator_p
);
509 cp_debug_print_flag (file
, "In template argument list",
510 parser
->in_template_argument_list_p
);
511 cp_debug_print_flag (file
, "Parsing an iteration statement",
512 parser
->in_statement
& IN_ITERATION_STMT
);
513 cp_debug_print_flag (file
, "Parsing a switch statement",
514 parser
->in_statement
& IN_SWITCH_STMT
);
515 cp_debug_print_flag (file
, "Parsing a structured OpenMP block",
516 parser
->in_statement
& IN_OMP_BLOCK
);
517 cp_debug_print_flag (file
, "Parsing a an OpenMP loop",
518 parser
->in_statement
& IN_OMP_FOR
);
519 cp_debug_print_flag (file
, "Parsing an if statement",
520 parser
->in_statement
& IN_IF_STMT
);
521 cp_debug_print_flag (file
, "Parsing a type-id in an expression "
522 "context", parser
->in_type_id_in_expr_p
);
523 cp_debug_print_flag (file
, "Declarations are implicitly extern \"C\"",
524 parser
->implicit_extern_c
);
525 cp_debug_print_flag (file
, "String expressions should be translated "
526 "to execution character set",
527 parser
->translate_strings_p
);
528 cp_debug_print_flag (file
, "Parsing function body outside of a "
529 "local class", parser
->in_function_body
);
530 cp_debug_print_flag (file
, "Auto correct a colon to a scope operator",
531 parser
->colon_corrects_to_scope_p
);
532 if (parser
->type_definition_forbidden_message
)
533 fprintf (file
, "Error message for forbidden type definitions: %s\n",
534 parser
->type_definition_forbidden_message
);
535 cp_debug_print_unparsed_queues (file
, parser
->unparsed_queues
);
536 fprintf (file
, "Number of class definitions in progress: %u\n",
537 parser
->num_classes_being_defined
);
538 fprintf (file
, "Number of template parameter lists for the current "
539 "declaration: %u\n", parser
->num_template_parameter_lists
);
540 cp_debug_parser_tokens (file
, parser
, window_size
);
541 token
= parser
->lexer
->next_token
;
542 fprintf (file
, "Next token to parse:\n");
543 fprintf (file
, "\tToken: ");
544 cp_lexer_print_token (file
, token
);
545 eloc
= expand_location (token
->location
);
546 fprintf (file
, "\n\tFile: %s\n", eloc
.file
);
547 fprintf (file
, "\tLine: %d\n", eloc
.line
);
548 fprintf (file
, "\tColumn: %d\n", eloc
.column
);
552 /* Allocate memory for a new lexer object and return it. */
555 cp_lexer_alloc (void)
559 c_common_no_more_pch ();
561 /* Allocate the memory. */
562 lexer
= ggc_alloc_cleared_cp_lexer ();
564 /* Initially we are not debugging. */
565 lexer
->debugging_p
= false;
567 lexer
->saved_tokens
= VEC_alloc (cp_token_position
, heap
,
568 CP_SAVED_TOKEN_STACK
);
570 /* Create the buffer. */
571 lexer
->buffer
= VEC_alloc (cp_token
, gc
, CP_LEXER_BUFFER_SIZE
);
577 /* Create a new main C++ lexer, the lexer that gets tokens from the
581 cp_lexer_new_main (void)
586 /* It's possible that parsing the first pragma will load a PCH file,
587 which is a GC collection point. So we have to do that before
588 allocating any memory. */
589 cp_parser_initial_pragma (&token
);
591 lexer
= cp_lexer_alloc ();
593 /* Put the first token in the buffer. */
594 VEC_quick_push (cp_token
, lexer
->buffer
, &token
);
596 /* Get the remaining tokens from the preprocessor. */
597 while (token
.type
!= CPP_EOF
)
599 cp_lexer_get_preprocessor_token (lexer
, &token
);
600 VEC_safe_push (cp_token
, gc
, lexer
->buffer
, &token
);
603 lexer
->last_token
= VEC_address (cp_token
, lexer
->buffer
)
604 + VEC_length (cp_token
, lexer
->buffer
)
606 lexer
->next_token
= VEC_length (cp_token
, lexer
->buffer
)
607 ? VEC_address (cp_token
, lexer
->buffer
)
610 /* Subsequent preprocessor diagnostics should use compiler
611 diagnostic functions to get the compiler source location. */
614 gcc_assert (!lexer
->next_token
->purged_p
);
618 /* Create a new lexer whose token stream is primed with the tokens in
619 CACHE. When these tokens are exhausted, no new tokens will be read. */
622 cp_lexer_new_from_tokens (cp_token_cache
*cache
)
624 cp_token
*first
= cache
->first
;
625 cp_token
*last
= cache
->last
;
626 cp_lexer
*lexer
= ggc_alloc_cleared_cp_lexer ();
628 /* We do not own the buffer. */
629 lexer
->buffer
= NULL
;
630 lexer
->next_token
= first
== last
? &eof_token
: first
;
631 lexer
->last_token
= last
;
633 lexer
->saved_tokens
= VEC_alloc (cp_token_position
, heap
,
634 CP_SAVED_TOKEN_STACK
);
636 /* Initially we are not debugging. */
637 lexer
->debugging_p
= false;
639 gcc_assert (!lexer
->next_token
->purged_p
);
643 /* Frees all resources associated with LEXER. */
646 cp_lexer_destroy (cp_lexer
*lexer
)
648 VEC_free (cp_token
, gc
, lexer
->buffer
);
649 VEC_free (cp_token_position
, heap
, lexer
->saved_tokens
);
653 /* Returns nonzero if debugging information should be output. */
656 cp_lexer_debugging_p (cp_lexer
*lexer
)
658 return lexer
->debugging_p
;
662 static inline cp_token_position
663 cp_lexer_token_position (cp_lexer
*lexer
, bool previous_p
)
665 gcc_assert (!previous_p
|| lexer
->next_token
!= &eof_token
);
667 return lexer
->next_token
- previous_p
;
670 static inline cp_token
*
671 cp_lexer_token_at (cp_lexer
*lexer ATTRIBUTE_UNUSED
, cp_token_position pos
)
677 cp_lexer_set_token_position (cp_lexer
*lexer
, cp_token_position pos
)
679 lexer
->next_token
= cp_lexer_token_at (lexer
, pos
);
682 static inline cp_token_position
683 cp_lexer_previous_token_position (cp_lexer
*lexer
)
685 if (lexer
->next_token
== &eof_token
)
686 return lexer
->last_token
- 1;
688 return cp_lexer_token_position (lexer
, true);
691 static inline cp_token
*
692 cp_lexer_previous_token (cp_lexer
*lexer
)
694 cp_token_position tp
= cp_lexer_previous_token_position (lexer
);
696 return cp_lexer_token_at (lexer
, tp
);
699 /* nonzero if we are presently saving tokens. */
702 cp_lexer_saving_tokens (const cp_lexer
* lexer
)
704 return VEC_length (cp_token_position
, lexer
->saved_tokens
) != 0;
707 /* Store the next token from the preprocessor in *TOKEN. Return true
708 if we reach EOF. If LEXER is NULL, assume we are handling an
709 initial #pragma pch_preprocess, and thus want the lexer to return
710 processed strings. */
713 cp_lexer_get_preprocessor_token (cp_lexer
*lexer
, cp_token
*token
)
715 static int is_extern_c
= 0;
717 /* Get a new token from the preprocessor. */
719 = c_lex_with_flags (&token
->u
.value
, &token
->location
, &token
->flags
,
720 lexer
== NULL
? 0 : C_LEX_STRING_NO_JOIN
);
721 token
->keyword
= RID_MAX
;
722 token
->pragma_kind
= PRAGMA_NONE
;
723 token
->purged_p
= false;
725 /* On some systems, some header files are surrounded by an
726 implicit extern "C" block. Set a flag in the token if it
727 comes from such a header. */
728 is_extern_c
+= pending_lang_change
;
729 pending_lang_change
= 0;
730 token
->implicit_extern_c
= is_extern_c
> 0;
732 /* Check to see if this token is a keyword. */
733 if (token
->type
== CPP_NAME
)
735 if (C_IS_RESERVED_WORD (token
->u
.value
))
737 /* Mark this token as a keyword. */
738 token
->type
= CPP_KEYWORD
;
739 /* Record which keyword. */
740 token
->keyword
= C_RID_CODE (token
->u
.value
);
744 if (warn_cxx0x_compat
745 && C_RID_CODE (token
->u
.value
) >= RID_FIRST_CXX0X
746 && C_RID_CODE (token
->u
.value
) <= RID_LAST_CXX0X
)
748 /* Warn about the C++0x keyword (but still treat it as
750 warning (OPT_Wc__0x_compat
,
751 "identifier %qE is a keyword in C++11",
754 /* Clear out the C_RID_CODE so we don't warn about this
755 particular identifier-turned-keyword again. */
756 C_SET_RID_CODE (token
->u
.value
, RID_MAX
);
759 token
->ambiguous_p
= false;
760 token
->keyword
= RID_MAX
;
763 else if (token
->type
== CPP_AT_NAME
)
765 /* This only happens in Objective-C++; it must be a keyword. */
766 token
->type
= CPP_KEYWORD
;
767 switch (C_RID_CODE (token
->u
.value
))
769 /* Replace 'class' with '@class', 'private' with '@private',
770 etc. This prevents confusion with the C++ keyword
771 'class', and makes the tokens consistent with other
772 Objective-C 'AT' keywords. For example '@class' is
773 reported as RID_AT_CLASS which is consistent with
774 '@synchronized', which is reported as
777 case RID_CLASS
: token
->keyword
= RID_AT_CLASS
; break;
778 case RID_PRIVATE
: token
->keyword
= RID_AT_PRIVATE
; break;
779 case RID_PROTECTED
: token
->keyword
= RID_AT_PROTECTED
; break;
780 case RID_PUBLIC
: token
->keyword
= RID_AT_PUBLIC
; break;
781 case RID_THROW
: token
->keyword
= RID_AT_THROW
; break;
782 case RID_TRY
: token
->keyword
= RID_AT_TRY
; break;
783 case RID_CATCH
: token
->keyword
= RID_AT_CATCH
; break;
784 default: token
->keyword
= C_RID_CODE (token
->u
.value
);
787 else if (token
->type
== CPP_PRAGMA
)
789 /* We smuggled the cpp_token->u.pragma value in an INTEGER_CST. */
790 token
->pragma_kind
= ((enum pragma_kind
)
791 TREE_INT_CST_LOW (token
->u
.value
));
792 token
->u
.value
= NULL_TREE
;
796 /* Update the globals input_location and the input file stack from TOKEN. */
798 cp_lexer_set_source_position_from_token (cp_token
*token
)
800 if (token
->type
!= CPP_EOF
)
802 input_location
= token
->location
;
806 /* Return a pointer to the next token in the token stream, but do not
809 static inline cp_token
*
810 cp_lexer_peek_token (cp_lexer
*lexer
)
812 if (cp_lexer_debugging_p (lexer
))
814 fputs ("cp_lexer: peeking at token: ", cp_lexer_debug_stream
);
815 cp_lexer_print_token (cp_lexer_debug_stream
, lexer
->next_token
);
816 putc ('\n', cp_lexer_debug_stream
);
818 return lexer
->next_token
;
821 /* Return true if the next token has the indicated TYPE. */
824 cp_lexer_next_token_is (cp_lexer
* lexer
, enum cpp_ttype type
)
826 return cp_lexer_peek_token (lexer
)->type
== type
;
829 /* Return true if the next token does not have the indicated TYPE. */
832 cp_lexer_next_token_is_not (cp_lexer
* lexer
, enum cpp_ttype type
)
834 return !cp_lexer_next_token_is (lexer
, type
);
837 /* Return true if the next token is the indicated KEYWORD. */
840 cp_lexer_next_token_is_keyword (cp_lexer
* lexer
, enum rid keyword
)
842 return cp_lexer_peek_token (lexer
)->keyword
== keyword
;
845 /* Return true if the next token is not the indicated KEYWORD. */
848 cp_lexer_next_token_is_not_keyword (cp_lexer
* lexer
, enum rid keyword
)
850 return cp_lexer_peek_token (lexer
)->keyword
!= keyword
;
853 /* Return true if the next token is a keyword for a decl-specifier. */
856 cp_lexer_next_token_is_decl_specifier_keyword (cp_lexer
*lexer
)
860 token
= cp_lexer_peek_token (lexer
);
861 switch (token
->keyword
)
863 /* auto specifier: storage-class-specifier in C++,
864 simple-type-specifier in C++0x. */
866 /* Storage classes. */
872 /* Elaborated type specifiers. */
878 /* Simple type specifiers. */
893 /* GNU extensions. */
896 /* C++0x extensions. */
898 case RID_UNDERLYING_TYPE
:
906 /* Returns TRUE iff the token T begins a decltype type. */
909 token_is_decltype (cp_token
*t
)
911 return (t
->keyword
== RID_DECLTYPE
912 || t
->type
== CPP_DECLTYPE
);
915 /* Returns TRUE iff the next token begins a decltype type. */
918 cp_lexer_next_token_is_decltype (cp_lexer
*lexer
)
920 cp_token
*t
= cp_lexer_peek_token (lexer
);
921 return token_is_decltype (t
);
924 /* Return a pointer to the Nth token in the token stream. If N is 1,
925 then this is precisely equivalent to cp_lexer_peek_token (except
926 that it is not inline). One would like to disallow that case, but
927 there is one case (cp_parser_nth_token_starts_template_id) where
928 the caller passes a variable for N and it might be 1. */
931 cp_lexer_peek_nth_token (cp_lexer
* lexer
, size_t n
)
935 /* N is 1-based, not zero-based. */
938 if (cp_lexer_debugging_p (lexer
))
939 fprintf (cp_lexer_debug_stream
,
940 "cp_lexer: peeking ahead %ld at token: ", (long)n
);
943 token
= lexer
->next_token
;
944 gcc_assert (!n
|| token
!= &eof_token
);
948 if (token
== lexer
->last_token
)
954 if (!token
->purged_p
)
958 if (cp_lexer_debugging_p (lexer
))
960 cp_lexer_print_token (cp_lexer_debug_stream
, token
);
961 putc ('\n', cp_lexer_debug_stream
);
967 /* Return the next token, and advance the lexer's next_token pointer
968 to point to the next non-purged token. */
971 cp_lexer_consume_token (cp_lexer
* lexer
)
973 cp_token
*token
= lexer
->next_token
;
975 gcc_assert (token
!= &eof_token
);
976 gcc_assert (!lexer
->in_pragma
|| token
->type
!= CPP_PRAGMA_EOL
);
981 if (lexer
->next_token
== lexer
->last_token
)
983 lexer
->next_token
= &eof_token
;
988 while (lexer
->next_token
->purged_p
);
990 cp_lexer_set_source_position_from_token (token
);
992 /* Provide debugging output. */
993 if (cp_lexer_debugging_p (lexer
))
995 fputs ("cp_lexer: consuming token: ", cp_lexer_debug_stream
);
996 cp_lexer_print_token (cp_lexer_debug_stream
, token
);
997 putc ('\n', cp_lexer_debug_stream
);
1003 /* Permanently remove the next token from the token stream, and
1004 advance the next_token pointer to refer to the next non-purged
1008 cp_lexer_purge_token (cp_lexer
*lexer
)
1010 cp_token
*tok
= lexer
->next_token
;
1012 gcc_assert (tok
!= &eof_token
);
1013 tok
->purged_p
= true;
1014 tok
->location
= UNKNOWN_LOCATION
;
1015 tok
->u
.value
= NULL_TREE
;
1016 tok
->keyword
= RID_MAX
;
1021 if (tok
== lexer
->last_token
)
1027 while (tok
->purged_p
);
1028 lexer
->next_token
= tok
;
1031 /* Permanently remove all tokens after TOK, up to, but not
1032 including, the token that will be returned next by
1033 cp_lexer_peek_token. */
1036 cp_lexer_purge_tokens_after (cp_lexer
*lexer
, cp_token
*tok
)
1038 cp_token
*peek
= lexer
->next_token
;
1040 if (peek
== &eof_token
)
1041 peek
= lexer
->last_token
;
1043 gcc_assert (tok
< peek
);
1045 for ( tok
+= 1; tok
!= peek
; tok
+= 1)
1047 tok
->purged_p
= true;
1048 tok
->location
= UNKNOWN_LOCATION
;
1049 tok
->u
.value
= NULL_TREE
;
1050 tok
->keyword
= RID_MAX
;
1054 /* Begin saving tokens. All tokens consumed after this point will be
1058 cp_lexer_save_tokens (cp_lexer
* lexer
)
1060 /* Provide debugging output. */
1061 if (cp_lexer_debugging_p (lexer
))
1062 fprintf (cp_lexer_debug_stream
, "cp_lexer: saving tokens\n");
1064 VEC_safe_push (cp_token_position
, heap
,
1065 lexer
->saved_tokens
, lexer
->next_token
);
1068 /* Commit to the portion of the token stream most recently saved. */
1071 cp_lexer_commit_tokens (cp_lexer
* lexer
)
1073 /* Provide debugging output. */
1074 if (cp_lexer_debugging_p (lexer
))
1075 fprintf (cp_lexer_debug_stream
, "cp_lexer: committing tokens\n");
1077 VEC_pop (cp_token_position
, lexer
->saved_tokens
);
1080 /* Return all tokens saved since the last call to cp_lexer_save_tokens
1081 to the token stream. Stop saving tokens. */
1084 cp_lexer_rollback_tokens (cp_lexer
* lexer
)
1086 /* Provide debugging output. */
1087 if (cp_lexer_debugging_p (lexer
))
1088 fprintf (cp_lexer_debug_stream
, "cp_lexer: restoring tokens\n");
1090 lexer
->next_token
= VEC_pop (cp_token_position
, lexer
->saved_tokens
);
1093 /* Print a representation of the TOKEN on the STREAM. */
1096 cp_lexer_print_token (FILE * stream
, cp_token
*token
)
1098 /* We don't use cpp_type2name here because the parser defines
1099 a few tokens of its own. */
1100 static const char *const token_names
[] = {
1101 /* cpplib-defined token types */
1102 #define OP(e, s) #e,
1103 #define TK(e, s) #e,
1107 /* C++ parser token types - see "Manifest constants", above. */
1110 "NESTED_NAME_SPECIFIER",
1113 /* For some tokens, print the associated data. */
1114 switch (token
->type
)
1117 /* Some keywords have a value that is not an IDENTIFIER_NODE.
1118 For example, `struct' is mapped to an INTEGER_CST. */
1119 if (TREE_CODE (token
->u
.value
) != IDENTIFIER_NODE
)
1121 /* else fall through */
1123 fputs (IDENTIFIER_POINTER (token
->u
.value
), stream
);
1130 case CPP_UTF8STRING
:
1131 fprintf (stream
, " \"%s\"", TREE_STRING_POINTER (token
->u
.value
));
1135 print_generic_expr (stream
, token
->u
.value
, 0);
1139 /* If we have a name for the token, print it out. Otherwise, we
1140 simply give the numeric code. */
1141 if (token
->type
< ARRAY_SIZE(token_names
))
1142 fputs (token_names
[token
->type
], stream
);
1144 fprintf (stream
, "[%d]", token
->type
);
1149 /* Start emitting debugging information. */
1152 cp_lexer_start_debugging (cp_lexer
* lexer
)
1154 lexer
->debugging_p
= true;
1155 cp_lexer_debug_stream
= stderr
;
1158 /* Stop emitting debugging information. */
1161 cp_lexer_stop_debugging (cp_lexer
* lexer
)
1163 lexer
->debugging_p
= false;
1164 cp_lexer_debug_stream
= NULL
;
1167 /* Create a new cp_token_cache, representing a range of tokens. */
1169 static cp_token_cache
*
1170 cp_token_cache_new (cp_token
*first
, cp_token
*last
)
1172 cp_token_cache
*cache
= ggc_alloc_cp_token_cache ();
1173 cache
->first
= first
;
1179 /* Decl-specifiers. */
1181 /* Set *DECL_SPECS to represent an empty decl-specifier-seq. */
1184 clear_decl_specs (cp_decl_specifier_seq
*decl_specs
)
1186 memset (decl_specs
, 0, sizeof (cp_decl_specifier_seq
));
1191 /* Nothing other than the parser should be creating declarators;
1192 declarators are a semi-syntactic representation of C++ entities.
1193 Other parts of the front end that need to create entities (like
1194 VAR_DECLs or FUNCTION_DECLs) should do that directly. */
1196 static cp_declarator
*make_call_declarator
1197 (cp_declarator
*, tree
, cp_cv_quals
, cp_virt_specifiers
, tree
, tree
);
1198 static cp_declarator
*make_array_declarator
1199 (cp_declarator
*, tree
);
1200 static cp_declarator
*make_pointer_declarator
1201 (cp_cv_quals
, cp_declarator
*);
1202 static cp_declarator
*make_reference_declarator
1203 (cp_cv_quals
, cp_declarator
*, bool);
1204 static cp_parameter_declarator
*make_parameter_declarator
1205 (cp_decl_specifier_seq
*, cp_declarator
*, tree
);
1206 static cp_declarator
*make_ptrmem_declarator
1207 (cp_cv_quals
, tree
, cp_declarator
*);
1209 /* An erroneous declarator. */
1210 static cp_declarator
*cp_error_declarator
;
1212 /* The obstack on which declarators and related data structures are
1214 static struct obstack declarator_obstack
;
1216 /* Alloc BYTES from the declarator memory pool. */
1218 static inline void *
1219 alloc_declarator (size_t bytes
)
1221 return obstack_alloc (&declarator_obstack
, bytes
);
1224 /* Allocate a declarator of the indicated KIND. Clear fields that are
1225 common to all declarators. */
1227 static cp_declarator
*
1228 make_declarator (cp_declarator_kind kind
)
1230 cp_declarator
*declarator
;
1232 declarator
= (cp_declarator
*) alloc_declarator (sizeof (cp_declarator
));
1233 declarator
->kind
= kind
;
1234 declarator
->attributes
= NULL_TREE
;
1235 declarator
->declarator
= NULL
;
1236 declarator
->parameter_pack_p
= false;
1237 declarator
->id_loc
= UNKNOWN_LOCATION
;
1242 /* Make a declarator for a generalized identifier. If
1243 QUALIFYING_SCOPE is non-NULL, the identifier is
1244 QUALIFYING_SCOPE::UNQUALIFIED_NAME; otherwise, it is just
1245 UNQUALIFIED_NAME. SFK indicates the kind of special function this
1248 static cp_declarator
*
1249 make_id_declarator (tree qualifying_scope
, tree unqualified_name
,
1250 special_function_kind sfk
)
1252 cp_declarator
*declarator
;
1254 /* It is valid to write:
1256 class C { void f(); };
1260 The standard is not clear about whether `typedef const C D' is
1261 legal; as of 2002-09-15 the committee is considering that
1262 question. EDG 3.0 allows that syntax. Therefore, we do as
1264 if (qualifying_scope
&& TYPE_P (qualifying_scope
))
1265 qualifying_scope
= TYPE_MAIN_VARIANT (qualifying_scope
);
1267 gcc_assert (TREE_CODE (unqualified_name
) == IDENTIFIER_NODE
1268 || TREE_CODE (unqualified_name
) == BIT_NOT_EXPR
1269 || TREE_CODE (unqualified_name
) == TEMPLATE_ID_EXPR
);
1271 declarator
= make_declarator (cdk_id
);
1272 declarator
->u
.id
.qualifying_scope
= qualifying_scope
;
1273 declarator
->u
.id
.unqualified_name
= unqualified_name
;
1274 declarator
->u
.id
.sfk
= sfk
;
1279 /* Make a declarator for a pointer to TARGET. CV_QUALIFIERS is a list
1280 of modifiers such as const or volatile to apply to the pointer
1281 type, represented as identifiers. */
1284 make_pointer_declarator (cp_cv_quals cv_qualifiers
, cp_declarator
*target
)
1286 cp_declarator
*declarator
;
1288 declarator
= make_declarator (cdk_pointer
);
1289 declarator
->declarator
= target
;
1290 declarator
->u
.pointer
.qualifiers
= cv_qualifiers
;
1291 declarator
->u
.pointer
.class_type
= NULL_TREE
;
1294 declarator
->id_loc
= target
->id_loc
;
1295 declarator
->parameter_pack_p
= target
->parameter_pack_p
;
1296 target
->parameter_pack_p
= false;
1299 declarator
->parameter_pack_p
= false;
1304 /* Like make_pointer_declarator -- but for references. */
1307 make_reference_declarator (cp_cv_quals cv_qualifiers
, cp_declarator
*target
,
1310 cp_declarator
*declarator
;
1312 declarator
= make_declarator (cdk_reference
);
1313 declarator
->declarator
= target
;
1314 declarator
->u
.reference
.qualifiers
= cv_qualifiers
;
1315 declarator
->u
.reference
.rvalue_ref
= rvalue_ref
;
1318 declarator
->id_loc
= target
->id_loc
;
1319 declarator
->parameter_pack_p
= target
->parameter_pack_p
;
1320 target
->parameter_pack_p
= false;
1323 declarator
->parameter_pack_p
= false;
1328 /* Like make_pointer_declarator -- but for a pointer to a non-static
1329 member of CLASS_TYPE. */
1332 make_ptrmem_declarator (cp_cv_quals cv_qualifiers
, tree class_type
,
1333 cp_declarator
*pointee
)
1335 cp_declarator
*declarator
;
1337 declarator
= make_declarator (cdk_ptrmem
);
1338 declarator
->declarator
= pointee
;
1339 declarator
->u
.pointer
.qualifiers
= cv_qualifiers
;
1340 declarator
->u
.pointer
.class_type
= class_type
;
1344 declarator
->parameter_pack_p
= pointee
->parameter_pack_p
;
1345 pointee
->parameter_pack_p
= false;
1348 declarator
->parameter_pack_p
= false;
1353 /* Make a declarator for the function given by TARGET, with the
1354 indicated PARMS. The CV_QUALIFIERS aply to the function, as in
1355 "const"-qualified member function. The EXCEPTION_SPECIFICATION
1356 indicates what exceptions can be thrown. */
1359 make_call_declarator (cp_declarator
*target
,
1361 cp_cv_quals cv_qualifiers
,
1362 cp_virt_specifiers virt_specifiers
,
1363 tree exception_specification
,
1364 tree late_return_type
)
1366 cp_declarator
*declarator
;
1368 declarator
= make_declarator (cdk_function
);
1369 declarator
->declarator
= target
;
1370 declarator
->u
.function
.parameters
= parms
;
1371 declarator
->u
.function
.qualifiers
= cv_qualifiers
;
1372 declarator
->u
.function
.virt_specifiers
= virt_specifiers
;
1373 declarator
->u
.function
.exception_specification
= exception_specification
;
1374 declarator
->u
.function
.late_return_type
= late_return_type
;
1377 declarator
->id_loc
= target
->id_loc
;
1378 declarator
->parameter_pack_p
= target
->parameter_pack_p
;
1379 target
->parameter_pack_p
= false;
1382 declarator
->parameter_pack_p
= false;
1387 /* Make a declarator for an array of BOUNDS elements, each of which is
1388 defined by ELEMENT. */
1391 make_array_declarator (cp_declarator
*element
, tree bounds
)
1393 cp_declarator
*declarator
;
1395 declarator
= make_declarator (cdk_array
);
1396 declarator
->declarator
= element
;
1397 declarator
->u
.array
.bounds
= bounds
;
1400 declarator
->id_loc
= element
->id_loc
;
1401 declarator
->parameter_pack_p
= element
->parameter_pack_p
;
1402 element
->parameter_pack_p
= false;
1405 declarator
->parameter_pack_p
= false;
1410 /* Determine whether the declarator we've seen so far can be a
1411 parameter pack, when followed by an ellipsis. */
1413 declarator_can_be_parameter_pack (cp_declarator
*declarator
)
1415 /* Search for a declarator name, or any other declarator that goes
1416 after the point where the ellipsis could appear in a parameter
1417 pack. If we find any of these, then this declarator can not be
1418 made into a parameter pack. */
1420 while (declarator
&& !found
)
1422 switch ((int)declarator
->kind
)
1433 declarator
= declarator
->declarator
;
1441 cp_parameter_declarator
*no_parameters
;
1443 /* Create a parameter declarator with the indicated DECL_SPECIFIERS,
1444 DECLARATOR and DEFAULT_ARGUMENT. */
1446 cp_parameter_declarator
*
1447 make_parameter_declarator (cp_decl_specifier_seq
*decl_specifiers
,
1448 cp_declarator
*declarator
,
1449 tree default_argument
)
1451 cp_parameter_declarator
*parameter
;
1453 parameter
= ((cp_parameter_declarator
*)
1454 alloc_declarator (sizeof (cp_parameter_declarator
)));
1455 parameter
->next
= NULL
;
1456 if (decl_specifiers
)
1457 parameter
->decl_specifiers
= *decl_specifiers
;
1459 clear_decl_specs (¶meter
->decl_specifiers
);
1460 parameter
->declarator
= declarator
;
1461 parameter
->default_argument
= default_argument
;
1462 parameter
->ellipsis_p
= false;
1467 /* Returns true iff DECLARATOR is a declaration for a function. */
1470 function_declarator_p (const cp_declarator
*declarator
)
1474 if (declarator
->kind
== cdk_function
1475 && declarator
->declarator
->kind
== cdk_id
)
1477 if (declarator
->kind
== cdk_id
1478 || declarator
->kind
== cdk_error
)
1480 declarator
= declarator
->declarator
;
1490 A cp_parser parses the token stream as specified by the C++
1491 grammar. Its job is purely parsing, not semantic analysis. For
1492 example, the parser breaks the token stream into declarators,
1493 expressions, statements, and other similar syntactic constructs.
1494 It does not check that the types of the expressions on either side
1495 of an assignment-statement are compatible, or that a function is
1496 not declared with a parameter of type `void'.
1498 The parser invokes routines elsewhere in the compiler to perform
1499 semantic analysis and to build up the abstract syntax tree for the
1502 The parser (and the template instantiation code, which is, in a
1503 way, a close relative of parsing) are the only parts of the
1504 compiler that should be calling push_scope and pop_scope, or
1505 related functions. The parser (and template instantiation code)
1506 keeps track of what scope is presently active; everything else
1507 should simply honor that. (The code that generates static
1508 initializers may also need to set the scope, in order to check
1509 access control correctly when emitting the initializers.)
1514 The parser is of the standard recursive-descent variety. Upcoming
1515 tokens in the token stream are examined in order to determine which
1516 production to use when parsing a non-terminal. Some C++ constructs
1517 require arbitrary look ahead to disambiguate. For example, it is
1518 impossible, in the general case, to tell whether a statement is an
1519 expression or declaration without scanning the entire statement.
1520 Therefore, the parser is capable of "parsing tentatively." When the
1521 parser is not sure what construct comes next, it enters this mode.
1522 Then, while we attempt to parse the construct, the parser queues up
1523 error messages, rather than issuing them immediately, and saves the
1524 tokens it consumes. If the construct is parsed successfully, the
1525 parser "commits", i.e., it issues any queued error messages and
1526 the tokens that were being preserved are permanently discarded.
1527 If, however, the construct is not parsed successfully, the parser
1528 rolls back its state completely so that it can resume parsing using
1529 a different alternative.
1534 The performance of the parser could probably be improved substantially.
1535 We could often eliminate the need to parse tentatively by looking ahead
1536 a little bit. In some places, this approach might not entirely eliminate
1537 the need to parse tentatively, but it might still speed up the average
1540 /* Flags that are passed to some parsing functions. These values can
1541 be bitwise-ored together. */
1546 CP_PARSER_FLAGS_NONE
= 0x0,
1547 /* The construct is optional. If it is not present, then no error
1548 should be issued. */
1549 CP_PARSER_FLAGS_OPTIONAL
= 0x1,
1550 /* When parsing a type-specifier, treat user-defined type-names
1551 as non-type identifiers. */
1552 CP_PARSER_FLAGS_NO_USER_DEFINED_TYPES
= 0x2,
1553 /* When parsing a type-specifier, do not try to parse a class-specifier
1554 or enum-specifier. */
1555 CP_PARSER_FLAGS_NO_TYPE_DEFINITIONS
= 0x4,
1556 /* When parsing a decl-specifier-seq, only allow type-specifier or
1558 CP_PARSER_FLAGS_ONLY_TYPE_OR_CONSTEXPR
= 0x8
1561 /* This type is used for parameters and variables which hold
1562 combinations of the above flags. */
1563 typedef int cp_parser_flags
;
1565 /* The different kinds of declarators we want to parse. */
1567 typedef enum cp_parser_declarator_kind
1569 /* We want an abstract declarator. */
1570 CP_PARSER_DECLARATOR_ABSTRACT
,
1571 /* We want a named declarator. */
1572 CP_PARSER_DECLARATOR_NAMED
,
1573 /* We don't mind, but the name must be an unqualified-id. */
1574 CP_PARSER_DECLARATOR_EITHER
1575 } cp_parser_declarator_kind
;
1577 /* The precedence values used to parse binary expressions. The minimum value
1578 of PREC must be 1, because zero is reserved to quickly discriminate
1579 binary operators from other tokens. */
1584 PREC_LOGICAL_OR_EXPRESSION
,
1585 PREC_LOGICAL_AND_EXPRESSION
,
1586 PREC_INCLUSIVE_OR_EXPRESSION
,
1587 PREC_EXCLUSIVE_OR_EXPRESSION
,
1588 PREC_AND_EXPRESSION
,
1589 PREC_EQUALITY_EXPRESSION
,
1590 PREC_RELATIONAL_EXPRESSION
,
1591 PREC_SHIFT_EXPRESSION
,
1592 PREC_ADDITIVE_EXPRESSION
,
1593 PREC_MULTIPLICATIVE_EXPRESSION
,
1595 NUM_PREC_VALUES
= PREC_PM_EXPRESSION
1598 /* A mapping from a token type to a corresponding tree node type, with a
1599 precedence value. */
1601 typedef struct cp_parser_binary_operations_map_node
1603 /* The token type. */
1604 enum cpp_ttype token_type
;
1605 /* The corresponding tree code. */
1606 enum tree_code tree_type
;
1607 /* The precedence of this operator. */
1608 enum cp_parser_prec prec
;
1609 } cp_parser_binary_operations_map_node
;
1611 typedef struct cp_parser_expression_stack_entry
1613 /* Left hand side of the binary operation we are currently
1616 /* Original tree code for left hand side, if it was a binary
1617 expression itself (used for -Wparentheses). */
1618 enum tree_code lhs_type
;
1619 /* Tree code for the binary operation we are parsing. */
1620 enum tree_code tree_type
;
1621 /* Precedence of the binary operation we are parsing. */
1622 enum cp_parser_prec prec
;
1623 /* Location of the binary operation we are parsing. */
1625 } cp_parser_expression_stack_entry
;
1627 /* The stack for storing partial expressions. We only need NUM_PREC_VALUES
1628 entries because precedence levels on the stack are monotonically
1630 typedef struct cp_parser_expression_stack_entry
1631 cp_parser_expression_stack
[NUM_PREC_VALUES
];
1635 /* Constructors and destructors. */
1637 static cp_parser_context
*cp_parser_context_new
1638 (cp_parser_context
*);
1640 /* Class variables. */
1642 static GTY((deletable
)) cp_parser_context
* cp_parser_context_free_list
;
1644 /* The operator-precedence table used by cp_parser_binary_expression.
1645 Transformed into an associative array (binops_by_token) by
1648 static const cp_parser_binary_operations_map_node binops
[] = {
1649 { CPP_DEREF_STAR
, MEMBER_REF
, PREC_PM_EXPRESSION
},
1650 { CPP_DOT_STAR
, DOTSTAR_EXPR
, PREC_PM_EXPRESSION
},
1652 { CPP_MULT
, MULT_EXPR
, PREC_MULTIPLICATIVE_EXPRESSION
},
1653 { CPP_DIV
, TRUNC_DIV_EXPR
, PREC_MULTIPLICATIVE_EXPRESSION
},
1654 { CPP_MOD
, TRUNC_MOD_EXPR
, PREC_MULTIPLICATIVE_EXPRESSION
},
1656 { CPP_PLUS
, PLUS_EXPR
, PREC_ADDITIVE_EXPRESSION
},
1657 { CPP_MINUS
, MINUS_EXPR
, PREC_ADDITIVE_EXPRESSION
},
1659 { CPP_LSHIFT
, LSHIFT_EXPR
, PREC_SHIFT_EXPRESSION
},
1660 { CPP_RSHIFT
, RSHIFT_EXPR
, PREC_SHIFT_EXPRESSION
},
1662 { CPP_LESS
, LT_EXPR
, PREC_RELATIONAL_EXPRESSION
},
1663 { CPP_GREATER
, GT_EXPR
, PREC_RELATIONAL_EXPRESSION
},
1664 { CPP_LESS_EQ
, LE_EXPR
, PREC_RELATIONAL_EXPRESSION
},
1665 { CPP_GREATER_EQ
, GE_EXPR
, PREC_RELATIONAL_EXPRESSION
},
1667 { CPP_EQ_EQ
, EQ_EXPR
, PREC_EQUALITY_EXPRESSION
},
1668 { CPP_NOT_EQ
, NE_EXPR
, PREC_EQUALITY_EXPRESSION
},
1670 { CPP_AND
, BIT_AND_EXPR
, PREC_AND_EXPRESSION
},
1672 { CPP_XOR
, BIT_XOR_EXPR
, PREC_EXCLUSIVE_OR_EXPRESSION
},
1674 { CPP_OR
, BIT_IOR_EXPR
, PREC_INCLUSIVE_OR_EXPRESSION
},
1676 { CPP_AND_AND
, TRUTH_ANDIF_EXPR
, PREC_LOGICAL_AND_EXPRESSION
},
1678 { CPP_OR_OR
, TRUTH_ORIF_EXPR
, PREC_LOGICAL_OR_EXPRESSION
}
1681 /* The same as binops, but initialized by cp_parser_new so that
1682 binops_by_token[N].token_type == N. Used in cp_parser_binary_expression
1684 static cp_parser_binary_operations_map_node binops_by_token
[N_CP_TTYPES
];
1686 /* Constructors and destructors. */
1688 /* Construct a new context. The context below this one on the stack
1689 is given by NEXT. */
1691 static cp_parser_context
*
1692 cp_parser_context_new (cp_parser_context
* next
)
1694 cp_parser_context
*context
;
1696 /* Allocate the storage. */
1697 if (cp_parser_context_free_list
!= NULL
)
1699 /* Pull the first entry from the free list. */
1700 context
= cp_parser_context_free_list
;
1701 cp_parser_context_free_list
= context
->next
;
1702 memset (context
, 0, sizeof (*context
));
1705 context
= ggc_alloc_cleared_cp_parser_context ();
1707 /* No errors have occurred yet in this context. */
1708 context
->status
= CP_PARSER_STATUS_KIND_NO_ERROR
;
1709 /* If this is not the bottommost context, copy information that we
1710 need from the previous context. */
1713 /* If, in the NEXT context, we are parsing an `x->' or `x.'
1714 expression, then we are parsing one in this context, too. */
1715 context
->object_type
= next
->object_type
;
1716 /* Thread the stack. */
1717 context
->next
= next
;
1723 /* Managing the unparsed function queues. */
1725 #define unparsed_funs_with_default_args \
1726 VEC_last (cp_unparsed_functions_entry, parser->unparsed_queues)->funs_with_default_args
1727 #define unparsed_funs_with_definitions \
1728 VEC_last (cp_unparsed_functions_entry, parser->unparsed_queues)->funs_with_definitions
1729 #define unparsed_nsdmis \
1730 VEC_last (cp_unparsed_functions_entry, parser->unparsed_queues)->nsdmis
1733 push_unparsed_function_queues (cp_parser
*parser
)
1735 VEC_safe_push (cp_unparsed_functions_entry
, gc
,
1736 parser
->unparsed_queues
, NULL
);
1737 unparsed_funs_with_default_args
= NULL
;
1738 unparsed_funs_with_definitions
= make_tree_vector ();
1739 unparsed_nsdmis
= NULL
;
1743 pop_unparsed_function_queues (cp_parser
*parser
)
1745 release_tree_vector (unparsed_funs_with_definitions
);
1746 VEC_pop (cp_unparsed_functions_entry
, parser
->unparsed_queues
);
1751 /* Constructors and destructors. */
1753 static cp_parser
*cp_parser_new
1756 /* Routines to parse various constructs.
1758 Those that return `tree' will return the error_mark_node (rather
1759 than NULL_TREE) if a parse error occurs, unless otherwise noted.
1760 Sometimes, they will return an ordinary node if error-recovery was
1761 attempted, even though a parse error occurred. So, to check
1762 whether or not a parse error occurred, you should always use
1763 cp_parser_error_occurred. If the construct is optional (indicated
1764 either by an `_opt' in the name of the function that does the
1765 parsing or via a FLAGS parameter), then NULL_TREE is returned if
1766 the construct is not present. */
1768 /* Lexical conventions [gram.lex] */
1770 static tree cp_parser_identifier
1772 static tree cp_parser_string_literal
1773 (cp_parser
*, bool, bool);
1774 static tree cp_parser_userdef_char_literal
1776 static tree cp_parser_userdef_string_literal
1778 static tree cp_parser_userdef_numeric_literal
1781 /* Basic concepts [gram.basic] */
1783 static bool cp_parser_translation_unit
1786 /* Expressions [gram.expr] */
1788 static tree cp_parser_primary_expression
1789 (cp_parser
*, bool, bool, bool, cp_id_kind
*);
1790 static tree cp_parser_id_expression
1791 (cp_parser
*, bool, bool, bool *, bool, bool);
1792 static tree cp_parser_unqualified_id
1793 (cp_parser
*, bool, bool, bool, bool);
1794 static tree cp_parser_nested_name_specifier_opt
1795 (cp_parser
*, bool, bool, bool, bool);
1796 static tree cp_parser_nested_name_specifier
1797 (cp_parser
*, bool, bool, bool, bool);
1798 static tree cp_parser_qualifying_entity
1799 (cp_parser
*, bool, bool, bool, bool, bool);
1800 static tree cp_parser_postfix_expression
1801 (cp_parser
*, bool, bool, bool, cp_id_kind
*);
1802 static tree cp_parser_postfix_open_square_expression
1803 (cp_parser
*, tree
, bool);
1804 static tree cp_parser_postfix_dot_deref_expression
1805 (cp_parser
*, enum cpp_ttype
, tree
, bool, cp_id_kind
*, location_t
);
1806 static VEC(tree
,gc
) *cp_parser_parenthesized_expression_list
1807 (cp_parser
*, int, bool, bool, bool *);
1808 /* Values for the second parameter of cp_parser_parenthesized_expression_list. */
1809 enum { non_attr
= 0, normal_attr
= 1, id_attr
= 2 };
1810 static void cp_parser_pseudo_destructor_name
1811 (cp_parser
*, tree
*, tree
*);
1812 static tree cp_parser_unary_expression
1813 (cp_parser
*, bool, bool, cp_id_kind
*);
1814 static enum tree_code cp_parser_unary_operator
1816 static tree cp_parser_new_expression
1818 static VEC(tree
,gc
) *cp_parser_new_placement
1820 static tree cp_parser_new_type_id
1821 (cp_parser
*, tree
*);
1822 static cp_declarator
*cp_parser_new_declarator_opt
1824 static cp_declarator
*cp_parser_direct_new_declarator
1826 static VEC(tree
,gc
) *cp_parser_new_initializer
1828 static tree cp_parser_delete_expression
1830 static tree cp_parser_cast_expression
1831 (cp_parser
*, bool, bool, cp_id_kind
*);
1832 static tree cp_parser_binary_expression
1833 (cp_parser
*, bool, bool, enum cp_parser_prec
, cp_id_kind
*);
1834 static tree cp_parser_question_colon_clause
1835 (cp_parser
*, tree
);
1836 static tree cp_parser_assignment_expression
1837 (cp_parser
*, bool, cp_id_kind
*);
1838 static enum tree_code cp_parser_assignment_operator_opt
1840 static tree cp_parser_expression
1841 (cp_parser
*, bool, cp_id_kind
*);
1842 static tree cp_parser_constant_expression
1843 (cp_parser
*, bool, bool *);
1844 static tree cp_parser_builtin_offsetof
1846 static tree cp_parser_lambda_expression
1848 static void cp_parser_lambda_introducer
1849 (cp_parser
*, tree
);
1850 static bool cp_parser_lambda_declarator_opt
1851 (cp_parser
*, tree
);
1852 static void cp_parser_lambda_body
1853 (cp_parser
*, tree
);
1855 /* Statements [gram.stmt.stmt] */
1857 static void cp_parser_statement
1858 (cp_parser
*, tree
, bool, bool *);
1859 static void cp_parser_label_for_labeled_statement
1861 static tree cp_parser_expression_statement
1862 (cp_parser
*, tree
);
1863 static tree cp_parser_compound_statement
1864 (cp_parser
*, tree
, bool, bool);
1865 static void cp_parser_statement_seq_opt
1866 (cp_parser
*, tree
);
1867 static tree cp_parser_selection_statement
1868 (cp_parser
*, bool *);
1869 static tree cp_parser_condition
1871 static tree cp_parser_iteration_statement
1873 static bool cp_parser_for_init_statement
1874 (cp_parser
*, tree
*decl
);
1875 static tree cp_parser_for
1877 static tree cp_parser_c_for
1878 (cp_parser
*, tree
, tree
);
1879 static tree cp_parser_range_for
1880 (cp_parser
*, tree
, tree
, tree
);
1881 static void do_range_for_auto_deduction
1883 static tree cp_parser_perform_range_for_lookup
1884 (tree
, tree
*, tree
*);
1885 static tree cp_parser_range_for_member_function
1887 static tree cp_parser_jump_statement
1889 static void cp_parser_declaration_statement
1892 static tree cp_parser_implicitly_scoped_statement
1893 (cp_parser
*, bool *);
1894 static void cp_parser_already_scoped_statement
1897 /* Declarations [gram.dcl.dcl] */
1899 static void cp_parser_declaration_seq_opt
1901 static void cp_parser_declaration
1903 static void cp_parser_block_declaration
1904 (cp_parser
*, bool);
1905 static void cp_parser_simple_declaration
1906 (cp_parser
*, bool, tree
*);
1907 static void cp_parser_decl_specifier_seq
1908 (cp_parser
*, cp_parser_flags
, cp_decl_specifier_seq
*, int *);
1909 static tree cp_parser_storage_class_specifier_opt
1911 static tree cp_parser_function_specifier_opt
1912 (cp_parser
*, cp_decl_specifier_seq
*);
1913 static tree cp_parser_type_specifier
1914 (cp_parser
*, cp_parser_flags
, cp_decl_specifier_seq
*, bool,
1916 static tree cp_parser_simple_type_specifier
1917 (cp_parser
*, cp_decl_specifier_seq
*, cp_parser_flags
);
1918 static tree cp_parser_type_name
1920 static tree cp_parser_nonclass_name
1921 (cp_parser
* parser
);
1922 static tree cp_parser_elaborated_type_specifier
1923 (cp_parser
*, bool, bool);
1924 static tree cp_parser_enum_specifier
1926 static void cp_parser_enumerator_list
1927 (cp_parser
*, tree
);
1928 static void cp_parser_enumerator_definition
1929 (cp_parser
*, tree
);
1930 static tree cp_parser_namespace_name
1932 static void cp_parser_namespace_definition
1934 static void cp_parser_namespace_body
1936 static tree cp_parser_qualified_namespace_specifier
1938 static void cp_parser_namespace_alias_definition
1940 static bool cp_parser_using_declaration
1941 (cp_parser
*, bool);
1942 static void cp_parser_using_directive
1944 static tree cp_parser_alias_declaration
1946 static void cp_parser_asm_definition
1948 static void cp_parser_linkage_specification
1950 static void cp_parser_static_assert
1951 (cp_parser
*, bool);
1952 static tree cp_parser_decltype
1955 /* Declarators [gram.dcl.decl] */
1957 static tree cp_parser_init_declarator
1958 (cp_parser
*, cp_decl_specifier_seq
*, VEC (deferred_access_check
,gc
)*, bool, bool, int, bool *, tree
*);
1959 static cp_declarator
*cp_parser_declarator
1960 (cp_parser
*, cp_parser_declarator_kind
, int *, bool *, bool);
1961 static cp_declarator
*cp_parser_direct_declarator
1962 (cp_parser
*, cp_parser_declarator_kind
, int *, bool);
1963 static enum tree_code cp_parser_ptr_operator
1964 (cp_parser
*, tree
*, cp_cv_quals
*);
1965 static cp_cv_quals cp_parser_cv_qualifier_seq_opt
1967 static cp_virt_specifiers cp_parser_virt_specifier_seq_opt
1969 static tree cp_parser_late_return_type_opt
1970 (cp_parser
*, cp_cv_quals
);
1971 static tree cp_parser_declarator_id
1972 (cp_parser
*, bool);
1973 static tree cp_parser_type_id
1975 static tree cp_parser_template_type_arg
1977 static tree
cp_parser_trailing_type_id (cp_parser
*);
1978 static tree cp_parser_type_id_1
1979 (cp_parser
*, bool, bool);
1980 static void cp_parser_type_specifier_seq
1981 (cp_parser
*, bool, bool, cp_decl_specifier_seq
*);
1982 static tree cp_parser_parameter_declaration_clause
1984 static tree cp_parser_parameter_declaration_list
1985 (cp_parser
*, bool *);
1986 static cp_parameter_declarator
*cp_parser_parameter_declaration
1987 (cp_parser
*, bool, bool *);
1988 static tree cp_parser_default_argument
1989 (cp_parser
*, bool);
1990 static void cp_parser_function_body
1991 (cp_parser
*, bool);
1992 static tree cp_parser_initializer
1993 (cp_parser
*, bool *, bool *);
1994 static tree cp_parser_initializer_clause
1995 (cp_parser
*, bool *);
1996 static tree cp_parser_braced_list
1997 (cp_parser
*, bool*);
1998 static VEC(constructor_elt
,gc
) *cp_parser_initializer_list
1999 (cp_parser
*, bool *);
2001 static bool cp_parser_ctor_initializer_opt_and_function_body
2002 (cp_parser
*, bool);
2004 /* Classes [gram.class] */
2006 static tree cp_parser_class_name
2007 (cp_parser
*, bool, bool, enum tag_types
, bool, bool, bool);
2008 static tree cp_parser_class_specifier
2010 static tree cp_parser_class_head
2011 (cp_parser
*, bool *, tree
*);
2012 static enum tag_types cp_parser_class_key
2014 static void cp_parser_member_specification_opt
2016 static void cp_parser_member_declaration
2018 static tree cp_parser_pure_specifier
2020 static tree cp_parser_constant_initializer
2023 /* Derived classes [gram.class.derived] */
2025 static tree cp_parser_base_clause
2027 static tree cp_parser_base_specifier
2030 /* Special member functions [gram.special] */
2032 static tree cp_parser_conversion_function_id
2034 static tree cp_parser_conversion_type_id
2036 static cp_declarator
*cp_parser_conversion_declarator_opt
2038 static bool cp_parser_ctor_initializer_opt
2040 static void cp_parser_mem_initializer_list
2042 static tree cp_parser_mem_initializer
2044 static tree cp_parser_mem_initializer_id
2047 /* Overloading [gram.over] */
2049 static tree cp_parser_operator_function_id
2051 static tree cp_parser_operator
2054 /* Templates [gram.temp] */
2056 static void cp_parser_template_declaration
2057 (cp_parser
*, bool);
2058 static tree cp_parser_template_parameter_list
2060 static tree cp_parser_template_parameter
2061 (cp_parser
*, bool *, bool *);
2062 static tree cp_parser_type_parameter
2063 (cp_parser
*, bool *);
2064 static tree cp_parser_template_id
2065 (cp_parser
*, bool, bool, bool);
2066 static tree cp_parser_template_name
2067 (cp_parser
*, bool, bool, bool, bool *);
2068 static tree cp_parser_template_argument_list
2070 static tree cp_parser_template_argument
2072 static void cp_parser_explicit_instantiation
2074 static void cp_parser_explicit_specialization
2077 /* Exception handling [gram.exception] */
2079 static tree cp_parser_try_block
2081 static bool cp_parser_function_try_block
2083 static void cp_parser_handler_seq
2085 static void cp_parser_handler
2087 static tree cp_parser_exception_declaration
2089 static tree cp_parser_throw_expression
2091 static tree cp_parser_exception_specification_opt
2093 static tree cp_parser_type_id_list
2096 /* GNU Extensions */
2098 static tree cp_parser_asm_specification_opt
2100 static tree cp_parser_asm_operand_list
2102 static tree cp_parser_asm_clobber_list
2104 static tree cp_parser_asm_label_list
2106 static tree cp_parser_attributes_opt
2108 static tree cp_parser_attribute_list
2110 static bool cp_parser_extension_opt
2111 (cp_parser
*, int *);
2112 static void cp_parser_label_declaration
2115 /* Transactional Memory Extensions */
2117 static tree cp_parser_transaction
2118 (cp_parser
*, enum rid
);
2119 static tree cp_parser_transaction_expression
2120 (cp_parser
*, enum rid
);
2121 static bool cp_parser_function_transaction
2122 (cp_parser
*, enum rid
);
2123 static tree cp_parser_transaction_cancel
2126 enum pragma_context
{ pragma_external
, pragma_stmt
, pragma_compound
};
2127 static bool cp_parser_pragma
2128 (cp_parser
*, enum pragma_context
);
2130 /* Objective-C++ Productions */
2132 static tree cp_parser_objc_message_receiver
2134 static tree cp_parser_objc_message_args
2136 static tree cp_parser_objc_message_expression
2138 static tree cp_parser_objc_encode_expression
2140 static tree cp_parser_objc_defs_expression
2142 static tree cp_parser_objc_protocol_expression
2144 static tree cp_parser_objc_selector_expression
2146 static tree cp_parser_objc_expression
2148 static bool cp_parser_objc_selector_p
2150 static tree cp_parser_objc_selector
2152 static tree cp_parser_objc_protocol_refs_opt
2154 static void cp_parser_objc_declaration
2155 (cp_parser
*, tree
);
2156 static tree cp_parser_objc_statement
2158 static bool cp_parser_objc_valid_prefix_attributes
2159 (cp_parser
*, tree
*);
2160 static void cp_parser_objc_at_property_declaration
2162 static void cp_parser_objc_at_synthesize_declaration
2164 static void cp_parser_objc_at_dynamic_declaration
2166 static tree cp_parser_objc_struct_declaration
2169 /* Utility Routines */
2171 static tree cp_parser_lookup_name
2172 (cp_parser
*, tree
, enum tag_types
, bool, bool, bool, tree
*, location_t
);
2173 static tree cp_parser_lookup_name_simple
2174 (cp_parser
*, tree
, location_t
);
2175 static tree cp_parser_maybe_treat_template_as_class
2177 static bool cp_parser_check_declarator_template_parameters
2178 (cp_parser
*, cp_declarator
*, location_t
);
2179 static bool cp_parser_check_template_parameters
2180 (cp_parser
*, unsigned, location_t
, cp_declarator
*);
2181 static tree cp_parser_simple_cast_expression
2183 static tree cp_parser_global_scope_opt
2184 (cp_parser
*, bool);
2185 static bool cp_parser_constructor_declarator_p
2186 (cp_parser
*, bool);
2187 static tree cp_parser_function_definition_from_specifiers_and_declarator
2188 (cp_parser
*, cp_decl_specifier_seq
*, tree
, const cp_declarator
*);
2189 static tree cp_parser_function_definition_after_declarator
2190 (cp_parser
*, bool);
2191 static void cp_parser_template_declaration_after_export
2192 (cp_parser
*, bool);
2193 static void cp_parser_perform_template_parameter_access_checks
2194 (VEC (deferred_access_check
,gc
)*);
2195 static tree cp_parser_single_declaration
2196 (cp_parser
*, VEC (deferred_access_check
,gc
)*, bool, bool, bool *);
2197 static tree cp_parser_functional_cast
2198 (cp_parser
*, tree
);
2199 static tree cp_parser_save_member_function_body
2200 (cp_parser
*, cp_decl_specifier_seq
*, cp_declarator
*, tree
);
2201 static tree cp_parser_save_nsdmi
2203 static tree cp_parser_enclosed_template_argument_list
2205 static void cp_parser_save_default_args
2206 (cp_parser
*, tree
);
2207 static void cp_parser_late_parsing_for_member
2208 (cp_parser
*, tree
);
2209 static tree cp_parser_late_parse_one_default_arg
2210 (cp_parser
*, tree
, tree
, tree
);
2211 static void cp_parser_late_parsing_nsdmi
2212 (cp_parser
*, tree
);
2213 static void cp_parser_late_parsing_default_args
2214 (cp_parser
*, tree
);
2215 static tree cp_parser_sizeof_operand
2216 (cp_parser
*, enum rid
);
2217 static tree cp_parser_trait_expr
2218 (cp_parser
*, enum rid
);
2219 static bool cp_parser_declares_only_class_p
2221 static void cp_parser_set_storage_class
2222 (cp_parser
*, cp_decl_specifier_seq
*, enum rid
, location_t
);
2223 static void cp_parser_set_decl_spec_type
2224 (cp_decl_specifier_seq
*, tree
, location_t
, bool);
2225 static void set_and_check_decl_spec_loc
2226 (cp_decl_specifier_seq
*decl_specs
,
2227 cp_decl_spec ds
, source_location location
);
2228 static bool cp_parser_friend_p
2229 (const cp_decl_specifier_seq
*);
2230 static void cp_parser_required_error
2231 (cp_parser
*, required_token
, bool);
2232 static cp_token
*cp_parser_require
2233 (cp_parser
*, enum cpp_ttype
, required_token
);
2234 static cp_token
*cp_parser_require_keyword
2235 (cp_parser
*, enum rid
, required_token
);
2236 static bool cp_parser_token_starts_function_definition_p
2238 static bool cp_parser_next_token_starts_class_definition_p
2240 static bool cp_parser_next_token_ends_template_argument_p
2242 static bool cp_parser_nth_token_starts_template_argument_list_p
2243 (cp_parser
*, size_t);
2244 static enum tag_types cp_parser_token_is_class_key
2246 static void cp_parser_check_class_key
2247 (enum tag_types
, tree type
);
2248 static void cp_parser_check_access_in_redeclaration
2249 (tree type
, location_t location
);
2250 static bool cp_parser_optional_template_keyword
2252 static void cp_parser_pre_parsed_nested_name_specifier
2254 static bool cp_parser_cache_group
2255 (cp_parser
*, enum cpp_ttype
, unsigned);
2256 static tree cp_parser_cache_defarg
2257 (cp_parser
*parser
, bool nsdmi
);
2258 static void cp_parser_parse_tentatively
2260 static void cp_parser_commit_to_tentative_parse
2262 static void cp_parser_abort_tentative_parse
2264 static bool cp_parser_parse_definitely
2266 static inline bool cp_parser_parsing_tentatively
2268 static bool cp_parser_uncommitted_to_tentative_parse_p
2270 static void cp_parser_error
2271 (cp_parser
*, const char *);
2272 static void cp_parser_name_lookup_error
2273 (cp_parser
*, tree
, tree
, name_lookup_error
, location_t
);
2274 static bool cp_parser_simulate_error
2276 static bool cp_parser_check_type_definition
2278 static void cp_parser_check_for_definition_in_return_type
2279 (cp_declarator
*, tree
, location_t type_location
);
2280 static void cp_parser_check_for_invalid_template_id
2281 (cp_parser
*, tree
, location_t location
);
2282 static bool cp_parser_non_integral_constant_expression
2283 (cp_parser
*, non_integral_constant
);
2284 static void cp_parser_diagnose_invalid_type_name
2285 (cp_parser
*, tree
, tree
, location_t
);
2286 static bool cp_parser_parse_and_diagnose_invalid_type_name
2288 static int cp_parser_skip_to_closing_parenthesis
2289 (cp_parser
*, bool, bool, bool);
2290 static void cp_parser_skip_to_end_of_statement
2292 static void cp_parser_consume_semicolon_at_end_of_statement
2294 static void cp_parser_skip_to_end_of_block_or_statement
2296 static bool cp_parser_skip_to_closing_brace
2298 static void cp_parser_skip_to_end_of_template_parameter_list
2300 static void cp_parser_skip_to_pragma_eol
2301 (cp_parser
*, cp_token
*);
2302 static bool cp_parser_error_occurred
2304 static bool cp_parser_allow_gnu_extensions_p
2306 static bool cp_parser_is_pure_string_literal
2308 static bool cp_parser_is_string_literal
2310 static bool cp_parser_is_keyword
2311 (cp_token
*, enum rid
);
2312 static tree cp_parser_make_typename_type
2313 (cp_parser
*, tree
, tree
, location_t location
);
2314 static cp_declarator
* cp_parser_make_indirect_declarator
2315 (enum tree_code
, tree
, cp_cv_quals
, cp_declarator
*);
2317 /* Returns nonzero if we are parsing tentatively. */
2320 cp_parser_parsing_tentatively (cp_parser
* parser
)
2322 return parser
->context
->next
!= NULL
;
2325 /* Returns nonzero if TOKEN is a string literal. */
2328 cp_parser_is_pure_string_literal (cp_token
* token
)
2330 return (token
->type
== CPP_STRING
||
2331 token
->type
== CPP_STRING16
||
2332 token
->type
== CPP_STRING32
||
2333 token
->type
== CPP_WSTRING
||
2334 token
->type
== CPP_UTF8STRING
);
2337 /* Returns nonzero if TOKEN is a string literal
2338 of a user-defined string literal. */
2341 cp_parser_is_string_literal (cp_token
* token
)
2343 return (cp_parser_is_pure_string_literal (token
) ||
2344 token
->type
== CPP_STRING_USERDEF
||
2345 token
->type
== CPP_STRING16_USERDEF
||
2346 token
->type
== CPP_STRING32_USERDEF
||
2347 token
->type
== CPP_WSTRING_USERDEF
||
2348 token
->type
== CPP_UTF8STRING_USERDEF
);
2351 /* Returns nonzero if TOKEN is the indicated KEYWORD. */
2354 cp_parser_is_keyword (cp_token
* token
, enum rid keyword
)
2356 return token
->keyword
== keyword
;
2359 /* If not parsing tentatively, issue a diagnostic of the form
2360 FILE:LINE: MESSAGE before TOKEN
2361 where TOKEN is the next token in the input stream. MESSAGE
2362 (specified by the caller) is usually of the form "expected
2366 cp_parser_error (cp_parser
* parser
, const char* gmsgid
)
2368 if (!cp_parser_simulate_error (parser
))
2370 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
2371 /* This diagnostic makes more sense if it is tagged to the line
2372 of the token we just peeked at. */
2373 cp_lexer_set_source_position_from_token (token
);
2375 if (token
->type
== CPP_PRAGMA
)
2377 error_at (token
->location
,
2378 "%<#pragma%> is not allowed here");
2379 cp_parser_skip_to_pragma_eol (parser
, token
);
2383 c_parse_error (gmsgid
,
2384 /* Because c_parser_error does not understand
2385 CPP_KEYWORD, keywords are treated like
2387 (token
->type
== CPP_KEYWORD
? CPP_NAME
: token
->type
),
2388 token
->u
.value
, token
->flags
);
2392 /* Issue an error about name-lookup failing. NAME is the
2393 IDENTIFIER_NODE DECL is the result of
2394 the lookup (as returned from cp_parser_lookup_name). DESIRED is
2395 the thing that we hoped to find. */
2398 cp_parser_name_lookup_error (cp_parser
* parser
,
2401 name_lookup_error desired
,
2402 location_t location
)
2404 /* If name lookup completely failed, tell the user that NAME was not
2406 if (decl
== error_mark_node
)
2408 if (parser
->scope
&& parser
->scope
!= global_namespace
)
2409 error_at (location
, "%<%E::%E%> has not been declared",
2410 parser
->scope
, name
);
2411 else if (parser
->scope
== global_namespace
)
2412 error_at (location
, "%<::%E%> has not been declared", name
);
2413 else if (parser
->object_scope
2414 && !CLASS_TYPE_P (parser
->object_scope
))
2415 error_at (location
, "request for member %qE in non-class type %qT",
2416 name
, parser
->object_scope
);
2417 else if (parser
->object_scope
)
2418 error_at (location
, "%<%T::%E%> has not been declared",
2419 parser
->object_scope
, name
);
2421 error_at (location
, "%qE has not been declared", name
);
2423 else if (parser
->scope
&& parser
->scope
!= global_namespace
)
2428 error_at (location
, "%<%E::%E%> is not a type",
2429 parser
->scope
, name
);
2432 error_at (location
, "%<%E::%E%> is not a class or namespace",
2433 parser
->scope
, name
);
2437 "%<%E::%E%> is not a class, namespace, or enumeration",
2438 parser
->scope
, name
);
2445 else if (parser
->scope
== global_namespace
)
2450 error_at (location
, "%<::%E%> is not a type", name
);
2453 error_at (location
, "%<::%E%> is not a class or namespace", name
);
2457 "%<::%E%> is not a class, namespace, or enumeration",
2469 error_at (location
, "%qE is not a type", name
);
2472 error_at (location
, "%qE is not a class or namespace", name
);
2476 "%qE is not a class, namespace, or enumeration", name
);
2484 /* If we are parsing tentatively, remember that an error has occurred
2485 during this tentative parse. Returns true if the error was
2486 simulated; false if a message should be issued by the caller. */
2489 cp_parser_simulate_error (cp_parser
* parser
)
2491 if (cp_parser_uncommitted_to_tentative_parse_p (parser
))
2493 parser
->context
->status
= CP_PARSER_STATUS_KIND_ERROR
;
2499 /* This function is called when a type is defined. If type
2500 definitions are forbidden at this point, an error message is
2504 cp_parser_check_type_definition (cp_parser
* parser
)
2506 /* If types are forbidden here, issue a message. */
2507 if (parser
->type_definition_forbidden_message
)
2509 /* Don't use `%s' to print the string, because quotations (`%<', `%>')
2510 in the message need to be interpreted. */
2511 error (parser
->type_definition_forbidden_message
);
2517 /* This function is called when the DECLARATOR is processed. The TYPE
2518 was a type defined in the decl-specifiers. If it is invalid to
2519 define a type in the decl-specifiers for DECLARATOR, an error is
2520 issued. TYPE_LOCATION is the location of TYPE and is used
2521 for error reporting. */
2524 cp_parser_check_for_definition_in_return_type (cp_declarator
*declarator
,
2525 tree type
, location_t type_location
)
2527 /* [dcl.fct] forbids type definitions in return types.
2528 Unfortunately, it's not easy to know whether or not we are
2529 processing a return type until after the fact. */
2531 && (declarator
->kind
== cdk_pointer
2532 || declarator
->kind
== cdk_reference
2533 || declarator
->kind
== cdk_ptrmem
))
2534 declarator
= declarator
->declarator
;
2536 && declarator
->kind
== cdk_function
)
2538 error_at (type_location
,
2539 "new types may not be defined in a return type");
2540 inform (type_location
,
2541 "(perhaps a semicolon is missing after the definition of %qT)",
2546 /* A type-specifier (TYPE) has been parsed which cannot be followed by
2547 "<" in any valid C++ program. If the next token is indeed "<",
2548 issue a message warning the user about what appears to be an
2549 invalid attempt to form a template-id. LOCATION is the location
2550 of the type-specifier (TYPE) */
2553 cp_parser_check_for_invalid_template_id (cp_parser
* parser
,
2554 tree type
, location_t location
)
2556 cp_token_position start
= 0;
2558 if (cp_lexer_next_token_is (parser
->lexer
, CPP_LESS
))
2561 error_at (location
, "%qT is not a template", type
);
2562 else if (TREE_CODE (type
) == IDENTIFIER_NODE
)
2563 error_at (location
, "%qE is not a template", type
);
2565 error_at (location
, "invalid template-id");
2566 /* Remember the location of the invalid "<". */
2567 if (cp_parser_uncommitted_to_tentative_parse_p (parser
))
2568 start
= cp_lexer_token_position (parser
->lexer
, true);
2569 /* Consume the "<". */
2570 cp_lexer_consume_token (parser
->lexer
);
2571 /* Parse the template arguments. */
2572 cp_parser_enclosed_template_argument_list (parser
);
2573 /* Permanently remove the invalid template arguments so that
2574 this error message is not issued again. */
2576 cp_lexer_purge_tokens_after (parser
->lexer
, start
);
2580 /* If parsing an integral constant-expression, issue an error message
2581 about the fact that THING appeared and return true. Otherwise,
2582 return false. In either case, set
2583 PARSER->NON_INTEGRAL_CONSTANT_EXPRESSION_P. */
2586 cp_parser_non_integral_constant_expression (cp_parser
*parser
,
2587 non_integral_constant thing
)
2589 parser
->non_integral_constant_expression_p
= true;
2590 if (parser
->integral_constant_expression_p
)
2592 if (!parser
->allow_non_integral_constant_expression_p
)
2594 const char *msg
= NULL
;
2598 error ("floating-point literal "
2599 "cannot appear in a constant-expression");
2602 error ("a cast to a type other than an integral or "
2603 "enumeration type cannot appear in a "
2604 "constant-expression");
2607 error ("%<typeid%> operator "
2608 "cannot appear in a constant-expression");
2611 error ("non-constant compound literals "
2612 "cannot appear in a constant-expression");
2615 error ("a function call "
2616 "cannot appear in a constant-expression");
2619 error ("an increment "
2620 "cannot appear in a constant-expression");
2623 error ("an decrement "
2624 "cannot appear in a constant-expression");
2627 error ("an array reference "
2628 "cannot appear in a constant-expression");
2630 case NIC_ADDR_LABEL
:
2631 error ("the address of a label "
2632 "cannot appear in a constant-expression");
2634 case NIC_OVERLOADED
:
2635 error ("calls to overloaded operators "
2636 "cannot appear in a constant-expression");
2638 case NIC_ASSIGNMENT
:
2639 error ("an assignment cannot appear in a constant-expression");
2642 error ("a comma operator "
2643 "cannot appear in a constant-expression");
2645 case NIC_CONSTRUCTOR
:
2646 error ("a call to a constructor "
2647 "cannot appear in a constant-expression");
2649 case NIC_TRANSACTION
:
2650 error ("a transaction expression "
2651 "cannot appear in a constant-expression");
2657 msg
= "__FUNCTION__";
2659 case NIC_PRETTY_FUNC
:
2660 msg
= "__PRETTY_FUNCTION__";
2680 case NIC_PREINCREMENT
:
2683 case NIC_PREDECREMENT
:
2696 error ("%qs cannot appear in a constant-expression", msg
);
2703 /* Emit a diagnostic for an invalid type name. SCOPE is the
2704 qualifying scope (or NULL, if none) for ID. This function commits
2705 to the current active tentative parse, if any. (Otherwise, the
2706 problematic construct might be encountered again later, resulting
2707 in duplicate error messages.) LOCATION is the location of ID. */
2710 cp_parser_diagnose_invalid_type_name (cp_parser
*parser
,
2711 tree scope
, tree id
,
2712 location_t location
)
2714 tree decl
, old_scope
;
2715 cp_parser_commit_to_tentative_parse (parser
);
2716 /* Try to lookup the identifier. */
2717 old_scope
= parser
->scope
;
2718 parser
->scope
= scope
;
2719 decl
= cp_parser_lookup_name_simple (parser
, id
, location
);
2720 parser
->scope
= old_scope
;
2721 /* If the lookup found a template-name, it means that the user forgot
2722 to specify an argument list. Emit a useful error message. */
2723 if (TREE_CODE (decl
) == TEMPLATE_DECL
)
2725 "invalid use of template-name %qE without an argument list",
2727 else if (TREE_CODE (id
) == BIT_NOT_EXPR
)
2728 error_at (location
, "invalid use of destructor %qD as a type", id
);
2729 else if (TREE_CODE (decl
) == TYPE_DECL
)
2730 /* Something like 'unsigned A a;' */
2731 error_at (location
, "invalid combination of multiple type-specifiers");
2732 else if (!parser
->scope
)
2734 /* Issue an error message. */
2735 error_at (location
, "%qE does not name a type", id
);
2736 /* If we're in a template class, it's possible that the user was
2737 referring to a type from a base class. For example:
2739 template <typename T> struct A { typedef T X; };
2740 template <typename T> struct B : public A<T> { X x; };
2742 The user should have said "typename A<T>::X". */
2743 if (cxx_dialect
< cxx0x
&& id
== ridpointers
[(int)RID_CONSTEXPR
])
2744 inform (location
, "C++11 %<constexpr%> only available with "
2745 "-std=c++11 or -std=gnu++11");
2746 else if (processing_template_decl
&& current_class_type
2747 && TYPE_BINFO (current_class_type
))
2751 for (b
= TREE_CHAIN (TYPE_BINFO (current_class_type
));
2755 tree base_type
= BINFO_TYPE (b
);
2756 if (CLASS_TYPE_P (base_type
)
2757 && dependent_type_p (base_type
))
2760 /* Go from a particular instantiation of the
2761 template (which will have an empty TYPE_FIELDs),
2762 to the main version. */
2763 base_type
= CLASSTYPE_PRIMARY_TEMPLATE_TYPE (base_type
);
2764 for (field
= TYPE_FIELDS (base_type
);
2766 field
= DECL_CHAIN (field
))
2767 if (TREE_CODE (field
) == TYPE_DECL
2768 && DECL_NAME (field
) == id
)
2771 "(perhaps %<typename %T::%E%> was intended)",
2772 BINFO_TYPE (b
), id
);
2781 /* Here we diagnose qualified-ids where the scope is actually correct,
2782 but the identifier does not resolve to a valid type name. */
2783 else if (parser
->scope
!= error_mark_node
)
2785 if (TREE_CODE (parser
->scope
) == NAMESPACE_DECL
)
2786 error_at (location
, "%qE in namespace %qE does not name a type",
2788 else if (CLASS_TYPE_P (parser
->scope
)
2789 && constructor_name_p (id
, parser
->scope
))
2792 error_at (location
, "%<%T::%E%> names the constructor, not"
2793 " the type", parser
->scope
, id
);
2794 if (cp_lexer_next_token_is (parser
->lexer
, CPP_LESS
))
2795 error_at (location
, "and %qT has no template constructors",
2798 else if (TYPE_P (parser
->scope
)
2799 && dependent_scope_p (parser
->scope
))
2800 error_at (location
, "need %<typename%> before %<%T::%E%> because "
2801 "%qT is a dependent scope",
2802 parser
->scope
, id
, parser
->scope
);
2803 else if (TYPE_P (parser
->scope
))
2804 error_at (location
, "%qE in %q#T does not name a type",
2811 /* Check for a common situation where a type-name should be present,
2812 but is not, and issue a sensible error message. Returns true if an
2813 invalid type-name was detected.
2815 The situation handled by this function are variable declarations of the
2816 form `ID a', where `ID' is an id-expression and `a' is a plain identifier.
2817 Usually, `ID' should name a type, but if we got here it means that it
2818 does not. We try to emit the best possible error message depending on
2819 how exactly the id-expression looks like. */
2822 cp_parser_parse_and_diagnose_invalid_type_name (cp_parser
*parser
)
2825 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
2827 /* Avoid duplicate error about ambiguous lookup. */
2828 if (token
->type
== CPP_NESTED_NAME_SPECIFIER
)
2830 cp_token
*next
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
2831 if (next
->type
== CPP_NAME
&& next
->ambiguous_p
)
2835 cp_parser_parse_tentatively (parser
);
2836 id
= cp_parser_id_expression (parser
,
2837 /*template_keyword_p=*/false,
2838 /*check_dependency_p=*/true,
2839 /*template_p=*/NULL
,
2840 /*declarator_p=*/true,
2841 /*optional_p=*/false);
2842 /* If the next token is a (, this is a function with no explicit return
2843 type, i.e. constructor, destructor or conversion op. */
2844 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
)
2845 || TREE_CODE (id
) == TYPE_DECL
)
2847 cp_parser_abort_tentative_parse (parser
);
2850 if (!cp_parser_parse_definitely (parser
))
2853 /* Emit a diagnostic for the invalid type. */
2854 cp_parser_diagnose_invalid_type_name (parser
, parser
->scope
,
2855 id
, token
->location
);
2857 /* If we aren't in the middle of a declarator (i.e. in a
2858 parameter-declaration-clause), skip to the end of the declaration;
2859 there's no point in trying to process it. */
2860 if (!parser
->in_declarator_p
)
2861 cp_parser_skip_to_end_of_block_or_statement (parser
);
2865 /* Consume tokens up to, and including, the next non-nested closing `)'.
2866 Returns 1 iff we found a closing `)'. RECOVERING is true, if we
2867 are doing error recovery. Returns -1 if OR_COMMA is true and we
2868 found an unnested comma. */
2871 cp_parser_skip_to_closing_parenthesis (cp_parser
*parser
,
2876 unsigned paren_depth
= 0;
2877 unsigned brace_depth
= 0;
2878 unsigned square_depth
= 0;
2880 if (recovering
&& !or_comma
2881 && cp_parser_uncommitted_to_tentative_parse_p (parser
))
2886 cp_token
* token
= cp_lexer_peek_token (parser
->lexer
);
2888 switch (token
->type
)
2891 case CPP_PRAGMA_EOL
:
2892 /* If we've run out of tokens, then there is no closing `)'. */
2895 /* This is good for lambda expression capture-lists. */
2896 case CPP_OPEN_SQUARE
:
2899 case CPP_CLOSE_SQUARE
:
2900 if (!square_depth
--)
2905 /* This matches the processing in skip_to_end_of_statement. */
2910 case CPP_OPEN_BRACE
:
2913 case CPP_CLOSE_BRACE
:
2919 if (recovering
&& or_comma
&& !brace_depth
&& !paren_depth
2924 case CPP_OPEN_PAREN
:
2929 case CPP_CLOSE_PAREN
:
2930 if (!brace_depth
&& !paren_depth
--)
2933 cp_lexer_consume_token (parser
->lexer
);
2942 /* Consume the token. */
2943 cp_lexer_consume_token (parser
->lexer
);
2947 /* Consume tokens until we reach the end of the current statement.
2948 Normally, that will be just before consuming a `;'. However, if a
2949 non-nested `}' comes first, then we stop before consuming that. */
2952 cp_parser_skip_to_end_of_statement (cp_parser
* parser
)
2954 unsigned nesting_depth
= 0;
2958 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
2960 switch (token
->type
)
2963 case CPP_PRAGMA_EOL
:
2964 /* If we've run out of tokens, stop. */
2968 /* If the next token is a `;', we have reached the end of the
2974 case CPP_CLOSE_BRACE
:
2975 /* If this is a non-nested '}', stop before consuming it.
2976 That way, when confronted with something like:
2980 we stop before consuming the closing '}', even though we
2981 have not yet reached a `;'. */
2982 if (nesting_depth
== 0)
2985 /* If it is the closing '}' for a block that we have
2986 scanned, stop -- but only after consuming the token.
2992 we will stop after the body of the erroneously declared
2993 function, but before consuming the following `typedef'
2995 if (--nesting_depth
== 0)
2997 cp_lexer_consume_token (parser
->lexer
);
3001 case CPP_OPEN_BRACE
:
3009 /* Consume the token. */
3010 cp_lexer_consume_token (parser
->lexer
);
3014 /* This function is called at the end of a statement or declaration.
3015 If the next token is a semicolon, it is consumed; otherwise, error
3016 recovery is attempted. */
3019 cp_parser_consume_semicolon_at_end_of_statement (cp_parser
*parser
)
3021 /* Look for the trailing `;'. */
3022 if (!cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
))
3024 /* If there is additional (erroneous) input, skip to the end of
3026 cp_parser_skip_to_end_of_statement (parser
);
3027 /* If the next token is now a `;', consume it. */
3028 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
3029 cp_lexer_consume_token (parser
->lexer
);
3033 /* Skip tokens until we have consumed an entire block, or until we
3034 have consumed a non-nested `;'. */
3037 cp_parser_skip_to_end_of_block_or_statement (cp_parser
* parser
)
3039 int nesting_depth
= 0;
3041 while (nesting_depth
>= 0)
3043 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
3045 switch (token
->type
)
3048 case CPP_PRAGMA_EOL
:
3049 /* If we've run out of tokens, stop. */
3053 /* Stop if this is an unnested ';'. */
3058 case CPP_CLOSE_BRACE
:
3059 /* Stop if this is an unnested '}', or closes the outermost
3062 if (nesting_depth
< 0)
3068 case CPP_OPEN_BRACE
:
3077 /* Consume the token. */
3078 cp_lexer_consume_token (parser
->lexer
);
3082 /* Skip tokens until a non-nested closing curly brace is the next
3083 token, or there are no more tokens. Return true in the first case,
3087 cp_parser_skip_to_closing_brace (cp_parser
*parser
)
3089 unsigned nesting_depth
= 0;
3093 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
3095 switch (token
->type
)
3098 case CPP_PRAGMA_EOL
:
3099 /* If we've run out of tokens, stop. */
3102 case CPP_CLOSE_BRACE
:
3103 /* If the next token is a non-nested `}', then we have reached
3104 the end of the current block. */
3105 if (nesting_depth
-- == 0)
3109 case CPP_OPEN_BRACE
:
3110 /* If it the next token is a `{', then we are entering a new
3111 block. Consume the entire block. */
3119 /* Consume the token. */
3120 cp_lexer_consume_token (parser
->lexer
);
3124 /* Consume tokens until we reach the end of the pragma. The PRAGMA_TOK
3125 parameter is the PRAGMA token, allowing us to purge the entire pragma
3129 cp_parser_skip_to_pragma_eol (cp_parser
* parser
, cp_token
*pragma_tok
)
3133 parser
->lexer
->in_pragma
= false;
3136 token
= cp_lexer_consume_token (parser
->lexer
);
3137 while (token
->type
!= CPP_PRAGMA_EOL
&& token
->type
!= CPP_EOF
);
3139 /* Ensure that the pragma is not parsed again. */
3140 cp_lexer_purge_tokens_after (parser
->lexer
, pragma_tok
);
3143 /* Require pragma end of line, resyncing with it as necessary. The
3144 arguments are as for cp_parser_skip_to_pragma_eol. */
3147 cp_parser_require_pragma_eol (cp_parser
*parser
, cp_token
*pragma_tok
)
3149 parser
->lexer
->in_pragma
= false;
3150 if (!cp_parser_require (parser
, CPP_PRAGMA_EOL
, RT_PRAGMA_EOL
))
3151 cp_parser_skip_to_pragma_eol (parser
, pragma_tok
);
3154 /* This is a simple wrapper around make_typename_type. When the id is
3155 an unresolved identifier node, we can provide a superior diagnostic
3156 using cp_parser_diagnose_invalid_type_name. */
3159 cp_parser_make_typename_type (cp_parser
*parser
, tree scope
,
3160 tree id
, location_t id_location
)
3163 if (TREE_CODE (id
) == IDENTIFIER_NODE
)
3165 result
= make_typename_type (scope
, id
, typename_type
,
3166 /*complain=*/tf_none
);
3167 if (result
== error_mark_node
)
3168 cp_parser_diagnose_invalid_type_name (parser
, scope
, id
, id_location
);
3171 return make_typename_type (scope
, id
, typename_type
, tf_error
);
3174 /* This is a wrapper around the
3175 make_{pointer,ptrmem,reference}_declarator functions that decides
3176 which one to call based on the CODE and CLASS_TYPE arguments. The
3177 CODE argument should be one of the values returned by
3178 cp_parser_ptr_operator. */
3179 static cp_declarator
*
3180 cp_parser_make_indirect_declarator (enum tree_code code
, tree class_type
,
3181 cp_cv_quals cv_qualifiers
,
3182 cp_declarator
*target
)
3184 if (code
== ERROR_MARK
)
3185 return cp_error_declarator
;
3187 if (code
== INDIRECT_REF
)
3188 if (class_type
== NULL_TREE
)
3189 return make_pointer_declarator (cv_qualifiers
, target
);
3191 return make_ptrmem_declarator (cv_qualifiers
, class_type
, target
);
3192 else if (code
== ADDR_EXPR
&& class_type
== NULL_TREE
)
3193 return make_reference_declarator (cv_qualifiers
, target
, false);
3194 else if (code
== NON_LVALUE_EXPR
&& class_type
== NULL_TREE
)
3195 return make_reference_declarator (cv_qualifiers
, target
, true);
3199 /* Create a new C++ parser. */
3202 cp_parser_new (void)
3208 /* cp_lexer_new_main is called before doing GC allocation because
3209 cp_lexer_new_main might load a PCH file. */
3210 lexer
= cp_lexer_new_main ();
3212 /* Initialize the binops_by_token so that we can get the tree
3213 directly from the token. */
3214 for (i
= 0; i
< sizeof (binops
) / sizeof (binops
[0]); i
++)
3215 binops_by_token
[binops
[i
].token_type
] = binops
[i
];
3217 parser
= ggc_alloc_cleared_cp_parser ();
3218 parser
->lexer
= lexer
;
3219 parser
->context
= cp_parser_context_new (NULL
);
3221 /* For now, we always accept GNU extensions. */
3222 parser
->allow_gnu_extensions_p
= 1;
3224 /* The `>' token is a greater-than operator, not the end of a
3226 parser
->greater_than_is_operator_p
= true;
3228 parser
->default_arg_ok_p
= true;
3230 /* We are not parsing a constant-expression. */
3231 parser
->integral_constant_expression_p
= false;
3232 parser
->allow_non_integral_constant_expression_p
= false;
3233 parser
->non_integral_constant_expression_p
= false;
3235 /* Local variable names are not forbidden. */
3236 parser
->local_variables_forbidden_p
= false;
3238 /* We are not processing an `extern "C"' declaration. */
3239 parser
->in_unbraced_linkage_specification_p
= false;
3241 /* We are not processing a declarator. */
3242 parser
->in_declarator_p
= false;
3244 /* We are not processing a template-argument-list. */
3245 parser
->in_template_argument_list_p
= false;
3247 /* We are not in an iteration statement. */
3248 parser
->in_statement
= 0;
3250 /* We are not in a switch statement. */
3251 parser
->in_switch_statement_p
= false;
3253 /* We are not parsing a type-id inside an expression. */
3254 parser
->in_type_id_in_expr_p
= false;
3256 /* Declarations aren't implicitly extern "C". */
3257 parser
->implicit_extern_c
= false;
3259 /* String literals should be translated to the execution character set. */
3260 parser
->translate_strings_p
= true;
3262 /* We are not parsing a function body. */
3263 parser
->in_function_body
= false;
3265 /* We can correct until told otherwise. */
3266 parser
->colon_corrects_to_scope_p
= true;
3268 /* The unparsed function queue is empty. */
3269 push_unparsed_function_queues (parser
);
3271 /* There are no classes being defined. */
3272 parser
->num_classes_being_defined
= 0;
3274 /* No template parameters apply. */
3275 parser
->num_template_parameter_lists
= 0;
3280 /* Create a cp_lexer structure which will emit the tokens in CACHE
3281 and push it onto the parser's lexer stack. This is used for delayed
3282 parsing of in-class method bodies and default arguments, and should
3283 not be confused with tentative parsing. */
3285 cp_parser_push_lexer_for_tokens (cp_parser
*parser
, cp_token_cache
*cache
)
3287 cp_lexer
*lexer
= cp_lexer_new_from_tokens (cache
);
3288 lexer
->next
= parser
->lexer
;
3289 parser
->lexer
= lexer
;
3291 /* Move the current source position to that of the first token in the
3293 cp_lexer_set_source_position_from_token (lexer
->next_token
);
3296 /* Pop the top lexer off the parser stack. This is never used for the
3297 "main" lexer, only for those pushed by cp_parser_push_lexer_for_tokens. */
3299 cp_parser_pop_lexer (cp_parser
*parser
)
3301 cp_lexer
*lexer
= parser
->lexer
;
3302 parser
->lexer
= lexer
->next
;
3303 cp_lexer_destroy (lexer
);
3305 /* Put the current source position back where it was before this
3306 lexer was pushed. */
3307 cp_lexer_set_source_position_from_token (parser
->lexer
->next_token
);
3310 /* Lexical conventions [gram.lex] */
3312 /* Parse an identifier. Returns an IDENTIFIER_NODE representing the
3316 cp_parser_identifier (cp_parser
* parser
)
3320 /* Look for the identifier. */
3321 token
= cp_parser_require (parser
, CPP_NAME
, RT_NAME
);
3322 /* Return the value. */
3323 return token
? token
->u
.value
: error_mark_node
;
3326 /* Parse a sequence of adjacent string constants. Returns a
3327 TREE_STRING representing the combined, nul-terminated string
3328 constant. If TRANSLATE is true, translate the string to the
3329 execution character set. If WIDE_OK is true, a wide string is
3332 C++98 [lex.string] says that if a narrow string literal token is
3333 adjacent to a wide string literal token, the behavior is undefined.
3334 However, C99 6.4.5p4 says that this results in a wide string literal.
3335 We follow C99 here, for consistency with the C front end.
3337 This code is largely lifted from lex_string() in c-lex.c.
3339 FUTURE: ObjC++ will need to handle @-strings here. */
3341 cp_parser_string_literal (cp_parser
*parser
, bool translate
, bool wide_ok
)
3345 struct obstack str_ob
;
3346 cpp_string str
, istr
, *strs
;
3348 enum cpp_ttype type
, curr_type
;
3349 int have_suffix_p
= 0;
3351 tree suffix_id
= NULL_TREE
;
3352 bool curr_tok_is_userdef_p
= false;
3354 tok
= cp_lexer_peek_token (parser
->lexer
);
3355 if (!cp_parser_is_string_literal (tok
))
3357 cp_parser_error (parser
, "expected string-literal");
3358 return error_mark_node
;
3361 if (cpp_userdef_string_p (tok
->type
))
3363 string_tree
= USERDEF_LITERAL_VALUE (tok
->u
.value
);
3364 curr_type
= cpp_userdef_string_remove_type (tok
->type
);
3365 curr_tok_is_userdef_p
= true;
3369 string_tree
= tok
->u
.value
;
3370 curr_type
= tok
->type
;
3374 /* Try to avoid the overhead of creating and destroying an obstack
3375 for the common case of just one string. */
3376 if (!cp_parser_is_string_literal
3377 (cp_lexer_peek_nth_token (parser
->lexer
, 2)))
3379 cp_lexer_consume_token (parser
->lexer
);
3381 str
.text
= (const unsigned char *)TREE_STRING_POINTER (string_tree
);
3382 str
.len
= TREE_STRING_LENGTH (string_tree
);
3385 if (curr_tok_is_userdef_p
)
3387 suffix_id
= USERDEF_LITERAL_SUFFIX_ID (tok
->u
.value
);
3389 curr_type
= cpp_userdef_string_remove_type (tok
->type
);
3392 curr_type
= tok
->type
;
3398 gcc_obstack_init (&str_ob
);
3403 cp_lexer_consume_token (parser
->lexer
);
3405 str
.text
= (const unsigned char *)TREE_STRING_POINTER (string_tree
);
3406 str
.len
= TREE_STRING_LENGTH (string_tree
);
3408 if (curr_tok_is_userdef_p
)
3410 tree curr_suffix_id
= USERDEF_LITERAL_SUFFIX_ID (tok
->u
.value
);
3411 if (have_suffix_p
== 0)
3413 suffix_id
= curr_suffix_id
;
3416 else if (have_suffix_p
== 1
3417 && curr_suffix_id
!= suffix_id
)
3419 error ("inconsistent user-defined literal suffixes"
3420 " %qD and %qD in string literal",
3421 suffix_id
, curr_suffix_id
);
3424 curr_type
= cpp_userdef_string_remove_type (tok
->type
);
3427 curr_type
= tok
->type
;
3429 if (type
!= curr_type
)
3431 if (type
== CPP_STRING
)
3433 else if (curr_type
!= CPP_STRING
)
3434 error_at (tok
->location
,
3435 "unsupported non-standard concatenation "
3436 "of string literals");
3439 obstack_grow (&str_ob
, &str
, sizeof (cpp_string
));
3441 tok
= cp_lexer_peek_token (parser
->lexer
);
3442 if (cpp_userdef_string_p (tok
->type
))
3444 string_tree
= USERDEF_LITERAL_VALUE (tok
->u
.value
);
3445 curr_type
= cpp_userdef_string_remove_type (tok
->type
);
3446 curr_tok_is_userdef_p
= true;
3450 string_tree
= tok
->u
.value
;
3451 curr_type
= tok
->type
;
3452 curr_tok_is_userdef_p
= false;
3455 while (cp_parser_is_string_literal (tok
));
3457 strs
= (cpp_string
*) obstack_finish (&str_ob
);
3460 if (type
!= CPP_STRING
&& !wide_ok
)
3462 cp_parser_error (parser
, "a wide string is invalid in this context");
3466 if ((translate
? cpp_interpret_string
: cpp_interpret_string_notranslate
)
3467 (parse_in
, strs
, count
, &istr
, type
))
3469 value
= build_string (istr
.len
, (const char *)istr
.text
);
3470 free (CONST_CAST (unsigned char *, istr
.text
));
3476 case CPP_UTF8STRING
:
3477 TREE_TYPE (value
) = char_array_type_node
;
3480 TREE_TYPE (value
) = char16_array_type_node
;
3483 TREE_TYPE (value
) = char32_array_type_node
;
3486 TREE_TYPE (value
) = wchar_array_type_node
;
3490 value
= fix_string_type (value
);
3494 tree literal
= build_userdef_literal (suffix_id
, value
, NULL_TREE
);
3495 tok
->u
.value
= literal
;
3496 return cp_parser_userdef_string_literal (tok
);
3500 /* cpp_interpret_string has issued an error. */
3501 value
= error_mark_node
;
3504 obstack_free (&str_ob
, 0);
3509 /* Look up a literal operator with the name and the exact arguments. */
3512 lookup_literal_operator (tree name
, VEC(tree
,gc
) *args
)
3515 decl
= lookup_name (name
);
3516 if (!decl
|| !is_overloaded_fn (decl
))
3517 return error_mark_node
;
3519 for (fns
= decl
; fns
; fns
= OVL_NEXT (fns
))
3523 tree fn
= OVL_CURRENT (fns
);
3524 tree argtypes
= NULL_TREE
;
3525 argtypes
= TYPE_ARG_TYPES (TREE_TYPE (fn
));
3526 if (argtypes
!= NULL_TREE
)
3528 for (ix
= 0; ix
< VEC_length (tree
, args
) && argtypes
!= NULL_TREE
;
3529 ++ix
, argtypes
= TREE_CHAIN (argtypes
))
3531 tree targ
= TREE_VALUE (argtypes
);
3532 tree tparm
= TREE_TYPE (VEC_index (tree
, args
, ix
));
3533 bool ptr
= TREE_CODE (targ
) == POINTER_TYPE
;
3534 bool arr
= TREE_CODE (tparm
) == ARRAY_TYPE
;
3535 if ((ptr
|| arr
|| !same_type_p (targ
, tparm
))
3537 || !same_type_p (TREE_TYPE (targ
),
3538 TREE_TYPE (tparm
))))
3542 && ix
== VEC_length (tree
, args
)
3543 /* May be this should be sufficient_parms_p instead,
3544 depending on how exactly should user-defined literals
3545 work in presence of default arguments on the literal
3546 operator parameters. */
3547 && argtypes
== void_list_node
)
3552 return error_mark_node
;
3555 /* Parse a user-defined char constant. Returns a call to a user-defined
3556 literal operator taking the character as an argument. */
3559 cp_parser_userdef_char_literal (cp_parser
*parser
)
3561 cp_token
*token
= cp_lexer_consume_token (parser
->lexer
);
3562 tree literal
= token
->u
.value
;
3563 tree suffix_id
= USERDEF_LITERAL_SUFFIX_ID (literal
);
3564 tree value
= USERDEF_LITERAL_VALUE (literal
);
3565 tree name
= cp_literal_operator_id (IDENTIFIER_POINTER (suffix_id
));
3568 /* Build up a call to the user-defined operator */
3569 /* Lookup the name we got back from the id-expression. */
3570 VEC(tree
,gc
) *args
= make_tree_vector ();
3571 VEC_safe_push (tree
, gc
, args
, value
);
3572 decl
= lookup_literal_operator (name
, args
);
3573 if (!decl
|| decl
== error_mark_node
)
3575 error ("unable to find character literal operator %qD with %qT argument",
3576 name
, TREE_TYPE (value
));
3577 release_tree_vector (args
);
3578 return error_mark_node
;
3580 result
= finish_call_expr (decl
, &args
, false, true, tf_warning_or_error
);
3581 release_tree_vector (args
);
3582 if (result
!= error_mark_node
)
3585 error ("unable to find character literal operator %qD with %qT argument",
3586 name
, TREE_TYPE (value
));
3587 return error_mark_node
;
3590 /* A subroutine of cp_parser_userdef_numeric_literal to
3591 create a char... template parameter pack from a string node. */
3594 make_char_string_pack (tree value
)
3597 tree argpack
= make_node (NONTYPE_ARGUMENT_PACK
);
3598 const char *str
= TREE_STRING_POINTER (value
);
3599 int i
, len
= TREE_STRING_LENGTH (value
) - 1;
3600 tree argvec
= make_tree_vec (1);
3602 /* Fill in CHARVEC with all of the parameters. */
3603 charvec
= make_tree_vec (len
);
3604 for (i
= 0; i
< len
; ++i
)
3605 TREE_VEC_ELT (charvec
, i
) = build_int_cst (char_type_node
, str
[i
]);
3607 /* Build the argument packs. */
3608 SET_ARGUMENT_PACK_ARGS (argpack
, charvec
);
3609 TREE_TYPE (argpack
) = char_type_node
;
3611 TREE_VEC_ELT (argvec
, 0) = argpack
;
3616 /* Parse a user-defined numeric constant. returns a call to a user-defined
3617 literal operator. */
3620 cp_parser_userdef_numeric_literal (cp_parser
*parser
)
3622 cp_token
*token
= cp_lexer_consume_token (parser
->lexer
);
3623 tree literal
= token
->u
.value
;
3624 tree suffix_id
= USERDEF_LITERAL_SUFFIX_ID (literal
);
3625 tree value
= USERDEF_LITERAL_VALUE (literal
);
3626 tree num_string
= USERDEF_LITERAL_NUM_STRING (literal
);
3627 tree name
= cp_literal_operator_id (IDENTIFIER_POINTER (suffix_id
));
3631 /* Look for a literal operator taking the exact type of numeric argument
3632 as the literal value. */
3633 args
= make_tree_vector ();
3634 VEC_safe_push (tree
, gc
, args
, value
);
3635 decl
= lookup_literal_operator (name
, args
);
3636 if (decl
&& decl
!= error_mark_node
)
3638 result
= finish_call_expr (decl
, &args
, false, true, tf_none
);
3639 if (result
!= error_mark_node
)
3641 release_tree_vector (args
);
3645 release_tree_vector (args
);
3647 /* If the numeric argument didn't work, look for a raw literal
3648 operator taking a const char* argument consisting of the number
3649 in string format. */
3650 args
= make_tree_vector ();
3651 VEC_safe_push (tree
, gc
, args
, num_string
);
3652 decl
= lookup_literal_operator (name
, args
);
3653 if (decl
&& decl
!= error_mark_node
)
3655 result
= finish_call_expr (decl
, &args
, false, true, tf_none
);
3656 if (result
!= error_mark_node
)
3658 release_tree_vector (args
);
3662 release_tree_vector (args
);
3664 /* If the raw literal didn't work, look for a non-type template
3665 function with parameter pack char.... Call the function with
3666 template parameter characters representing the number. */
3667 args
= make_tree_vector ();
3668 decl
= lookup_literal_operator (name
, args
);
3669 if (decl
&& decl
!= error_mark_node
)
3671 tree tmpl_args
= make_char_string_pack (num_string
);
3672 decl
= lookup_template_function (decl
, tmpl_args
);
3673 result
= finish_call_expr (decl
, &args
, false, true, tf_none
);
3674 if (result
!= error_mark_node
)
3676 release_tree_vector (args
);
3680 release_tree_vector (args
);
3682 error ("unable to find numeric literal operator %qD", name
);
3683 return error_mark_node
;
3686 /* Parse a user-defined string constant. Returns a call to a user-defined
3687 literal operator taking a character pointer and the length of the string
3691 cp_parser_userdef_string_literal (cp_token
*token
)
3693 tree literal
= token
->u
.value
;
3694 tree suffix_id
= USERDEF_LITERAL_SUFFIX_ID (literal
);
3695 tree name
= cp_literal_operator_id (IDENTIFIER_POINTER (suffix_id
));
3696 tree value
= USERDEF_LITERAL_VALUE (literal
);
3697 int len
= TREE_STRING_LENGTH (value
)
3698 / TREE_INT_CST_LOW (TYPE_SIZE_UNIT (TREE_TYPE (TREE_TYPE (value
)))) - 1;
3701 /* Build up a call to the user-defined operator */
3702 /* Lookup the name we got back from the id-expression. */
3703 VEC(tree
,gc
) *args
= make_tree_vector ();
3704 VEC_safe_push (tree
, gc
, args
, value
);
3705 VEC_safe_push (tree
, gc
, args
, build_int_cst (size_type_node
, len
));
3706 decl
= lookup_name (name
);
3707 if (!decl
|| decl
== error_mark_node
)
3709 error ("unable to find string literal operator %qD", name
);
3710 release_tree_vector (args
);
3711 return error_mark_node
;
3713 result
= finish_call_expr (decl
, &args
, false, true, tf_none
);
3714 release_tree_vector (args
);
3715 if (result
!= error_mark_node
)
3718 error ("unable to find string literal operator %qD with %qT, %qT arguments",
3719 name
, TREE_TYPE (value
), size_type_node
);
3720 return error_mark_node
;
3724 /* Basic concepts [gram.basic] */
3726 /* Parse a translation-unit.
3729 declaration-seq [opt]
3731 Returns TRUE if all went well. */
3734 cp_parser_translation_unit (cp_parser
* parser
)
3736 /* The address of the first non-permanent object on the declarator
3738 static void *declarator_obstack_base
;
3742 /* Create the declarator obstack, if necessary. */
3743 if (!cp_error_declarator
)
3745 gcc_obstack_init (&declarator_obstack
);
3746 /* Create the error declarator. */
3747 cp_error_declarator
= make_declarator (cdk_error
);
3748 /* Create the empty parameter list. */
3749 no_parameters
= make_parameter_declarator (NULL
, NULL
, NULL_TREE
);
3750 /* Remember where the base of the declarator obstack lies. */
3751 declarator_obstack_base
= obstack_next_free (&declarator_obstack
);
3754 cp_parser_declaration_seq_opt (parser
);
3756 /* If there are no tokens left then all went well. */
3757 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EOF
))
3759 /* Get rid of the token array; we don't need it any more. */
3760 cp_lexer_destroy (parser
->lexer
);
3761 parser
->lexer
= NULL
;
3763 /* This file might have been a context that's implicitly extern
3764 "C". If so, pop the lang context. (Only relevant for PCH.) */
3765 if (parser
->implicit_extern_c
)
3767 pop_lang_context ();
3768 parser
->implicit_extern_c
= false;
3772 finish_translation_unit ();
3778 cp_parser_error (parser
, "expected declaration");
3782 /* Make sure the declarator obstack was fully cleaned up. */
3783 gcc_assert (obstack_next_free (&declarator_obstack
)
3784 == declarator_obstack_base
);
3786 /* All went well. */
3790 /* Expressions [gram.expr] */
3792 /* Parse a primary-expression.
3803 ( compound-statement )
3804 __builtin_va_arg ( assignment-expression , type-id )
3805 __builtin_offsetof ( type-id , offsetof-expression )
3808 __has_nothrow_assign ( type-id )
3809 __has_nothrow_constructor ( type-id )
3810 __has_nothrow_copy ( type-id )
3811 __has_trivial_assign ( type-id )
3812 __has_trivial_constructor ( type-id )
3813 __has_trivial_copy ( type-id )
3814 __has_trivial_destructor ( type-id )
3815 __has_virtual_destructor ( type-id )
3816 __is_abstract ( type-id )
3817 __is_base_of ( type-id , type-id )
3818 __is_class ( type-id )
3819 __is_convertible_to ( type-id , type-id )
3820 __is_empty ( type-id )
3821 __is_enum ( type-id )
3822 __is_final ( type-id )
3823 __is_literal_type ( type-id )
3824 __is_pod ( type-id )
3825 __is_polymorphic ( type-id )
3826 __is_std_layout ( type-id )
3827 __is_trivial ( type-id )
3828 __is_union ( type-id )
3830 Objective-C++ Extension:
3838 ADDRESS_P is true iff this expression was immediately preceded by
3839 "&" and therefore might denote a pointer-to-member. CAST_P is true
3840 iff this expression is the target of a cast. TEMPLATE_ARG_P is
3841 true iff this expression is a template argument.
3843 Returns a representation of the expression. Upon return, *IDK
3844 indicates what kind of id-expression (if any) was present. */
3847 cp_parser_primary_expression (cp_parser
*parser
,
3850 bool template_arg_p
,
3853 cp_token
*token
= NULL
;
3855 /* Assume the primary expression is not an id-expression. */
3856 *idk
= CP_ID_KIND_NONE
;
3858 /* Peek at the next token. */
3859 token
= cp_lexer_peek_token (parser
->lexer
);
3860 switch (token
->type
)
3869 user-defined-literal */
3875 if (TREE_CODE (token
->u
.value
) == USERDEF_LITERAL
)
3876 return cp_parser_userdef_numeric_literal (parser
);
3877 token
= cp_lexer_consume_token (parser
->lexer
);
3878 if (TREE_CODE (token
->u
.value
) == FIXED_CST
)
3880 error_at (token
->location
,
3881 "fixed-point types not supported in C++");
3882 return error_mark_node
;
3884 /* Floating-point literals are only allowed in an integral
3885 constant expression if they are cast to an integral or
3886 enumeration type. */
3887 if (TREE_CODE (token
->u
.value
) == REAL_CST
3888 && parser
->integral_constant_expression_p
3891 /* CAST_P will be set even in invalid code like "int(2.7 +
3892 ...)". Therefore, we have to check that the next token
3893 is sure to end the cast. */
3896 cp_token
*next_token
;
3898 next_token
= cp_lexer_peek_token (parser
->lexer
);
3899 if (/* The comma at the end of an
3900 enumerator-definition. */
3901 next_token
->type
!= CPP_COMMA
3902 /* The curly brace at the end of an enum-specifier. */
3903 && next_token
->type
!= CPP_CLOSE_BRACE
3904 /* The end of a statement. */
3905 && next_token
->type
!= CPP_SEMICOLON
3906 /* The end of the cast-expression. */
3907 && next_token
->type
!= CPP_CLOSE_PAREN
3908 /* The end of an array bound. */
3909 && next_token
->type
!= CPP_CLOSE_SQUARE
3910 /* The closing ">" in a template-argument-list. */
3911 && (next_token
->type
!= CPP_GREATER
3912 || parser
->greater_than_is_operator_p
)
3913 /* C++0x only: A ">>" treated like two ">" tokens,
3914 in a template-argument-list. */
3915 && (next_token
->type
!= CPP_RSHIFT
3916 || (cxx_dialect
== cxx98
)
3917 || parser
->greater_than_is_operator_p
))
3921 /* If we are within a cast, then the constraint that the
3922 cast is to an integral or enumeration type will be
3923 checked at that point. If we are not within a cast, then
3924 this code is invalid. */
3926 cp_parser_non_integral_constant_expression (parser
, NIC_FLOAT
);
3928 return token
->u
.value
;
3930 case CPP_CHAR_USERDEF
:
3931 case CPP_CHAR16_USERDEF
:
3932 case CPP_CHAR32_USERDEF
:
3933 case CPP_WCHAR_USERDEF
:
3934 return cp_parser_userdef_char_literal (parser
);
3940 case CPP_UTF8STRING
:
3941 case CPP_STRING_USERDEF
:
3942 case CPP_STRING16_USERDEF
:
3943 case CPP_STRING32_USERDEF
:
3944 case CPP_WSTRING_USERDEF
:
3945 case CPP_UTF8STRING_USERDEF
:
3946 /* ??? Should wide strings be allowed when parser->translate_strings_p
3947 is false (i.e. in attributes)? If not, we can kill the third
3948 argument to cp_parser_string_literal. */
3949 return cp_parser_string_literal (parser
,
3950 parser
->translate_strings_p
,
3953 case CPP_OPEN_PAREN
:
3956 bool saved_greater_than_is_operator_p
;
3958 /* Consume the `('. */
3959 cp_lexer_consume_token (parser
->lexer
);
3960 /* Within a parenthesized expression, a `>' token is always
3961 the greater-than operator. */
3962 saved_greater_than_is_operator_p
3963 = parser
->greater_than_is_operator_p
;
3964 parser
->greater_than_is_operator_p
= true;
3965 /* If we see `( { ' then we are looking at the beginning of
3966 a GNU statement-expression. */
3967 if (cp_parser_allow_gnu_extensions_p (parser
)
3968 && cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
3970 /* Statement-expressions are not allowed by the standard. */
3971 pedwarn (token
->location
, OPT_Wpedantic
,
3972 "ISO C++ forbids braced-groups within expressions");
3974 /* And they're not allowed outside of a function-body; you
3975 cannot, for example, write:
3977 int i = ({ int j = 3; j + 1; });
3979 at class or namespace scope. */
3980 if (!parser
->in_function_body
3981 || parser
->in_template_argument_list_p
)
3983 error_at (token
->location
,
3984 "statement-expressions are not allowed outside "
3985 "functions nor in template-argument lists");
3986 cp_parser_skip_to_end_of_block_or_statement (parser
);
3987 expr
= error_mark_node
;
3991 /* Start the statement-expression. */
3992 expr
= begin_stmt_expr ();
3993 /* Parse the compound-statement. */
3994 cp_parser_compound_statement (parser
, expr
, false, false);
3996 expr
= finish_stmt_expr (expr
, false);
4001 /* Parse the parenthesized expression. */
4002 expr
= cp_parser_expression (parser
, cast_p
, idk
);
4003 /* Let the front end know that this expression was
4004 enclosed in parentheses. This matters in case, for
4005 example, the expression is of the form `A::B', since
4006 `&A::B' might be a pointer-to-member, but `&(A::B)' is
4008 finish_parenthesized_expr (expr
);
4009 /* DR 705: Wrapping an unqualified name in parentheses
4010 suppresses arg-dependent lookup. We want to pass back
4011 CP_ID_KIND_QUALIFIED for suppressing vtable lookup
4012 (c++/37862), but none of the others. */
4013 if (*idk
!= CP_ID_KIND_QUALIFIED
)
4014 *idk
= CP_ID_KIND_NONE
;
4016 /* The `>' token might be the end of a template-id or
4017 template-parameter-list now. */
4018 parser
->greater_than_is_operator_p
4019 = saved_greater_than_is_operator_p
;
4020 /* Consume the `)'. */
4021 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
4022 cp_parser_skip_to_end_of_statement (parser
);
4027 case CPP_OPEN_SQUARE
:
4028 if (c_dialect_objc ())
4029 /* We have an Objective-C++ message. */
4030 return cp_parser_objc_expression (parser
);
4032 tree lam
= cp_parser_lambda_expression (parser
);
4033 /* Don't warn about a failed tentative parse. */
4034 if (cp_parser_error_occurred (parser
))
4035 return error_mark_node
;
4036 maybe_warn_cpp0x (CPP0X_LAMBDA_EXPR
);
4040 case CPP_OBJC_STRING
:
4041 if (c_dialect_objc ())
4042 /* We have an Objective-C++ string literal. */
4043 return cp_parser_objc_expression (parser
);
4044 cp_parser_error (parser
, "expected primary-expression");
4045 return error_mark_node
;
4048 switch (token
->keyword
)
4050 /* These two are the boolean literals. */
4052 cp_lexer_consume_token (parser
->lexer
);
4053 return boolean_true_node
;
4055 cp_lexer_consume_token (parser
->lexer
);
4056 return boolean_false_node
;
4058 /* The `__null' literal. */
4060 cp_lexer_consume_token (parser
->lexer
);
4063 /* The `nullptr' literal. */
4065 cp_lexer_consume_token (parser
->lexer
);
4066 return nullptr_node
;
4068 /* Recognize the `this' keyword. */
4070 cp_lexer_consume_token (parser
->lexer
);
4071 if (parser
->local_variables_forbidden_p
)
4073 error_at (token
->location
,
4074 "%<this%> may not be used in this context");
4075 return error_mark_node
;
4077 /* Pointers cannot appear in constant-expressions. */
4078 if (cp_parser_non_integral_constant_expression (parser
, NIC_THIS
))
4079 return error_mark_node
;
4080 return finish_this_expr ();
4082 /* The `operator' keyword can be the beginning of an
4087 case RID_FUNCTION_NAME
:
4088 case RID_PRETTY_FUNCTION_NAME
:
4089 case RID_C99_FUNCTION_NAME
:
4091 non_integral_constant name
;
4093 /* The symbols __FUNCTION__, __PRETTY_FUNCTION__, and
4094 __func__ are the names of variables -- but they are
4095 treated specially. Therefore, they are handled here,
4096 rather than relying on the generic id-expression logic
4097 below. Grammatically, these names are id-expressions.
4099 Consume the token. */
4100 token
= cp_lexer_consume_token (parser
->lexer
);
4102 switch (token
->keyword
)
4104 case RID_FUNCTION_NAME
:
4105 name
= NIC_FUNC_NAME
;
4107 case RID_PRETTY_FUNCTION_NAME
:
4108 name
= NIC_PRETTY_FUNC
;
4110 case RID_C99_FUNCTION_NAME
:
4111 name
= NIC_C99_FUNC
;
4117 if (cp_parser_non_integral_constant_expression (parser
, name
))
4118 return error_mark_node
;
4120 /* Look up the name. */
4121 return finish_fname (token
->u
.value
);
4128 source_location type_location
;
4130 /* The `__builtin_va_arg' construct is used to handle
4131 `va_arg'. Consume the `__builtin_va_arg' token. */
4132 cp_lexer_consume_token (parser
->lexer
);
4133 /* Look for the opening `('. */
4134 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
4135 /* Now, parse the assignment-expression. */
4136 expression
= cp_parser_assignment_expression (parser
,
4137 /*cast_p=*/false, NULL
);
4138 /* Look for the `,'. */
4139 cp_parser_require (parser
, CPP_COMMA
, RT_COMMA
);
4140 type_location
= cp_lexer_peek_token (parser
->lexer
)->location
;
4141 /* Parse the type-id. */
4142 type
= cp_parser_type_id (parser
);
4143 /* Look for the closing `)'. */
4144 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
4145 /* Using `va_arg' in a constant-expression is not
4147 if (cp_parser_non_integral_constant_expression (parser
,
4149 return error_mark_node
;
4150 return build_x_va_arg (type_location
, expression
, type
);
4154 return cp_parser_builtin_offsetof (parser
);
4156 case RID_HAS_NOTHROW_ASSIGN
:
4157 case RID_HAS_NOTHROW_CONSTRUCTOR
:
4158 case RID_HAS_NOTHROW_COPY
:
4159 case RID_HAS_TRIVIAL_ASSIGN
:
4160 case RID_HAS_TRIVIAL_CONSTRUCTOR
:
4161 case RID_HAS_TRIVIAL_COPY
:
4162 case RID_HAS_TRIVIAL_DESTRUCTOR
:
4163 case RID_HAS_VIRTUAL_DESTRUCTOR
:
4164 case RID_IS_ABSTRACT
:
4165 case RID_IS_BASE_OF
:
4167 case RID_IS_CONVERTIBLE_TO
:
4171 case RID_IS_LITERAL_TYPE
:
4173 case RID_IS_POLYMORPHIC
:
4174 case RID_IS_STD_LAYOUT
:
4175 case RID_IS_TRIVIAL
:
4177 return cp_parser_trait_expr (parser
, token
->keyword
);
4179 /* Objective-C++ expressions. */
4181 case RID_AT_PROTOCOL
:
4182 case RID_AT_SELECTOR
:
4183 return cp_parser_objc_expression (parser
);
4186 if (parser
->in_function_body
4187 && (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
4190 error_at (token
->location
,
4191 "a template declaration cannot appear at block scope");
4192 cp_parser_skip_to_end_of_block_or_statement (parser
);
4193 return error_mark_node
;
4196 cp_parser_error (parser
, "expected primary-expression");
4197 return error_mark_node
;
4200 /* An id-expression can start with either an identifier, a
4201 `::' as the beginning of a qualified-id, or the "operator"
4205 case CPP_TEMPLATE_ID
:
4206 case CPP_NESTED_NAME_SPECIFIER
:
4210 const char *error_msg
;
4213 cp_token
*id_expr_token
;
4216 /* Parse the id-expression. */
4218 = cp_parser_id_expression (parser
,
4219 /*template_keyword_p=*/false,
4220 /*check_dependency_p=*/true,
4222 /*declarator_p=*/false,
4223 /*optional_p=*/false);
4224 if (id_expression
== error_mark_node
)
4225 return error_mark_node
;
4226 id_expr_token
= token
;
4227 token
= cp_lexer_peek_token (parser
->lexer
);
4228 done
= (token
->type
!= CPP_OPEN_SQUARE
4229 && token
->type
!= CPP_OPEN_PAREN
4230 && token
->type
!= CPP_DOT
4231 && token
->type
!= CPP_DEREF
4232 && token
->type
!= CPP_PLUS_PLUS
4233 && token
->type
!= CPP_MINUS_MINUS
);
4234 /* If we have a template-id, then no further lookup is
4235 required. If the template-id was for a template-class, we
4236 will sometimes have a TYPE_DECL at this point. */
4237 if (TREE_CODE (id_expression
) == TEMPLATE_ID_EXPR
4238 || TREE_CODE (id_expression
) == TYPE_DECL
)
4239 decl
= id_expression
;
4240 /* Look up the name. */
4243 tree ambiguous_decls
;
4245 /* If we already know that this lookup is ambiguous, then
4246 we've already issued an error message; there's no reason
4248 if (id_expr_token
->type
== CPP_NAME
4249 && id_expr_token
->ambiguous_p
)
4251 cp_parser_simulate_error (parser
);
4252 return error_mark_node
;
4255 decl
= cp_parser_lookup_name (parser
, id_expression
,
4258 /*is_namespace=*/false,
4259 /*check_dependency=*/true,
4261 id_expr_token
->location
);
4262 /* If the lookup was ambiguous, an error will already have
4264 if (ambiguous_decls
)
4265 return error_mark_node
;
4267 /* In Objective-C++, we may have an Objective-C 2.0
4268 dot-syntax for classes here. */
4269 if (c_dialect_objc ()
4270 && cp_lexer_peek_token (parser
->lexer
)->type
== CPP_DOT
4271 && TREE_CODE (decl
) == TYPE_DECL
4272 && objc_is_class_name (decl
))
4275 cp_lexer_consume_token (parser
->lexer
);
4276 component
= cp_parser_identifier (parser
);
4277 if (component
== error_mark_node
)
4278 return error_mark_node
;
4280 return objc_build_class_component_ref (id_expression
, component
);
4283 /* In Objective-C++, an instance variable (ivar) may be preferred
4284 to whatever cp_parser_lookup_name() found. */
4285 decl
= objc_lookup_ivar (decl
, id_expression
);
4287 /* If name lookup gives us a SCOPE_REF, then the
4288 qualifying scope was dependent. */
4289 if (TREE_CODE (decl
) == SCOPE_REF
)
4291 /* At this point, we do not know if DECL is a valid
4292 integral constant expression. We assume that it is
4293 in fact such an expression, so that code like:
4295 template <int N> struct A {
4299 is accepted. At template-instantiation time, we
4300 will check that B<N>::i is actually a constant. */
4303 /* Check to see if DECL is a local variable in a context
4304 where that is forbidden. */
4305 if (parser
->local_variables_forbidden_p
4306 && local_variable_p (decl
))
4308 /* It might be that we only found DECL because we are
4309 trying to be generous with pre-ISO scoping rules.
4310 For example, consider:
4314 for (int i = 0; i < 10; ++i) {}
4315 extern void f(int j = i);
4318 Here, name look up will originally find the out
4319 of scope `i'. We need to issue a warning message,
4320 but then use the global `i'. */
4321 decl
= check_for_out_of_scope_variable (decl
);
4322 if (local_variable_p (decl
))
4324 error_at (id_expr_token
->location
,
4325 "local variable %qD may not appear in this context",
4327 return error_mark_node
;
4332 decl
= (finish_id_expression
4333 (id_expression
, decl
, parser
->scope
,
4335 parser
->integral_constant_expression_p
,
4336 parser
->allow_non_integral_constant_expression_p
,
4337 &parser
->non_integral_constant_expression_p
,
4338 template_p
, done
, address_p
,
4341 id_expr_token
->location
));
4343 cp_parser_error (parser
, error_msg
);
4347 /* Anything else is an error. */
4349 cp_parser_error (parser
, "expected primary-expression");
4350 return error_mark_node
;
4354 /* Parse an id-expression.
4361 :: [opt] nested-name-specifier template [opt] unqualified-id
4363 :: operator-function-id
4366 Return a representation of the unqualified portion of the
4367 identifier. Sets PARSER->SCOPE to the qualifying scope if there is
4368 a `::' or nested-name-specifier.
4370 Often, if the id-expression was a qualified-id, the caller will
4371 want to make a SCOPE_REF to represent the qualified-id. This
4372 function does not do this in order to avoid wastefully creating
4373 SCOPE_REFs when they are not required.
4375 If TEMPLATE_KEYWORD_P is true, then we have just seen the
4378 If CHECK_DEPENDENCY_P is false, then names are looked up inside
4379 uninstantiated templates.
4381 If *TEMPLATE_P is non-NULL, it is set to true iff the
4382 `template' keyword is used to explicitly indicate that the entity
4383 named is a template.
4385 If DECLARATOR_P is true, the id-expression is appearing as part of
4386 a declarator, rather than as part of an expression. */
4389 cp_parser_id_expression (cp_parser
*parser
,
4390 bool template_keyword_p
,
4391 bool check_dependency_p
,
4396 bool global_scope_p
;
4397 bool nested_name_specifier_p
;
4399 /* Assume the `template' keyword was not used. */
4401 *template_p
= template_keyword_p
;
4403 /* Look for the optional `::' operator. */
4405 = (cp_parser_global_scope_opt (parser
, /*current_scope_valid_p=*/false)
4407 /* Look for the optional nested-name-specifier. */
4408 nested_name_specifier_p
4409 = (cp_parser_nested_name_specifier_opt (parser
,
4410 /*typename_keyword_p=*/false,
4415 /* If there is a nested-name-specifier, then we are looking at
4416 the first qualified-id production. */
4417 if (nested_name_specifier_p
)
4420 tree saved_object_scope
;
4421 tree saved_qualifying_scope
;
4422 tree unqualified_id
;
4425 /* See if the next token is the `template' keyword. */
4427 template_p
= &is_template
;
4428 *template_p
= cp_parser_optional_template_keyword (parser
);
4429 /* Name lookup we do during the processing of the
4430 unqualified-id might obliterate SCOPE. */
4431 saved_scope
= parser
->scope
;
4432 saved_object_scope
= parser
->object_scope
;
4433 saved_qualifying_scope
= parser
->qualifying_scope
;
4434 /* Process the final unqualified-id. */
4435 unqualified_id
= cp_parser_unqualified_id (parser
, *template_p
,
4438 /*optional_p=*/false);
4439 /* Restore the SAVED_SCOPE for our caller. */
4440 parser
->scope
= saved_scope
;
4441 parser
->object_scope
= saved_object_scope
;
4442 parser
->qualifying_scope
= saved_qualifying_scope
;
4444 return unqualified_id
;
4446 /* Otherwise, if we are in global scope, then we are looking at one
4447 of the other qualified-id productions. */
4448 else if (global_scope_p
)
4453 /* Peek at the next token. */
4454 token
= cp_lexer_peek_token (parser
->lexer
);
4456 /* If it's an identifier, and the next token is not a "<", then
4457 we can avoid the template-id case. This is an optimization
4458 for this common case. */
4459 if (token
->type
== CPP_NAME
4460 && !cp_parser_nth_token_starts_template_argument_list_p
4462 return cp_parser_identifier (parser
);
4464 cp_parser_parse_tentatively (parser
);
4465 /* Try a template-id. */
4466 id
= cp_parser_template_id (parser
,
4467 /*template_keyword_p=*/false,
4468 /*check_dependency_p=*/true,
4470 /* If that worked, we're done. */
4471 if (cp_parser_parse_definitely (parser
))
4474 /* Peek at the next token. (Changes in the token buffer may
4475 have invalidated the pointer obtained above.) */
4476 token
= cp_lexer_peek_token (parser
->lexer
);
4478 switch (token
->type
)
4481 return cp_parser_identifier (parser
);
4484 if (token
->keyword
== RID_OPERATOR
)
4485 return cp_parser_operator_function_id (parser
);
4489 cp_parser_error (parser
, "expected id-expression");
4490 return error_mark_node
;
4494 return cp_parser_unqualified_id (parser
, template_keyword_p
,
4495 /*check_dependency_p=*/true,
4500 /* Parse an unqualified-id.
4504 operator-function-id
4505 conversion-function-id
4509 If TEMPLATE_KEYWORD_P is TRUE, we have just seen the `template'
4510 keyword, in a construct like `A::template ...'.
4512 Returns a representation of unqualified-id. For the `identifier'
4513 production, an IDENTIFIER_NODE is returned. For the `~ class-name'
4514 production a BIT_NOT_EXPR is returned; the operand of the
4515 BIT_NOT_EXPR is an IDENTIFIER_NODE for the class-name. For the
4516 other productions, see the documentation accompanying the
4517 corresponding parsing functions. If CHECK_DEPENDENCY_P is false,
4518 names are looked up in uninstantiated templates. If DECLARATOR_P
4519 is true, the unqualified-id is appearing as part of a declarator,
4520 rather than as part of an expression. */
4523 cp_parser_unqualified_id (cp_parser
* parser
,
4524 bool template_keyword_p
,
4525 bool check_dependency_p
,
4531 /* Peek at the next token. */
4532 token
= cp_lexer_peek_token (parser
->lexer
);
4534 switch (token
->type
)
4540 /* We don't know yet whether or not this will be a
4542 cp_parser_parse_tentatively (parser
);
4543 /* Try a template-id. */
4544 id
= cp_parser_template_id (parser
, template_keyword_p
,
4547 /* If it worked, we're done. */
4548 if (cp_parser_parse_definitely (parser
))
4550 /* Otherwise, it's an ordinary identifier. */
4551 return cp_parser_identifier (parser
);
4554 case CPP_TEMPLATE_ID
:
4555 return cp_parser_template_id (parser
, template_keyword_p
,
4562 tree qualifying_scope
;
4567 /* Consume the `~' token. */
4568 cp_lexer_consume_token (parser
->lexer
);
4569 /* Parse the class-name. The standard, as written, seems to
4572 template <typename T> struct S { ~S (); };
4573 template <typename T> S<T>::~S() {}
4575 is invalid, since `~' must be followed by a class-name, but
4576 `S<T>' is dependent, and so not known to be a class.
4577 That's not right; we need to look in uninstantiated
4578 templates. A further complication arises from:
4580 template <typename T> void f(T t) {
4584 Here, it is not possible to look up `T' in the scope of `T'
4585 itself. We must look in both the current scope, and the
4586 scope of the containing complete expression.
4588 Yet another issue is:
4597 The standard does not seem to say that the `S' in `~S'
4598 should refer to the type `S' and not the data member
4601 /* DR 244 says that we look up the name after the "~" in the
4602 same scope as we looked up the qualifying name. That idea
4603 isn't fully worked out; it's more complicated than that. */
4604 scope
= parser
->scope
;
4605 object_scope
= parser
->object_scope
;
4606 qualifying_scope
= parser
->qualifying_scope
;
4608 /* Check for invalid scopes. */
4609 if (scope
== error_mark_node
)
4611 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
4612 cp_lexer_consume_token (parser
->lexer
);
4613 return error_mark_node
;
4615 if (scope
&& TREE_CODE (scope
) == NAMESPACE_DECL
)
4617 if (!cp_parser_uncommitted_to_tentative_parse_p (parser
))
4618 error_at (token
->location
,
4619 "scope %qT before %<~%> is not a class-name",
4621 cp_parser_simulate_error (parser
);
4622 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
4623 cp_lexer_consume_token (parser
->lexer
);
4624 return error_mark_node
;
4626 gcc_assert (!scope
|| TYPE_P (scope
));
4628 /* If the name is of the form "X::~X" it's OK even if X is a
4630 token
= cp_lexer_peek_token (parser
->lexer
);
4632 && token
->type
== CPP_NAME
4633 && (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
4635 && (token
->u
.value
== TYPE_IDENTIFIER (scope
)
4636 || (CLASS_TYPE_P (scope
)
4637 && constructor_name_p (token
->u
.value
, scope
))))
4639 cp_lexer_consume_token (parser
->lexer
);
4640 return build_nt (BIT_NOT_EXPR
, scope
);
4643 /* If there was an explicit qualification (S::~T), first look
4644 in the scope given by the qualification (i.e., S).
4646 Note: in the calls to cp_parser_class_name below we pass
4647 typename_type so that lookup finds the injected-class-name
4648 rather than the constructor. */
4650 type_decl
= NULL_TREE
;
4653 cp_parser_parse_tentatively (parser
);
4654 type_decl
= cp_parser_class_name (parser
,
4655 /*typename_keyword_p=*/false,
4656 /*template_keyword_p=*/false,
4658 /*check_dependency=*/false,
4659 /*class_head_p=*/false,
4661 if (cp_parser_parse_definitely (parser
))
4664 /* In "N::S::~S", look in "N" as well. */
4665 if (!done
&& scope
&& qualifying_scope
)
4667 cp_parser_parse_tentatively (parser
);
4668 parser
->scope
= qualifying_scope
;
4669 parser
->object_scope
= NULL_TREE
;
4670 parser
->qualifying_scope
= NULL_TREE
;
4672 = cp_parser_class_name (parser
,
4673 /*typename_keyword_p=*/false,
4674 /*template_keyword_p=*/false,
4676 /*check_dependency=*/false,
4677 /*class_head_p=*/false,
4679 if (cp_parser_parse_definitely (parser
))
4682 /* In "p->S::~T", look in the scope given by "*p" as well. */
4683 else if (!done
&& object_scope
)
4685 cp_parser_parse_tentatively (parser
);
4686 parser
->scope
= object_scope
;
4687 parser
->object_scope
= NULL_TREE
;
4688 parser
->qualifying_scope
= NULL_TREE
;
4690 = cp_parser_class_name (parser
,
4691 /*typename_keyword_p=*/false,
4692 /*template_keyword_p=*/false,
4694 /*check_dependency=*/false,
4695 /*class_head_p=*/false,
4697 if (cp_parser_parse_definitely (parser
))
4700 /* Look in the surrounding context. */
4703 parser
->scope
= NULL_TREE
;
4704 parser
->object_scope
= NULL_TREE
;
4705 parser
->qualifying_scope
= NULL_TREE
;
4706 if (processing_template_decl
)
4707 cp_parser_parse_tentatively (parser
);
4709 = cp_parser_class_name (parser
,
4710 /*typename_keyword_p=*/false,
4711 /*template_keyword_p=*/false,
4713 /*check_dependency=*/false,
4714 /*class_head_p=*/false,
4716 if (processing_template_decl
4717 && ! cp_parser_parse_definitely (parser
))
4719 /* We couldn't find a type with this name, so just accept
4720 it and check for a match at instantiation time. */
4721 type_decl
= cp_parser_identifier (parser
);
4722 if (type_decl
!= error_mark_node
)
4723 type_decl
= build_nt (BIT_NOT_EXPR
, type_decl
);
4727 /* If an error occurred, assume that the name of the
4728 destructor is the same as the name of the qualifying
4729 class. That allows us to keep parsing after running
4730 into ill-formed destructor names. */
4731 if (type_decl
== error_mark_node
&& scope
)
4732 return build_nt (BIT_NOT_EXPR
, scope
);
4733 else if (type_decl
== error_mark_node
)
4734 return error_mark_node
;
4736 /* Check that destructor name and scope match. */
4737 if (declarator_p
&& scope
&& !check_dtor_name (scope
, type_decl
))
4739 if (!cp_parser_uncommitted_to_tentative_parse_p (parser
))
4740 error_at (token
->location
,
4741 "declaration of %<~%T%> as member of %qT",
4743 cp_parser_simulate_error (parser
);
4744 return error_mark_node
;
4749 A typedef-name that names a class shall not be used as the
4750 identifier in the declarator for a destructor declaration. */
4752 && !DECL_IMPLICIT_TYPEDEF_P (type_decl
)
4753 && !DECL_SELF_REFERENCE_P (type_decl
)
4754 && !cp_parser_uncommitted_to_tentative_parse_p (parser
))
4755 error_at (token
->location
,
4756 "typedef-name %qD used as destructor declarator",
4759 return build_nt (BIT_NOT_EXPR
, TREE_TYPE (type_decl
));
4763 if (token
->keyword
== RID_OPERATOR
)
4767 /* This could be a template-id, so we try that first. */
4768 cp_parser_parse_tentatively (parser
);
4769 /* Try a template-id. */
4770 id
= cp_parser_template_id (parser
, template_keyword_p
,
4771 /*check_dependency_p=*/true,
4773 /* If that worked, we're done. */
4774 if (cp_parser_parse_definitely (parser
))
4776 /* We still don't know whether we're looking at an
4777 operator-function-id or a conversion-function-id. */
4778 cp_parser_parse_tentatively (parser
);
4779 /* Try an operator-function-id. */
4780 id
= cp_parser_operator_function_id (parser
);
4781 /* If that didn't work, try a conversion-function-id. */
4782 if (!cp_parser_parse_definitely (parser
))
4783 id
= cp_parser_conversion_function_id (parser
);
4784 else if (UDLIT_OPER_P (id
))
4787 const char *name
= UDLIT_OP_SUFFIX (id
);
4788 if (name
[0] != '_' && !in_system_header
)
4789 warning (0, "literal operator suffixes not preceded by %<_%>"
4790 " are reserved for future standardization");
4800 cp_parser_error (parser
, "expected unqualified-id");
4801 return error_mark_node
;
4805 /* Parse an (optional) nested-name-specifier.
4807 nested-name-specifier: [C++98]
4808 class-or-namespace-name :: nested-name-specifier [opt]
4809 class-or-namespace-name :: template nested-name-specifier [opt]
4811 nested-name-specifier: [C++0x]
4814 nested-name-specifier identifier ::
4815 nested-name-specifier template [opt] simple-template-id ::
4817 PARSER->SCOPE should be set appropriately before this function is
4818 called. TYPENAME_KEYWORD_P is TRUE if the `typename' keyword is in
4819 effect. TYPE_P is TRUE if we non-type bindings should be ignored
4822 Sets PARSER->SCOPE to the class (TYPE) or namespace
4823 (NAMESPACE_DECL) specified by the nested-name-specifier, or leaves
4824 it unchanged if there is no nested-name-specifier. Returns the new
4825 scope iff there is a nested-name-specifier, or NULL_TREE otherwise.
4827 If IS_DECLARATION is TRUE, the nested-name-specifier is known to be
4828 part of a declaration and/or decl-specifier. */
4831 cp_parser_nested_name_specifier_opt (cp_parser
*parser
,
4832 bool typename_keyword_p
,
4833 bool check_dependency_p
,
4835 bool is_declaration
)
4837 bool success
= false;
4838 cp_token_position start
= 0;
4841 /* Remember where the nested-name-specifier starts. */
4842 if (cp_parser_uncommitted_to_tentative_parse_p (parser
))
4844 start
= cp_lexer_token_position (parser
->lexer
, false);
4845 push_deferring_access_checks (dk_deferred
);
4852 tree saved_qualifying_scope
;
4853 bool template_keyword_p
;
4855 /* Spot cases that cannot be the beginning of a
4856 nested-name-specifier. */
4857 token
= cp_lexer_peek_token (parser
->lexer
);
4859 /* If the next token is CPP_NESTED_NAME_SPECIFIER, just process
4860 the already parsed nested-name-specifier. */
4861 if (token
->type
== CPP_NESTED_NAME_SPECIFIER
)
4863 /* Grab the nested-name-specifier and continue the loop. */
4864 cp_parser_pre_parsed_nested_name_specifier (parser
);
4865 /* If we originally encountered this nested-name-specifier
4866 with IS_DECLARATION set to false, we will not have
4867 resolved TYPENAME_TYPEs, so we must do so here. */
4869 && TREE_CODE (parser
->scope
) == TYPENAME_TYPE
)
4871 new_scope
= resolve_typename_type (parser
->scope
,
4872 /*only_current_p=*/false);
4873 if (TREE_CODE (new_scope
) != TYPENAME_TYPE
)
4874 parser
->scope
= new_scope
;
4880 /* Spot cases that cannot be the beginning of a
4881 nested-name-specifier. On the second and subsequent times
4882 through the loop, we look for the `template' keyword. */
4883 if (success
&& token
->keyword
== RID_TEMPLATE
)
4885 /* A template-id can start a nested-name-specifier. */
4886 else if (token
->type
== CPP_TEMPLATE_ID
)
4888 /* DR 743: decltype can be used in a nested-name-specifier. */
4889 else if (token_is_decltype (token
))
4893 /* If the next token is not an identifier, then it is
4894 definitely not a type-name or namespace-name. */
4895 if (token
->type
!= CPP_NAME
)
4897 /* If the following token is neither a `<' (to begin a
4898 template-id), nor a `::', then we are not looking at a
4899 nested-name-specifier. */
4900 token
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
4902 if (token
->type
== CPP_COLON
4903 && parser
->colon_corrects_to_scope_p
4904 && cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
== CPP_NAME
)
4906 error_at (token
->location
,
4907 "found %<:%> in nested-name-specifier, expected %<::%>");
4908 token
->type
= CPP_SCOPE
;
4911 if (token
->type
!= CPP_SCOPE
4912 && !cp_parser_nth_token_starts_template_argument_list_p
4917 /* The nested-name-specifier is optional, so we parse
4919 cp_parser_parse_tentatively (parser
);
4921 /* Look for the optional `template' keyword, if this isn't the
4922 first time through the loop. */
4924 template_keyword_p
= cp_parser_optional_template_keyword (parser
);
4926 template_keyword_p
= false;
4928 /* Save the old scope since the name lookup we are about to do
4929 might destroy it. */
4930 old_scope
= parser
->scope
;
4931 saved_qualifying_scope
= parser
->qualifying_scope
;
4932 /* In a declarator-id like "X<T>::I::Y<T>" we must be able to
4933 look up names in "X<T>::I" in order to determine that "Y" is
4934 a template. So, if we have a typename at this point, we make
4935 an effort to look through it. */
4937 && !typename_keyword_p
4939 && TREE_CODE (parser
->scope
) == TYPENAME_TYPE
)
4940 parser
->scope
= resolve_typename_type (parser
->scope
,
4941 /*only_current_p=*/false);
4942 /* Parse the qualifying entity. */
4944 = cp_parser_qualifying_entity (parser
,
4950 /* Look for the `::' token. */
4951 cp_parser_require (parser
, CPP_SCOPE
, RT_SCOPE
);
4953 /* If we found what we wanted, we keep going; otherwise, we're
4955 if (!cp_parser_parse_definitely (parser
))
4957 bool error_p
= false;
4959 /* Restore the OLD_SCOPE since it was valid before the
4960 failed attempt at finding the last
4961 class-or-namespace-name. */
4962 parser
->scope
= old_scope
;
4963 parser
->qualifying_scope
= saved_qualifying_scope
;
4965 /* If the next token is a decltype, and the one after that is a
4966 `::', then the decltype has failed to resolve to a class or
4967 enumeration type. Give this error even when parsing
4968 tentatively since it can't possibly be valid--and we're going
4969 to replace it with a CPP_NESTED_NAME_SPECIFIER below, so we
4970 won't get another chance.*/
4971 if (cp_lexer_next_token_is (parser
->lexer
, CPP_DECLTYPE
)
4972 && (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
4975 token
= cp_lexer_consume_token (parser
->lexer
);
4976 error_at (token
->location
, "decltype evaluates to %qT, "
4977 "which is not a class or enumeration type",
4979 parser
->scope
= error_mark_node
;
4983 cp_lexer_consume_token (parser
->lexer
);
4986 if (cp_parser_uncommitted_to_tentative_parse_p (parser
))
4988 /* If the next token is an identifier, and the one after
4989 that is a `::', then any valid interpretation would have
4990 found a class-or-namespace-name. */
4991 while (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
)
4992 && (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
4994 && (cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
4997 token
= cp_lexer_consume_token (parser
->lexer
);
5000 if (!token
->ambiguous_p
)
5003 tree ambiguous_decls
;
5005 decl
= cp_parser_lookup_name (parser
, token
->u
.value
,
5007 /*is_template=*/false,
5008 /*is_namespace=*/false,
5009 /*check_dependency=*/true,
5012 if (TREE_CODE (decl
) == TEMPLATE_DECL
)
5013 error_at (token
->location
,
5014 "%qD used without template parameters",
5016 else if (ambiguous_decls
)
5018 error_at (token
->location
,
5019 "reference to %qD is ambiguous",
5021 print_candidates (ambiguous_decls
);
5022 decl
= error_mark_node
;
5026 if (cxx_dialect
!= cxx98
)
5027 cp_parser_name_lookup_error
5028 (parser
, token
->u
.value
, decl
, NLE_NOT_CXX98
,
5031 cp_parser_name_lookup_error
5032 (parser
, token
->u
.value
, decl
, NLE_CXX98
,
5036 parser
->scope
= error_mark_node
;
5038 /* Treat this as a successful nested-name-specifier
5043 If the name found is not a class-name (clause
5044 _class_) or namespace-name (_namespace.def_), the
5045 program is ill-formed. */
5048 cp_lexer_consume_token (parser
->lexer
);
5052 /* We've found one valid nested-name-specifier. */
5054 /* Name lookup always gives us a DECL. */
5055 if (TREE_CODE (new_scope
) == TYPE_DECL
)
5056 new_scope
= TREE_TYPE (new_scope
);
5057 /* Uses of "template" must be followed by actual templates. */
5058 if (template_keyword_p
5059 && !(CLASS_TYPE_P (new_scope
)
5060 && ((CLASSTYPE_USE_TEMPLATE (new_scope
)
5061 && PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (new_scope
)))
5062 || CLASSTYPE_IS_TEMPLATE (new_scope
)))
5063 && !(TREE_CODE (new_scope
) == TYPENAME_TYPE
5064 && (TREE_CODE (TYPENAME_TYPE_FULLNAME (new_scope
))
5065 == TEMPLATE_ID_EXPR
)))
5066 permerror (input_location
, TYPE_P (new_scope
)
5067 ? G_("%qT is not a template")
5068 : G_("%qD is not a template"),
5070 /* If it is a class scope, try to complete it; we are about to
5071 be looking up names inside the class. */
5072 if (TYPE_P (new_scope
)
5073 /* Since checking types for dependency can be expensive,
5074 avoid doing it if the type is already complete. */
5075 && !COMPLETE_TYPE_P (new_scope
)
5076 /* Do not try to complete dependent types. */
5077 && !dependent_type_p (new_scope
))
5079 new_scope
= complete_type (new_scope
);
5080 /* If it is a typedef to current class, use the current
5081 class instead, as the typedef won't have any names inside
5083 if (!COMPLETE_TYPE_P (new_scope
)
5084 && currently_open_class (new_scope
))
5085 new_scope
= TYPE_MAIN_VARIANT (new_scope
);
5087 /* Make sure we look in the right scope the next time through
5089 parser
->scope
= new_scope
;
5092 /* If parsing tentatively, replace the sequence of tokens that makes
5093 up the nested-name-specifier with a CPP_NESTED_NAME_SPECIFIER
5094 token. That way, should we re-parse the token stream, we will
5095 not have to repeat the effort required to do the parse, nor will
5096 we issue duplicate error messages. */
5097 if (success
&& start
)
5101 token
= cp_lexer_token_at (parser
->lexer
, start
);
5102 /* Reset the contents of the START token. */
5103 token
->type
= CPP_NESTED_NAME_SPECIFIER
;
5104 /* Retrieve any deferred checks. Do not pop this access checks yet
5105 so the memory will not be reclaimed during token replacing below. */
5106 token
->u
.tree_check_value
= ggc_alloc_cleared_tree_check ();
5107 token
->u
.tree_check_value
->value
= parser
->scope
;
5108 token
->u
.tree_check_value
->checks
= get_deferred_access_checks ();
5109 token
->u
.tree_check_value
->qualifying_scope
=
5110 parser
->qualifying_scope
;
5111 token
->keyword
= RID_MAX
;
5113 /* Purge all subsequent tokens. */
5114 cp_lexer_purge_tokens_after (parser
->lexer
, start
);
5118 pop_to_parent_deferring_access_checks ();
5120 return success
? parser
->scope
: NULL_TREE
;
5123 /* Parse a nested-name-specifier. See
5124 cp_parser_nested_name_specifier_opt for details. This function
5125 behaves identically, except that it will an issue an error if no
5126 nested-name-specifier is present. */
5129 cp_parser_nested_name_specifier (cp_parser
*parser
,
5130 bool typename_keyword_p
,
5131 bool check_dependency_p
,
5133 bool is_declaration
)
5137 /* Look for the nested-name-specifier. */
5138 scope
= cp_parser_nested_name_specifier_opt (parser
,
5143 /* If it was not present, issue an error message. */
5146 cp_parser_error (parser
, "expected nested-name-specifier");
5147 parser
->scope
= NULL_TREE
;
5153 /* Parse the qualifying entity in a nested-name-specifier. For C++98,
5154 this is either a class-name or a namespace-name (which corresponds
5155 to the class-or-namespace-name production in the grammar). For
5156 C++0x, it can also be a type-name that refers to an enumeration
5157 type or a simple-template-id.
5159 TYPENAME_KEYWORD_P is TRUE iff the `typename' keyword is in effect.
5160 TEMPLATE_KEYWORD_P is TRUE iff the `template' keyword is in effect.
5161 CHECK_DEPENDENCY_P is FALSE iff dependent names should be looked up.
5162 TYPE_P is TRUE iff the next name should be taken as a class-name,
5163 even the same name is declared to be another entity in the same
5166 Returns the class (TYPE_DECL) or namespace (NAMESPACE_DECL)
5167 specified by the class-or-namespace-name. If neither is found the
5168 ERROR_MARK_NODE is returned. */
5171 cp_parser_qualifying_entity (cp_parser
*parser
,
5172 bool typename_keyword_p
,
5173 bool template_keyword_p
,
5174 bool check_dependency_p
,
5176 bool is_declaration
)
5179 tree saved_qualifying_scope
;
5180 tree saved_object_scope
;
5183 bool successful_parse_p
;
5185 /* DR 743: decltype can appear in a nested-name-specifier. */
5186 if (cp_lexer_next_token_is_decltype (parser
->lexer
))
5188 scope
= cp_parser_decltype (parser
);
5189 if (TREE_CODE (scope
) != ENUMERAL_TYPE
5190 && !MAYBE_CLASS_TYPE_P (scope
))
5192 cp_parser_simulate_error (parser
);
5193 return error_mark_node
;
5195 if (TYPE_NAME (scope
))
5196 scope
= TYPE_NAME (scope
);
5200 /* Before we try to parse the class-name, we must save away the
5201 current PARSER->SCOPE since cp_parser_class_name will destroy
5203 saved_scope
= parser
->scope
;
5204 saved_qualifying_scope
= parser
->qualifying_scope
;
5205 saved_object_scope
= parser
->object_scope
;
5206 /* Try for a class-name first. If the SAVED_SCOPE is a type, then
5207 there is no need to look for a namespace-name. */
5208 only_class_p
= template_keyword_p
5209 || (saved_scope
&& TYPE_P (saved_scope
) && cxx_dialect
== cxx98
);
5211 cp_parser_parse_tentatively (parser
);
5212 scope
= cp_parser_class_name (parser
,
5215 type_p
? class_type
: none_type
,
5217 /*class_head_p=*/false,
5219 successful_parse_p
= only_class_p
|| cp_parser_parse_definitely (parser
);
5220 /* If that didn't work and we're in C++0x mode, try for a type-name. */
5222 && cxx_dialect
!= cxx98
5223 && !successful_parse_p
)
5225 /* Restore the saved scope. */
5226 parser
->scope
= saved_scope
;
5227 parser
->qualifying_scope
= saved_qualifying_scope
;
5228 parser
->object_scope
= saved_object_scope
;
5230 /* Parse tentatively. */
5231 cp_parser_parse_tentatively (parser
);
5233 /* Parse a type-name */
5234 scope
= cp_parser_type_name (parser
);
5236 /* "If the name found does not designate a namespace or a class,
5237 enumeration, or dependent type, the program is ill-formed."
5239 We cover classes and dependent types above and namespaces below,
5240 so this code is only looking for enums. */
5241 if (!scope
|| TREE_CODE (scope
) != TYPE_DECL
5242 || TREE_CODE (TREE_TYPE (scope
)) != ENUMERAL_TYPE
)
5243 cp_parser_simulate_error (parser
);
5245 successful_parse_p
= cp_parser_parse_definitely (parser
);
5247 /* If that didn't work, try for a namespace-name. */
5248 if (!only_class_p
&& !successful_parse_p
)
5250 /* Restore the saved scope. */
5251 parser
->scope
= saved_scope
;
5252 parser
->qualifying_scope
= saved_qualifying_scope
;
5253 parser
->object_scope
= saved_object_scope
;
5254 /* If we are not looking at an identifier followed by the scope
5255 resolution operator, then this is not part of a
5256 nested-name-specifier. (Note that this function is only used
5257 to parse the components of a nested-name-specifier.) */
5258 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_NAME
)
5259 || cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
!= CPP_SCOPE
)
5260 return error_mark_node
;
5261 scope
= cp_parser_namespace_name (parser
);
5267 /* Parse a postfix-expression.
5271 postfix-expression [ expression ]
5272 postfix-expression ( expression-list [opt] )
5273 simple-type-specifier ( expression-list [opt] )
5274 typename :: [opt] nested-name-specifier identifier
5275 ( expression-list [opt] )
5276 typename :: [opt] nested-name-specifier template [opt] template-id
5277 ( expression-list [opt] )
5278 postfix-expression . template [opt] id-expression
5279 postfix-expression -> template [opt] id-expression
5280 postfix-expression . pseudo-destructor-name
5281 postfix-expression -> pseudo-destructor-name
5282 postfix-expression ++
5283 postfix-expression --
5284 dynamic_cast < type-id > ( expression )
5285 static_cast < type-id > ( expression )
5286 reinterpret_cast < type-id > ( expression )
5287 const_cast < type-id > ( expression )
5288 typeid ( expression )
5294 ( type-id ) { initializer-list , [opt] }
5296 This extension is a GNU version of the C99 compound-literal
5297 construct. (The C99 grammar uses `type-name' instead of `type-id',
5298 but they are essentially the same concept.)
5300 If ADDRESS_P is true, the postfix expression is the operand of the
5301 `&' operator. CAST_P is true if this expression is the target of a
5304 If MEMBER_ACCESS_ONLY_P, we only allow postfix expressions that are
5305 class member access expressions [expr.ref].
5307 Returns a representation of the expression. */
5310 cp_parser_postfix_expression (cp_parser
*parser
, bool address_p
, bool cast_p
,
5311 bool member_access_only_p
,
5312 cp_id_kind
* pidk_return
)
5316 cp_id_kind idk
= CP_ID_KIND_NONE
;
5317 tree postfix_expression
= NULL_TREE
;
5318 bool is_member_access
= false;
5320 /* Peek at the next token. */
5321 token
= cp_lexer_peek_token (parser
->lexer
);
5322 /* Some of the productions are determined by keywords. */
5323 keyword
= token
->keyword
;
5333 const char *saved_message
;
5335 /* All of these can be handled in the same way from the point
5336 of view of parsing. Begin by consuming the token
5337 identifying the cast. */
5338 cp_lexer_consume_token (parser
->lexer
);
5340 /* New types cannot be defined in the cast. */
5341 saved_message
= parser
->type_definition_forbidden_message
;
5342 parser
->type_definition_forbidden_message
5343 = G_("types may not be defined in casts");
5345 /* Look for the opening `<'. */
5346 cp_parser_require (parser
, CPP_LESS
, RT_LESS
);
5347 /* Parse the type to which we are casting. */
5348 type
= cp_parser_type_id (parser
);
5349 /* Look for the closing `>'. */
5350 cp_parser_require (parser
, CPP_GREATER
, RT_GREATER
);
5351 /* Restore the old message. */
5352 parser
->type_definition_forbidden_message
= saved_message
;
5354 /* And the expression which is being cast. */
5355 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
5356 expression
= cp_parser_expression (parser
, /*cast_p=*/true, & idk
);
5357 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
5359 /* Only type conversions to integral or enumeration types
5360 can be used in constant-expressions. */
5361 if (!cast_valid_in_integral_constant_expression_p (type
)
5362 && cp_parser_non_integral_constant_expression (parser
, NIC_CAST
))
5363 return error_mark_node
;
5369 = build_dynamic_cast (type
, expression
, tf_warning_or_error
);
5373 = build_static_cast (type
, expression
, tf_warning_or_error
);
5377 = build_reinterpret_cast (type
, expression
,
5378 tf_warning_or_error
);
5382 = build_const_cast (type
, expression
, tf_warning_or_error
);
5393 const char *saved_message
;
5394 bool saved_in_type_id_in_expr_p
;
5396 /* Consume the `typeid' token. */
5397 cp_lexer_consume_token (parser
->lexer
);
5398 /* Look for the `(' token. */
5399 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
5400 /* Types cannot be defined in a `typeid' expression. */
5401 saved_message
= parser
->type_definition_forbidden_message
;
5402 parser
->type_definition_forbidden_message
5403 = G_("types may not be defined in a %<typeid%> expression");
5404 /* We can't be sure yet whether we're looking at a type-id or an
5406 cp_parser_parse_tentatively (parser
);
5407 /* Try a type-id first. */
5408 saved_in_type_id_in_expr_p
= parser
->in_type_id_in_expr_p
;
5409 parser
->in_type_id_in_expr_p
= true;
5410 type
= cp_parser_type_id (parser
);
5411 parser
->in_type_id_in_expr_p
= saved_in_type_id_in_expr_p
;
5412 /* Look for the `)' token. Otherwise, we can't be sure that
5413 we're not looking at an expression: consider `typeid (int
5414 (3))', for example. */
5415 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
5416 /* If all went well, simply lookup the type-id. */
5417 if (cp_parser_parse_definitely (parser
))
5418 postfix_expression
= get_typeid (type
);
5419 /* Otherwise, fall back to the expression variant. */
5424 /* Look for an expression. */
5425 expression
= cp_parser_expression (parser
, /*cast_p=*/false, & idk
);
5426 /* Compute its typeid. */
5427 postfix_expression
= build_typeid (expression
);
5428 /* Look for the `)' token. */
5429 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
5431 /* Restore the saved message. */
5432 parser
->type_definition_forbidden_message
= saved_message
;
5433 /* `typeid' may not appear in an integral constant expression. */
5434 if (cp_parser_non_integral_constant_expression (parser
, NIC_TYPEID
))
5435 return error_mark_node
;
5442 /* The syntax permitted here is the same permitted for an
5443 elaborated-type-specifier. */
5444 type
= cp_parser_elaborated_type_specifier (parser
,
5445 /*is_friend=*/false,
5446 /*is_declaration=*/false);
5447 postfix_expression
= cp_parser_functional_cast (parser
, type
);
5455 /* If the next thing is a simple-type-specifier, we may be
5456 looking at a functional cast. We could also be looking at
5457 an id-expression. So, we try the functional cast, and if
5458 that doesn't work we fall back to the primary-expression. */
5459 cp_parser_parse_tentatively (parser
);
5460 /* Look for the simple-type-specifier. */
5461 type
= cp_parser_simple_type_specifier (parser
,
5462 /*decl_specs=*/NULL
,
5463 CP_PARSER_FLAGS_NONE
);
5464 /* Parse the cast itself. */
5465 if (!cp_parser_error_occurred (parser
))
5467 = cp_parser_functional_cast (parser
, type
);
5468 /* If that worked, we're done. */
5469 if (cp_parser_parse_definitely (parser
))
5472 /* If the functional-cast didn't work out, try a
5473 compound-literal. */
5474 if (cp_parser_allow_gnu_extensions_p (parser
)
5475 && cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
5477 VEC(constructor_elt
,gc
) *initializer_list
= NULL
;
5478 bool saved_in_type_id_in_expr_p
;
5480 cp_parser_parse_tentatively (parser
);
5481 /* Consume the `('. */
5482 cp_lexer_consume_token (parser
->lexer
);
5483 /* Parse the type. */
5484 saved_in_type_id_in_expr_p
= parser
->in_type_id_in_expr_p
;
5485 parser
->in_type_id_in_expr_p
= true;
5486 type
= cp_parser_type_id (parser
);
5487 parser
->in_type_id_in_expr_p
= saved_in_type_id_in_expr_p
;
5488 /* Look for the `)'. */
5489 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
5490 /* Look for the `{'. */
5491 cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
);
5492 /* If things aren't going well, there's no need to
5494 if (!cp_parser_error_occurred (parser
))
5496 bool non_constant_p
;
5497 /* Parse the initializer-list. */
5499 = cp_parser_initializer_list (parser
, &non_constant_p
);
5500 /* Allow a trailing `,'. */
5501 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
5502 cp_lexer_consume_token (parser
->lexer
);
5503 /* Look for the final `}'. */
5504 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
5506 /* If that worked, we're definitely looking at a
5507 compound-literal expression. */
5508 if (cp_parser_parse_definitely (parser
))
5510 /* Warn the user that a compound literal is not
5511 allowed in standard C++. */
5512 pedwarn (input_location
, OPT_Wpedantic
, "ISO C++ forbids compound-literals");
5513 /* For simplicity, we disallow compound literals in
5514 constant-expressions. We could
5515 allow compound literals of integer type, whose
5516 initializer was a constant, in constant
5517 expressions. Permitting that usage, as a further
5518 extension, would not change the meaning of any
5519 currently accepted programs. (Of course, as
5520 compound literals are not part of ISO C++, the
5521 standard has nothing to say.) */
5522 if (cp_parser_non_integral_constant_expression (parser
,
5525 postfix_expression
= error_mark_node
;
5528 /* Form the representation of the compound-literal. */
5530 = (finish_compound_literal
5531 (type
, build_constructor (init_list_type_node
,
5533 tf_warning_or_error
));
5538 /* It must be a primary-expression. */
5540 = cp_parser_primary_expression (parser
, address_p
, cast_p
,
5541 /*template_arg_p=*/false,
5547 /* Keep looping until the postfix-expression is complete. */
5550 if (idk
== CP_ID_KIND_UNQUALIFIED
5551 && TREE_CODE (postfix_expression
) == IDENTIFIER_NODE
5552 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_PAREN
))
5553 /* It is not a Koenig lookup function call. */
5555 = unqualified_name_lookup_error (postfix_expression
);
5557 /* Peek at the next token. */
5558 token
= cp_lexer_peek_token (parser
->lexer
);
5560 switch (token
->type
)
5562 case CPP_OPEN_SQUARE
:
5564 = cp_parser_postfix_open_square_expression (parser
,
5567 idk
= CP_ID_KIND_NONE
;
5568 is_member_access
= false;
5571 case CPP_OPEN_PAREN
:
5572 /* postfix-expression ( expression-list [opt] ) */
5575 bool is_builtin_constant_p
;
5576 bool saved_integral_constant_expression_p
= false;
5577 bool saved_non_integral_constant_expression_p
= false;
5580 is_member_access
= false;
5582 is_builtin_constant_p
5583 = DECL_IS_BUILTIN_CONSTANT_P (postfix_expression
);
5584 if (is_builtin_constant_p
)
5586 /* The whole point of __builtin_constant_p is to allow
5587 non-constant expressions to appear as arguments. */
5588 saved_integral_constant_expression_p
5589 = parser
->integral_constant_expression_p
;
5590 saved_non_integral_constant_expression_p
5591 = parser
->non_integral_constant_expression_p
;
5592 parser
->integral_constant_expression_p
= false;
5594 args
= (cp_parser_parenthesized_expression_list
5596 /*cast_p=*/false, /*allow_expansion_p=*/true,
5597 /*non_constant_p=*/NULL
));
5598 if (is_builtin_constant_p
)
5600 parser
->integral_constant_expression_p
5601 = saved_integral_constant_expression_p
;
5602 parser
->non_integral_constant_expression_p
5603 = saved_non_integral_constant_expression_p
;
5608 postfix_expression
= error_mark_node
;
5612 /* Function calls are not permitted in
5613 constant-expressions. */
5614 if (! builtin_valid_in_constant_expr_p (postfix_expression
)
5615 && cp_parser_non_integral_constant_expression (parser
,
5618 postfix_expression
= error_mark_node
;
5619 release_tree_vector (args
);
5624 if (idk
== CP_ID_KIND_UNQUALIFIED
5625 || idk
== CP_ID_KIND_TEMPLATE_ID
)
5627 if (TREE_CODE (postfix_expression
) == IDENTIFIER_NODE
)
5629 if (!VEC_empty (tree
, args
))
5632 if (!any_type_dependent_arguments_p (args
))
5634 = perform_koenig_lookup (postfix_expression
, args
,
5635 /*include_std=*/false,
5636 tf_warning_or_error
);
5640 = unqualified_fn_lookup_error (postfix_expression
);
5642 /* We do not perform argument-dependent lookup if
5643 normal lookup finds a non-function, in accordance
5644 with the expected resolution of DR 218. */
5645 else if (!VEC_empty (tree
, args
)
5646 && is_overloaded_fn (postfix_expression
))
5648 tree fn
= get_first_fn (postfix_expression
);
5649 fn
= STRIP_TEMPLATE (fn
);
5651 /* Do not do argument dependent lookup if regular
5652 lookup finds a member function or a block-scope
5653 function declaration. [basic.lookup.argdep]/3 */
5654 if (!DECL_FUNCTION_MEMBER_P (fn
)
5655 && !DECL_LOCAL_FUNCTION_P (fn
))
5658 if (!any_type_dependent_arguments_p (args
))
5660 = perform_koenig_lookup (postfix_expression
, args
,
5661 /*include_std=*/false,
5662 tf_warning_or_error
);
5667 if (TREE_CODE (postfix_expression
) == COMPONENT_REF
)
5669 tree instance
= TREE_OPERAND (postfix_expression
, 0);
5670 tree fn
= TREE_OPERAND (postfix_expression
, 1);
5672 if (processing_template_decl
5673 && (type_dependent_expression_p (instance
)
5674 || (!BASELINK_P (fn
)
5675 && TREE_CODE (fn
) != FIELD_DECL
)
5676 || type_dependent_expression_p (fn
)
5677 || any_type_dependent_arguments_p (args
)))
5680 = build_nt_call_vec (postfix_expression
, args
);
5681 release_tree_vector (args
);
5685 if (BASELINK_P (fn
))
5688 = (build_new_method_call
5689 (instance
, fn
, &args
, NULL_TREE
,
5690 (idk
== CP_ID_KIND_QUALIFIED
5691 ? LOOKUP_NORMAL
|LOOKUP_NONVIRTUAL
5694 tf_warning_or_error
));
5698 = finish_call_expr (postfix_expression
, &args
,
5699 /*disallow_virtual=*/false,
5701 tf_warning_or_error
);
5703 else if (TREE_CODE (postfix_expression
) == OFFSET_REF
5704 || TREE_CODE (postfix_expression
) == MEMBER_REF
5705 || TREE_CODE (postfix_expression
) == DOTSTAR_EXPR
)
5706 postfix_expression
= (build_offset_ref_call_from_tree
5707 (postfix_expression
, &args
));
5708 else if (idk
== CP_ID_KIND_QUALIFIED
)
5709 /* A call to a static class member, or a namespace-scope
5712 = finish_call_expr (postfix_expression
, &args
,
5713 /*disallow_virtual=*/true,
5715 tf_warning_or_error
);
5717 /* All other function calls. */
5719 = finish_call_expr (postfix_expression
, &args
,
5720 /*disallow_virtual=*/false,
5722 tf_warning_or_error
);
5724 /* The POSTFIX_EXPRESSION is certainly no longer an id. */
5725 idk
= CP_ID_KIND_NONE
;
5727 release_tree_vector (args
);
5733 /* postfix-expression . template [opt] id-expression
5734 postfix-expression . pseudo-destructor-name
5735 postfix-expression -> template [opt] id-expression
5736 postfix-expression -> pseudo-destructor-name */
5738 /* Consume the `.' or `->' operator. */
5739 cp_lexer_consume_token (parser
->lexer
);
5742 = cp_parser_postfix_dot_deref_expression (parser
, token
->type
,
5747 is_member_access
= true;
5751 /* postfix-expression ++ */
5752 /* Consume the `++' token. */
5753 cp_lexer_consume_token (parser
->lexer
);
5754 /* Generate a representation for the complete expression. */
5756 = finish_increment_expr (postfix_expression
,
5757 POSTINCREMENT_EXPR
);
5758 /* Increments may not appear in constant-expressions. */
5759 if (cp_parser_non_integral_constant_expression (parser
, NIC_INC
))
5760 postfix_expression
= error_mark_node
;
5761 idk
= CP_ID_KIND_NONE
;
5762 is_member_access
= false;
5765 case CPP_MINUS_MINUS
:
5766 /* postfix-expression -- */
5767 /* Consume the `--' token. */
5768 cp_lexer_consume_token (parser
->lexer
);
5769 /* Generate a representation for the complete expression. */
5771 = finish_increment_expr (postfix_expression
,
5772 POSTDECREMENT_EXPR
);
5773 /* Decrements may not appear in constant-expressions. */
5774 if (cp_parser_non_integral_constant_expression (parser
, NIC_DEC
))
5775 postfix_expression
= error_mark_node
;
5776 idk
= CP_ID_KIND_NONE
;
5777 is_member_access
= false;
5781 if (pidk_return
!= NULL
)
5782 * pidk_return
= idk
;
5783 if (member_access_only_p
)
5784 return is_member_access
? postfix_expression
: error_mark_node
;
5786 return postfix_expression
;
5790 /* We should never get here. */
5792 return error_mark_node
;
5795 /* A subroutine of cp_parser_postfix_expression that also gets hijacked
5796 by cp_parser_builtin_offsetof. We're looking for
5798 postfix-expression [ expression ]
5799 postfix-expression [ braced-init-list ] (C++11)
5801 FOR_OFFSETOF is set if we're being called in that context, which
5802 changes how we deal with integer constant expressions. */
5805 cp_parser_postfix_open_square_expression (cp_parser
*parser
,
5806 tree postfix_expression
,
5810 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
5812 /* Consume the `[' token. */
5813 cp_lexer_consume_token (parser
->lexer
);
5815 /* Parse the index expression. */
5816 /* ??? For offsetof, there is a question of what to allow here. If
5817 offsetof is not being used in an integral constant expression context,
5818 then we *could* get the right answer by computing the value at runtime.
5819 If we are in an integral constant expression context, then we might
5820 could accept any constant expression; hard to say without analysis.
5821 Rather than open the barn door too wide right away, allow only integer
5822 constant expressions here. */
5824 index
= cp_parser_constant_expression (parser
, false, NULL
);
5827 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
5829 bool expr_nonconst_p
;
5830 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
5831 index
= cp_parser_braced_list (parser
, &expr_nonconst_p
);
5834 index
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
5837 /* Look for the closing `]'. */
5838 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
5840 /* Build the ARRAY_REF. */
5841 postfix_expression
= grok_array_decl (loc
, postfix_expression
, index
);
5843 /* When not doing offsetof, array references are not permitted in
5844 constant-expressions. */
5846 && (cp_parser_non_integral_constant_expression (parser
, NIC_ARRAY_REF
)))
5847 postfix_expression
= error_mark_node
;
5849 return postfix_expression
;
5852 /* A subroutine of cp_parser_postfix_expression that also gets hijacked
5853 by cp_parser_builtin_offsetof. We're looking for
5855 postfix-expression . template [opt] id-expression
5856 postfix-expression . pseudo-destructor-name
5857 postfix-expression -> template [opt] id-expression
5858 postfix-expression -> pseudo-destructor-name
5860 FOR_OFFSETOF is set if we're being called in that context. That sorta
5861 limits what of the above we'll actually accept, but nevermind.
5862 TOKEN_TYPE is the "." or "->" token, which will already have been
5863 removed from the stream. */
5866 cp_parser_postfix_dot_deref_expression (cp_parser
*parser
,
5867 enum cpp_ttype token_type
,
5868 tree postfix_expression
,
5869 bool for_offsetof
, cp_id_kind
*idk
,
5870 location_t location
)
5874 bool pseudo_destructor_p
;
5875 tree scope
= NULL_TREE
;
5877 /* If this is a `->' operator, dereference the pointer. */
5878 if (token_type
== CPP_DEREF
)
5879 postfix_expression
= build_x_arrow (location
, postfix_expression
,
5880 tf_warning_or_error
);
5881 /* Check to see whether or not the expression is type-dependent. */
5882 dependent_p
= type_dependent_expression_p (postfix_expression
);
5883 /* The identifier following the `->' or `.' is not qualified. */
5884 parser
->scope
= NULL_TREE
;
5885 parser
->qualifying_scope
= NULL_TREE
;
5886 parser
->object_scope
= NULL_TREE
;
5887 *idk
= CP_ID_KIND_NONE
;
5889 /* Enter the scope corresponding to the type of the object
5890 given by the POSTFIX_EXPRESSION. */
5891 if (!dependent_p
&& TREE_TYPE (postfix_expression
) != NULL_TREE
)
5893 scope
= TREE_TYPE (postfix_expression
);
5894 /* According to the standard, no expression should ever have
5895 reference type. Unfortunately, we do not currently match
5896 the standard in this respect in that our internal representation
5897 of an expression may have reference type even when the standard
5898 says it does not. Therefore, we have to manually obtain the
5899 underlying type here. */
5900 scope
= non_reference (scope
);
5901 /* The type of the POSTFIX_EXPRESSION must be complete. */
5902 if (scope
== unknown_type_node
)
5904 error_at (location
, "%qE does not have class type",
5905 postfix_expression
);
5908 /* Unlike the object expression in other contexts, *this is not
5909 required to be of complete type for purposes of class member
5910 access (5.2.5) outside the member function body. */
5911 else if (scope
!= current_class_ref
5912 && !(processing_template_decl
&& scope
== current_class_type
))
5913 scope
= complete_type_or_else (scope
, NULL_TREE
);
5914 /* Let the name lookup machinery know that we are processing a
5915 class member access expression. */
5916 parser
->context
->object_type
= scope
;
5917 /* If something went wrong, we want to be able to discern that case,
5918 as opposed to the case where there was no SCOPE due to the type
5919 of expression being dependent. */
5921 scope
= error_mark_node
;
5922 /* If the SCOPE was erroneous, make the various semantic analysis
5923 functions exit quickly -- and without issuing additional error
5925 if (scope
== error_mark_node
)
5926 postfix_expression
= error_mark_node
;
5929 /* Assume this expression is not a pseudo-destructor access. */
5930 pseudo_destructor_p
= false;
5932 /* If the SCOPE is a scalar type, then, if this is a valid program,
5933 we must be looking at a pseudo-destructor-name. If POSTFIX_EXPRESSION
5934 is type dependent, it can be pseudo-destructor-name or something else.
5935 Try to parse it as pseudo-destructor-name first. */
5936 if ((scope
&& SCALAR_TYPE_P (scope
)) || dependent_p
)
5941 cp_parser_parse_tentatively (parser
);
5942 /* Parse the pseudo-destructor-name. */
5944 cp_parser_pseudo_destructor_name (parser
, &s
, &type
);
5946 && (cp_parser_error_occurred (parser
)
5947 || TREE_CODE (type
) != TYPE_DECL
5948 || !SCALAR_TYPE_P (TREE_TYPE (type
))))
5949 cp_parser_abort_tentative_parse (parser
);
5950 else if (cp_parser_parse_definitely (parser
))
5952 pseudo_destructor_p
= true;
5954 = finish_pseudo_destructor_expr (postfix_expression
,
5955 s
, TREE_TYPE (type
));
5959 if (!pseudo_destructor_p
)
5961 /* If the SCOPE is not a scalar type, we are looking at an
5962 ordinary class member access expression, rather than a
5963 pseudo-destructor-name. */
5965 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
5966 /* Parse the id-expression. */
5967 name
= (cp_parser_id_expression
5969 cp_parser_optional_template_keyword (parser
),
5970 /*check_dependency_p=*/true,
5972 /*declarator_p=*/false,
5973 /*optional_p=*/false));
5974 /* In general, build a SCOPE_REF if the member name is qualified.
5975 However, if the name was not dependent and has already been
5976 resolved; there is no need to build the SCOPE_REF. For example;
5978 struct X { void f(); };
5979 template <typename T> void f(T* t) { t->X::f(); }
5981 Even though "t" is dependent, "X::f" is not and has been resolved
5982 to a BASELINK; there is no need to include scope information. */
5984 /* But we do need to remember that there was an explicit scope for
5985 virtual function calls. */
5987 *idk
= CP_ID_KIND_QUALIFIED
;
5989 /* If the name is a template-id that names a type, we will get a
5990 TYPE_DECL here. That is invalid code. */
5991 if (TREE_CODE (name
) == TYPE_DECL
)
5993 error_at (token
->location
, "invalid use of %qD", name
);
5994 postfix_expression
= error_mark_node
;
5998 if (name
!= error_mark_node
&& !BASELINK_P (name
) && parser
->scope
)
6000 if (TREE_CODE (parser
->scope
) == NAMESPACE_DECL
)
6002 error_at (token
->location
, "%<%D::%D%> is not a class member",
6003 parser
->scope
, name
);
6004 postfix_expression
= error_mark_node
;
6007 name
= build_qualified_name (/*type=*/NULL_TREE
,
6011 parser
->scope
= NULL_TREE
;
6012 parser
->qualifying_scope
= NULL_TREE
;
6013 parser
->object_scope
= NULL_TREE
;
6015 if (parser
->scope
&& name
&& BASELINK_P (name
))
6016 adjust_result_of_qualified_name_lookup
6017 (name
, parser
->scope
, scope
);
6019 = finish_class_member_access_expr (postfix_expression
, name
,
6021 tf_warning_or_error
);
6025 /* We no longer need to look up names in the scope of the object on
6026 the left-hand side of the `.' or `->' operator. */
6027 parser
->context
->object_type
= NULL_TREE
;
6029 /* Outside of offsetof, these operators may not appear in
6030 constant-expressions. */
6032 && (cp_parser_non_integral_constant_expression
6033 (parser
, token_type
== CPP_DEREF
? NIC_ARROW
: NIC_POINT
)))
6034 postfix_expression
= error_mark_node
;
6036 return postfix_expression
;
6039 /* Parse a parenthesized expression-list.
6042 assignment-expression
6043 expression-list, assignment-expression
6048 identifier, expression-list
6050 CAST_P is true if this expression is the target of a cast.
6052 ALLOW_EXPANSION_P is true if this expression allows expansion of an
6055 Returns a vector of trees. Each element is a representation of an
6056 assignment-expression. NULL is returned if the ( and or ) are
6057 missing. An empty, but allocated, vector is returned on no
6058 expressions. The parentheses are eaten. IS_ATTRIBUTE_LIST is id_attr
6059 if we are parsing an attribute list for an attribute that wants a
6060 plain identifier argument, normal_attr for an attribute that wants
6061 an expression, or non_attr if we aren't parsing an attribute list. If
6062 NON_CONSTANT_P is non-NULL, *NON_CONSTANT_P indicates whether or
6063 not all of the expressions in the list were constant. */
6065 static VEC(tree
,gc
) *
6066 cp_parser_parenthesized_expression_list (cp_parser
* parser
,
6067 int is_attribute_list
,
6069 bool allow_expansion_p
,
6070 bool *non_constant_p
)
6072 VEC(tree
,gc
) *expression_list
;
6073 bool fold_expr_p
= is_attribute_list
!= non_attr
;
6074 tree identifier
= NULL_TREE
;
6075 bool saved_greater_than_is_operator_p
;
6077 /* Assume all the expressions will be constant. */
6079 *non_constant_p
= false;
6081 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
6084 expression_list
= make_tree_vector ();
6086 /* Within a parenthesized expression, a `>' token is always
6087 the greater-than operator. */
6088 saved_greater_than_is_operator_p
6089 = parser
->greater_than_is_operator_p
;
6090 parser
->greater_than_is_operator_p
= true;
6092 /* Consume expressions until there are no more. */
6093 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_PAREN
))
6098 /* At the beginning of attribute lists, check to see if the
6099 next token is an identifier. */
6100 if (is_attribute_list
== id_attr
6101 && cp_lexer_peek_token (parser
->lexer
)->type
== CPP_NAME
)
6105 /* Consume the identifier. */
6106 token
= cp_lexer_consume_token (parser
->lexer
);
6107 /* Save the identifier. */
6108 identifier
= token
->u
.value
;
6112 bool expr_non_constant_p
;
6114 /* Parse the next assignment-expression. */
6115 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
6117 /* A braced-init-list. */
6118 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
6119 expr
= cp_parser_braced_list (parser
, &expr_non_constant_p
);
6120 if (non_constant_p
&& expr_non_constant_p
)
6121 *non_constant_p
= true;
6123 else if (non_constant_p
)
6125 expr
= (cp_parser_constant_expression
6126 (parser
, /*allow_non_constant_p=*/true,
6127 &expr_non_constant_p
));
6128 if (expr_non_constant_p
)
6129 *non_constant_p
= true;
6132 expr
= cp_parser_assignment_expression (parser
, cast_p
, NULL
);
6135 expr
= fold_non_dependent_expr (expr
);
6137 /* If we have an ellipsis, then this is an expression
6139 if (allow_expansion_p
6140 && cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
6142 /* Consume the `...'. */
6143 cp_lexer_consume_token (parser
->lexer
);
6145 /* Build the argument pack. */
6146 expr
= make_pack_expansion (expr
);
6149 /* Add it to the list. We add error_mark_node
6150 expressions to the list, so that we can still tell if
6151 the correct form for a parenthesized expression-list
6152 is found. That gives better errors. */
6153 VEC_safe_push (tree
, gc
, expression_list
, expr
);
6155 if (expr
== error_mark_node
)
6159 /* After the first item, attribute lists look the same as
6160 expression lists. */
6161 is_attribute_list
= non_attr
;
6164 /* If the next token isn't a `,', then we are done. */
6165 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
6168 /* Otherwise, consume the `,' and keep going. */
6169 cp_lexer_consume_token (parser
->lexer
);
6172 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
6177 /* We try and resync to an unnested comma, as that will give the
6178 user better diagnostics. */
6179 ending
= cp_parser_skip_to_closing_parenthesis (parser
,
6180 /*recovering=*/true,
6182 /*consume_paren=*/true);
6187 parser
->greater_than_is_operator_p
6188 = saved_greater_than_is_operator_p
;
6193 parser
->greater_than_is_operator_p
6194 = saved_greater_than_is_operator_p
;
6197 VEC_safe_insert (tree
, gc
, expression_list
, 0, identifier
);
6199 return expression_list
;
6202 /* Parse a pseudo-destructor-name.
6204 pseudo-destructor-name:
6205 :: [opt] nested-name-specifier [opt] type-name :: ~ type-name
6206 :: [opt] nested-name-specifier template template-id :: ~ type-name
6207 :: [opt] nested-name-specifier [opt] ~ type-name
6209 If either of the first two productions is used, sets *SCOPE to the
6210 TYPE specified before the final `::'. Otherwise, *SCOPE is set to
6211 NULL_TREE. *TYPE is set to the TYPE_DECL for the final type-name,
6212 or ERROR_MARK_NODE if the parse fails. */
6215 cp_parser_pseudo_destructor_name (cp_parser
* parser
,
6219 bool nested_name_specifier_p
;
6221 /* Assume that things will not work out. */
6222 *type
= error_mark_node
;
6224 /* Look for the optional `::' operator. */
6225 cp_parser_global_scope_opt (parser
, /*current_scope_valid_p=*/true);
6226 /* Look for the optional nested-name-specifier. */
6227 nested_name_specifier_p
6228 = (cp_parser_nested_name_specifier_opt (parser
,
6229 /*typename_keyword_p=*/false,
6230 /*check_dependency_p=*/true,
6232 /*is_declaration=*/false)
6234 /* Now, if we saw a nested-name-specifier, we might be doing the
6235 second production. */
6236 if (nested_name_specifier_p
6237 && cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TEMPLATE
))
6239 /* Consume the `template' keyword. */
6240 cp_lexer_consume_token (parser
->lexer
);
6241 /* Parse the template-id. */
6242 cp_parser_template_id (parser
,
6243 /*template_keyword_p=*/true,
6244 /*check_dependency_p=*/false,
6245 /*is_declaration=*/true);
6246 /* Look for the `::' token. */
6247 cp_parser_require (parser
, CPP_SCOPE
, RT_SCOPE
);
6249 /* If the next token is not a `~', then there might be some
6250 additional qualification. */
6251 else if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMPL
))
6253 /* At this point, we're looking for "type-name :: ~". The type-name
6254 must not be a class-name, since this is a pseudo-destructor. So,
6255 it must be either an enum-name, or a typedef-name -- both of which
6256 are just identifiers. So, we peek ahead to check that the "::"
6257 and "~" tokens are present; if they are not, then we can avoid
6258 calling type_name. */
6259 if (cp_lexer_peek_token (parser
->lexer
)->type
!= CPP_NAME
6260 || cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
!= CPP_SCOPE
6261 || cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
!= CPP_COMPL
)
6263 cp_parser_error (parser
, "non-scalar type");
6267 /* Look for the type-name. */
6268 *scope
= TREE_TYPE (cp_parser_nonclass_name (parser
));
6269 if (*scope
== error_mark_node
)
6272 /* Look for the `::' token. */
6273 cp_parser_require (parser
, CPP_SCOPE
, RT_SCOPE
);
6278 /* Look for the `~'. */
6279 cp_parser_require (parser
, CPP_COMPL
, RT_COMPL
);
6281 /* Once we see the ~, this has to be a pseudo-destructor. */
6282 if (!processing_template_decl
&& !cp_parser_error_occurred (parser
))
6283 cp_parser_commit_to_tentative_parse (parser
);
6285 /* Look for the type-name again. We are not responsible for
6286 checking that it matches the first type-name. */
6287 *type
= cp_parser_nonclass_name (parser
);
6290 /* Parse a unary-expression.
6296 unary-operator cast-expression
6297 sizeof unary-expression
6299 alignof ( type-id ) [C++0x]
6306 __extension__ cast-expression
6307 __alignof__ unary-expression
6308 __alignof__ ( type-id )
6309 alignof unary-expression [C++0x]
6310 __real__ cast-expression
6311 __imag__ cast-expression
6314 ADDRESS_P is true iff the unary-expression is appearing as the
6315 operand of the `&' operator. CAST_P is true if this expression is
6316 the target of a cast.
6318 Returns a representation of the expression. */
6321 cp_parser_unary_expression (cp_parser
*parser
, bool address_p
, bool cast_p
,
6325 enum tree_code unary_operator
;
6327 /* Peek at the next token. */
6328 token
= cp_lexer_peek_token (parser
->lexer
);
6329 /* Some keywords give away the kind of expression. */
6330 if (token
->type
== CPP_KEYWORD
)
6332 enum rid keyword
= token
->keyword
;
6342 op
= keyword
== RID_ALIGNOF
? ALIGNOF_EXPR
: SIZEOF_EXPR
;
6343 /* Consume the token. */
6344 cp_lexer_consume_token (parser
->lexer
);
6345 /* Parse the operand. */
6346 operand
= cp_parser_sizeof_operand (parser
, keyword
);
6348 if (TYPE_P (operand
))
6349 return cxx_sizeof_or_alignof_type (operand
, op
, true);
6352 /* ISO C++ defines alignof only with types, not with
6353 expressions. So pedwarn if alignof is used with a non-
6354 type expression. However, __alignof__ is ok. */
6355 if (!strcmp (IDENTIFIER_POINTER (token
->u
.value
), "alignof"))
6356 pedwarn (token
->location
, OPT_Wpedantic
,
6357 "ISO C++ does not allow %<alignof%> "
6360 return cxx_sizeof_or_alignof_expr (operand
, op
, true);
6365 return cp_parser_new_expression (parser
);
6368 return cp_parser_delete_expression (parser
);
6372 /* The saved value of the PEDANTIC flag. */
6376 /* Save away the PEDANTIC flag. */
6377 cp_parser_extension_opt (parser
, &saved_pedantic
);
6378 /* Parse the cast-expression. */
6379 expr
= cp_parser_simple_cast_expression (parser
);
6380 /* Restore the PEDANTIC flag. */
6381 pedantic
= saved_pedantic
;
6391 /* Consume the `__real__' or `__imag__' token. */
6392 cp_lexer_consume_token (parser
->lexer
);
6393 /* Parse the cast-expression. */
6394 expression
= cp_parser_simple_cast_expression (parser
);
6395 /* Create the complete representation. */
6396 return build_x_unary_op (token
->location
,
6397 (keyword
== RID_REALPART
6398 ? REALPART_EXPR
: IMAGPART_EXPR
),
6400 tf_warning_or_error
);
6404 case RID_TRANSACTION_ATOMIC
:
6405 case RID_TRANSACTION_RELAXED
:
6406 return cp_parser_transaction_expression (parser
, keyword
);
6411 const char *saved_message
;
6412 bool saved_integral_constant_expression_p
;
6413 bool saved_non_integral_constant_expression_p
;
6414 bool saved_greater_than_is_operator_p
;
6416 cp_lexer_consume_token (parser
->lexer
);
6417 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
6419 saved_message
= parser
->type_definition_forbidden_message
;
6420 parser
->type_definition_forbidden_message
6421 = G_("types may not be defined in %<noexcept%> expressions");
6423 saved_integral_constant_expression_p
6424 = parser
->integral_constant_expression_p
;
6425 saved_non_integral_constant_expression_p
6426 = parser
->non_integral_constant_expression_p
;
6427 parser
->integral_constant_expression_p
= false;
6429 saved_greater_than_is_operator_p
6430 = parser
->greater_than_is_operator_p
;
6431 parser
->greater_than_is_operator_p
= true;
6433 ++cp_unevaluated_operand
;
6434 ++c_inhibit_evaluation_warnings
;
6435 expr
= cp_parser_expression (parser
, false, NULL
);
6436 --c_inhibit_evaluation_warnings
;
6437 --cp_unevaluated_operand
;
6439 parser
->greater_than_is_operator_p
6440 = saved_greater_than_is_operator_p
;
6442 parser
->integral_constant_expression_p
6443 = saved_integral_constant_expression_p
;
6444 parser
->non_integral_constant_expression_p
6445 = saved_non_integral_constant_expression_p
;
6447 parser
->type_definition_forbidden_message
= saved_message
;
6449 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
6450 return finish_noexcept_expr (expr
, tf_warning_or_error
);
6458 /* Look for the `:: new' and `:: delete', which also signal the
6459 beginning of a new-expression, or delete-expression,
6460 respectively. If the next token is `::', then it might be one of
6462 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SCOPE
))
6466 /* See if the token after the `::' is one of the keywords in
6467 which we're interested. */
6468 keyword
= cp_lexer_peek_nth_token (parser
->lexer
, 2)->keyword
;
6469 /* If it's `new', we have a new-expression. */
6470 if (keyword
== RID_NEW
)
6471 return cp_parser_new_expression (parser
);
6472 /* Similarly, for `delete'. */
6473 else if (keyword
== RID_DELETE
)
6474 return cp_parser_delete_expression (parser
);
6477 /* Look for a unary operator. */
6478 unary_operator
= cp_parser_unary_operator (token
);
6479 /* The `++' and `--' operators can be handled similarly, even though
6480 they are not technically unary-operators in the grammar. */
6481 if (unary_operator
== ERROR_MARK
)
6483 if (token
->type
== CPP_PLUS_PLUS
)
6484 unary_operator
= PREINCREMENT_EXPR
;
6485 else if (token
->type
== CPP_MINUS_MINUS
)
6486 unary_operator
= PREDECREMENT_EXPR
;
6487 /* Handle the GNU address-of-label extension. */
6488 else if (cp_parser_allow_gnu_extensions_p (parser
)
6489 && token
->type
== CPP_AND_AND
)
6493 location_t loc
= token
->location
;
6495 /* Consume the '&&' token. */
6496 cp_lexer_consume_token (parser
->lexer
);
6497 /* Look for the identifier. */
6498 identifier
= cp_parser_identifier (parser
);
6499 /* Create an expression representing the address. */
6500 expression
= finish_label_address_expr (identifier
, loc
);
6501 if (cp_parser_non_integral_constant_expression (parser
,
6503 expression
= error_mark_node
;
6507 if (unary_operator
!= ERROR_MARK
)
6509 tree cast_expression
;
6510 tree expression
= error_mark_node
;
6511 non_integral_constant non_constant_p
= NIC_NONE
;
6512 location_t loc
= token
->location
;
6514 /* Consume the operator token. */
6515 token
= cp_lexer_consume_token (parser
->lexer
);
6516 /* Parse the cast-expression. */
6518 = cp_parser_cast_expression (parser
,
6519 unary_operator
== ADDR_EXPR
,
6520 /*cast_p=*/false, pidk
);
6521 /* Now, build an appropriate representation. */
6522 switch (unary_operator
)
6525 non_constant_p
= NIC_STAR
;
6526 expression
= build_x_indirect_ref (loc
, cast_expression
,
6528 tf_warning_or_error
);
6532 non_constant_p
= NIC_ADDR
;
6535 expression
= build_x_unary_op (loc
, unary_operator
,
6537 tf_warning_or_error
);
6540 case PREINCREMENT_EXPR
:
6541 case PREDECREMENT_EXPR
:
6542 non_constant_p
= unary_operator
== PREINCREMENT_EXPR
6543 ? NIC_PREINCREMENT
: NIC_PREDECREMENT
;
6545 case UNARY_PLUS_EXPR
:
6547 case TRUTH_NOT_EXPR
:
6548 expression
= finish_unary_op_expr (loc
, unary_operator
,
6556 if (non_constant_p
!= NIC_NONE
6557 && cp_parser_non_integral_constant_expression (parser
,
6559 expression
= error_mark_node
;
6564 return cp_parser_postfix_expression (parser
, address_p
, cast_p
,
6565 /*member_access_only_p=*/false,
6569 /* Returns ERROR_MARK if TOKEN is not a unary-operator. If TOKEN is a
6570 unary-operator, the corresponding tree code is returned. */
6572 static enum tree_code
6573 cp_parser_unary_operator (cp_token
* token
)
6575 switch (token
->type
)
6578 return INDIRECT_REF
;
6584 return UNARY_PLUS_EXPR
;
6590 return TRUTH_NOT_EXPR
;
6593 return BIT_NOT_EXPR
;
6600 /* Parse a new-expression.
6603 :: [opt] new new-placement [opt] new-type-id new-initializer [opt]
6604 :: [opt] new new-placement [opt] ( type-id ) new-initializer [opt]
6606 Returns a representation of the expression. */
6609 cp_parser_new_expression (cp_parser
* parser
)
6611 bool global_scope_p
;
6612 VEC(tree
,gc
) *placement
;
6614 VEC(tree
,gc
) *initializer
;
6615 tree nelts
= NULL_TREE
;
6618 /* Look for the optional `::' operator. */
6620 = (cp_parser_global_scope_opt (parser
,
6621 /*current_scope_valid_p=*/false)
6623 /* Look for the `new' operator. */
6624 cp_parser_require_keyword (parser
, RID_NEW
, RT_NEW
);
6625 /* There's no easy way to tell a new-placement from the
6626 `( type-id )' construct. */
6627 cp_parser_parse_tentatively (parser
);
6628 /* Look for a new-placement. */
6629 placement
= cp_parser_new_placement (parser
);
6630 /* If that didn't work out, there's no new-placement. */
6631 if (!cp_parser_parse_definitely (parser
))
6633 if (placement
!= NULL
)
6634 release_tree_vector (placement
);
6638 /* If the next token is a `(', then we have a parenthesized
6640 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
6643 const char *saved_message
= parser
->type_definition_forbidden_message
;
6645 /* Consume the `('. */
6646 cp_lexer_consume_token (parser
->lexer
);
6648 /* Parse the type-id. */
6649 parser
->type_definition_forbidden_message
6650 = G_("types may not be defined in a new-expression");
6651 type
= cp_parser_type_id (parser
);
6652 parser
->type_definition_forbidden_message
= saved_message
;
6654 /* Look for the closing `)'. */
6655 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
6656 token
= cp_lexer_peek_token (parser
->lexer
);
6657 /* There should not be a direct-new-declarator in this production,
6658 but GCC used to allowed this, so we check and emit a sensible error
6659 message for this case. */
6660 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_SQUARE
))
6662 error_at (token
->location
,
6663 "array bound forbidden after parenthesized type-id");
6664 inform (token
->location
,
6665 "try removing the parentheses around the type-id");
6666 cp_parser_direct_new_declarator (parser
);
6669 /* Otherwise, there must be a new-type-id. */
6671 type
= cp_parser_new_type_id (parser
, &nelts
);
6673 /* If the next token is a `(' or '{', then we have a new-initializer. */
6674 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
)
6675 || cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
6676 initializer
= cp_parser_new_initializer (parser
);
6680 /* A new-expression may not appear in an integral constant
6682 if (cp_parser_non_integral_constant_expression (parser
, NIC_NEW
))
6683 ret
= error_mark_node
;
6686 /* Create a representation of the new-expression. */
6687 ret
= build_new (&placement
, type
, nelts
, &initializer
, global_scope_p
,
6688 tf_warning_or_error
);
6691 if (placement
!= NULL
)
6692 release_tree_vector (placement
);
6693 if (initializer
!= NULL
)
6694 release_tree_vector (initializer
);
6699 /* Parse a new-placement.
6704 Returns the same representation as for an expression-list. */
6706 static VEC(tree
,gc
) *
6707 cp_parser_new_placement (cp_parser
* parser
)
6709 VEC(tree
,gc
) *expression_list
;
6711 /* Parse the expression-list. */
6712 expression_list
= (cp_parser_parenthesized_expression_list
6713 (parser
, non_attr
, /*cast_p=*/false,
6714 /*allow_expansion_p=*/true,
6715 /*non_constant_p=*/NULL
));
6717 return expression_list
;
6720 /* Parse a new-type-id.
6723 type-specifier-seq new-declarator [opt]
6725 Returns the TYPE allocated. If the new-type-id indicates an array
6726 type, *NELTS is set to the number of elements in the last array
6727 bound; the TYPE will not include the last array bound. */
6730 cp_parser_new_type_id (cp_parser
* parser
, tree
*nelts
)
6732 cp_decl_specifier_seq type_specifier_seq
;
6733 cp_declarator
*new_declarator
;
6734 cp_declarator
*declarator
;
6735 cp_declarator
*outer_declarator
;
6736 const char *saved_message
;
6738 /* The type-specifier sequence must not contain type definitions.
6739 (It cannot contain declarations of new types either, but if they
6740 are not definitions we will catch that because they are not
6742 saved_message
= parser
->type_definition_forbidden_message
;
6743 parser
->type_definition_forbidden_message
6744 = G_("types may not be defined in a new-type-id");
6745 /* Parse the type-specifier-seq. */
6746 cp_parser_type_specifier_seq (parser
, /*is_declaration=*/false,
6747 /*is_trailing_return=*/false,
6748 &type_specifier_seq
);
6749 /* Restore the old message. */
6750 parser
->type_definition_forbidden_message
= saved_message
;
6752 if (type_specifier_seq
.type
== error_mark_node
)
6753 return error_mark_node
;
6755 /* Parse the new-declarator. */
6756 new_declarator
= cp_parser_new_declarator_opt (parser
);
6758 /* Determine the number of elements in the last array dimension, if
6761 /* Skip down to the last array dimension. */
6762 declarator
= new_declarator
;
6763 outer_declarator
= NULL
;
6764 while (declarator
&& (declarator
->kind
== cdk_pointer
6765 || declarator
->kind
== cdk_ptrmem
))
6767 outer_declarator
= declarator
;
6768 declarator
= declarator
->declarator
;
6771 && declarator
->kind
== cdk_array
6772 && declarator
->declarator
6773 && declarator
->declarator
->kind
== cdk_array
)
6775 outer_declarator
= declarator
;
6776 declarator
= declarator
->declarator
;
6779 if (declarator
&& declarator
->kind
== cdk_array
)
6781 *nelts
= declarator
->u
.array
.bounds
;
6782 if (*nelts
== error_mark_node
)
6783 *nelts
= integer_one_node
;
6785 if (outer_declarator
)
6786 outer_declarator
->declarator
= declarator
->declarator
;
6788 new_declarator
= NULL
;
6791 return groktypename (&type_specifier_seq
, new_declarator
, false);
6794 /* Parse an (optional) new-declarator.
6797 ptr-operator new-declarator [opt]
6798 direct-new-declarator
6800 Returns the declarator. */
6802 static cp_declarator
*
6803 cp_parser_new_declarator_opt (cp_parser
* parser
)
6805 enum tree_code code
;
6807 cp_cv_quals cv_quals
;
6809 /* We don't know if there's a ptr-operator next, or not. */
6810 cp_parser_parse_tentatively (parser
);
6811 /* Look for a ptr-operator. */
6812 code
= cp_parser_ptr_operator (parser
, &type
, &cv_quals
);
6813 /* If that worked, look for more new-declarators. */
6814 if (cp_parser_parse_definitely (parser
))
6816 cp_declarator
*declarator
;
6818 /* Parse another optional declarator. */
6819 declarator
= cp_parser_new_declarator_opt (parser
);
6821 return cp_parser_make_indirect_declarator
6822 (code
, type
, cv_quals
, declarator
);
6825 /* If the next token is a `[', there is a direct-new-declarator. */
6826 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_SQUARE
))
6827 return cp_parser_direct_new_declarator (parser
);
6832 /* Parse a direct-new-declarator.
6834 direct-new-declarator:
6836 direct-new-declarator [constant-expression]
6840 static cp_declarator
*
6841 cp_parser_direct_new_declarator (cp_parser
* parser
)
6843 cp_declarator
*declarator
= NULL
;
6849 /* Look for the opening `['. */
6850 cp_parser_require (parser
, CPP_OPEN_SQUARE
, RT_OPEN_SQUARE
);
6851 /* The first expression is not required to be constant. */
6854 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
6855 expression
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
6856 /* The standard requires that the expression have integral
6857 type. DR 74 adds enumeration types. We believe that the
6858 real intent is that these expressions be handled like the
6859 expression in a `switch' condition, which also allows
6860 classes with a single conversion to integral or
6861 enumeration type. */
6862 if (!processing_template_decl
)
6865 = build_expr_type_conversion (WANT_INT
| WANT_ENUM
,
6870 error_at (token
->location
,
6871 "expression in new-declarator must have integral "
6872 "or enumeration type");
6873 expression
= error_mark_node
;
6877 /* But all the other expressions must be. */
6880 = cp_parser_constant_expression (parser
,
6881 /*allow_non_constant=*/false,
6883 /* Look for the closing `]'. */
6884 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
6886 /* Add this bound to the declarator. */
6887 declarator
= make_array_declarator (declarator
, expression
);
6889 /* If the next token is not a `[', then there are no more
6891 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_SQUARE
))
6898 /* Parse a new-initializer.
6901 ( expression-list [opt] )
6904 Returns a representation of the expression-list. */
6906 static VEC(tree
,gc
) *
6907 cp_parser_new_initializer (cp_parser
* parser
)
6909 VEC(tree
,gc
) *expression_list
;
6911 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
6914 bool expr_non_constant_p
;
6915 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
6916 t
= cp_parser_braced_list (parser
, &expr_non_constant_p
);
6917 CONSTRUCTOR_IS_DIRECT_INIT (t
) = 1;
6918 expression_list
= make_tree_vector_single (t
);
6921 expression_list
= (cp_parser_parenthesized_expression_list
6922 (parser
, non_attr
, /*cast_p=*/false,
6923 /*allow_expansion_p=*/true,
6924 /*non_constant_p=*/NULL
));
6926 return expression_list
;
6929 /* Parse a delete-expression.
6932 :: [opt] delete cast-expression
6933 :: [opt] delete [ ] cast-expression
6935 Returns a representation of the expression. */
6938 cp_parser_delete_expression (cp_parser
* parser
)
6940 bool global_scope_p
;
6944 /* Look for the optional `::' operator. */
6946 = (cp_parser_global_scope_opt (parser
,
6947 /*current_scope_valid_p=*/false)
6949 /* Look for the `delete' keyword. */
6950 cp_parser_require_keyword (parser
, RID_DELETE
, RT_DELETE
);
6951 /* See if the array syntax is in use. */
6952 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_SQUARE
))
6954 /* Consume the `[' token. */
6955 cp_lexer_consume_token (parser
->lexer
);
6956 /* Look for the `]' token. */
6957 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
6958 /* Remember that this is the `[]' construct. */
6964 /* Parse the cast-expression. */
6965 expression
= cp_parser_simple_cast_expression (parser
);
6967 /* A delete-expression may not appear in an integral constant
6969 if (cp_parser_non_integral_constant_expression (parser
, NIC_DEL
))
6970 return error_mark_node
;
6972 return delete_sanity (expression
, NULL_TREE
, array_p
, global_scope_p
,
6973 tf_warning_or_error
);
6976 /* Returns true if TOKEN may start a cast-expression and false
6980 cp_parser_token_starts_cast_expression (cp_token
*token
)
6982 switch (token
->type
)
6988 case CPP_CLOSE_SQUARE
:
6989 case CPP_CLOSE_PAREN
:
6990 case CPP_CLOSE_BRACE
:
6994 case CPP_DEREF_STAR
:
7002 case CPP_GREATER_EQ
:
7022 /* '[' may start a primary-expression in obj-c++. */
7023 case CPP_OPEN_SQUARE
:
7024 return c_dialect_objc ();
7031 /* Parse a cast-expression.
7035 ( type-id ) cast-expression
7037 ADDRESS_P is true iff the unary-expression is appearing as the
7038 operand of the `&' operator. CAST_P is true if this expression is
7039 the target of a cast.
7041 Returns a representation of the expression. */
7044 cp_parser_cast_expression (cp_parser
*parser
, bool address_p
, bool cast_p
,
7047 /* If it's a `(', then we might be looking at a cast. */
7048 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
7050 tree type
= NULL_TREE
;
7051 tree expr
= NULL_TREE
;
7052 bool compound_literal_p
;
7053 const char *saved_message
;
7055 /* There's no way to know yet whether or not this is a cast.
7056 For example, `(int (3))' is a unary-expression, while `(int)
7057 3' is a cast. So, we resort to parsing tentatively. */
7058 cp_parser_parse_tentatively (parser
);
7059 /* Types may not be defined in a cast. */
7060 saved_message
= parser
->type_definition_forbidden_message
;
7061 parser
->type_definition_forbidden_message
7062 = G_("types may not be defined in casts");
7063 /* Consume the `('. */
7064 cp_lexer_consume_token (parser
->lexer
);
7065 /* A very tricky bit is that `(struct S) { 3 }' is a
7066 compound-literal (which we permit in C++ as an extension).
7067 But, that construct is not a cast-expression -- it is a
7068 postfix-expression. (The reason is that `(struct S) { 3 }.i'
7069 is legal; if the compound-literal were a cast-expression,
7070 you'd need an extra set of parentheses.) But, if we parse
7071 the type-id, and it happens to be a class-specifier, then we
7072 will commit to the parse at that point, because we cannot
7073 undo the action that is done when creating a new class. So,
7074 then we cannot back up and do a postfix-expression.
7076 Therefore, we scan ahead to the closing `)', and check to see
7077 if the token after the `)' is a `{'. If so, we are not
7078 looking at a cast-expression.
7080 Save tokens so that we can put them back. */
7081 cp_lexer_save_tokens (parser
->lexer
);
7082 /* Skip tokens until the next token is a closing parenthesis.
7083 If we find the closing `)', and the next token is a `{', then
7084 we are looking at a compound-literal. */
7086 = (cp_parser_skip_to_closing_parenthesis (parser
, false, false,
7087 /*consume_paren=*/true)
7088 && cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
));
7089 /* Roll back the tokens we skipped. */
7090 cp_lexer_rollback_tokens (parser
->lexer
);
7091 /* If we were looking at a compound-literal, simulate an error
7092 so that the call to cp_parser_parse_definitely below will
7094 if (compound_literal_p
)
7095 cp_parser_simulate_error (parser
);
7098 bool saved_in_type_id_in_expr_p
= parser
->in_type_id_in_expr_p
;
7099 parser
->in_type_id_in_expr_p
= true;
7100 /* Look for the type-id. */
7101 type
= cp_parser_type_id (parser
);
7102 /* Look for the closing `)'. */
7103 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
7104 parser
->in_type_id_in_expr_p
= saved_in_type_id_in_expr_p
;
7107 /* Restore the saved message. */
7108 parser
->type_definition_forbidden_message
= saved_message
;
7110 /* At this point this can only be either a cast or a
7111 parenthesized ctor such as `(T ())' that looks like a cast to
7112 function returning T. */
7113 if (!cp_parser_error_occurred (parser
)
7114 && cp_parser_token_starts_cast_expression (cp_lexer_peek_token
7117 cp_parser_parse_definitely (parser
);
7118 expr
= cp_parser_cast_expression (parser
,
7119 /*address_p=*/false,
7120 /*cast_p=*/true, pidk
);
7122 /* Warn about old-style casts, if so requested. */
7123 if (warn_old_style_cast
7124 && !in_system_header
7125 && !VOID_TYPE_P (type
)
7126 && current_lang_name
!= lang_name_c
)
7127 warning (OPT_Wold_style_cast
, "use of old-style cast");
7129 /* Only type conversions to integral or enumeration types
7130 can be used in constant-expressions. */
7131 if (!cast_valid_in_integral_constant_expression_p (type
)
7132 && cp_parser_non_integral_constant_expression (parser
,
7134 return error_mark_node
;
7136 /* Perform the cast. */
7137 expr
= build_c_cast (input_location
, type
, expr
);
7141 cp_parser_abort_tentative_parse (parser
);
7144 /* If we get here, then it's not a cast, so it must be a
7145 unary-expression. */
7146 return cp_parser_unary_expression (parser
, address_p
, cast_p
, pidk
);
7149 /* Parse a binary expression of the general form:
7153 pm-expression .* cast-expression
7154 pm-expression ->* cast-expression
7156 multiplicative-expression:
7158 multiplicative-expression * pm-expression
7159 multiplicative-expression / pm-expression
7160 multiplicative-expression % pm-expression
7162 additive-expression:
7163 multiplicative-expression
7164 additive-expression + multiplicative-expression
7165 additive-expression - multiplicative-expression
7169 shift-expression << additive-expression
7170 shift-expression >> additive-expression
7172 relational-expression:
7174 relational-expression < shift-expression
7175 relational-expression > shift-expression
7176 relational-expression <= shift-expression
7177 relational-expression >= shift-expression
7181 relational-expression:
7182 relational-expression <? shift-expression
7183 relational-expression >? shift-expression
7185 equality-expression:
7186 relational-expression
7187 equality-expression == relational-expression
7188 equality-expression != relational-expression
7192 and-expression & equality-expression
7194 exclusive-or-expression:
7196 exclusive-or-expression ^ and-expression
7198 inclusive-or-expression:
7199 exclusive-or-expression
7200 inclusive-or-expression | exclusive-or-expression
7202 logical-and-expression:
7203 inclusive-or-expression
7204 logical-and-expression && inclusive-or-expression
7206 logical-or-expression:
7207 logical-and-expression
7208 logical-or-expression || logical-and-expression
7210 All these are implemented with a single function like:
7213 simple-cast-expression
7214 binary-expression <token> binary-expression
7216 CAST_P is true if this expression is the target of a cast.
7218 The binops_by_token map is used to get the tree codes for each <token> type.
7219 binary-expressions are associated according to a precedence table. */
7221 #define TOKEN_PRECEDENCE(token) \
7222 (((token->type == CPP_GREATER \
7223 || ((cxx_dialect != cxx98) && token->type == CPP_RSHIFT)) \
7224 && !parser->greater_than_is_operator_p) \
7225 ? PREC_NOT_OPERATOR \
7226 : binops_by_token[token->type].prec)
7229 cp_parser_binary_expression (cp_parser
* parser
, bool cast_p
,
7230 bool no_toplevel_fold_p
,
7231 enum cp_parser_prec prec
,
7234 cp_parser_expression_stack stack
;
7235 cp_parser_expression_stack_entry
*sp
= &stack
[0];
7236 cp_parser_expression_stack_entry current
;
7239 enum tree_code rhs_type
;
7240 enum cp_parser_prec new_prec
, lookahead_prec
;
7243 /* Parse the first expression. */
7244 current
.lhs
= cp_parser_cast_expression (parser
, /*address_p=*/false,
7246 current
.lhs_type
= ERROR_MARK
;
7247 current
.prec
= prec
;
7249 if (cp_parser_error_occurred (parser
))
7250 return error_mark_node
;
7254 /* Get an operator token. */
7255 token
= cp_lexer_peek_token (parser
->lexer
);
7257 if (warn_cxx0x_compat
7258 && token
->type
== CPP_RSHIFT
7259 && !parser
->greater_than_is_operator_p
)
7261 if (warning_at (token
->location
, OPT_Wc__0x_compat
,
7262 "%<>>%> operator is treated"
7263 " as two right angle brackets in C++11"))
7264 inform (token
->location
,
7265 "suggest parentheses around %<>>%> expression");
7268 new_prec
= TOKEN_PRECEDENCE (token
);
7270 /* Popping an entry off the stack means we completed a subexpression:
7271 - either we found a token which is not an operator (`>' where it is not
7272 an operator, or prec == PREC_NOT_OPERATOR), in which case popping
7273 will happen repeatedly;
7274 - or, we found an operator which has lower priority. This is the case
7275 where the recursive descent *ascends*, as in `3 * 4 + 5' after
7277 if (new_prec
<= current
.prec
)
7286 current
.tree_type
= binops_by_token
[token
->type
].tree_type
;
7287 current
.loc
= token
->location
;
7289 /* We used the operator token. */
7290 cp_lexer_consume_token (parser
->lexer
);
7292 /* For "false && x" or "true || x", x will never be executed;
7293 disable warnings while evaluating it. */
7294 if (current
.tree_type
== TRUTH_ANDIF_EXPR
)
7295 c_inhibit_evaluation_warnings
+= current
.lhs
== truthvalue_false_node
;
7296 else if (current
.tree_type
== TRUTH_ORIF_EXPR
)
7297 c_inhibit_evaluation_warnings
+= current
.lhs
== truthvalue_true_node
;
7299 /* Extract another operand. It may be the RHS of this expression
7300 or the LHS of a new, higher priority expression. */
7301 rhs
= cp_parser_simple_cast_expression (parser
);
7302 rhs_type
= ERROR_MARK
;
7304 /* Get another operator token. Look up its precedence to avoid
7305 building a useless (immediately popped) stack entry for common
7306 cases such as 3 + 4 + 5 or 3 * 4 + 5. */
7307 token
= cp_lexer_peek_token (parser
->lexer
);
7308 lookahead_prec
= TOKEN_PRECEDENCE (token
);
7309 if (lookahead_prec
> new_prec
)
7311 /* ... and prepare to parse the RHS of the new, higher priority
7312 expression. Since precedence levels on the stack are
7313 monotonically increasing, we do not have to care about
7318 current
.lhs_type
= rhs_type
;
7319 current
.prec
= new_prec
;
7320 new_prec
= lookahead_prec
;
7324 lookahead_prec
= new_prec
;
7325 /* If the stack is not empty, we have parsed into LHS the right side
7326 (`4' in the example above) of an expression we had suspended.
7327 We can use the information on the stack to recover the LHS (`3')
7328 from the stack together with the tree code (`MULT_EXPR'), and
7329 the precedence of the higher level subexpression
7330 (`PREC_ADDITIVE_EXPRESSION'). TOKEN is the CPP_PLUS token,
7331 which will be used to actually build the additive expression. */
7333 rhs_type
= current
.lhs_type
;
7338 /* Undo the disabling of warnings done above. */
7339 if (current
.tree_type
== TRUTH_ANDIF_EXPR
)
7340 c_inhibit_evaluation_warnings
-= current
.lhs
== truthvalue_false_node
;
7341 else if (current
.tree_type
== TRUTH_ORIF_EXPR
)
7342 c_inhibit_evaluation_warnings
-= current
.lhs
== truthvalue_true_node
;
7345 /* ??? Currently we pass lhs_type == ERROR_MARK and rhs_type ==
7346 ERROR_MARK for everything that is not a binary expression.
7347 This makes warn_about_parentheses miss some warnings that
7348 involve unary operators. For unary expressions we should
7349 pass the correct tree_code unless the unary expression was
7350 surrounded by parentheses.
7352 if (no_toplevel_fold_p
7353 && lookahead_prec
<= current
.prec
7355 && TREE_CODE_CLASS (current
.tree_type
) == tcc_comparison
)
7356 current
.lhs
= build2 (current
.tree_type
, boolean_type_node
,
7359 current
.lhs
= build_x_binary_op (current
.loc
, current
.tree_type
,
7360 current
.lhs
, current
.lhs_type
,
7361 rhs
, rhs_type
, &overload
,
7362 tf_warning_or_error
);
7363 current
.lhs_type
= current
.tree_type
;
7365 /* If the binary operator required the use of an overloaded operator,
7366 then this expression cannot be an integral constant-expression.
7367 An overloaded operator can be used even if both operands are
7368 otherwise permissible in an integral constant-expression if at
7369 least one of the operands is of enumeration type. */
7372 && cp_parser_non_integral_constant_expression (parser
,
7374 return error_mark_node
;
7381 /* Parse the `? expression : assignment-expression' part of a
7382 conditional-expression. The LOGICAL_OR_EXPR is the
7383 logical-or-expression that started the conditional-expression.
7384 Returns a representation of the entire conditional-expression.
7386 This routine is used by cp_parser_assignment_expression.
7388 ? expression : assignment-expression
7392 ? : assignment-expression */
7395 cp_parser_question_colon_clause (cp_parser
* parser
, tree logical_or_expr
)
7398 tree assignment_expr
;
7399 struct cp_token
*token
;
7400 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
7402 /* Consume the `?' token. */
7403 cp_lexer_consume_token (parser
->lexer
);
7404 token
= cp_lexer_peek_token (parser
->lexer
);
7405 if (cp_parser_allow_gnu_extensions_p (parser
)
7406 && token
->type
== CPP_COLON
)
7408 pedwarn (token
->location
, OPT_Wpedantic
,
7409 "ISO C++ does not allow ?: with omitted middle operand");
7410 /* Implicit true clause. */
7412 c_inhibit_evaluation_warnings
+= logical_or_expr
== truthvalue_true_node
;
7413 warn_for_omitted_condop (token
->location
, logical_or_expr
);
7417 bool saved_colon_corrects_to_scope_p
= parser
->colon_corrects_to_scope_p
;
7418 parser
->colon_corrects_to_scope_p
= false;
7419 /* Parse the expression. */
7420 c_inhibit_evaluation_warnings
+= logical_or_expr
== truthvalue_false_node
;
7421 expr
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
7422 c_inhibit_evaluation_warnings
+=
7423 ((logical_or_expr
== truthvalue_true_node
)
7424 - (logical_or_expr
== truthvalue_false_node
));
7425 parser
->colon_corrects_to_scope_p
= saved_colon_corrects_to_scope_p
;
7428 /* The next token should be a `:'. */
7429 cp_parser_require (parser
, CPP_COLON
, RT_COLON
);
7430 /* Parse the assignment-expression. */
7431 assignment_expr
= cp_parser_assignment_expression (parser
, /*cast_p=*/false, NULL
);
7432 c_inhibit_evaluation_warnings
-= logical_or_expr
== truthvalue_true_node
;
7434 /* Build the conditional-expression. */
7435 return build_x_conditional_expr (loc
, logical_or_expr
,
7438 tf_warning_or_error
);
7441 /* Parse an assignment-expression.
7443 assignment-expression:
7444 conditional-expression
7445 logical-or-expression assignment-operator assignment_expression
7448 CAST_P is true if this expression is the target of a cast.
7450 Returns a representation for the expression. */
7453 cp_parser_assignment_expression (cp_parser
* parser
, bool cast_p
,
7458 /* If the next token is the `throw' keyword, then we're looking at
7459 a throw-expression. */
7460 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_THROW
))
7461 expr
= cp_parser_throw_expression (parser
);
7462 /* Otherwise, it must be that we are looking at a
7463 logical-or-expression. */
7466 /* Parse the binary expressions (logical-or-expression). */
7467 expr
= cp_parser_binary_expression (parser
, cast_p
, false,
7468 PREC_NOT_OPERATOR
, pidk
);
7469 /* If the next token is a `?' then we're actually looking at a
7470 conditional-expression. */
7471 if (cp_lexer_next_token_is (parser
->lexer
, CPP_QUERY
))
7472 return cp_parser_question_colon_clause (parser
, expr
);
7475 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
7477 /* If it's an assignment-operator, we're using the second
7479 enum tree_code assignment_operator
7480 = cp_parser_assignment_operator_opt (parser
);
7481 if (assignment_operator
!= ERROR_MARK
)
7483 bool non_constant_p
;
7484 location_t saved_input_location
;
7486 /* Parse the right-hand side of the assignment. */
7487 tree rhs
= cp_parser_initializer_clause (parser
, &non_constant_p
);
7489 if (BRACE_ENCLOSED_INITIALIZER_P (rhs
))
7490 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
7492 /* An assignment may not appear in a
7493 constant-expression. */
7494 if (cp_parser_non_integral_constant_expression (parser
,
7496 return error_mark_node
;
7497 /* Build the assignment expression. Its default
7498 location is the location of the '=' token. */
7499 saved_input_location
= input_location
;
7500 input_location
= loc
;
7501 expr
= build_x_modify_expr (loc
, expr
,
7502 assignment_operator
,
7504 tf_warning_or_error
);
7505 input_location
= saved_input_location
;
7513 /* Parse an (optional) assignment-operator.
7515 assignment-operator: one of
7516 = *= /= %= += -= >>= <<= &= ^= |=
7520 assignment-operator: one of
7523 If the next token is an assignment operator, the corresponding tree
7524 code is returned, and the token is consumed. For example, for
7525 `+=', PLUS_EXPR is returned. For `=' itself, the code returned is
7526 NOP_EXPR. For `/', TRUNC_DIV_EXPR is returned; for `%',
7527 TRUNC_MOD_EXPR is returned. If TOKEN is not an assignment
7528 operator, ERROR_MARK is returned. */
7530 static enum tree_code
7531 cp_parser_assignment_operator_opt (cp_parser
* parser
)
7536 /* Peek at the next token. */
7537 token
= cp_lexer_peek_token (parser
->lexer
);
7539 switch (token
->type
)
7550 op
= TRUNC_DIV_EXPR
;
7554 op
= TRUNC_MOD_EXPR
;
7586 /* Nothing else is an assignment operator. */
7590 /* If it was an assignment operator, consume it. */
7591 if (op
!= ERROR_MARK
)
7592 cp_lexer_consume_token (parser
->lexer
);
7597 /* Parse an expression.
7600 assignment-expression
7601 expression , assignment-expression
7603 CAST_P is true if this expression is the target of a cast.
7605 Returns a representation of the expression. */
7608 cp_parser_expression (cp_parser
* parser
, bool cast_p
, cp_id_kind
* pidk
)
7610 tree expression
= NULL_TREE
;
7611 location_t loc
= UNKNOWN_LOCATION
;
7615 tree assignment_expression
;
7617 /* Parse the next assignment-expression. */
7618 assignment_expression
7619 = cp_parser_assignment_expression (parser
, cast_p
, pidk
);
7620 /* If this is the first assignment-expression, we can just
7623 expression
= assignment_expression
;
7625 expression
= build_x_compound_expr (loc
, expression
,
7626 assignment_expression
,
7627 tf_warning_or_error
);
7628 /* If the next token is not a comma, then we are done with the
7630 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
7632 /* Consume the `,'. */
7633 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
7634 cp_lexer_consume_token (parser
->lexer
);
7635 /* A comma operator cannot appear in a constant-expression. */
7636 if (cp_parser_non_integral_constant_expression (parser
, NIC_COMMA
))
7637 expression
= error_mark_node
;
7643 /* Parse a constant-expression.
7645 constant-expression:
7646 conditional-expression
7648 If ALLOW_NON_CONSTANT_P a non-constant expression is silently
7649 accepted. If ALLOW_NON_CONSTANT_P is true and the expression is not
7650 constant, *NON_CONSTANT_P is set to TRUE. If ALLOW_NON_CONSTANT_P
7651 is false, NON_CONSTANT_P should be NULL. */
7654 cp_parser_constant_expression (cp_parser
* parser
,
7655 bool allow_non_constant_p
,
7656 bool *non_constant_p
)
7658 bool saved_integral_constant_expression_p
;
7659 bool saved_allow_non_integral_constant_expression_p
;
7660 bool saved_non_integral_constant_expression_p
;
7663 /* It might seem that we could simply parse the
7664 conditional-expression, and then check to see if it were
7665 TREE_CONSTANT. However, an expression that is TREE_CONSTANT is
7666 one that the compiler can figure out is constant, possibly after
7667 doing some simplifications or optimizations. The standard has a
7668 precise definition of constant-expression, and we must honor
7669 that, even though it is somewhat more restrictive.
7675 is not a legal declaration, because `(2, 3)' is not a
7676 constant-expression. The `,' operator is forbidden in a
7677 constant-expression. However, GCC's constant-folding machinery
7678 will fold this operation to an INTEGER_CST for `3'. */
7680 /* Save the old settings. */
7681 saved_integral_constant_expression_p
= parser
->integral_constant_expression_p
;
7682 saved_allow_non_integral_constant_expression_p
7683 = parser
->allow_non_integral_constant_expression_p
;
7684 saved_non_integral_constant_expression_p
= parser
->non_integral_constant_expression_p
;
7685 /* We are now parsing a constant-expression. */
7686 parser
->integral_constant_expression_p
= true;
7687 parser
->allow_non_integral_constant_expression_p
7688 = (allow_non_constant_p
|| cxx_dialect
>= cxx0x
);
7689 parser
->non_integral_constant_expression_p
= false;
7690 /* Although the grammar says "conditional-expression", we parse an
7691 "assignment-expression", which also permits "throw-expression"
7692 and the use of assignment operators. In the case that
7693 ALLOW_NON_CONSTANT_P is false, we get better errors than we would
7694 otherwise. In the case that ALLOW_NON_CONSTANT_P is true, it is
7695 actually essential that we look for an assignment-expression.
7696 For example, cp_parser_initializer_clauses uses this function to
7697 determine whether a particular assignment-expression is in fact
7699 expression
= cp_parser_assignment_expression (parser
, /*cast_p=*/false, NULL
);
7700 /* Restore the old settings. */
7701 parser
->integral_constant_expression_p
7702 = saved_integral_constant_expression_p
;
7703 parser
->allow_non_integral_constant_expression_p
7704 = saved_allow_non_integral_constant_expression_p
;
7705 if (cxx_dialect
>= cxx0x
)
7707 /* Require an rvalue constant expression here; that's what our
7708 callers expect. Reference constant expressions are handled
7709 separately in e.g. cp_parser_template_argument. */
7710 bool is_const
= potential_rvalue_constant_expression (expression
);
7711 parser
->non_integral_constant_expression_p
= !is_const
;
7712 if (!is_const
&& !allow_non_constant_p
)
7713 require_potential_rvalue_constant_expression (expression
);
7715 if (allow_non_constant_p
)
7716 *non_constant_p
= parser
->non_integral_constant_expression_p
;
7717 parser
->non_integral_constant_expression_p
7718 = saved_non_integral_constant_expression_p
;
7723 /* Parse __builtin_offsetof.
7725 offsetof-expression:
7726 "__builtin_offsetof" "(" type-id "," offsetof-member-designator ")"
7728 offsetof-member-designator:
7730 | offsetof-member-designator "." id-expression
7731 | offsetof-member-designator "[" expression "]"
7732 | offsetof-member-designator "->" id-expression */
7735 cp_parser_builtin_offsetof (cp_parser
*parser
)
7737 int save_ice_p
, save_non_ice_p
;
7742 /* We're about to accept non-integral-constant things, but will
7743 definitely yield an integral constant expression. Save and
7744 restore these values around our local parsing. */
7745 save_ice_p
= parser
->integral_constant_expression_p
;
7746 save_non_ice_p
= parser
->non_integral_constant_expression_p
;
7748 /* Consume the "__builtin_offsetof" token. */
7749 cp_lexer_consume_token (parser
->lexer
);
7750 /* Consume the opening `('. */
7751 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
7752 /* Parse the type-id. */
7753 type
= cp_parser_type_id (parser
);
7754 /* Look for the `,'. */
7755 cp_parser_require (parser
, CPP_COMMA
, RT_COMMA
);
7756 token
= cp_lexer_peek_token (parser
->lexer
);
7758 /* Build the (type *)null that begins the traditional offsetof macro. */
7759 expr
= build_static_cast (build_pointer_type (type
), null_pointer_node
,
7760 tf_warning_or_error
);
7762 /* Parse the offsetof-member-designator. We begin as if we saw "expr->". */
7763 expr
= cp_parser_postfix_dot_deref_expression (parser
, CPP_DEREF
, expr
,
7764 true, &dummy
, token
->location
);
7767 token
= cp_lexer_peek_token (parser
->lexer
);
7768 switch (token
->type
)
7770 case CPP_OPEN_SQUARE
:
7771 /* offsetof-member-designator "[" expression "]" */
7772 expr
= cp_parser_postfix_open_square_expression (parser
, expr
, true);
7776 /* offsetof-member-designator "->" identifier */
7777 expr
= grok_array_decl (token
->location
, expr
, integer_zero_node
);
7781 /* offsetof-member-designator "." identifier */
7782 cp_lexer_consume_token (parser
->lexer
);
7783 expr
= cp_parser_postfix_dot_deref_expression (parser
, CPP_DOT
,
7788 case CPP_CLOSE_PAREN
:
7789 /* Consume the ")" token. */
7790 cp_lexer_consume_token (parser
->lexer
);
7794 /* Error. We know the following require will fail, but
7795 that gives the proper error message. */
7796 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
7797 cp_parser_skip_to_closing_parenthesis (parser
, true, false, true);
7798 expr
= error_mark_node
;
7804 /* If we're processing a template, we can't finish the semantics yet.
7805 Otherwise we can fold the entire expression now. */
7806 if (processing_template_decl
)
7807 expr
= build1 (OFFSETOF_EXPR
, size_type_node
, expr
);
7809 expr
= finish_offsetof (expr
);
7812 parser
->integral_constant_expression_p
= save_ice_p
;
7813 parser
->non_integral_constant_expression_p
= save_non_ice_p
;
7818 /* Parse a trait expression.
7820 Returns a representation of the expression, the underlying type
7821 of the type at issue when KEYWORD is RID_UNDERLYING_TYPE. */
7824 cp_parser_trait_expr (cp_parser
* parser
, enum rid keyword
)
7827 tree type1
, type2
= NULL_TREE
;
7828 bool binary
= false;
7829 cp_decl_specifier_seq decl_specs
;
7833 case RID_HAS_NOTHROW_ASSIGN
:
7834 kind
= CPTK_HAS_NOTHROW_ASSIGN
;
7836 case RID_HAS_NOTHROW_CONSTRUCTOR
:
7837 kind
= CPTK_HAS_NOTHROW_CONSTRUCTOR
;
7839 case RID_HAS_NOTHROW_COPY
:
7840 kind
= CPTK_HAS_NOTHROW_COPY
;
7842 case RID_HAS_TRIVIAL_ASSIGN
:
7843 kind
= CPTK_HAS_TRIVIAL_ASSIGN
;
7845 case RID_HAS_TRIVIAL_CONSTRUCTOR
:
7846 kind
= CPTK_HAS_TRIVIAL_CONSTRUCTOR
;
7848 case RID_HAS_TRIVIAL_COPY
:
7849 kind
= CPTK_HAS_TRIVIAL_COPY
;
7851 case RID_HAS_TRIVIAL_DESTRUCTOR
:
7852 kind
= CPTK_HAS_TRIVIAL_DESTRUCTOR
;
7854 case RID_HAS_VIRTUAL_DESTRUCTOR
:
7855 kind
= CPTK_HAS_VIRTUAL_DESTRUCTOR
;
7857 case RID_IS_ABSTRACT
:
7858 kind
= CPTK_IS_ABSTRACT
;
7860 case RID_IS_BASE_OF
:
7861 kind
= CPTK_IS_BASE_OF
;
7865 kind
= CPTK_IS_CLASS
;
7867 case RID_IS_CONVERTIBLE_TO
:
7868 kind
= CPTK_IS_CONVERTIBLE_TO
;
7872 kind
= CPTK_IS_EMPTY
;
7875 kind
= CPTK_IS_ENUM
;
7878 kind
= CPTK_IS_FINAL
;
7880 case RID_IS_LITERAL_TYPE
:
7881 kind
= CPTK_IS_LITERAL_TYPE
;
7886 case RID_IS_POLYMORPHIC
:
7887 kind
= CPTK_IS_POLYMORPHIC
;
7889 case RID_IS_STD_LAYOUT
:
7890 kind
= CPTK_IS_STD_LAYOUT
;
7892 case RID_IS_TRIVIAL
:
7893 kind
= CPTK_IS_TRIVIAL
;
7896 kind
= CPTK_IS_UNION
;
7898 case RID_UNDERLYING_TYPE
:
7899 kind
= CPTK_UNDERLYING_TYPE
;
7904 case RID_DIRECT_BASES
:
7905 kind
= CPTK_DIRECT_BASES
;
7911 /* Consume the token. */
7912 cp_lexer_consume_token (parser
->lexer
);
7914 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
7916 type1
= cp_parser_type_id (parser
);
7918 if (type1
== error_mark_node
)
7919 return error_mark_node
;
7921 /* Build a trivial decl-specifier-seq. */
7922 clear_decl_specs (&decl_specs
);
7923 decl_specs
.type
= type1
;
7925 /* Call grokdeclarator to figure out what type this is. */
7926 type1
= grokdeclarator (NULL
, &decl_specs
, TYPENAME
,
7927 /*initialized=*/0, /*attrlist=*/NULL
);
7931 cp_parser_require (parser
, CPP_COMMA
, RT_COMMA
);
7933 type2
= cp_parser_type_id (parser
);
7935 if (type2
== error_mark_node
)
7936 return error_mark_node
;
7938 /* Build a trivial decl-specifier-seq. */
7939 clear_decl_specs (&decl_specs
);
7940 decl_specs
.type
= type2
;
7942 /* Call grokdeclarator to figure out what type this is. */
7943 type2
= grokdeclarator (NULL
, &decl_specs
, TYPENAME
,
7944 /*initialized=*/0, /*attrlist=*/NULL
);
7947 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
7949 /* Complete the trait expression, which may mean either processing
7950 the trait expr now or saving it for template instantiation. */
7953 case CPTK_UNDERLYING_TYPE
:
7954 return finish_underlying_type (type1
);
7956 return finish_bases (type1
, false);
7957 case CPTK_DIRECT_BASES
:
7958 return finish_bases (type1
, true);
7960 return finish_trait_expr (kind
, type1
, type2
);
7964 /* Lambdas that appear in variable initializer or default argument scope
7965 get that in their mangling, so we need to record it. We might as well
7966 use the count for function and namespace scopes as well. */
7967 static GTY(()) tree lambda_scope
;
7968 static GTY(()) int lambda_count
;
7969 typedef struct GTY(()) tree_int
7974 DEF_VEC_O(tree_int
);
7975 DEF_VEC_ALLOC_O(tree_int
,gc
);
7976 static GTY(()) VEC(tree_int
,gc
) *lambda_scope_stack
;
7979 start_lambda_scope (tree decl
)
7983 /* Once we're inside a function, we ignore other scopes and just push
7984 the function again so that popping works properly. */
7985 if (current_function_decl
&& TREE_CODE (decl
) != FUNCTION_DECL
)
7986 decl
= current_function_decl
;
7987 ti
.t
= lambda_scope
;
7988 ti
.i
= lambda_count
;
7989 VEC_safe_push (tree_int
, gc
, lambda_scope_stack
, &ti
);
7990 if (lambda_scope
!= decl
)
7992 /* Don't reset the count if we're still in the same function. */
7993 lambda_scope
= decl
;
7999 record_lambda_scope (tree lambda
)
8001 LAMBDA_EXPR_EXTRA_SCOPE (lambda
) = lambda_scope
;
8002 LAMBDA_EXPR_DISCRIMINATOR (lambda
) = lambda_count
++;
8006 finish_lambda_scope (void)
8008 tree_int
*p
= VEC_last (tree_int
, lambda_scope_stack
);
8009 if (lambda_scope
!= p
->t
)
8011 lambda_scope
= p
->t
;
8012 lambda_count
= p
->i
;
8014 VEC_pop (tree_int
, lambda_scope_stack
);
8017 /* Parse a lambda expression.
8020 lambda-introducer lambda-declarator [opt] compound-statement
8022 Returns a representation of the expression. */
8025 cp_parser_lambda_expression (cp_parser
* parser
)
8027 tree lambda_expr
= build_lambda_expr ();
8031 LAMBDA_EXPR_LOCATION (lambda_expr
)
8032 = cp_lexer_peek_token (parser
->lexer
)->location
;
8034 if (cp_unevaluated_operand
)
8035 error_at (LAMBDA_EXPR_LOCATION (lambda_expr
),
8036 "lambda-expression in unevaluated context");
8038 /* We may be in the middle of deferred access check. Disable
8040 push_deferring_access_checks (dk_no_deferred
);
8042 cp_parser_lambda_introducer (parser
, lambda_expr
);
8044 type
= begin_lambda_type (lambda_expr
);
8045 if (type
== error_mark_node
)
8046 return error_mark_node
;
8048 record_lambda_scope (lambda_expr
);
8050 /* Do this again now that LAMBDA_EXPR_EXTRA_SCOPE is set. */
8051 determine_visibility (TYPE_NAME (type
));
8053 /* Now that we've started the type, add the capture fields for any
8054 explicit captures. */
8055 register_capture_members (LAMBDA_EXPR_CAPTURE_LIST (lambda_expr
));
8058 /* Inside the class, surrounding template-parameter-lists do not apply. */
8059 unsigned int saved_num_template_parameter_lists
8060 = parser
->num_template_parameter_lists
;
8061 unsigned char in_statement
= parser
->in_statement
;
8062 bool in_switch_statement_p
= parser
->in_switch_statement_p
;
8064 parser
->num_template_parameter_lists
= 0;
8065 parser
->in_statement
= 0;
8066 parser
->in_switch_statement_p
= false;
8068 /* By virtue of defining a local class, a lambda expression has access to
8069 the private variables of enclosing classes. */
8071 ok
= cp_parser_lambda_declarator_opt (parser
, lambda_expr
);
8074 cp_parser_lambda_body (parser
, lambda_expr
);
8075 else if (cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
))
8076 cp_parser_skip_to_end_of_block_or_statement (parser
);
8078 /* The capture list was built up in reverse order; fix that now. */
8080 tree newlist
= NULL_TREE
;
8083 for (elt
= LAMBDA_EXPR_CAPTURE_LIST (lambda_expr
);
8086 next
= TREE_CHAIN (elt
);
8087 TREE_CHAIN (elt
) = newlist
;
8090 LAMBDA_EXPR_CAPTURE_LIST (lambda_expr
) = newlist
;
8094 maybe_add_lambda_conv_op (type
);
8096 type
= finish_struct (type
, /*attributes=*/NULL_TREE
);
8098 parser
->num_template_parameter_lists
= saved_num_template_parameter_lists
;
8099 parser
->in_statement
= in_statement
;
8100 parser
->in_switch_statement_p
= in_switch_statement_p
;
8103 pop_deferring_access_checks ();
8105 /* This field is only used during parsing of the lambda. */
8106 LAMBDA_EXPR_THIS_CAPTURE (lambda_expr
) = NULL_TREE
;
8108 /* This lambda shouldn't have any proxies left at this point. */
8109 gcc_assert (LAMBDA_EXPR_PENDING_PROXIES (lambda_expr
) == NULL
);
8110 /* And now that we're done, push proxies for an enclosing lambda. */
8111 insert_pending_capture_proxies ();
8114 return build_lambda_object (lambda_expr
);
8116 return error_mark_node
;
8119 /* Parse the beginning of a lambda expression.
8122 [ lambda-capture [opt] ]
8124 LAMBDA_EXPR is the current representation of the lambda expression. */
8127 cp_parser_lambda_introducer (cp_parser
* parser
, tree lambda_expr
)
8129 /* Need commas after the first capture. */
8132 /* Eat the leading `['. */
8133 cp_parser_require (parser
, CPP_OPEN_SQUARE
, RT_OPEN_SQUARE
);
8135 /* Record default capture mode. "[&" "[=" "[&," "[=," */
8136 if (cp_lexer_next_token_is (parser
->lexer
, CPP_AND
)
8137 && cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
!= CPP_NAME
)
8138 LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (lambda_expr
) = CPLD_REFERENCE
;
8139 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
8140 LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (lambda_expr
) = CPLD_COPY
;
8142 if (LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (lambda_expr
) != CPLD_NONE
)
8144 cp_lexer_consume_token (parser
->lexer
);
8148 while (cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_SQUARE
))
8150 cp_token
* capture_token
;
8152 tree capture_init_expr
;
8153 cp_id_kind idk
= CP_ID_KIND_NONE
;
8154 bool explicit_init_p
= false;
8156 enum capture_kind_type
8161 enum capture_kind_type capture_kind
= BY_COPY
;
8163 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EOF
))
8165 error ("expected end of capture-list");
8172 cp_parser_require (parser
, CPP_COMMA
, RT_COMMA
);
8174 /* Possibly capture `this'. */
8175 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_THIS
))
8177 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
8178 if (LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (lambda_expr
) == CPLD_COPY
)
8179 pedwarn (loc
, 0, "explicit by-copy capture of %<this%> redundant "
8180 "with by-copy capture default");
8181 cp_lexer_consume_token (parser
->lexer
);
8182 add_capture (lambda_expr
,
8183 /*id=*/this_identifier
,
8184 /*initializer=*/finish_this_expr(),
8185 /*by_reference_p=*/false,
8190 /* Remember whether we want to capture as a reference or not. */
8191 if (cp_lexer_next_token_is (parser
->lexer
, CPP_AND
))
8193 capture_kind
= BY_REFERENCE
;
8194 cp_lexer_consume_token (parser
->lexer
);
8197 /* Get the identifier. */
8198 capture_token
= cp_lexer_peek_token (parser
->lexer
);
8199 capture_id
= cp_parser_identifier (parser
);
8201 if (capture_id
== error_mark_node
)
8202 /* Would be nice to have a cp_parser_skip_to_closing_x for general
8203 delimiters, but I modified this to stop on unnested ']' as well. It
8204 was already changed to stop on unnested '}', so the
8205 "closing_parenthesis" name is no more misleading with my change. */
8207 cp_parser_skip_to_closing_parenthesis (parser
,
8208 /*recovering=*/true,
8210 /*consume_paren=*/true);
8214 /* Find the initializer for this capture. */
8215 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
8217 /* An explicit expression exists. */
8218 cp_lexer_consume_token (parser
->lexer
);
8219 pedwarn (input_location
, OPT_Wpedantic
,
8220 "ISO C++ does not allow initializers "
8221 "in lambda expression capture lists");
8222 capture_init_expr
= cp_parser_assignment_expression (parser
,
8225 explicit_init_p
= true;
8229 const char* error_msg
;
8231 /* Turn the identifier into an id-expression. */
8233 = cp_parser_lookup_name
8237 /*is_template=*/false,
8238 /*is_namespace=*/false,
8239 /*check_dependency=*/true,
8240 /*ambiguous_decls=*/NULL
,
8241 capture_token
->location
);
8243 if (capture_init_expr
== error_mark_node
)
8245 unqualified_name_lookup_error (capture_id
);
8248 else if (DECL_P (capture_init_expr
)
8249 && (TREE_CODE (capture_init_expr
) != VAR_DECL
8250 && TREE_CODE (capture_init_expr
) != PARM_DECL
))
8252 error_at (capture_token
->location
,
8253 "capture of non-variable %qD ",
8255 inform (0, "%q+#D declared here", capture_init_expr
);
8258 if (TREE_CODE (capture_init_expr
) == VAR_DECL
8259 && decl_storage_duration (capture_init_expr
) != dk_auto
)
8261 pedwarn (capture_token
->location
, 0, "capture of variable "
8262 "%qD with non-automatic storage duration",
8264 inform (0, "%q+#D declared here", capture_init_expr
);
8269 = finish_id_expression
8274 /*integral_constant_expression_p=*/false,
8275 /*allow_non_integral_constant_expression_p=*/false,
8276 /*non_integral_constant_expression_p=*/NULL
,
8277 /*template_p=*/false,
8279 /*address_p=*/false,
8280 /*template_arg_p=*/false,
8282 capture_token
->location
);
8285 if (LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (lambda_expr
) != CPLD_NONE
8286 && !explicit_init_p
)
8288 if (LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (lambda_expr
) == CPLD_COPY
8289 && capture_kind
== BY_COPY
)
8290 pedwarn (capture_token
->location
, 0, "explicit by-copy capture "
8291 "of %qD redundant with by-copy capture default",
8293 if (LAMBDA_EXPR_DEFAULT_CAPTURE_MODE (lambda_expr
) == CPLD_REFERENCE
8294 && capture_kind
== BY_REFERENCE
)
8295 pedwarn (capture_token
->location
, 0, "explicit by-reference "
8296 "capture of %qD redundant with by-reference capture "
8297 "default", capture_id
);
8300 add_capture (lambda_expr
,
8303 /*by_reference_p=*/capture_kind
== BY_REFERENCE
,
8307 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
8310 /* Parse the (optional) middle of a lambda expression.
8313 ( parameter-declaration-clause [opt] )
8314 attribute-specifier [opt]
8316 exception-specification [opt]
8317 lambda-return-type-clause [opt]
8319 LAMBDA_EXPR is the current representation of the lambda expression. */
8322 cp_parser_lambda_declarator_opt (cp_parser
* parser
, tree lambda_expr
)
8324 /* 5.1.1.4 of the standard says:
8325 If a lambda-expression does not include a lambda-declarator, it is as if
8326 the lambda-declarator were ().
8327 This means an empty parameter list, no attributes, and no exception
8329 tree param_list
= void_list_node
;
8330 tree attributes
= NULL_TREE
;
8331 tree exception_spec
= NULL_TREE
;
8334 /* The lambda-declarator is optional, but must begin with an opening
8335 parenthesis if present. */
8336 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
8338 cp_lexer_consume_token (parser
->lexer
);
8340 begin_scope (sk_function_parms
, /*entity=*/NULL_TREE
);
8342 /* Parse parameters. */
8343 param_list
= cp_parser_parameter_declaration_clause (parser
);
8345 /* Default arguments shall not be specified in the
8346 parameter-declaration-clause of a lambda-declarator. */
8347 for (t
= param_list
; t
; t
= TREE_CHAIN (t
))
8348 if (TREE_PURPOSE (t
))
8349 pedwarn (DECL_SOURCE_LOCATION (TREE_VALUE (t
)), OPT_Wpedantic
,
8350 "default argument specified for lambda parameter");
8352 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
8354 attributes
= cp_parser_attributes_opt (parser
);
8356 /* Parse optional `mutable' keyword. */
8357 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_MUTABLE
))
8359 cp_lexer_consume_token (parser
->lexer
);
8360 LAMBDA_EXPR_MUTABLE_P (lambda_expr
) = 1;
8363 /* Parse optional exception specification. */
8364 exception_spec
= cp_parser_exception_specification_opt (parser
);
8366 /* Parse optional trailing return type. */
8367 if (cp_lexer_next_token_is (parser
->lexer
, CPP_DEREF
))
8369 cp_lexer_consume_token (parser
->lexer
);
8370 LAMBDA_EXPR_RETURN_TYPE (lambda_expr
) = cp_parser_type_id (parser
);
8373 /* The function parameters must be in scope all the way until after the
8374 trailing-return-type in case of decltype. */
8375 for (t
= current_binding_level
->names
; t
; t
= DECL_CHAIN (t
))
8376 pop_binding (DECL_NAME (t
), t
);
8381 /* Create the function call operator.
8383 Messing with declarators like this is no uglier than building up the
8384 FUNCTION_DECL by hand, and this is less likely to get out of sync with
8387 cp_decl_specifier_seq return_type_specs
;
8388 cp_declarator
* declarator
;
8393 clear_decl_specs (&return_type_specs
);
8394 if (LAMBDA_EXPR_RETURN_TYPE (lambda_expr
))
8395 return_type_specs
.type
= LAMBDA_EXPR_RETURN_TYPE (lambda_expr
);
8397 /* Maybe we will deduce the return type later. */
8398 return_type_specs
.type
= make_auto ();
8400 p
= obstack_alloc (&declarator_obstack
, 0);
8402 declarator
= make_id_declarator (NULL_TREE
, ansi_opname (CALL_EXPR
),
8405 quals
= (LAMBDA_EXPR_MUTABLE_P (lambda_expr
)
8406 ? TYPE_UNQUALIFIED
: TYPE_QUAL_CONST
);
8407 declarator
= make_call_declarator (declarator
, param_list
, quals
,
8408 VIRT_SPEC_UNSPECIFIED
,
8410 /*late_return_type=*/NULL_TREE
);
8411 declarator
->id_loc
= LAMBDA_EXPR_LOCATION (lambda_expr
);
8413 fco
= grokmethod (&return_type_specs
,
8416 if (fco
!= error_mark_node
)
8418 DECL_INITIALIZED_IN_CLASS_P (fco
) = 1;
8419 DECL_ARTIFICIAL (fco
) = 1;
8420 /* Give the object parameter a different name. */
8421 DECL_NAME (DECL_ARGUMENTS (fco
)) = get_identifier ("__closure");
8424 finish_member_declaration (fco
);
8426 obstack_free (&declarator_obstack
, p
);
8428 return (fco
!= error_mark_node
);
8432 /* Parse the body of a lambda expression, which is simply
8436 but which requires special handling.
8437 LAMBDA_EXPR is the current representation of the lambda expression. */
8440 cp_parser_lambda_body (cp_parser
* parser
, tree lambda_expr
)
8442 bool nested
= (current_function_decl
!= NULL_TREE
);
8443 bool local_variables_forbidden_p
= parser
->local_variables_forbidden_p
;
8445 push_function_context ();
8447 /* Still increment function_depth so that we don't GC in the
8448 middle of an expression. */
8450 /* Clear this in case we're in the middle of a default argument. */
8451 parser
->local_variables_forbidden_p
= false;
8453 /* Finish the function call operator
8455 + late_parsing_for_member
8456 + function_definition_after_declarator
8457 + ctor_initializer_opt_and_function_body */
8459 tree fco
= lambda_function (lambda_expr
);
8465 /* Let the front end know that we are going to be defining this
8467 start_preparsed_function (fco
,
8469 SF_PRE_PARSED
| SF_INCLASS_INLINE
);
8471 start_lambda_scope (fco
);
8472 body
= begin_function_body ();
8474 if (!cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
))
8477 /* Push the proxies for any explicit captures. */
8478 for (cap
= LAMBDA_EXPR_CAPTURE_LIST (lambda_expr
); cap
;
8479 cap
= TREE_CHAIN (cap
))
8480 build_capture_proxy (TREE_PURPOSE (cap
));
8482 compound_stmt
= begin_compound_stmt (0);
8484 /* 5.1.1.4 of the standard says:
8485 If a lambda-expression does not include a trailing-return-type, it
8486 is as if the trailing-return-type denotes the following type:
8487 * if the compound-statement is of the form
8488 { return attribute-specifier [opt] expression ; }
8489 the type of the returned expression after lvalue-to-rvalue
8490 conversion (_conv.lval_ 4.1), array-to-pointer conversion
8491 (_conv.array_ 4.2), and function-to-pointer conversion
8493 * otherwise, void. */
8495 /* In a lambda that has neither a lambda-return-type-clause
8496 nor a deducible form, errors should be reported for return statements
8497 in the body. Since we used void as the placeholder return type, parsing
8498 the body as usual will give such desired behavior. */
8499 if (!LAMBDA_EXPR_RETURN_TYPE (lambda_expr
)
8500 && cp_lexer_peek_nth_token (parser
->lexer
, 1)->keyword
== RID_RETURN
8501 && cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
!= CPP_SEMICOLON
)
8503 tree expr
= NULL_TREE
;
8504 cp_id_kind idk
= CP_ID_KIND_NONE
;
8506 /* Parse tentatively in case there's more after the initial return
8508 cp_parser_parse_tentatively (parser
);
8510 cp_parser_require_keyword (parser
, RID_RETURN
, RT_RETURN
);
8512 expr
= cp_parser_expression (parser
, /*cast_p=*/false, &idk
);
8514 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
8515 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
8517 if (cp_parser_parse_definitely (parser
))
8519 if (!processing_template_decl
)
8520 apply_deduced_return_type (fco
, lambda_return_type (expr
));
8522 /* Will get error here if type not deduced yet. */
8523 finish_return_stmt (expr
);
8531 while (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_LABEL
))
8532 cp_parser_label_declaration (parser
);
8533 cp_parser_statement_seq_opt (parser
, NULL_TREE
);
8534 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
8537 finish_compound_stmt (compound_stmt
);
8540 finish_function_body (body
);
8541 finish_lambda_scope ();
8543 /* Finish the function and generate code for it if necessary. */
8544 expand_or_defer_fn (finish_function (/*inline*/2));
8547 parser
->local_variables_forbidden_p
= local_variables_forbidden_p
;
8549 pop_function_context();
8554 /* Statements [gram.stmt.stmt] */
8556 /* Parse a statement.
8560 expression-statement
8565 declaration-statement
8573 IN_COMPOUND is true when the statement is nested inside a
8574 cp_parser_compound_statement; this matters for certain pragmas.
8576 If IF_P is not NULL, *IF_P is set to indicate whether the statement
8577 is a (possibly labeled) if statement which is not enclosed in braces
8578 and has an else clause. This is used to implement -Wparentheses. */
8581 cp_parser_statement (cp_parser
* parser
, tree in_statement_expr
,
8582 bool in_compound
, bool *if_p
)
8586 location_t statement_location
;
8591 /* There is no statement yet. */
8592 statement
= NULL_TREE
;
8593 /* Peek at the next token. */
8594 token
= cp_lexer_peek_token (parser
->lexer
);
8595 /* Remember the location of the first token in the statement. */
8596 statement_location
= token
->location
;
8597 /* If this is a keyword, then that will often determine what kind of
8598 statement we have. */
8599 if (token
->type
== CPP_KEYWORD
)
8601 enum rid keyword
= token
->keyword
;
8607 /* Looks like a labeled-statement with a case label.
8608 Parse the label, and then use tail recursion to parse
8610 cp_parser_label_for_labeled_statement (parser
);
8615 statement
= cp_parser_selection_statement (parser
, if_p
);
8621 statement
= cp_parser_iteration_statement (parser
);
8628 statement
= cp_parser_jump_statement (parser
);
8631 /* Objective-C++ exception-handling constructs. */
8634 case RID_AT_FINALLY
:
8635 case RID_AT_SYNCHRONIZED
:
8637 statement
= cp_parser_objc_statement (parser
);
8641 statement
= cp_parser_try_block (parser
);
8645 /* This must be a namespace alias definition. */
8646 cp_parser_declaration_statement (parser
);
8649 case RID_TRANSACTION_ATOMIC
:
8650 case RID_TRANSACTION_RELAXED
:
8651 statement
= cp_parser_transaction (parser
, keyword
);
8653 case RID_TRANSACTION_CANCEL
:
8654 statement
= cp_parser_transaction_cancel (parser
);
8658 /* It might be a keyword like `int' that can start a
8659 declaration-statement. */
8663 else if (token
->type
== CPP_NAME
)
8665 /* If the next token is a `:', then we are looking at a
8666 labeled-statement. */
8667 token
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
8668 if (token
->type
== CPP_COLON
)
8670 /* Looks like a labeled-statement with an ordinary label.
8671 Parse the label, and then use tail recursion to parse
8673 cp_parser_label_for_labeled_statement (parser
);
8677 /* Anything that starts with a `{' must be a compound-statement. */
8678 else if (token
->type
== CPP_OPEN_BRACE
)
8679 statement
= cp_parser_compound_statement (parser
, NULL
, false, false);
8680 /* CPP_PRAGMA is a #pragma inside a function body, which constitutes
8681 a statement all its own. */
8682 else if (token
->type
== CPP_PRAGMA
)
8684 /* Only certain OpenMP pragmas are attached to statements, and thus
8685 are considered statements themselves. All others are not. In
8686 the context of a compound, accept the pragma as a "statement" and
8687 return so that we can check for a close brace. Otherwise we
8688 require a real statement and must go back and read one. */
8690 cp_parser_pragma (parser
, pragma_compound
);
8691 else if (!cp_parser_pragma (parser
, pragma_stmt
))
8695 else if (token
->type
== CPP_EOF
)
8697 cp_parser_error (parser
, "expected statement");
8701 /* Everything else must be a declaration-statement or an
8702 expression-statement. Try for the declaration-statement
8703 first, unless we are looking at a `;', in which case we know that
8704 we have an expression-statement. */
8707 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
8709 cp_parser_parse_tentatively (parser
);
8710 /* Try to parse the declaration-statement. */
8711 cp_parser_declaration_statement (parser
);
8712 /* If that worked, we're done. */
8713 if (cp_parser_parse_definitely (parser
))
8716 /* Look for an expression-statement instead. */
8717 statement
= cp_parser_expression_statement (parser
, in_statement_expr
);
8720 /* Set the line number for the statement. */
8721 if (statement
&& STATEMENT_CODE_P (TREE_CODE (statement
)))
8722 SET_EXPR_LOCATION (statement
, statement_location
);
8725 /* Parse the label for a labeled-statement, i.e.
8728 case constant-expression :
8732 case constant-expression ... constant-expression : statement
8734 When a label is parsed without errors, the label is added to the
8735 parse tree by the finish_* functions, so this function doesn't
8736 have to return the label. */
8739 cp_parser_label_for_labeled_statement (cp_parser
* parser
)
8742 tree label
= NULL_TREE
;
8743 bool saved_colon_corrects_to_scope_p
= parser
->colon_corrects_to_scope_p
;
8745 /* The next token should be an identifier. */
8746 token
= cp_lexer_peek_token (parser
->lexer
);
8747 if (token
->type
!= CPP_NAME
8748 && token
->type
!= CPP_KEYWORD
)
8750 cp_parser_error (parser
, "expected labeled-statement");
8754 parser
->colon_corrects_to_scope_p
= false;
8755 switch (token
->keyword
)
8762 /* Consume the `case' token. */
8763 cp_lexer_consume_token (parser
->lexer
);
8764 /* Parse the constant-expression. */
8765 expr
= cp_parser_constant_expression (parser
,
8766 /*allow_non_constant_p=*/false,
8769 ellipsis
= cp_lexer_peek_token (parser
->lexer
);
8770 if (ellipsis
->type
== CPP_ELLIPSIS
)
8772 /* Consume the `...' token. */
8773 cp_lexer_consume_token (parser
->lexer
);
8775 cp_parser_constant_expression (parser
,
8776 /*allow_non_constant_p=*/false,
8778 /* We don't need to emit warnings here, as the common code
8779 will do this for us. */
8782 expr_hi
= NULL_TREE
;
8784 if (parser
->in_switch_statement_p
)
8785 finish_case_label (token
->location
, expr
, expr_hi
);
8787 error_at (token
->location
,
8788 "case label %qE not within a switch statement",
8794 /* Consume the `default' token. */
8795 cp_lexer_consume_token (parser
->lexer
);
8797 if (parser
->in_switch_statement_p
)
8798 finish_case_label (token
->location
, NULL_TREE
, NULL_TREE
);
8800 error_at (token
->location
, "case label not within a switch statement");
8804 /* Anything else must be an ordinary label. */
8805 label
= finish_label_stmt (cp_parser_identifier (parser
));
8809 /* Require the `:' token. */
8810 cp_parser_require (parser
, CPP_COLON
, RT_COLON
);
8812 /* An ordinary label may optionally be followed by attributes.
8813 However, this is only permitted if the attributes are then
8814 followed by a semicolon. This is because, for backward
8815 compatibility, when parsing
8816 lab: __attribute__ ((unused)) int i;
8817 we want the attribute to attach to "i", not "lab". */
8818 if (label
!= NULL_TREE
8819 && cp_lexer_next_token_is_keyword (parser
->lexer
, RID_ATTRIBUTE
))
8823 cp_parser_parse_tentatively (parser
);
8824 attrs
= cp_parser_attributes_opt (parser
);
8825 if (attrs
== NULL_TREE
8826 || cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
8827 cp_parser_abort_tentative_parse (parser
);
8828 else if (!cp_parser_parse_definitely (parser
))
8831 cplus_decl_attributes (&label
, attrs
, 0);
8834 parser
->colon_corrects_to_scope_p
= saved_colon_corrects_to_scope_p
;
8837 /* Parse an expression-statement.
8839 expression-statement:
8842 Returns the new EXPR_STMT -- or NULL_TREE if the expression
8843 statement consists of nothing more than an `;'. IN_STATEMENT_EXPR_P
8844 indicates whether this expression-statement is part of an
8845 expression statement. */
8848 cp_parser_expression_statement (cp_parser
* parser
, tree in_statement_expr
)
8850 tree statement
= NULL_TREE
;
8851 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
8853 /* If the next token is a ';', then there is no expression
8855 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
8856 statement
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
8858 /* Give a helpful message for "A<T>::type t;" and the like. */
8859 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
)
8860 && !cp_parser_uncommitted_to_tentative_parse_p (parser
))
8862 if (TREE_CODE (statement
) == SCOPE_REF
)
8863 error_at (token
->location
, "need %<typename%> before %qE because "
8864 "%qT is a dependent scope",
8865 statement
, TREE_OPERAND (statement
, 0));
8866 else if (is_overloaded_fn (statement
)
8867 && DECL_CONSTRUCTOR_P (get_first_fn (statement
)))
8870 tree fn
= get_first_fn (statement
);
8871 error_at (token
->location
,
8872 "%<%T::%D%> names the constructor, not the type",
8873 DECL_CONTEXT (fn
), DECL_NAME (fn
));
8877 /* Consume the final `;'. */
8878 cp_parser_consume_semicolon_at_end_of_statement (parser
);
8880 if (in_statement_expr
8881 && cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_BRACE
))
8882 /* This is the final expression statement of a statement
8884 statement
= finish_stmt_expr_expr (statement
, in_statement_expr
);
8886 statement
= finish_expr_stmt (statement
);
8893 /* Parse a compound-statement.
8896 { statement-seq [opt] }
8901 { label-declaration-seq [opt] statement-seq [opt] }
8903 label-declaration-seq:
8905 label-declaration-seq label-declaration
8907 Returns a tree representing the statement. */
8910 cp_parser_compound_statement (cp_parser
*parser
, tree in_statement_expr
,
8911 bool in_try
, bool function_body
)
8915 /* Consume the `{'. */
8916 if (!cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
))
8917 return error_mark_node
;
8918 if (DECL_DECLARED_CONSTEXPR_P (current_function_decl
)
8920 pedwarn (input_location
, OPT_Wpedantic
,
8921 "compound-statement in constexpr function");
8922 /* Begin the compound-statement. */
8923 compound_stmt
= begin_compound_stmt (in_try
? BCS_TRY_BLOCK
: 0);
8924 /* If the next keyword is `__label__' we have a label declaration. */
8925 while (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_LABEL
))
8926 cp_parser_label_declaration (parser
);
8927 /* Parse an (optional) statement-seq. */
8928 cp_parser_statement_seq_opt (parser
, in_statement_expr
);
8929 /* Finish the compound-statement. */
8930 finish_compound_stmt (compound_stmt
);
8931 /* Consume the `}'. */
8932 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
8934 return compound_stmt
;
8937 /* Parse an (optional) statement-seq.
8941 statement-seq [opt] statement */
8944 cp_parser_statement_seq_opt (cp_parser
* parser
, tree in_statement_expr
)
8946 /* Scan statements until there aren't any more. */
8949 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
8951 /* If we are looking at a `}', then we have run out of
8952 statements; the same is true if we have reached the end
8953 of file, or have stumbled upon a stray '@end'. */
8954 if (token
->type
== CPP_CLOSE_BRACE
8955 || token
->type
== CPP_EOF
8956 || token
->type
== CPP_PRAGMA_EOL
8957 || (token
->type
== CPP_KEYWORD
&& token
->keyword
== RID_AT_END
))
8960 /* If we are in a compound statement and find 'else' then
8961 something went wrong. */
8962 else if (token
->type
== CPP_KEYWORD
&& token
->keyword
== RID_ELSE
)
8964 if (parser
->in_statement
& IN_IF_STMT
)
8968 token
= cp_lexer_consume_token (parser
->lexer
);
8969 error_at (token
->location
, "%<else%> without a previous %<if%>");
8973 /* Parse the statement. */
8974 cp_parser_statement (parser
, in_statement_expr
, true, NULL
);
8978 /* Parse a selection-statement.
8980 selection-statement:
8981 if ( condition ) statement
8982 if ( condition ) statement else statement
8983 switch ( condition ) statement
8985 Returns the new IF_STMT or SWITCH_STMT.
8987 If IF_P is not NULL, *IF_P is set to indicate whether the statement
8988 is a (possibly labeled) if statement which is not enclosed in
8989 braces and has an else clause. This is used to implement
8993 cp_parser_selection_statement (cp_parser
* parser
, bool *if_p
)
9001 /* Peek at the next token. */
9002 token
= cp_parser_require (parser
, CPP_KEYWORD
, RT_SELECT
);
9004 /* See what kind of keyword it is. */
9005 keyword
= token
->keyword
;
9014 /* Look for the `('. */
9015 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
9017 cp_parser_skip_to_end_of_statement (parser
);
9018 return error_mark_node
;
9021 /* Begin the selection-statement. */
9022 if (keyword
== RID_IF
)
9023 statement
= begin_if_stmt ();
9025 statement
= begin_switch_stmt ();
9027 /* Parse the condition. */
9028 condition
= cp_parser_condition (parser
);
9029 /* Look for the `)'. */
9030 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
9031 cp_parser_skip_to_closing_parenthesis (parser
, true, false,
9032 /*consume_paren=*/true);
9034 if (keyword
== RID_IF
)
9037 unsigned char in_statement
;
9039 /* Add the condition. */
9040 finish_if_stmt_cond (condition
, statement
);
9042 /* Parse the then-clause. */
9043 in_statement
= parser
->in_statement
;
9044 parser
->in_statement
|= IN_IF_STMT
;
9045 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
9047 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
9048 add_stmt (build_empty_stmt (loc
));
9049 cp_lexer_consume_token (parser
->lexer
);
9050 if (!cp_lexer_next_token_is_keyword (parser
->lexer
, RID_ELSE
))
9051 warning_at (loc
, OPT_Wempty_body
, "suggest braces around "
9052 "empty body in an %<if%> statement");
9056 cp_parser_implicitly_scoped_statement (parser
, &nested_if
);
9057 parser
->in_statement
= in_statement
;
9059 finish_then_clause (statement
);
9061 /* If the next token is `else', parse the else-clause. */
9062 if (cp_lexer_next_token_is_keyword (parser
->lexer
,
9065 /* Consume the `else' keyword. */
9066 cp_lexer_consume_token (parser
->lexer
);
9067 begin_else_clause (statement
);
9068 /* Parse the else-clause. */
9069 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
9072 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
9074 OPT_Wempty_body
, "suggest braces around "
9075 "empty body in an %<else%> statement");
9076 add_stmt (build_empty_stmt (loc
));
9077 cp_lexer_consume_token (parser
->lexer
);
9080 cp_parser_implicitly_scoped_statement (parser
, NULL
);
9082 finish_else_clause (statement
);
9084 /* If we are currently parsing a then-clause, then
9085 IF_P will not be NULL. We set it to true to
9086 indicate that this if statement has an else clause.
9087 This may trigger the Wparentheses warning below
9088 when we get back up to the parent if statement. */
9094 /* This if statement does not have an else clause. If
9095 NESTED_IF is true, then the then-clause is an if
9096 statement which does have an else clause. We warn
9097 about the potential ambiguity. */
9099 warning_at (EXPR_LOCATION (statement
), OPT_Wparentheses
,
9100 "suggest explicit braces to avoid ambiguous"
9104 /* Now we're all done with the if-statement. */
9105 finish_if_stmt (statement
);
9109 bool in_switch_statement_p
;
9110 unsigned char in_statement
;
9112 /* Add the condition. */
9113 finish_switch_cond (condition
, statement
);
9115 /* Parse the body of the switch-statement. */
9116 in_switch_statement_p
= parser
->in_switch_statement_p
;
9117 in_statement
= parser
->in_statement
;
9118 parser
->in_switch_statement_p
= true;
9119 parser
->in_statement
|= IN_SWITCH_STMT
;
9120 cp_parser_implicitly_scoped_statement (parser
, NULL
);
9121 parser
->in_switch_statement_p
= in_switch_statement_p
;
9122 parser
->in_statement
= in_statement
;
9124 /* Now we're all done with the switch-statement. */
9125 finish_switch_stmt (statement
);
9133 cp_parser_error (parser
, "expected selection-statement");
9134 return error_mark_node
;
9138 /* Parse a condition.
9142 type-specifier-seq declarator = initializer-clause
9143 type-specifier-seq declarator braced-init-list
9148 type-specifier-seq declarator asm-specification [opt]
9149 attributes [opt] = assignment-expression
9151 Returns the expression that should be tested. */
9154 cp_parser_condition (cp_parser
* parser
)
9156 cp_decl_specifier_seq type_specifiers
;
9157 const char *saved_message
;
9158 int declares_class_or_enum
;
9160 /* Try the declaration first. */
9161 cp_parser_parse_tentatively (parser
);
9162 /* New types are not allowed in the type-specifier-seq for a
9164 saved_message
= parser
->type_definition_forbidden_message
;
9165 parser
->type_definition_forbidden_message
9166 = G_("types may not be defined in conditions");
9167 /* Parse the type-specifier-seq. */
9168 cp_parser_decl_specifier_seq (parser
,
9169 CP_PARSER_FLAGS_ONLY_TYPE_OR_CONSTEXPR
,
9171 &declares_class_or_enum
);
9172 /* Restore the saved message. */
9173 parser
->type_definition_forbidden_message
= saved_message
;
9174 /* If all is well, we might be looking at a declaration. */
9175 if (!cp_parser_error_occurred (parser
))
9178 tree asm_specification
;
9180 cp_declarator
*declarator
;
9181 tree initializer
= NULL_TREE
;
9183 /* Parse the declarator. */
9184 declarator
= cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_NAMED
,
9185 /*ctor_dtor_or_conv_p=*/NULL
,
9186 /*parenthesized_p=*/NULL
,
9187 /*member_p=*/false);
9188 /* Parse the attributes. */
9189 attributes
= cp_parser_attributes_opt (parser
);
9190 /* Parse the asm-specification. */
9191 asm_specification
= cp_parser_asm_specification_opt (parser
);
9192 /* If the next token is not an `=' or '{', then we might still be
9193 looking at an expression. For example:
9197 looks like a decl-specifier-seq and a declarator -- but then
9198 there is no `=', so this is an expression. */
9199 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_EQ
)
9200 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_BRACE
))
9201 cp_parser_simulate_error (parser
);
9203 /* If we did see an `=' or '{', then we are looking at a declaration
9205 if (cp_parser_parse_definitely (parser
))
9208 bool non_constant_p
;
9209 bool flags
= LOOKUP_ONLYCONVERTING
;
9211 /* Create the declaration. */
9212 decl
= start_decl (declarator
, &type_specifiers
,
9213 /*initialized_p=*/true,
9214 attributes
, /*prefix_attributes=*/NULL_TREE
,
9217 /* Parse the initializer. */
9218 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
9220 initializer
= cp_parser_braced_list (parser
, &non_constant_p
);
9221 CONSTRUCTOR_IS_DIRECT_INIT (initializer
) = 1;
9226 /* Consume the `='. */
9227 cp_parser_require (parser
, CPP_EQ
, RT_EQ
);
9228 initializer
= cp_parser_initializer_clause (parser
, &non_constant_p
);
9230 if (BRACE_ENCLOSED_INITIALIZER_P (initializer
))
9231 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
9233 /* Process the initializer. */
9234 cp_finish_decl (decl
,
9235 initializer
, !non_constant_p
,
9240 pop_scope (pushed_scope
);
9242 return convert_from_reference (decl
);
9245 /* If we didn't even get past the declarator successfully, we are
9246 definitely not looking at a declaration. */
9248 cp_parser_abort_tentative_parse (parser
);
9250 /* Otherwise, we are looking at an expression. */
9251 return cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
9254 /* Parses a for-statement or range-for-statement until the closing ')',
9258 cp_parser_for (cp_parser
*parser
)
9260 tree init
, scope
, decl
;
9263 /* Begin the for-statement. */
9264 scope
= begin_for_scope (&init
);
9266 /* Parse the initialization. */
9267 is_range_for
= cp_parser_for_init_statement (parser
, &decl
);
9270 return cp_parser_range_for (parser
, scope
, init
, decl
);
9272 return cp_parser_c_for (parser
, scope
, init
);
9276 cp_parser_c_for (cp_parser
*parser
, tree scope
, tree init
)
9278 /* Normal for loop */
9279 tree condition
= NULL_TREE
;
9280 tree expression
= NULL_TREE
;
9283 stmt
= begin_for_stmt (scope
, init
);
9284 /* The for-init-statement has already been parsed in
9285 cp_parser_for_init_statement, so no work is needed here. */
9286 finish_for_init_stmt (stmt
);
9288 /* If there's a condition, process it. */
9289 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
9290 condition
= cp_parser_condition (parser
);
9291 finish_for_cond (condition
, stmt
);
9292 /* Look for the `;'. */
9293 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
9295 /* If there's an expression, process it. */
9296 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_PAREN
))
9297 expression
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
9298 finish_for_expr (expression
, stmt
);
9303 /* Tries to parse a range-based for-statement:
9306 decl-specifier-seq declarator : expression
9308 The decl-specifier-seq declarator and the `:' are already parsed by
9309 cp_parser_for_init_statement. If processing_template_decl it returns a
9310 newly created RANGE_FOR_STMT; if not, it is converted to a
9311 regular FOR_STMT. */
9314 cp_parser_range_for (cp_parser
*parser
, tree scope
, tree init
, tree range_decl
)
9316 tree stmt
, range_expr
;
9318 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
9320 bool expr_non_constant_p
;
9321 range_expr
= cp_parser_braced_list (parser
, &expr_non_constant_p
);
9324 range_expr
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
9326 /* If in template, STMT is converted to a normal for-statement
9327 at instantiation. If not, it is done just ahead. */
9328 if (processing_template_decl
)
9330 if (check_for_bare_parameter_packs (range_expr
))
9331 range_expr
= error_mark_node
;
9332 stmt
= begin_range_for_stmt (scope
, init
);
9333 finish_range_for_decl (stmt
, range_decl
, range_expr
);
9334 if (!type_dependent_expression_p (range_expr
)
9335 /* do_auto_deduction doesn't mess with template init-lists. */
9336 && !BRACE_ENCLOSED_INITIALIZER_P (range_expr
))
9337 do_range_for_auto_deduction (range_decl
, range_expr
);
9341 stmt
= begin_for_stmt (scope
, init
);
9342 stmt
= cp_convert_range_for (stmt
, range_decl
, range_expr
);
9347 /* Subroutine of cp_convert_range_for: given the initializer expression,
9348 builds up the range temporary. */
9351 build_range_temp (tree range_expr
)
9353 tree range_type
, range_temp
;
9355 /* Find out the type deduced by the declaration
9356 `auto &&__range = range_expr'. */
9357 range_type
= cp_build_reference_type (make_auto (), true);
9358 range_type
= do_auto_deduction (range_type
, range_expr
,
9359 type_uses_auto (range_type
));
9361 /* Create the __range variable. */
9362 range_temp
= build_decl (input_location
, VAR_DECL
,
9363 get_identifier ("__for_range"), range_type
);
9364 TREE_USED (range_temp
) = 1;
9365 DECL_ARTIFICIAL (range_temp
) = 1;
9370 /* Used by cp_parser_range_for in template context: we aren't going to
9371 do a full conversion yet, but we still need to resolve auto in the
9372 type of the for-range-declaration if present. This is basically
9373 a shortcut version of cp_convert_range_for. */
9376 do_range_for_auto_deduction (tree decl
, tree range_expr
)
9378 tree auto_node
= type_uses_auto (TREE_TYPE (decl
));
9381 tree begin_dummy
, end_dummy
, range_temp
, iter_type
, iter_decl
;
9382 range_temp
= convert_from_reference (build_range_temp (range_expr
));
9383 iter_type
= (cp_parser_perform_range_for_lookup
9384 (range_temp
, &begin_dummy
, &end_dummy
));
9385 iter_decl
= build_decl (input_location
, VAR_DECL
, NULL_TREE
, iter_type
);
9386 iter_decl
= build_x_indirect_ref (input_location
, iter_decl
, RO_NULL
,
9387 tf_warning_or_error
);
9388 TREE_TYPE (decl
) = do_auto_deduction (TREE_TYPE (decl
),
9389 iter_decl
, auto_node
);
9393 /* Converts a range-based for-statement into a normal
9394 for-statement, as per the definition.
9396 for (RANGE_DECL : RANGE_EXPR)
9399 should be equivalent to:
9402 auto &&__range = RANGE_EXPR;
9403 for (auto __begin = BEGIN_EXPR, end = END_EXPR;
9407 RANGE_DECL = *__begin;
9412 If RANGE_EXPR is an array:
9413 BEGIN_EXPR = __range
9414 END_EXPR = __range + ARRAY_SIZE(__range)
9415 Else if RANGE_EXPR has a member 'begin' or 'end':
9416 BEGIN_EXPR = __range.begin()
9417 END_EXPR = __range.end()
9419 BEGIN_EXPR = begin(__range)
9420 END_EXPR = end(__range);
9422 If __range has a member 'begin' but not 'end', or vice versa, we must
9423 still use the second alternative (it will surely fail, however).
9424 When calling begin()/end() in the third alternative we must use
9425 argument dependent lookup, but always considering 'std' as an associated
9429 cp_convert_range_for (tree statement
, tree range_decl
, tree range_expr
)
9432 tree iter_type
, begin_expr
, end_expr
;
9433 tree condition
, expression
;
9435 if (range_decl
== error_mark_node
|| range_expr
== error_mark_node
)
9436 /* If an error happened previously do nothing or else a lot of
9437 unhelpful errors would be issued. */
9438 begin_expr
= end_expr
= iter_type
= error_mark_node
;
9441 tree range_temp
= build_range_temp (range_expr
);
9442 pushdecl (range_temp
);
9443 cp_finish_decl (range_temp
, range_expr
,
9444 /*is_constant_init*/false, NULL_TREE
,
9445 LOOKUP_ONLYCONVERTING
);
9447 range_temp
= convert_from_reference (range_temp
);
9448 iter_type
= cp_parser_perform_range_for_lookup (range_temp
,
9449 &begin_expr
, &end_expr
);
9452 /* The new for initialization statement. */
9453 begin
= build_decl (input_location
, VAR_DECL
,
9454 get_identifier ("__for_begin"), iter_type
);
9455 TREE_USED (begin
) = 1;
9456 DECL_ARTIFICIAL (begin
) = 1;
9458 cp_finish_decl (begin
, begin_expr
,
9459 /*is_constant_init*/false, NULL_TREE
,
9460 LOOKUP_ONLYCONVERTING
);
9462 end
= build_decl (input_location
, VAR_DECL
,
9463 get_identifier ("__for_end"), iter_type
);
9464 TREE_USED (end
) = 1;
9465 DECL_ARTIFICIAL (end
) = 1;
9467 cp_finish_decl (end
, end_expr
,
9468 /*is_constant_init*/false, NULL_TREE
,
9469 LOOKUP_ONLYCONVERTING
);
9471 finish_for_init_stmt (statement
);
9473 /* The new for condition. */
9474 condition
= build_x_binary_op (input_location
, NE_EXPR
,
9477 NULL
, tf_warning_or_error
);
9478 finish_for_cond (condition
, statement
);
9480 /* The new increment expression. */
9481 expression
= finish_unary_op_expr (input_location
,
9482 PREINCREMENT_EXPR
, begin
);
9483 finish_for_expr (expression
, statement
);
9485 /* The declaration is initialized with *__begin inside the loop body. */
9486 cp_finish_decl (range_decl
,
9487 build_x_indirect_ref (input_location
, begin
, RO_NULL
,
9488 tf_warning_or_error
),
9489 /*is_constant_init*/false, NULL_TREE
,
9490 LOOKUP_ONLYCONVERTING
);
9495 /* Solves BEGIN_EXPR and END_EXPR as described in cp_convert_range_for.
9496 We need to solve both at the same time because the method used
9497 depends on the existence of members begin or end.
9498 Returns the type deduced for the iterator expression. */
9501 cp_parser_perform_range_for_lookup (tree range
, tree
*begin
, tree
*end
)
9503 if (error_operand_p (range
))
9505 *begin
= *end
= error_mark_node
;
9506 return error_mark_node
;
9509 if (!COMPLETE_TYPE_P (complete_type (TREE_TYPE (range
))))
9511 error ("range-based %<for%> expression of type %qT "
9512 "has incomplete type", TREE_TYPE (range
));
9513 *begin
= *end
= error_mark_node
;
9514 return error_mark_node
;
9516 if (TREE_CODE (TREE_TYPE (range
)) == ARRAY_TYPE
)
9518 /* If RANGE is an array, we will use pointer arithmetic. */
9520 *end
= build_binary_op (input_location
, PLUS_EXPR
,
9522 array_type_nelts_top (TREE_TYPE (range
)),
9524 return build_pointer_type (TREE_TYPE (TREE_TYPE (range
)));
9528 /* If it is not an array, we must do a bit of magic. */
9529 tree id_begin
, id_end
;
9530 tree member_begin
, member_end
;
9532 *begin
= *end
= error_mark_node
;
9534 id_begin
= get_identifier ("begin");
9535 id_end
= get_identifier ("end");
9536 member_begin
= lookup_member (TREE_TYPE (range
), id_begin
,
9537 /*protect=*/2, /*want_type=*/false,
9538 tf_warning_or_error
);
9539 member_end
= lookup_member (TREE_TYPE (range
), id_end
,
9540 /*protect=*/2, /*want_type=*/false,
9541 tf_warning_or_error
);
9543 if (member_begin
!= NULL_TREE
|| member_end
!= NULL_TREE
)
9545 /* Use the member functions. */
9546 if (member_begin
!= NULL_TREE
)
9547 *begin
= cp_parser_range_for_member_function (range
, id_begin
);
9549 error ("range-based %<for%> expression of type %qT has an "
9550 "%<end%> member but not a %<begin%>", TREE_TYPE (range
));
9552 if (member_end
!= NULL_TREE
)
9553 *end
= cp_parser_range_for_member_function (range
, id_end
);
9555 error ("range-based %<for%> expression of type %qT has a "
9556 "%<begin%> member but not an %<end%>", TREE_TYPE (range
));
9560 /* Use global functions with ADL. */
9562 vec
= make_tree_vector ();
9564 VEC_safe_push (tree
, gc
, vec
, range
);
9566 member_begin
= perform_koenig_lookup (id_begin
, vec
,
9567 /*include_std=*/true,
9568 tf_warning_or_error
);
9569 *begin
= finish_call_expr (member_begin
, &vec
, false, true,
9570 tf_warning_or_error
);
9571 member_end
= perform_koenig_lookup (id_end
, vec
,
9572 /*include_std=*/true,
9573 tf_warning_or_error
);
9574 *end
= finish_call_expr (member_end
, &vec
, false, true,
9575 tf_warning_or_error
);
9577 release_tree_vector (vec
);
9580 /* Last common checks. */
9581 if (*begin
== error_mark_node
|| *end
== error_mark_node
)
9583 /* If one of the expressions is an error do no more checks. */
9584 *begin
= *end
= error_mark_node
;
9585 return error_mark_node
;
9589 tree iter_type
= cv_unqualified (TREE_TYPE (*begin
));
9590 /* The unqualified type of the __begin and __end temporaries should
9591 be the same, as required by the multiple auto declaration. */
9592 if (!same_type_p (iter_type
, cv_unqualified (TREE_TYPE (*end
))))
9593 error ("inconsistent begin/end types in range-based %<for%> "
9594 "statement: %qT and %qT",
9595 TREE_TYPE (*begin
), TREE_TYPE (*end
));
9601 /* Helper function for cp_parser_perform_range_for_lookup.
9602 Builds a tree for RANGE.IDENTIFIER(). */
9605 cp_parser_range_for_member_function (tree range
, tree identifier
)
9610 member
= finish_class_member_access_expr (range
, identifier
,
9611 false, tf_warning_or_error
);
9612 if (member
== error_mark_node
)
9613 return error_mark_node
;
9615 vec
= make_tree_vector ();
9616 res
= finish_call_expr (member
, &vec
,
9617 /*disallow_virtual=*/false,
9619 tf_warning_or_error
);
9620 release_tree_vector (vec
);
9624 /* Parse an iteration-statement.
9626 iteration-statement:
9627 while ( condition ) statement
9628 do statement while ( expression ) ;
9629 for ( for-init-statement condition [opt] ; expression [opt] )
9632 Returns the new WHILE_STMT, DO_STMT, FOR_STMT or RANGE_FOR_STMT. */
9635 cp_parser_iteration_statement (cp_parser
* parser
)
9640 unsigned char in_statement
;
9642 /* Peek at the next token. */
9643 token
= cp_parser_require (parser
, CPP_KEYWORD
, RT_INTERATION
);
9645 return error_mark_node
;
9647 /* Remember whether or not we are already within an iteration
9649 in_statement
= parser
->in_statement
;
9651 /* See what kind of keyword it is. */
9652 keyword
= token
->keyword
;
9659 /* Begin the while-statement. */
9660 statement
= begin_while_stmt ();
9661 /* Look for the `('. */
9662 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
9663 /* Parse the condition. */
9664 condition
= cp_parser_condition (parser
);
9665 finish_while_stmt_cond (condition
, statement
);
9666 /* Look for the `)'. */
9667 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
9668 /* Parse the dependent statement. */
9669 parser
->in_statement
= IN_ITERATION_STMT
;
9670 cp_parser_already_scoped_statement (parser
);
9671 parser
->in_statement
= in_statement
;
9672 /* We're done with the while-statement. */
9673 finish_while_stmt (statement
);
9681 /* Begin the do-statement. */
9682 statement
= begin_do_stmt ();
9683 /* Parse the body of the do-statement. */
9684 parser
->in_statement
= IN_ITERATION_STMT
;
9685 cp_parser_implicitly_scoped_statement (parser
, NULL
);
9686 parser
->in_statement
= in_statement
;
9687 finish_do_body (statement
);
9688 /* Look for the `while' keyword. */
9689 cp_parser_require_keyword (parser
, RID_WHILE
, RT_WHILE
);
9690 /* Look for the `('. */
9691 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
9692 /* Parse the expression. */
9693 expression
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
9694 /* We're done with the do-statement. */
9695 finish_do_stmt (expression
, statement
);
9696 /* Look for the `)'. */
9697 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
9698 /* Look for the `;'. */
9699 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
9705 /* Look for the `('. */
9706 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
9708 statement
= cp_parser_for (parser
);
9710 /* Look for the `)'. */
9711 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
9713 /* Parse the body of the for-statement. */
9714 parser
->in_statement
= IN_ITERATION_STMT
;
9715 cp_parser_already_scoped_statement (parser
);
9716 parser
->in_statement
= in_statement
;
9718 /* We're done with the for-statement. */
9719 finish_for_stmt (statement
);
9724 cp_parser_error (parser
, "expected iteration-statement");
9725 statement
= error_mark_node
;
9732 /* Parse a for-init-statement or the declarator of a range-based-for.
9733 Returns true if a range-based-for declaration is seen.
9736 expression-statement
9737 simple-declaration */
9740 cp_parser_for_init_statement (cp_parser
* parser
, tree
*decl
)
9742 /* If the next token is a `;', then we have an empty
9743 expression-statement. Grammatically, this is also a
9744 simple-declaration, but an invalid one, because it does not
9745 declare anything. Therefore, if we did not handle this case
9746 specially, we would issue an error message about an invalid
9748 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
9750 bool is_range_for
= false;
9751 bool saved_colon_corrects_to_scope_p
= parser
->colon_corrects_to_scope_p
;
9753 parser
->colon_corrects_to_scope_p
= false;
9755 /* We're going to speculatively look for a declaration, falling back
9756 to an expression, if necessary. */
9757 cp_parser_parse_tentatively (parser
);
9758 /* Parse the declaration. */
9759 cp_parser_simple_declaration (parser
,
9760 /*function_definition_allowed_p=*/false,
9762 parser
->colon_corrects_to_scope_p
= saved_colon_corrects_to_scope_p
;
9763 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
))
9765 /* It is a range-for, consume the ':' */
9766 cp_lexer_consume_token (parser
->lexer
);
9767 is_range_for
= true;
9768 if (cxx_dialect
< cxx0x
)
9770 error_at (cp_lexer_peek_token (parser
->lexer
)->location
,
9771 "range-based %<for%> loops are not allowed "
9773 *decl
= error_mark_node
;
9777 /* The ';' is not consumed yet because we told
9778 cp_parser_simple_declaration not to. */
9779 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
9781 if (cp_parser_parse_definitely (parser
))
9782 return is_range_for
;
9783 /* If the tentative parse failed, then we shall need to look for an
9784 expression-statement. */
9786 /* If we are here, it is an expression-statement. */
9787 cp_parser_expression_statement (parser
, NULL_TREE
);
9791 /* Parse a jump-statement.
9796 return expression [opt] ;
9797 return braced-init-list ;
9805 Returns the new BREAK_STMT, CONTINUE_STMT, RETURN_EXPR, or GOTO_EXPR. */
9808 cp_parser_jump_statement (cp_parser
* parser
)
9810 tree statement
= error_mark_node
;
9813 unsigned char in_statement
;
9815 /* Peek at the next token. */
9816 token
= cp_parser_require (parser
, CPP_KEYWORD
, RT_JUMP
);
9818 return error_mark_node
;
9820 /* See what kind of keyword it is. */
9821 keyword
= token
->keyword
;
9825 in_statement
= parser
->in_statement
& ~IN_IF_STMT
;
9826 switch (in_statement
)
9829 error_at (token
->location
, "break statement not within loop or switch");
9832 gcc_assert ((in_statement
& IN_SWITCH_STMT
)
9833 || in_statement
== IN_ITERATION_STMT
);
9834 statement
= finish_break_stmt ();
9837 error_at (token
->location
, "invalid exit from OpenMP structured block");
9840 error_at (token
->location
, "break statement used with OpenMP for loop");
9843 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
9847 switch (parser
->in_statement
& ~(IN_SWITCH_STMT
| IN_IF_STMT
))
9850 error_at (token
->location
, "continue statement not within a loop");
9852 case IN_ITERATION_STMT
:
9854 statement
= finish_continue_stmt ();
9857 error_at (token
->location
, "invalid exit from OpenMP structured block");
9862 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
9868 bool expr_non_constant_p
;
9870 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
9872 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
9873 expr
= cp_parser_braced_list (parser
, &expr_non_constant_p
);
9875 else if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
9876 expr
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
9878 /* If the next token is a `;', then there is no
9881 /* Build the return-statement. */
9882 statement
= finish_return_stmt (expr
);
9883 /* Look for the final `;'. */
9884 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
9889 /* Create the goto-statement. */
9890 if (cp_lexer_next_token_is (parser
->lexer
, CPP_MULT
))
9892 /* Issue a warning about this use of a GNU extension. */
9893 pedwarn (token
->location
, OPT_Wpedantic
, "ISO C++ forbids computed gotos");
9894 /* Consume the '*' token. */
9895 cp_lexer_consume_token (parser
->lexer
);
9896 /* Parse the dependent expression. */
9897 finish_goto_stmt (cp_parser_expression (parser
, /*cast_p=*/false, NULL
));
9900 finish_goto_stmt (cp_parser_identifier (parser
));
9901 /* Look for the final `;'. */
9902 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
9906 cp_parser_error (parser
, "expected jump-statement");
9913 /* Parse a declaration-statement.
9915 declaration-statement:
9916 block-declaration */
9919 cp_parser_declaration_statement (cp_parser
* parser
)
9923 /* Get the high-water mark for the DECLARATOR_OBSTACK. */
9924 p
= obstack_alloc (&declarator_obstack
, 0);
9926 /* Parse the block-declaration. */
9927 cp_parser_block_declaration (parser
, /*statement_p=*/true);
9929 /* Free any declarators allocated. */
9930 obstack_free (&declarator_obstack
, p
);
9932 /* Finish off the statement. */
9936 /* Some dependent statements (like `if (cond) statement'), are
9937 implicitly in their own scope. In other words, if the statement is
9938 a single statement (as opposed to a compound-statement), it is
9939 none-the-less treated as if it were enclosed in braces. Any
9940 declarations appearing in the dependent statement are out of scope
9941 after control passes that point. This function parses a statement,
9942 but ensures that is in its own scope, even if it is not a
9945 If IF_P is not NULL, *IF_P is set to indicate whether the statement
9946 is a (possibly labeled) if statement which is not enclosed in
9947 braces and has an else clause. This is used to implement
9950 Returns the new statement. */
9953 cp_parser_implicitly_scoped_statement (cp_parser
* parser
, bool *if_p
)
9960 /* Mark if () ; with a special NOP_EXPR. */
9961 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
9963 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
9964 cp_lexer_consume_token (parser
->lexer
);
9965 statement
= add_stmt (build_empty_stmt (loc
));
9967 /* if a compound is opened, we simply parse the statement directly. */
9968 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
9969 statement
= cp_parser_compound_statement (parser
, NULL
, false, false);
9970 /* If the token is not a `{', then we must take special action. */
9973 /* Create a compound-statement. */
9974 statement
= begin_compound_stmt (0);
9975 /* Parse the dependent-statement. */
9976 cp_parser_statement (parser
, NULL_TREE
, false, if_p
);
9977 /* Finish the dummy compound-statement. */
9978 finish_compound_stmt (statement
);
9981 /* Return the statement. */
9985 /* For some dependent statements (like `while (cond) statement'), we
9986 have already created a scope. Therefore, even if the dependent
9987 statement is a compound-statement, we do not want to create another
9991 cp_parser_already_scoped_statement (cp_parser
* parser
)
9993 /* If the token is a `{', then we must take special action. */
9994 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_BRACE
))
9995 cp_parser_statement (parser
, NULL_TREE
, false, NULL
);
9998 /* Avoid calling cp_parser_compound_statement, so that we
9999 don't create a new scope. Do everything else by hand. */
10000 cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
);
10001 /* If the next keyword is `__label__' we have a label declaration. */
10002 while (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_LABEL
))
10003 cp_parser_label_declaration (parser
);
10004 /* Parse an (optional) statement-seq. */
10005 cp_parser_statement_seq_opt (parser
, NULL_TREE
);
10006 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
10010 /* Declarations [gram.dcl.dcl] */
10012 /* Parse an optional declaration-sequence.
10016 declaration-seq declaration */
10019 cp_parser_declaration_seq_opt (cp_parser
* parser
)
10025 token
= cp_lexer_peek_token (parser
->lexer
);
10027 if (token
->type
== CPP_CLOSE_BRACE
10028 || token
->type
== CPP_EOF
10029 || token
->type
== CPP_PRAGMA_EOL
)
10032 if (token
->type
== CPP_SEMICOLON
)
10034 /* A declaration consisting of a single semicolon is
10035 invalid. Allow it unless we're being pedantic. */
10036 cp_lexer_consume_token (parser
->lexer
);
10037 if (!in_system_header
)
10038 pedwarn (input_location
, OPT_Wpedantic
, "extra %<;%>");
10042 /* If we're entering or exiting a region that's implicitly
10043 extern "C", modify the lang context appropriately. */
10044 if (!parser
->implicit_extern_c
&& token
->implicit_extern_c
)
10046 push_lang_context (lang_name_c
);
10047 parser
->implicit_extern_c
= true;
10049 else if (parser
->implicit_extern_c
&& !token
->implicit_extern_c
)
10051 pop_lang_context ();
10052 parser
->implicit_extern_c
= false;
10055 if (token
->type
== CPP_PRAGMA
)
10057 /* A top-level declaration can consist solely of a #pragma.
10058 A nested declaration cannot, so this is done here and not
10059 in cp_parser_declaration. (A #pragma at block scope is
10060 handled in cp_parser_statement.) */
10061 cp_parser_pragma (parser
, pragma_external
);
10065 /* Parse the declaration itself. */
10066 cp_parser_declaration (parser
);
10070 /* Parse a declaration.
10074 function-definition
10075 template-declaration
10076 explicit-instantiation
10077 explicit-specialization
10078 linkage-specification
10079 namespace-definition
10084 __extension__ declaration */
10087 cp_parser_declaration (cp_parser
* parser
)
10091 int saved_pedantic
;
10093 tree attributes
= NULL_TREE
;
10095 /* Check for the `__extension__' keyword. */
10096 if (cp_parser_extension_opt (parser
, &saved_pedantic
))
10098 /* Parse the qualified declaration. */
10099 cp_parser_declaration (parser
);
10100 /* Restore the PEDANTIC flag. */
10101 pedantic
= saved_pedantic
;
10106 /* Try to figure out what kind of declaration is present. */
10107 token1
= *cp_lexer_peek_token (parser
->lexer
);
10109 if (token1
.type
!= CPP_EOF
)
10110 token2
= *cp_lexer_peek_nth_token (parser
->lexer
, 2);
10113 token2
.type
= CPP_EOF
;
10114 token2
.keyword
= RID_MAX
;
10117 /* Get the high-water mark for the DECLARATOR_OBSTACK. */
10118 p
= obstack_alloc (&declarator_obstack
, 0);
10120 /* If the next token is `extern' and the following token is a string
10121 literal, then we have a linkage specification. */
10122 if (token1
.keyword
== RID_EXTERN
10123 && cp_parser_is_pure_string_literal (&token2
))
10124 cp_parser_linkage_specification (parser
);
10125 /* If the next token is `template', then we have either a template
10126 declaration, an explicit instantiation, or an explicit
10128 else if (token1
.keyword
== RID_TEMPLATE
)
10130 /* `template <>' indicates a template specialization. */
10131 if (token2
.type
== CPP_LESS
10132 && cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
== CPP_GREATER
)
10133 cp_parser_explicit_specialization (parser
);
10134 /* `template <' indicates a template declaration. */
10135 else if (token2
.type
== CPP_LESS
)
10136 cp_parser_template_declaration (parser
, /*member_p=*/false);
10137 /* Anything else must be an explicit instantiation. */
10139 cp_parser_explicit_instantiation (parser
);
10141 /* If the next token is `export', then we have a template
10143 else if (token1
.keyword
== RID_EXPORT
)
10144 cp_parser_template_declaration (parser
, /*member_p=*/false);
10145 /* If the next token is `extern', 'static' or 'inline' and the one
10146 after that is `template', we have a GNU extended explicit
10147 instantiation directive. */
10148 else if (cp_parser_allow_gnu_extensions_p (parser
)
10149 && (token1
.keyword
== RID_EXTERN
10150 || token1
.keyword
== RID_STATIC
10151 || token1
.keyword
== RID_INLINE
)
10152 && token2
.keyword
== RID_TEMPLATE
)
10153 cp_parser_explicit_instantiation (parser
);
10154 /* If the next token is `namespace', check for a named or unnamed
10155 namespace definition. */
10156 else if (token1
.keyword
== RID_NAMESPACE
10157 && (/* A named namespace definition. */
10158 (token2
.type
== CPP_NAME
10159 && (cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
10161 /* An unnamed namespace definition. */
10162 || token2
.type
== CPP_OPEN_BRACE
10163 || token2
.keyword
== RID_ATTRIBUTE
))
10164 cp_parser_namespace_definition (parser
);
10165 /* An inline (associated) namespace definition. */
10166 else if (token1
.keyword
== RID_INLINE
10167 && token2
.keyword
== RID_NAMESPACE
)
10168 cp_parser_namespace_definition (parser
);
10169 /* Objective-C++ declaration/definition. */
10170 else if (c_dialect_objc () && OBJC_IS_AT_KEYWORD (token1
.keyword
))
10171 cp_parser_objc_declaration (parser
, NULL_TREE
);
10172 else if (c_dialect_objc ()
10173 && token1
.keyword
== RID_ATTRIBUTE
10174 && cp_parser_objc_valid_prefix_attributes (parser
, &attributes
))
10175 cp_parser_objc_declaration (parser
, attributes
);
10176 /* We must have either a block declaration or a function
10179 /* Try to parse a block-declaration, or a function-definition. */
10180 cp_parser_block_declaration (parser
, /*statement_p=*/false);
10182 /* Free any declarators allocated. */
10183 obstack_free (&declarator_obstack
, p
);
10186 /* Parse a block-declaration.
10191 namespace-alias-definition
10198 __extension__ block-declaration
10203 static_assert-declaration
10205 If STATEMENT_P is TRUE, then this block-declaration is occurring as
10206 part of a declaration-statement. */
10209 cp_parser_block_declaration (cp_parser
*parser
,
10213 int saved_pedantic
;
10215 /* Check for the `__extension__' keyword. */
10216 if (cp_parser_extension_opt (parser
, &saved_pedantic
))
10218 /* Parse the qualified declaration. */
10219 cp_parser_block_declaration (parser
, statement_p
);
10220 /* Restore the PEDANTIC flag. */
10221 pedantic
= saved_pedantic
;
10226 /* Peek at the next token to figure out which kind of declaration is
10228 token1
= cp_lexer_peek_token (parser
->lexer
);
10230 /* If the next keyword is `asm', we have an asm-definition. */
10231 if (token1
->keyword
== RID_ASM
)
10234 cp_parser_commit_to_tentative_parse (parser
);
10235 cp_parser_asm_definition (parser
);
10237 /* If the next keyword is `namespace', we have a
10238 namespace-alias-definition. */
10239 else if (token1
->keyword
== RID_NAMESPACE
)
10240 cp_parser_namespace_alias_definition (parser
);
10241 /* If the next keyword is `using', we have a
10242 using-declaration, a using-directive, or an alias-declaration. */
10243 else if (token1
->keyword
== RID_USING
)
10248 cp_parser_commit_to_tentative_parse (parser
);
10249 /* If the token after `using' is `namespace', then we have a
10250 using-directive. */
10251 token2
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
10252 if (token2
->keyword
== RID_NAMESPACE
)
10253 cp_parser_using_directive (parser
);
10254 /* If the second token after 'using' is '=', then we have an
10255 alias-declaration. */
10256 else if (cxx_dialect
>= cxx0x
10257 && token2
->type
== CPP_NAME
10258 && ((cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
== CPP_EQ
)
10259 || (cp_lexer_peek_nth_token (parser
->lexer
, 3)->keyword
10260 == RID_ATTRIBUTE
)))
10261 cp_parser_alias_declaration (parser
);
10262 /* Otherwise, it's a using-declaration. */
10264 cp_parser_using_declaration (parser
,
10265 /*access_declaration_p=*/false);
10267 /* If the next keyword is `__label__' we have a misplaced label
10269 else if (token1
->keyword
== RID_LABEL
)
10271 cp_lexer_consume_token (parser
->lexer
);
10272 error_at (token1
->location
, "%<__label__%> not at the beginning of a block");
10273 cp_parser_skip_to_end_of_statement (parser
);
10274 /* If the next token is now a `;', consume it. */
10275 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
10276 cp_lexer_consume_token (parser
->lexer
);
10278 /* If the next token is `static_assert' we have a static assertion. */
10279 else if (token1
->keyword
== RID_STATIC_ASSERT
)
10280 cp_parser_static_assert (parser
, /*member_p=*/false);
10281 /* Anything else must be a simple-declaration. */
10283 cp_parser_simple_declaration (parser
, !statement_p
,
10284 /*maybe_range_for_decl*/NULL
);
10287 /* Parse a simple-declaration.
10289 simple-declaration:
10290 decl-specifier-seq [opt] init-declarator-list [opt] ;
10292 init-declarator-list:
10294 init-declarator-list , init-declarator
10296 If FUNCTION_DEFINITION_ALLOWED_P is TRUE, then we also recognize a
10297 function-definition as a simple-declaration.
10299 If MAYBE_RANGE_FOR_DECL is not NULL, the pointed tree will be set to the
10300 parsed declaration if it is an uninitialized single declarator not followed
10301 by a `;', or to error_mark_node otherwise. Either way, the trailing `;',
10302 if present, will not be consumed. */
10305 cp_parser_simple_declaration (cp_parser
* parser
,
10306 bool function_definition_allowed_p
,
10307 tree
*maybe_range_for_decl
)
10309 cp_decl_specifier_seq decl_specifiers
;
10310 int declares_class_or_enum
;
10311 bool saw_declarator
;
10313 if (maybe_range_for_decl
)
10314 *maybe_range_for_decl
= NULL_TREE
;
10316 /* Defer access checks until we know what is being declared; the
10317 checks for names appearing in the decl-specifier-seq should be
10318 done as if we were in the scope of the thing being declared. */
10319 push_deferring_access_checks (dk_deferred
);
10321 /* Parse the decl-specifier-seq. We have to keep track of whether
10322 or not the decl-specifier-seq declares a named class or
10323 enumeration type, since that is the only case in which the
10324 init-declarator-list is allowed to be empty.
10328 In a simple-declaration, the optional init-declarator-list can be
10329 omitted only when declaring a class or enumeration, that is when
10330 the decl-specifier-seq contains either a class-specifier, an
10331 elaborated-type-specifier, or an enum-specifier. */
10332 cp_parser_decl_specifier_seq (parser
,
10333 CP_PARSER_FLAGS_OPTIONAL
,
10335 &declares_class_or_enum
);
10336 /* We no longer need to defer access checks. */
10337 stop_deferring_access_checks ();
10339 /* In a block scope, a valid declaration must always have a
10340 decl-specifier-seq. By not trying to parse declarators, we can
10341 resolve the declaration/expression ambiguity more quickly. */
10342 if (!function_definition_allowed_p
10343 && !decl_specifiers
.any_specifiers_p
)
10345 cp_parser_error (parser
, "expected declaration");
10349 /* If the next two tokens are both identifiers, the code is
10350 erroneous. The usual cause of this situation is code like:
10354 where "T" should name a type -- but does not. */
10355 if (!decl_specifiers
.any_type_specifiers_p
10356 && cp_parser_parse_and_diagnose_invalid_type_name (parser
))
10358 /* If parsing tentatively, we should commit; we really are
10359 looking at a declaration. */
10360 cp_parser_commit_to_tentative_parse (parser
);
10365 /* If we have seen at least one decl-specifier, and the next token
10366 is not a parenthesis, then we must be looking at a declaration.
10367 (After "int (" we might be looking at a functional cast.) */
10368 if (decl_specifiers
.any_specifiers_p
10369 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_PAREN
)
10370 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_BRACE
)
10371 && !cp_parser_error_occurred (parser
))
10372 cp_parser_commit_to_tentative_parse (parser
);
10374 /* Keep going until we hit the `;' at the end of the simple
10376 saw_declarator
= false;
10377 while (cp_lexer_next_token_is_not (parser
->lexer
,
10381 bool function_definition_p
;
10384 if (saw_declarator
)
10386 /* If we are processing next declarator, coma is expected */
10387 token
= cp_lexer_peek_token (parser
->lexer
);
10388 gcc_assert (token
->type
== CPP_COMMA
);
10389 cp_lexer_consume_token (parser
->lexer
);
10390 if (maybe_range_for_decl
)
10391 *maybe_range_for_decl
= error_mark_node
;
10394 saw_declarator
= true;
10396 /* Parse the init-declarator. */
10397 decl
= cp_parser_init_declarator (parser
, &decl_specifiers
,
10399 function_definition_allowed_p
,
10400 /*member_p=*/false,
10401 declares_class_or_enum
,
10402 &function_definition_p
,
10403 maybe_range_for_decl
);
10404 /* If an error occurred while parsing tentatively, exit quickly.
10405 (That usually happens when in the body of a function; each
10406 statement is treated as a declaration-statement until proven
10408 if (cp_parser_error_occurred (parser
))
10410 /* Handle function definitions specially. */
10411 if (function_definition_p
)
10413 /* If the next token is a `,', then we are probably
10414 processing something like:
10418 which is erroneous. */
10419 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
10421 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
10422 error_at (token
->location
,
10424 " declarations and function-definitions is forbidden");
10426 /* Otherwise, we're done with the list of declarators. */
10429 pop_deferring_access_checks ();
10433 if (maybe_range_for_decl
&& *maybe_range_for_decl
== NULL_TREE
)
10434 *maybe_range_for_decl
= decl
;
10435 /* The next token should be either a `,' or a `;'. */
10436 token
= cp_lexer_peek_token (parser
->lexer
);
10437 /* If it's a `,', there are more declarators to come. */
10438 if (token
->type
== CPP_COMMA
)
10439 /* will be consumed next time around */;
10440 /* If it's a `;', we are done. */
10441 else if (token
->type
== CPP_SEMICOLON
|| maybe_range_for_decl
)
10443 /* Anything else is an error. */
10446 /* If we have already issued an error message we don't need
10447 to issue another one. */
10448 if (decl
!= error_mark_node
10449 || cp_parser_uncommitted_to_tentative_parse_p (parser
))
10450 cp_parser_error (parser
, "expected %<,%> or %<;%>");
10451 /* Skip tokens until we reach the end of the statement. */
10452 cp_parser_skip_to_end_of_statement (parser
);
10453 /* If the next token is now a `;', consume it. */
10454 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
10455 cp_lexer_consume_token (parser
->lexer
);
10458 /* After the first time around, a function-definition is not
10459 allowed -- even if it was OK at first. For example:
10464 function_definition_allowed_p
= false;
10467 /* Issue an error message if no declarators are present, and the
10468 decl-specifier-seq does not itself declare a class or
10470 if (!saw_declarator
)
10472 if (cp_parser_declares_only_class_p (parser
))
10473 shadow_tag (&decl_specifiers
);
10474 /* Perform any deferred access checks. */
10475 perform_deferred_access_checks ();
10478 /* Consume the `;'. */
10479 if (!maybe_range_for_decl
)
10480 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
10483 pop_deferring_access_checks ();
10486 /* Parse a decl-specifier-seq.
10488 decl-specifier-seq:
10489 decl-specifier-seq [opt] decl-specifier
10492 storage-class-specifier
10503 Set *DECL_SPECS to a representation of the decl-specifier-seq.
10505 The parser flags FLAGS is used to control type-specifier parsing.
10507 *DECLARES_CLASS_OR_ENUM is set to the bitwise or of the following
10510 1: one of the decl-specifiers is an elaborated-type-specifier
10511 (i.e., a type declaration)
10512 2: one of the decl-specifiers is an enum-specifier or a
10513 class-specifier (i.e., a type definition)
10518 cp_parser_decl_specifier_seq (cp_parser
* parser
,
10519 cp_parser_flags flags
,
10520 cp_decl_specifier_seq
*decl_specs
,
10521 int* declares_class_or_enum
)
10523 bool constructor_possible_p
= !parser
->in_declarator_p
;
10524 cp_token
*start_token
= NULL
;
10527 /* Clear DECL_SPECS. */
10528 clear_decl_specs (decl_specs
);
10530 /* Assume no class or enumeration type is declared. */
10531 *declares_class_or_enum
= 0;
10533 /* Keep reading specifiers until there are no more to read. */
10536 bool constructor_p
;
10537 bool found_decl_spec
;
10541 /* Peek at the next token. */
10542 token
= cp_lexer_peek_token (parser
->lexer
);
10544 /* Save the first token of the decl spec list for error
10547 start_token
= token
;
10548 /* Handle attributes. */
10549 if (token
->keyword
== RID_ATTRIBUTE
)
10551 /* Parse the attributes. */
10552 decl_specs
->attributes
10553 = chainon (decl_specs
->attributes
,
10554 cp_parser_attributes_opt (parser
));
10555 if (decl_specs
->locations
[ds_attribute
] == 0)
10556 decl_specs
->locations
[ds_attribute
] = token
->location
;
10559 /* Assume we will find a decl-specifier keyword. */
10560 found_decl_spec
= true;
10561 /* If the next token is an appropriate keyword, we can simply
10562 add it to the list. */
10563 switch (token
->keyword
)
10569 if (!at_class_scope_p ())
10571 error_at (token
->location
, "%<friend%> used outside of class");
10572 cp_lexer_purge_token (parser
->lexer
);
10577 /* Consume the token. */
10578 cp_lexer_consume_token (parser
->lexer
);
10582 case RID_CONSTEXPR
:
10584 cp_lexer_consume_token (parser
->lexer
);
10587 /* function-specifier:
10594 cp_parser_function_specifier_opt (parser
, decl_specs
);
10601 /* Consume the token. */
10602 cp_lexer_consume_token (parser
->lexer
);
10603 /* A constructor declarator cannot appear in a typedef. */
10604 constructor_possible_p
= false;
10605 /* The "typedef" keyword can only occur in a declaration; we
10606 may as well commit at this point. */
10607 cp_parser_commit_to_tentative_parse (parser
);
10609 if (decl_specs
->storage_class
!= sc_none
)
10610 decl_specs
->conflicting_specifiers_p
= true;
10613 /* storage-class-specifier:
10623 if (cxx_dialect
== cxx98
)
10625 /* Consume the token. */
10626 cp_lexer_consume_token (parser
->lexer
);
10628 /* Complain about `auto' as a storage specifier, if
10629 we're complaining about C++0x compatibility. */
10630 warning_at (token
->location
, OPT_Wc__0x_compat
, "%<auto%>"
10631 " changes meaning in C++11; please remove it");
10633 /* Set the storage class anyway. */
10634 cp_parser_set_storage_class (parser
, decl_specs
, RID_AUTO
,
10638 /* C++0x auto type-specifier. */
10639 found_decl_spec
= false;
10646 /* Consume the token. */
10647 cp_lexer_consume_token (parser
->lexer
);
10648 cp_parser_set_storage_class (parser
, decl_specs
, token
->keyword
,
10652 /* Consume the token. */
10654 cp_lexer_consume_token (parser
->lexer
);
10658 /* We did not yet find a decl-specifier yet. */
10659 found_decl_spec
= false;
10663 if (found_decl_spec
10664 && (flags
& CP_PARSER_FLAGS_ONLY_TYPE_OR_CONSTEXPR
)
10665 && token
->keyword
!= RID_CONSTEXPR
)
10666 error ("decl-specifier invalid in condition");
10669 set_and_check_decl_spec_loc (decl_specs
, ds
, token
->location
);
10671 /* Constructors are a special case. The `S' in `S()' is not a
10672 decl-specifier; it is the beginning of the declarator. */
10674 = (!found_decl_spec
10675 && constructor_possible_p
10676 && (cp_parser_constructor_declarator_p
10677 (parser
, decl_spec_seq_has_spec_p (decl_specs
, ds_friend
))));
10679 /* If we don't have a DECL_SPEC yet, then we must be looking at
10680 a type-specifier. */
10681 if (!found_decl_spec
&& !constructor_p
)
10683 int decl_spec_declares_class_or_enum
;
10684 bool is_cv_qualifier
;
10688 = cp_parser_type_specifier (parser
, flags
,
10690 /*is_declaration=*/true,
10691 &decl_spec_declares_class_or_enum
,
10693 *declares_class_or_enum
|= decl_spec_declares_class_or_enum
;
10695 /* If this type-specifier referenced a user-defined type
10696 (a typedef, class-name, etc.), then we can't allow any
10697 more such type-specifiers henceforth.
10701 The longest sequence of decl-specifiers that could
10702 possibly be a type name is taken as the
10703 decl-specifier-seq of a declaration. The sequence shall
10704 be self-consistent as described below.
10708 As a general rule, at most one type-specifier is allowed
10709 in the complete decl-specifier-seq of a declaration. The
10710 only exceptions are the following:
10712 -- const or volatile can be combined with any other
10715 -- signed or unsigned can be combined with char, long,
10723 void g (const int Pc);
10725 Here, Pc is *not* part of the decl-specifier seq; it's
10726 the declarator. Therefore, once we see a type-specifier
10727 (other than a cv-qualifier), we forbid any additional
10728 user-defined types. We *do* still allow things like `int
10729 int' to be considered a decl-specifier-seq, and issue the
10730 error message later. */
10731 if (type_spec
&& !is_cv_qualifier
)
10732 flags
|= CP_PARSER_FLAGS_NO_USER_DEFINED_TYPES
;
10733 /* A constructor declarator cannot follow a type-specifier. */
10736 constructor_possible_p
= false;
10737 found_decl_spec
= true;
10738 if (!is_cv_qualifier
)
10739 decl_specs
->any_type_specifiers_p
= true;
10743 /* If we still do not have a DECL_SPEC, then there are no more
10744 decl-specifiers. */
10745 if (!found_decl_spec
)
10748 decl_specs
->any_specifiers_p
= true;
10749 /* After we see one decl-specifier, further decl-specifiers are
10750 always optional. */
10751 flags
|= CP_PARSER_FLAGS_OPTIONAL
;
10754 /* Don't allow a friend specifier with a class definition. */
10755 if (decl_spec_seq_has_spec_p (decl_specs
, ds_friend
)
10756 && (*declares_class_or_enum
& 2))
10757 error_at (decl_specs
->locations
[ds_friend
],
10758 "class definition may not be declared a friend");
10761 /* Parse an (optional) storage-class-specifier.
10763 storage-class-specifier:
10772 storage-class-specifier:
10775 Returns an IDENTIFIER_NODE corresponding to the keyword used. */
10778 cp_parser_storage_class_specifier_opt (cp_parser
* parser
)
10780 switch (cp_lexer_peek_token (parser
->lexer
)->keyword
)
10783 if (cxx_dialect
!= cxx98
)
10785 /* Fall through for C++98. */
10792 /* Consume the token. */
10793 return cp_lexer_consume_token (parser
->lexer
)->u
.value
;
10800 /* Parse an (optional) function-specifier.
10802 function-specifier:
10807 Returns an IDENTIFIER_NODE corresponding to the keyword used.
10808 Updates DECL_SPECS, if it is non-NULL. */
10811 cp_parser_function_specifier_opt (cp_parser
* parser
,
10812 cp_decl_specifier_seq
*decl_specs
)
10814 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
10815 switch (token
->keyword
)
10818 set_and_check_decl_spec_loc (decl_specs
, ds_inline
, token
->location
);
10822 /* 14.5.2.3 [temp.mem]
10824 A member function template shall not be virtual. */
10825 if (PROCESSING_REAL_TEMPLATE_DECL_P ())
10826 error_at (token
->location
, "templates may not be %<virtual%>");
10827 set_and_check_decl_spec_loc (decl_specs
, ds_virtual
, token
->location
);
10831 set_and_check_decl_spec_loc (decl_specs
, ds_explicit
, token
->location
);
10838 /* Consume the token. */
10839 return cp_lexer_consume_token (parser
->lexer
)->u
.value
;
10842 /* Parse a linkage-specification.
10844 linkage-specification:
10845 extern string-literal { declaration-seq [opt] }
10846 extern string-literal declaration */
10849 cp_parser_linkage_specification (cp_parser
* parser
)
10853 /* Look for the `extern' keyword. */
10854 cp_parser_require_keyword (parser
, RID_EXTERN
, RT_EXTERN
);
10856 /* Look for the string-literal. */
10857 linkage
= cp_parser_string_literal (parser
, false, false);
10859 /* Transform the literal into an identifier. If the literal is a
10860 wide-character string, or contains embedded NULs, then we can't
10861 handle it as the user wants. */
10862 if (strlen (TREE_STRING_POINTER (linkage
))
10863 != (size_t) (TREE_STRING_LENGTH (linkage
) - 1))
10865 cp_parser_error (parser
, "invalid linkage-specification");
10866 /* Assume C++ linkage. */
10867 linkage
= lang_name_cplusplus
;
10870 linkage
= get_identifier (TREE_STRING_POINTER (linkage
));
10872 /* We're now using the new linkage. */
10873 push_lang_context (linkage
);
10875 /* If the next token is a `{', then we're using the first
10877 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
10879 /* Consume the `{' token. */
10880 cp_lexer_consume_token (parser
->lexer
);
10881 /* Parse the declarations. */
10882 cp_parser_declaration_seq_opt (parser
);
10883 /* Look for the closing `}'. */
10884 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
10886 /* Otherwise, there's just one declaration. */
10889 bool saved_in_unbraced_linkage_specification_p
;
10891 saved_in_unbraced_linkage_specification_p
10892 = parser
->in_unbraced_linkage_specification_p
;
10893 parser
->in_unbraced_linkage_specification_p
= true;
10894 cp_parser_declaration (parser
);
10895 parser
->in_unbraced_linkage_specification_p
10896 = saved_in_unbraced_linkage_specification_p
;
10899 /* We're done with the linkage-specification. */
10900 pop_lang_context ();
10903 /* Parse a static_assert-declaration.
10905 static_assert-declaration:
10906 static_assert ( constant-expression , string-literal ) ;
10908 If MEMBER_P, this static_assert is a class member. */
10911 cp_parser_static_assert(cp_parser
*parser
, bool member_p
)
10916 location_t saved_loc
;
10919 /* Peek at the `static_assert' token so we can keep track of exactly
10920 where the static assertion started. */
10921 token
= cp_lexer_peek_token (parser
->lexer
);
10922 saved_loc
= token
->location
;
10924 /* Look for the `static_assert' keyword. */
10925 if (!cp_parser_require_keyword (parser
, RID_STATIC_ASSERT
,
10929 /* We know we are in a static assertion; commit to any tentative
10931 if (cp_parser_parsing_tentatively (parser
))
10932 cp_parser_commit_to_tentative_parse (parser
);
10934 /* Parse the `(' starting the static assertion condition. */
10935 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
10937 /* Parse the constant-expression. Allow a non-constant expression
10938 here in order to give better diagnostics in finish_static_assert. */
10940 cp_parser_constant_expression (parser
,
10941 /*allow_non_constant_p=*/true,
10942 /*non_constant_p=*/&dummy
);
10944 /* Parse the separating `,'. */
10945 cp_parser_require (parser
, CPP_COMMA
, RT_COMMA
);
10947 /* Parse the string-literal message. */
10948 message
= cp_parser_string_literal (parser
,
10949 /*translate=*/false,
10952 /* A `)' completes the static assertion. */
10953 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
10954 cp_parser_skip_to_closing_parenthesis (parser
,
10955 /*recovering=*/true,
10956 /*or_comma=*/false,
10957 /*consume_paren=*/true);
10959 /* A semicolon terminates the declaration. */
10960 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
10962 /* Complete the static assertion, which may mean either processing
10963 the static assert now or saving it for template instantiation. */
10964 finish_static_assert (condition
, message
, saved_loc
, member_p
);
10967 /* Parse a `decltype' type. Returns the type.
10969 simple-type-specifier:
10970 decltype ( expression ) */
10973 cp_parser_decltype (cp_parser
*parser
)
10976 bool id_expression_or_member_access_p
= false;
10977 const char *saved_message
;
10978 bool saved_integral_constant_expression_p
;
10979 bool saved_non_integral_constant_expression_p
;
10980 cp_token
*id_expr_start_token
;
10981 cp_token
*start_token
= cp_lexer_peek_token (parser
->lexer
);
10983 if (start_token
->type
== CPP_DECLTYPE
)
10985 /* Already parsed. */
10986 cp_lexer_consume_token (parser
->lexer
);
10987 return start_token
->u
.value
;
10990 /* Look for the `decltype' token. */
10991 if (!cp_parser_require_keyword (parser
, RID_DECLTYPE
, RT_DECLTYPE
))
10992 return error_mark_node
;
10994 /* Types cannot be defined in a `decltype' expression. Save away the
10996 saved_message
= parser
->type_definition_forbidden_message
;
10998 /* And create the new one. */
10999 parser
->type_definition_forbidden_message
11000 = G_("types may not be defined in %<decltype%> expressions");
11002 /* The restrictions on constant-expressions do not apply inside
11003 decltype expressions. */
11004 saved_integral_constant_expression_p
11005 = parser
->integral_constant_expression_p
;
11006 saved_non_integral_constant_expression_p
11007 = parser
->non_integral_constant_expression_p
;
11008 parser
->integral_constant_expression_p
= false;
11010 /* Do not actually evaluate the expression. */
11011 ++cp_unevaluated_operand
;
11013 /* Do not warn about problems with the expression. */
11014 ++c_inhibit_evaluation_warnings
;
11016 /* Parse the opening `('. */
11017 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
11018 return error_mark_node
;
11020 /* First, try parsing an id-expression. */
11021 id_expr_start_token
= cp_lexer_peek_token (parser
->lexer
);
11022 cp_parser_parse_tentatively (parser
);
11023 expr
= cp_parser_id_expression (parser
,
11024 /*template_keyword_p=*/false,
11025 /*check_dependency_p=*/true,
11026 /*template_p=*/NULL
,
11027 /*declarator_p=*/false,
11028 /*optional_p=*/false);
11030 if (!cp_parser_error_occurred (parser
) && expr
!= error_mark_node
)
11032 bool non_integral_constant_expression_p
= false;
11033 tree id_expression
= expr
;
11035 const char *error_msg
;
11037 if (TREE_CODE (expr
) == IDENTIFIER_NODE
)
11038 /* Lookup the name we got back from the id-expression. */
11039 expr
= cp_parser_lookup_name (parser
, expr
,
11041 /*is_template=*/false,
11042 /*is_namespace=*/false,
11043 /*check_dependency=*/true,
11044 /*ambiguous_decls=*/NULL
,
11045 id_expr_start_token
->location
);
11048 && expr
!= error_mark_node
11049 && TREE_CODE (expr
) != TEMPLATE_ID_EXPR
11050 && TREE_CODE (expr
) != TYPE_DECL
11051 && (TREE_CODE (expr
) != BIT_NOT_EXPR
11052 || !TYPE_P (TREE_OPERAND (expr
, 0)))
11053 && cp_lexer_peek_token (parser
->lexer
)->type
== CPP_CLOSE_PAREN
)
11055 /* Complete lookup of the id-expression. */
11056 expr
= (finish_id_expression
11057 (id_expression
, expr
, parser
->scope
, &idk
,
11058 /*integral_constant_expression_p=*/false,
11059 /*allow_non_integral_constant_expression_p=*/true,
11060 &non_integral_constant_expression_p
,
11061 /*template_p=*/false,
11063 /*address_p=*/false,
11064 /*template_arg_p=*/false,
11066 id_expr_start_token
->location
));
11068 if (expr
== error_mark_node
)
11069 /* We found an id-expression, but it was something that we
11070 should not have found. This is an error, not something
11071 we can recover from, so note that we found an
11072 id-expression and we'll recover as gracefully as
11074 id_expression_or_member_access_p
= true;
11078 && expr
!= error_mark_node
11079 && cp_lexer_peek_token (parser
->lexer
)->type
== CPP_CLOSE_PAREN
)
11080 /* We have an id-expression. */
11081 id_expression_or_member_access_p
= true;
11084 if (!id_expression_or_member_access_p
)
11086 /* Abort the id-expression parse. */
11087 cp_parser_abort_tentative_parse (parser
);
11089 /* Parsing tentatively, again. */
11090 cp_parser_parse_tentatively (parser
);
11092 /* Parse a class member access. */
11093 expr
= cp_parser_postfix_expression (parser
, /*address_p=*/false,
11095 /*member_access_only_p=*/true, NULL
);
11098 && expr
!= error_mark_node
11099 && cp_lexer_peek_token (parser
->lexer
)->type
== CPP_CLOSE_PAREN
)
11100 /* We have an id-expression. */
11101 id_expression_or_member_access_p
= true;
11104 if (id_expression_or_member_access_p
)
11105 /* We have parsed the complete id-expression or member access. */
11106 cp_parser_parse_definitely (parser
);
11109 bool saved_greater_than_is_operator_p
;
11111 /* Abort our attempt to parse an id-expression or member access
11113 cp_parser_abort_tentative_parse (parser
);
11115 /* Within a parenthesized expression, a `>' token is always
11116 the greater-than operator. */
11117 saved_greater_than_is_operator_p
11118 = parser
->greater_than_is_operator_p
;
11119 parser
->greater_than_is_operator_p
= true;
11121 /* Parse a full expression. */
11122 expr
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
11124 /* The `>' token might be the end of a template-id or
11125 template-parameter-list now. */
11126 parser
->greater_than_is_operator_p
11127 = saved_greater_than_is_operator_p
;
11130 /* Go back to evaluating expressions. */
11131 --cp_unevaluated_operand
;
11132 --c_inhibit_evaluation_warnings
;
11134 /* Restore the old message and the integral constant expression
11136 parser
->type_definition_forbidden_message
= saved_message
;
11137 parser
->integral_constant_expression_p
11138 = saved_integral_constant_expression_p
;
11139 parser
->non_integral_constant_expression_p
11140 = saved_non_integral_constant_expression_p
;
11142 /* Parse to the closing `)'. */
11143 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
11145 cp_parser_skip_to_closing_parenthesis (parser
, true, false,
11146 /*consume_paren=*/true);
11147 return error_mark_node
;
11150 expr
= finish_decltype_type (expr
, id_expression_or_member_access_p
,
11151 tf_warning_or_error
);
11153 /* Replace the decltype with a CPP_DECLTYPE so we don't need to parse
11155 start_token
->type
= CPP_DECLTYPE
;
11156 start_token
->u
.value
= expr
;
11157 start_token
->keyword
= RID_MAX
;
11158 cp_lexer_purge_tokens_after (parser
->lexer
, start_token
);
11163 /* Special member functions [gram.special] */
11165 /* Parse a conversion-function-id.
11167 conversion-function-id:
11168 operator conversion-type-id
11170 Returns an IDENTIFIER_NODE representing the operator. */
11173 cp_parser_conversion_function_id (cp_parser
* parser
)
11177 tree saved_qualifying_scope
;
11178 tree saved_object_scope
;
11179 tree pushed_scope
= NULL_TREE
;
11181 /* Look for the `operator' token. */
11182 if (!cp_parser_require_keyword (parser
, RID_OPERATOR
, RT_OPERATOR
))
11183 return error_mark_node
;
11184 /* When we parse the conversion-type-id, the current scope will be
11185 reset. However, we need that information in able to look up the
11186 conversion function later, so we save it here. */
11187 saved_scope
= parser
->scope
;
11188 saved_qualifying_scope
= parser
->qualifying_scope
;
11189 saved_object_scope
= parser
->object_scope
;
11190 /* We must enter the scope of the class so that the names of
11191 entities declared within the class are available in the
11192 conversion-type-id. For example, consider:
11199 S::operator I() { ... }
11201 In order to see that `I' is a type-name in the definition, we
11202 must be in the scope of `S'. */
11204 pushed_scope
= push_scope (saved_scope
);
11205 /* Parse the conversion-type-id. */
11206 type
= cp_parser_conversion_type_id (parser
);
11207 /* Leave the scope of the class, if any. */
11209 pop_scope (pushed_scope
);
11210 /* Restore the saved scope. */
11211 parser
->scope
= saved_scope
;
11212 parser
->qualifying_scope
= saved_qualifying_scope
;
11213 parser
->object_scope
= saved_object_scope
;
11214 /* If the TYPE is invalid, indicate failure. */
11215 if (type
== error_mark_node
)
11216 return error_mark_node
;
11217 return mangle_conv_op_name_for_type (type
);
11220 /* Parse a conversion-type-id:
11222 conversion-type-id:
11223 type-specifier-seq conversion-declarator [opt]
11225 Returns the TYPE specified. */
11228 cp_parser_conversion_type_id (cp_parser
* parser
)
11231 cp_decl_specifier_seq type_specifiers
;
11232 cp_declarator
*declarator
;
11233 tree type_specified
;
11235 /* Parse the attributes. */
11236 attributes
= cp_parser_attributes_opt (parser
);
11237 /* Parse the type-specifiers. */
11238 cp_parser_type_specifier_seq (parser
, /*is_declaration=*/false,
11239 /*is_trailing_return=*/false,
11241 /* If that didn't work, stop. */
11242 if (type_specifiers
.type
== error_mark_node
)
11243 return error_mark_node
;
11244 /* Parse the conversion-declarator. */
11245 declarator
= cp_parser_conversion_declarator_opt (parser
);
11247 type_specified
= grokdeclarator (declarator
, &type_specifiers
, TYPENAME
,
11248 /*initialized=*/0, &attributes
);
11250 cplus_decl_attributes (&type_specified
, attributes
, /*flags=*/0);
11252 /* Don't give this error when parsing tentatively. This happens to
11253 work because we always parse this definitively once. */
11254 if (! cp_parser_uncommitted_to_tentative_parse_p (parser
)
11255 && type_uses_auto (type_specified
))
11257 if (cxx_dialect
< cxx1y
)
11259 error ("invalid use of %<auto%> in conversion operator");
11260 return error_mark_node
;
11262 else if (template_parm_scope_p ())
11263 warning (0, "use of %<auto%> in member template "
11264 "conversion operator can never be deduced");
11267 return type_specified
;
11270 /* Parse an (optional) conversion-declarator.
11272 conversion-declarator:
11273 ptr-operator conversion-declarator [opt]
11277 static cp_declarator
*
11278 cp_parser_conversion_declarator_opt (cp_parser
* parser
)
11280 enum tree_code code
;
11282 cp_cv_quals cv_quals
;
11284 /* We don't know if there's a ptr-operator next, or not. */
11285 cp_parser_parse_tentatively (parser
);
11286 /* Try the ptr-operator. */
11287 code
= cp_parser_ptr_operator (parser
, &class_type
, &cv_quals
);
11288 /* If it worked, look for more conversion-declarators. */
11289 if (cp_parser_parse_definitely (parser
))
11291 cp_declarator
*declarator
;
11293 /* Parse another optional declarator. */
11294 declarator
= cp_parser_conversion_declarator_opt (parser
);
11296 return cp_parser_make_indirect_declarator
11297 (code
, class_type
, cv_quals
, declarator
);
11303 /* Parse an (optional) ctor-initializer.
11306 : mem-initializer-list
11308 Returns TRUE iff the ctor-initializer was actually present. */
11311 cp_parser_ctor_initializer_opt (cp_parser
* parser
)
11313 /* If the next token is not a `:', then there is no
11314 ctor-initializer. */
11315 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COLON
))
11317 /* Do default initialization of any bases and members. */
11318 if (DECL_CONSTRUCTOR_P (current_function_decl
))
11319 finish_mem_initializers (NULL_TREE
);
11324 /* Consume the `:' token. */
11325 cp_lexer_consume_token (parser
->lexer
);
11326 /* And the mem-initializer-list. */
11327 cp_parser_mem_initializer_list (parser
);
11332 /* Parse a mem-initializer-list.
11334 mem-initializer-list:
11335 mem-initializer ... [opt]
11336 mem-initializer ... [opt] , mem-initializer-list */
11339 cp_parser_mem_initializer_list (cp_parser
* parser
)
11341 tree mem_initializer_list
= NULL_TREE
;
11342 tree target_ctor
= error_mark_node
;
11343 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
11345 /* Let the semantic analysis code know that we are starting the
11346 mem-initializer-list. */
11347 if (!DECL_CONSTRUCTOR_P (current_function_decl
))
11348 error_at (token
->location
,
11349 "only constructors take member initializers");
11351 /* Loop through the list. */
11354 tree mem_initializer
;
11356 token
= cp_lexer_peek_token (parser
->lexer
);
11357 /* Parse the mem-initializer. */
11358 mem_initializer
= cp_parser_mem_initializer (parser
);
11359 /* If the next token is a `...', we're expanding member initializers. */
11360 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
11362 /* Consume the `...'. */
11363 cp_lexer_consume_token (parser
->lexer
);
11365 /* The TREE_PURPOSE must be a _TYPE, because base-specifiers
11366 can be expanded but members cannot. */
11367 if (mem_initializer
!= error_mark_node
11368 && !TYPE_P (TREE_PURPOSE (mem_initializer
)))
11370 error_at (token
->location
,
11371 "cannot expand initializer for member %<%D%>",
11372 TREE_PURPOSE (mem_initializer
));
11373 mem_initializer
= error_mark_node
;
11376 /* Construct the pack expansion type. */
11377 if (mem_initializer
!= error_mark_node
)
11378 mem_initializer
= make_pack_expansion (mem_initializer
);
11380 if (target_ctor
!= error_mark_node
11381 && mem_initializer
!= error_mark_node
)
11383 error ("mem-initializer for %qD follows constructor delegation",
11384 TREE_PURPOSE (mem_initializer
));
11385 mem_initializer
= error_mark_node
;
11387 /* Look for a target constructor. */
11388 if (mem_initializer
!= error_mark_node
11389 && TYPE_P (TREE_PURPOSE (mem_initializer
))
11390 && same_type_p (TREE_PURPOSE (mem_initializer
), current_class_type
))
11392 maybe_warn_cpp0x (CPP0X_DELEGATING_CTORS
);
11393 if (mem_initializer_list
)
11395 error ("constructor delegation follows mem-initializer for %qD",
11396 TREE_PURPOSE (mem_initializer_list
));
11397 mem_initializer
= error_mark_node
;
11399 target_ctor
= mem_initializer
;
11401 /* Add it to the list, unless it was erroneous. */
11402 if (mem_initializer
!= error_mark_node
)
11404 TREE_CHAIN (mem_initializer
) = mem_initializer_list
;
11405 mem_initializer_list
= mem_initializer
;
11407 /* If the next token is not a `,', we're done. */
11408 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
11410 /* Consume the `,' token. */
11411 cp_lexer_consume_token (parser
->lexer
);
11414 /* Perform semantic analysis. */
11415 if (DECL_CONSTRUCTOR_P (current_function_decl
))
11416 finish_mem_initializers (mem_initializer_list
);
11419 /* Parse a mem-initializer.
11422 mem-initializer-id ( expression-list [opt] )
11423 mem-initializer-id braced-init-list
11428 ( expression-list [opt] )
11430 Returns a TREE_LIST. The TREE_PURPOSE is the TYPE (for a base
11431 class) or FIELD_DECL (for a non-static data member) to initialize;
11432 the TREE_VALUE is the expression-list. An empty initialization
11433 list is represented by void_list_node. */
11436 cp_parser_mem_initializer (cp_parser
* parser
)
11438 tree mem_initializer_id
;
11439 tree expression_list
;
11441 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
11443 /* Find out what is being initialized. */
11444 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
11446 permerror (token
->location
,
11447 "anachronistic old-style base class initializer");
11448 mem_initializer_id
= NULL_TREE
;
11452 mem_initializer_id
= cp_parser_mem_initializer_id (parser
);
11453 if (mem_initializer_id
== error_mark_node
)
11454 return mem_initializer_id
;
11456 member
= expand_member_init (mem_initializer_id
);
11457 if (member
&& !DECL_P (member
))
11458 in_base_initializer
= 1;
11460 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
11462 bool expr_non_constant_p
;
11463 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
11464 expression_list
= cp_parser_braced_list (parser
, &expr_non_constant_p
);
11465 CONSTRUCTOR_IS_DIRECT_INIT (expression_list
) = 1;
11466 expression_list
= build_tree_list (NULL_TREE
, expression_list
);
11471 vec
= cp_parser_parenthesized_expression_list (parser
, non_attr
,
11473 /*allow_expansion_p=*/true,
11474 /*non_constant_p=*/NULL
);
11476 return error_mark_node
;
11477 expression_list
= build_tree_list_vec (vec
);
11478 release_tree_vector (vec
);
11481 if (expression_list
== error_mark_node
)
11482 return error_mark_node
;
11483 if (!expression_list
)
11484 expression_list
= void_type_node
;
11486 in_base_initializer
= 0;
11488 return member
? build_tree_list (member
, expression_list
) : error_mark_node
;
11491 /* Parse a mem-initializer-id.
11493 mem-initializer-id:
11494 :: [opt] nested-name-specifier [opt] class-name
11497 Returns a TYPE indicating the class to be initializer for the first
11498 production. Returns an IDENTIFIER_NODE indicating the data member
11499 to be initialized for the second production. */
11502 cp_parser_mem_initializer_id (cp_parser
* parser
)
11504 bool global_scope_p
;
11505 bool nested_name_specifier_p
;
11506 bool template_p
= false;
11509 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
11511 /* `typename' is not allowed in this context ([temp.res]). */
11512 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TYPENAME
))
11514 error_at (token
->location
,
11515 "keyword %<typename%> not allowed in this context (a qualified "
11516 "member initializer is implicitly a type)");
11517 cp_lexer_consume_token (parser
->lexer
);
11519 /* Look for the optional `::' operator. */
11521 = (cp_parser_global_scope_opt (parser
,
11522 /*current_scope_valid_p=*/false)
11524 /* Look for the optional nested-name-specifier. The simplest way to
11529 The keyword `typename' is not permitted in a base-specifier or
11530 mem-initializer; in these contexts a qualified name that
11531 depends on a template-parameter is implicitly assumed to be a
11534 is to assume that we have seen the `typename' keyword at this
11536 nested_name_specifier_p
11537 = (cp_parser_nested_name_specifier_opt (parser
,
11538 /*typename_keyword_p=*/true,
11539 /*check_dependency_p=*/true,
11541 /*is_declaration=*/true)
11543 if (nested_name_specifier_p
)
11544 template_p
= cp_parser_optional_template_keyword (parser
);
11545 /* If there is a `::' operator or a nested-name-specifier, then we
11546 are definitely looking for a class-name. */
11547 if (global_scope_p
|| nested_name_specifier_p
)
11548 return cp_parser_class_name (parser
,
11549 /*typename_keyword_p=*/true,
11550 /*template_keyword_p=*/template_p
,
11552 /*check_dependency_p=*/true,
11553 /*class_head_p=*/false,
11554 /*is_declaration=*/true);
11555 /* Otherwise, we could also be looking for an ordinary identifier. */
11556 cp_parser_parse_tentatively (parser
);
11557 /* Try a class-name. */
11558 id
= cp_parser_class_name (parser
,
11559 /*typename_keyword_p=*/true,
11560 /*template_keyword_p=*/false,
11562 /*check_dependency_p=*/true,
11563 /*class_head_p=*/false,
11564 /*is_declaration=*/true);
11565 /* If we found one, we're done. */
11566 if (cp_parser_parse_definitely (parser
))
11568 /* Otherwise, look for an ordinary identifier. */
11569 return cp_parser_identifier (parser
);
11572 /* Overloading [gram.over] */
11574 /* Parse an operator-function-id.
11576 operator-function-id:
11579 Returns an IDENTIFIER_NODE for the operator which is a
11580 human-readable spelling of the identifier, e.g., `operator +'. */
11583 cp_parser_operator_function_id (cp_parser
* parser
)
11585 /* Look for the `operator' keyword. */
11586 if (!cp_parser_require_keyword (parser
, RID_OPERATOR
, RT_OPERATOR
))
11587 return error_mark_node
;
11588 /* And then the name of the operator itself. */
11589 return cp_parser_operator (parser
);
11592 /* Return an identifier node for a user-defined literal operator.
11593 The suffix identifier is chained to the operator name identifier. */
11596 cp_literal_operator_id (const char* name
)
11599 char *buffer
= XNEWVEC (char, strlen (UDLIT_OP_ANSI_PREFIX
)
11600 + strlen (name
) + 10);
11601 sprintf (buffer
, UDLIT_OP_ANSI_FORMAT
, name
);
11602 identifier
= get_identifier (buffer
);
11603 /*IDENTIFIER_UDLIT_OPNAME_P (identifier) = 1; If we get a flag someday. */
11608 /* Parse an operator.
11611 new delete new[] delete[] + - * / % ^ & | ~ ! = < >
11612 += -= *= /= %= ^= &= |= << >> >>= <<= == != <= >= &&
11613 || ++ -- , ->* -> () []
11620 Returns an IDENTIFIER_NODE for the operator which is a
11621 human-readable spelling of the identifier, e.g., `operator +'. */
11624 cp_parser_operator (cp_parser
* parser
)
11626 tree id
= NULL_TREE
;
11629 /* Peek at the next token. */
11630 token
= cp_lexer_peek_token (parser
->lexer
);
11631 /* Figure out which operator we have. */
11632 switch (token
->type
)
11638 /* The keyword should be either `new' or `delete'. */
11639 if (token
->keyword
== RID_NEW
)
11641 else if (token
->keyword
== RID_DELETE
)
11646 /* Consume the `new' or `delete' token. */
11647 cp_lexer_consume_token (parser
->lexer
);
11649 /* Peek at the next token. */
11650 token
= cp_lexer_peek_token (parser
->lexer
);
11651 /* If it's a `[' token then this is the array variant of the
11653 if (token
->type
== CPP_OPEN_SQUARE
)
11655 /* Consume the `[' token. */
11656 cp_lexer_consume_token (parser
->lexer
);
11657 /* Look for the `]' token. */
11658 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
11659 id
= ansi_opname (op
== NEW_EXPR
11660 ? VEC_NEW_EXPR
: VEC_DELETE_EXPR
);
11662 /* Otherwise, we have the non-array variant. */
11664 id
= ansi_opname (op
);
11670 id
= ansi_opname (PLUS_EXPR
);
11674 id
= ansi_opname (MINUS_EXPR
);
11678 id
= ansi_opname (MULT_EXPR
);
11682 id
= ansi_opname (TRUNC_DIV_EXPR
);
11686 id
= ansi_opname (TRUNC_MOD_EXPR
);
11690 id
= ansi_opname (BIT_XOR_EXPR
);
11694 id
= ansi_opname (BIT_AND_EXPR
);
11698 id
= ansi_opname (BIT_IOR_EXPR
);
11702 id
= ansi_opname (BIT_NOT_EXPR
);
11706 id
= ansi_opname (TRUTH_NOT_EXPR
);
11710 id
= ansi_assopname (NOP_EXPR
);
11714 id
= ansi_opname (LT_EXPR
);
11718 id
= ansi_opname (GT_EXPR
);
11722 id
= ansi_assopname (PLUS_EXPR
);
11726 id
= ansi_assopname (MINUS_EXPR
);
11730 id
= ansi_assopname (MULT_EXPR
);
11734 id
= ansi_assopname (TRUNC_DIV_EXPR
);
11738 id
= ansi_assopname (TRUNC_MOD_EXPR
);
11742 id
= ansi_assopname (BIT_XOR_EXPR
);
11746 id
= ansi_assopname (BIT_AND_EXPR
);
11750 id
= ansi_assopname (BIT_IOR_EXPR
);
11754 id
= ansi_opname (LSHIFT_EXPR
);
11758 id
= ansi_opname (RSHIFT_EXPR
);
11761 case CPP_LSHIFT_EQ
:
11762 id
= ansi_assopname (LSHIFT_EXPR
);
11765 case CPP_RSHIFT_EQ
:
11766 id
= ansi_assopname (RSHIFT_EXPR
);
11770 id
= ansi_opname (EQ_EXPR
);
11774 id
= ansi_opname (NE_EXPR
);
11778 id
= ansi_opname (LE_EXPR
);
11781 case CPP_GREATER_EQ
:
11782 id
= ansi_opname (GE_EXPR
);
11786 id
= ansi_opname (TRUTH_ANDIF_EXPR
);
11790 id
= ansi_opname (TRUTH_ORIF_EXPR
);
11793 case CPP_PLUS_PLUS
:
11794 id
= ansi_opname (POSTINCREMENT_EXPR
);
11797 case CPP_MINUS_MINUS
:
11798 id
= ansi_opname (PREDECREMENT_EXPR
);
11802 id
= ansi_opname (COMPOUND_EXPR
);
11805 case CPP_DEREF_STAR
:
11806 id
= ansi_opname (MEMBER_REF
);
11810 id
= ansi_opname (COMPONENT_REF
);
11813 case CPP_OPEN_PAREN
:
11814 /* Consume the `('. */
11815 cp_lexer_consume_token (parser
->lexer
);
11816 /* Look for the matching `)'. */
11817 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
11818 return ansi_opname (CALL_EXPR
);
11820 case CPP_OPEN_SQUARE
:
11821 /* Consume the `['. */
11822 cp_lexer_consume_token (parser
->lexer
);
11823 /* Look for the matching `]'. */
11824 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
11825 return ansi_opname (ARRAY_REF
);
11828 if (cxx_dialect
== cxx98
)
11829 maybe_warn_cpp0x (CPP0X_USER_DEFINED_LITERALS
);
11830 if (TREE_STRING_LENGTH (token
->u
.value
) > 2)
11832 error ("expected empty string after %<operator%> keyword");
11833 return error_mark_node
;
11835 /* Consume the string. */
11836 cp_lexer_consume_token (parser
->lexer
);
11837 /* Look for the suffix identifier. */
11838 token
= cp_lexer_peek_token (parser
->lexer
);
11839 if (token
->type
== CPP_NAME
)
11841 id
= cp_parser_identifier (parser
);
11842 if (id
!= error_mark_node
)
11844 const char *name
= IDENTIFIER_POINTER (id
);
11845 return cp_literal_operator_id (name
);
11850 error ("expected suffix identifier");
11851 return error_mark_node
;
11854 case CPP_STRING_USERDEF
:
11855 error ("missing space between %<\"\"%> and suffix identifier");
11856 return error_mark_node
;
11859 /* Anything else is an error. */
11863 /* If we have selected an identifier, we need to consume the
11866 cp_lexer_consume_token (parser
->lexer
);
11867 /* Otherwise, no valid operator name was present. */
11870 cp_parser_error (parser
, "expected operator");
11871 id
= error_mark_node
;
11877 /* Parse a template-declaration.
11879 template-declaration:
11880 export [opt] template < template-parameter-list > declaration
11882 If MEMBER_P is TRUE, this template-declaration occurs within a
11885 The grammar rule given by the standard isn't correct. What
11886 is really meant is:
11888 template-declaration:
11889 export [opt] template-parameter-list-seq
11890 decl-specifier-seq [opt] init-declarator [opt] ;
11891 export [opt] template-parameter-list-seq
11892 function-definition
11894 template-parameter-list-seq:
11895 template-parameter-list-seq [opt]
11896 template < template-parameter-list > */
11899 cp_parser_template_declaration (cp_parser
* parser
, bool member_p
)
11901 /* Check for `export'. */
11902 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_EXPORT
))
11904 /* Consume the `export' token. */
11905 cp_lexer_consume_token (parser
->lexer
);
11906 /* Warn that we do not support `export'. */
11907 warning (0, "keyword %<export%> not implemented, and will be ignored");
11910 cp_parser_template_declaration_after_export (parser
, member_p
);
11913 /* Parse a template-parameter-list.
11915 template-parameter-list:
11917 template-parameter-list , template-parameter
11919 Returns a TREE_LIST. Each node represents a template parameter.
11920 The nodes are connected via their TREE_CHAINs. */
11923 cp_parser_template_parameter_list (cp_parser
* parser
)
11925 tree parameter_list
= NULL_TREE
;
11927 begin_template_parm_list ();
11929 /* The loop below parses the template parms. We first need to know
11930 the total number of template parms to be able to compute proper
11931 canonical types of each dependent type. So after the loop, when
11932 we know the total number of template parms,
11933 end_template_parm_list computes the proper canonical types and
11934 fixes up the dependent types accordingly. */
11939 bool is_parameter_pack
;
11940 location_t parm_loc
;
11942 /* Parse the template-parameter. */
11943 parm_loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
11944 parameter
= cp_parser_template_parameter (parser
,
11946 &is_parameter_pack
);
11947 /* Add it to the list. */
11948 if (parameter
!= error_mark_node
)
11949 parameter_list
= process_template_parm (parameter_list
,
11957 tree err_parm
= build_tree_list (parameter
, parameter
);
11958 parameter_list
= chainon (parameter_list
, err_parm
);
11961 /* If the next token is not a `,', we're done. */
11962 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
11964 /* Otherwise, consume the `,' token. */
11965 cp_lexer_consume_token (parser
->lexer
);
11968 return end_template_parm_list (parameter_list
);
11971 /* Parse a template-parameter.
11973 template-parameter:
11975 parameter-declaration
11977 If all goes well, returns a TREE_LIST. The TREE_VALUE represents
11978 the parameter. The TREE_PURPOSE is the default value, if any.
11979 Returns ERROR_MARK_NODE on failure. *IS_NON_TYPE is set to true
11980 iff this parameter is a non-type parameter. *IS_PARAMETER_PACK is
11981 set to true iff this parameter is a parameter pack. */
11984 cp_parser_template_parameter (cp_parser
* parser
, bool *is_non_type
,
11985 bool *is_parameter_pack
)
11988 cp_parameter_declarator
*parameter_declarator
;
11989 cp_declarator
*id_declarator
;
11992 /* Assume it is a type parameter or a template parameter. */
11993 *is_non_type
= false;
11994 /* Assume it not a parameter pack. */
11995 *is_parameter_pack
= false;
11996 /* Peek at the next token. */
11997 token
= cp_lexer_peek_token (parser
->lexer
);
11998 /* If it is `class' or `template', we have a type-parameter. */
11999 if (token
->keyword
== RID_TEMPLATE
)
12000 return cp_parser_type_parameter (parser
, is_parameter_pack
);
12001 /* If it is `class' or `typename' we do not know yet whether it is a
12002 type parameter or a non-type parameter. Consider:
12004 template <typename T, typename T::X X> ...
12008 template <class C, class D*> ...
12010 Here, the first parameter is a type parameter, and the second is
12011 a non-type parameter. We can tell by looking at the token after
12012 the identifier -- if it is a `,', `=', or `>' then we have a type
12014 if (token
->keyword
== RID_TYPENAME
|| token
->keyword
== RID_CLASS
)
12016 /* Peek at the token after `class' or `typename'. */
12017 token
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
12018 /* If it's an ellipsis, we have a template type parameter
12020 if (token
->type
== CPP_ELLIPSIS
)
12021 return cp_parser_type_parameter (parser
, is_parameter_pack
);
12022 /* If it's an identifier, skip it. */
12023 if (token
->type
== CPP_NAME
)
12024 token
= cp_lexer_peek_nth_token (parser
->lexer
, 3);
12025 /* Now, see if the token looks like the end of a template
12027 if (token
->type
== CPP_COMMA
12028 || token
->type
== CPP_EQ
12029 || token
->type
== CPP_GREATER
)
12030 return cp_parser_type_parameter (parser
, is_parameter_pack
);
12033 /* Otherwise, it is a non-type parameter.
12037 When parsing a default template-argument for a non-type
12038 template-parameter, the first non-nested `>' is taken as the end
12039 of the template parameter-list rather than a greater-than
12041 *is_non_type
= true;
12042 parameter_declarator
12043 = cp_parser_parameter_declaration (parser
, /*template_parm_p=*/true,
12044 /*parenthesized_p=*/NULL
);
12046 /* If the parameter declaration is marked as a parameter pack, set
12047 *IS_PARAMETER_PACK to notify the caller. Also, unmark the
12048 declarator's PACK_EXPANSION_P, otherwise we'll get errors from
12050 if (parameter_declarator
12051 && parameter_declarator
->declarator
12052 && parameter_declarator
->declarator
->parameter_pack_p
)
12054 *is_parameter_pack
= true;
12055 parameter_declarator
->declarator
->parameter_pack_p
= false;
12058 /* If the next token is an ellipsis, and we don't already have it
12059 marked as a parameter pack, then we have a parameter pack (that
12060 has no declarator). */
12061 if (!*is_parameter_pack
12062 && cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
)
12063 && declarator_can_be_parameter_pack (parameter_declarator
->declarator
))
12065 /* Consume the `...'. */
12066 cp_lexer_consume_token (parser
->lexer
);
12067 maybe_warn_variadic_templates ();
12069 *is_parameter_pack
= true;
12071 /* We might end up with a pack expansion as the type of the non-type
12072 template parameter, in which case this is a non-type template
12074 else if (parameter_declarator
12075 && parameter_declarator
->decl_specifiers
.type
12076 && PACK_EXPANSION_P (parameter_declarator
->decl_specifiers
.type
))
12078 *is_parameter_pack
= true;
12079 parameter_declarator
->decl_specifiers
.type
=
12080 PACK_EXPANSION_PATTERN (parameter_declarator
->decl_specifiers
.type
);
12083 if (*is_parameter_pack
&& cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
12085 /* Parameter packs cannot have default arguments. However, a
12086 user may try to do so, so we'll parse them and give an
12087 appropriate diagnostic here. */
12089 cp_token
*start_token
= cp_lexer_peek_token (parser
->lexer
);
12091 /* Find the name of the parameter pack. */
12092 id_declarator
= parameter_declarator
->declarator
;
12093 while (id_declarator
&& id_declarator
->kind
!= cdk_id
)
12094 id_declarator
= id_declarator
->declarator
;
12096 if (id_declarator
&& id_declarator
->kind
== cdk_id
)
12097 error_at (start_token
->location
,
12098 "template parameter pack %qD cannot have a default argument",
12099 id_declarator
->u
.id
.unqualified_name
);
12101 error_at (start_token
->location
,
12102 "template parameter pack cannot have a default argument");
12104 /* Parse the default argument, but throw away the result. */
12105 cp_parser_default_argument (parser
, /*template_parm_p=*/true);
12108 parm
= grokdeclarator (parameter_declarator
->declarator
,
12109 ¶meter_declarator
->decl_specifiers
,
12110 TPARM
, /*initialized=*/0,
12111 /*attrlist=*/NULL
);
12112 if (parm
== error_mark_node
)
12113 return error_mark_node
;
12115 return build_tree_list (parameter_declarator
->default_argument
, parm
);
12118 /* Parse a type-parameter.
12121 class identifier [opt]
12122 class identifier [opt] = type-id
12123 typename identifier [opt]
12124 typename identifier [opt] = type-id
12125 template < template-parameter-list > class identifier [opt]
12126 template < template-parameter-list > class identifier [opt]
12129 GNU Extension (variadic templates):
12132 class ... identifier [opt]
12133 typename ... identifier [opt]
12135 Returns a TREE_LIST. The TREE_VALUE is itself a TREE_LIST. The
12136 TREE_PURPOSE is the default-argument, if any. The TREE_VALUE is
12137 the declaration of the parameter.
12139 Sets *IS_PARAMETER_PACK if this is a template parameter pack. */
12142 cp_parser_type_parameter (cp_parser
* parser
, bool *is_parameter_pack
)
12147 /* Look for a keyword to tell us what kind of parameter this is. */
12148 token
= cp_parser_require (parser
, CPP_KEYWORD
, RT_CLASS_TYPENAME_TEMPLATE
);
12150 return error_mark_node
;
12152 switch (token
->keyword
)
12158 tree default_argument
;
12160 /* If the next token is an ellipsis, we have a template
12162 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
12164 /* Consume the `...' token. */
12165 cp_lexer_consume_token (parser
->lexer
);
12166 maybe_warn_variadic_templates ();
12168 *is_parameter_pack
= true;
12171 /* If the next token is an identifier, then it names the
12173 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
12174 identifier
= cp_parser_identifier (parser
);
12176 identifier
= NULL_TREE
;
12178 /* Create the parameter. */
12179 parameter
= finish_template_type_parm (class_type_node
, identifier
);
12181 /* If the next token is an `=', we have a default argument. */
12182 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
12184 /* Consume the `=' token. */
12185 cp_lexer_consume_token (parser
->lexer
);
12186 /* Parse the default-argument. */
12187 push_deferring_access_checks (dk_no_deferred
);
12188 default_argument
= cp_parser_type_id (parser
);
12190 /* Template parameter packs cannot have default
12192 if (*is_parameter_pack
)
12195 error_at (token
->location
,
12196 "template parameter pack %qD cannot have a "
12197 "default argument", identifier
);
12199 error_at (token
->location
,
12200 "template parameter packs cannot have "
12201 "default arguments");
12202 default_argument
= NULL_TREE
;
12204 pop_deferring_access_checks ();
12207 default_argument
= NULL_TREE
;
12209 /* Create the combined representation of the parameter and the
12210 default argument. */
12211 parameter
= build_tree_list (default_argument
, parameter
);
12218 tree default_argument
;
12220 /* Look for the `<'. */
12221 cp_parser_require (parser
, CPP_LESS
, RT_LESS
);
12222 /* Parse the template-parameter-list. */
12223 cp_parser_template_parameter_list (parser
);
12224 /* Look for the `>'. */
12225 cp_parser_require (parser
, CPP_GREATER
, RT_GREATER
);
12226 /* Look for the `class' keyword. */
12227 cp_parser_require_keyword (parser
, RID_CLASS
, RT_CLASS
);
12228 /* If the next token is an ellipsis, we have a template
12230 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
12232 /* Consume the `...' token. */
12233 cp_lexer_consume_token (parser
->lexer
);
12234 maybe_warn_variadic_templates ();
12236 *is_parameter_pack
= true;
12238 /* If the next token is an `=', then there is a
12239 default-argument. If the next token is a `>', we are at
12240 the end of the parameter-list. If the next token is a `,',
12241 then we are at the end of this parameter. */
12242 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_EQ
)
12243 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_GREATER
)
12244 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
12246 identifier
= cp_parser_identifier (parser
);
12247 /* Treat invalid names as if the parameter were nameless. */
12248 if (identifier
== error_mark_node
)
12249 identifier
= NULL_TREE
;
12252 identifier
= NULL_TREE
;
12254 /* Create the template parameter. */
12255 parameter
= finish_template_template_parm (class_type_node
,
12258 /* If the next token is an `=', then there is a
12259 default-argument. */
12260 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
12264 /* Consume the `='. */
12265 cp_lexer_consume_token (parser
->lexer
);
12266 /* Parse the id-expression. */
12267 push_deferring_access_checks (dk_no_deferred
);
12268 /* save token before parsing the id-expression, for error
12270 token
= cp_lexer_peek_token (parser
->lexer
);
12272 = cp_parser_id_expression (parser
,
12273 /*template_keyword_p=*/false,
12274 /*check_dependency_p=*/true,
12275 /*template_p=*/&is_template
,
12276 /*declarator_p=*/false,
12277 /*optional_p=*/false);
12278 if (TREE_CODE (default_argument
) == TYPE_DECL
)
12279 /* If the id-expression was a template-id that refers to
12280 a template-class, we already have the declaration here,
12281 so no further lookup is needed. */
12284 /* Look up the name. */
12286 = cp_parser_lookup_name (parser
, default_argument
,
12288 /*is_template=*/is_template
,
12289 /*is_namespace=*/false,
12290 /*check_dependency=*/true,
12291 /*ambiguous_decls=*/NULL
,
12293 /* See if the default argument is valid. */
12295 = check_template_template_default_arg (default_argument
);
12297 /* Template parameter packs cannot have default
12299 if (*is_parameter_pack
)
12302 error_at (token
->location
,
12303 "template parameter pack %qD cannot "
12304 "have a default argument",
12307 error_at (token
->location
, "template parameter packs cannot "
12308 "have default arguments");
12309 default_argument
= NULL_TREE
;
12311 pop_deferring_access_checks ();
12314 default_argument
= NULL_TREE
;
12316 /* Create the combined representation of the parameter and the
12317 default argument. */
12318 parameter
= build_tree_list (default_argument
, parameter
);
12323 gcc_unreachable ();
12330 /* Parse a template-id.
12333 template-name < template-argument-list [opt] >
12335 If TEMPLATE_KEYWORD_P is TRUE, then we have just seen the
12336 `template' keyword. In this case, a TEMPLATE_ID_EXPR will be
12337 returned. Otherwise, if the template-name names a function, or set
12338 of functions, returns a TEMPLATE_ID_EXPR. If the template-name
12339 names a class, returns a TYPE_DECL for the specialization.
12341 If CHECK_DEPENDENCY_P is FALSE, names are looked up in
12342 uninstantiated templates. */
12345 cp_parser_template_id (cp_parser
*parser
,
12346 bool template_keyword_p
,
12347 bool check_dependency_p
,
12348 bool is_declaration
)
12354 cp_token_position start_of_id
= 0;
12355 deferred_access_check
*chk
;
12356 VEC (deferred_access_check
,gc
) *access_check
;
12357 cp_token
*next_token
= NULL
, *next_token_2
= NULL
;
12358 bool is_identifier
;
12360 /* If the next token corresponds to a template-id, there is no need
12362 next_token
= cp_lexer_peek_token (parser
->lexer
);
12363 if (next_token
->type
== CPP_TEMPLATE_ID
)
12365 struct tree_check
*check_value
;
12367 /* Get the stored value. */
12368 check_value
= cp_lexer_consume_token (parser
->lexer
)->u
.tree_check_value
;
12369 /* Perform any access checks that were deferred. */
12370 access_check
= check_value
->checks
;
12373 FOR_EACH_VEC_ELT (deferred_access_check
, access_check
, i
, chk
)
12374 perform_or_defer_access_check (chk
->binfo
,
12378 /* Return the stored value. */
12379 return check_value
->value
;
12382 /* Avoid performing name lookup if there is no possibility of
12383 finding a template-id. */
12384 if ((next_token
->type
!= CPP_NAME
&& next_token
->keyword
!= RID_OPERATOR
)
12385 || (next_token
->type
== CPP_NAME
12386 && !cp_parser_nth_token_starts_template_argument_list_p
12389 cp_parser_error (parser
, "expected template-id");
12390 return error_mark_node
;
12393 /* Remember where the template-id starts. */
12394 if (cp_parser_uncommitted_to_tentative_parse_p (parser
))
12395 start_of_id
= cp_lexer_token_position (parser
->lexer
, false);
12397 push_deferring_access_checks (dk_deferred
);
12399 /* Parse the template-name. */
12400 is_identifier
= false;
12401 templ
= cp_parser_template_name (parser
, template_keyword_p
,
12402 check_dependency_p
,
12405 if (templ
== error_mark_node
|| is_identifier
)
12407 pop_deferring_access_checks ();
12411 /* If we find the sequence `[:' after a template-name, it's probably
12412 a digraph-typo for `< ::'. Substitute the tokens and check if we can
12413 parse correctly the argument list. */
12414 next_token
= cp_lexer_peek_token (parser
->lexer
);
12415 next_token_2
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
12416 if (next_token
->type
== CPP_OPEN_SQUARE
12417 && next_token
->flags
& DIGRAPH
12418 && next_token_2
->type
== CPP_COLON
12419 && !(next_token_2
->flags
& PREV_WHITE
))
12421 cp_parser_parse_tentatively (parser
);
12422 /* Change `:' into `::'. */
12423 next_token_2
->type
= CPP_SCOPE
;
12424 /* Consume the first token (CPP_OPEN_SQUARE - which we pretend it is
12426 cp_lexer_consume_token (parser
->lexer
);
12428 /* Parse the arguments. */
12429 arguments
= cp_parser_enclosed_template_argument_list (parser
);
12430 if (!cp_parser_parse_definitely (parser
))
12432 /* If we couldn't parse an argument list, then we revert our changes
12433 and return simply an error. Maybe this is not a template-id
12435 next_token_2
->type
= CPP_COLON
;
12436 cp_parser_error (parser
, "expected %<<%>");
12437 pop_deferring_access_checks ();
12438 return error_mark_node
;
12440 /* Otherwise, emit an error about the invalid digraph, but continue
12441 parsing because we got our argument list. */
12442 if (permerror (next_token
->location
,
12443 "%<<::%> cannot begin a template-argument list"))
12445 static bool hint
= false;
12446 inform (next_token
->location
,
12447 "%<<:%> is an alternate spelling for %<[%>."
12448 " Insert whitespace between %<<%> and %<::%>");
12449 if (!hint
&& !flag_permissive
)
12451 inform (next_token
->location
, "(if you use %<-fpermissive%>"
12452 " G++ will accept your code)");
12459 /* Look for the `<' that starts the template-argument-list. */
12460 if (!cp_parser_require (parser
, CPP_LESS
, RT_LESS
))
12462 pop_deferring_access_checks ();
12463 return error_mark_node
;
12465 /* Parse the arguments. */
12466 arguments
= cp_parser_enclosed_template_argument_list (parser
);
12469 /* Build a representation of the specialization. */
12470 if (TREE_CODE (templ
) == IDENTIFIER_NODE
)
12471 template_id
= build_min_nt_loc (next_token
->location
,
12474 else if (DECL_TYPE_TEMPLATE_P (templ
)
12475 || DECL_TEMPLATE_TEMPLATE_PARM_P (templ
))
12477 bool entering_scope
;
12478 /* In "template <typename T> ... A<T>::", A<T> is the abstract A
12479 template (rather than some instantiation thereof) only if
12480 is not nested within some other construct. For example, in
12481 "template <typename T> void f(T) { A<T>::", A<T> is just an
12482 instantiation of A. */
12483 entering_scope
= (template_parm_scope_p ()
12484 && cp_lexer_next_token_is (parser
->lexer
,
12487 = finish_template_type (templ
, arguments
, entering_scope
);
12491 /* If it's not a class-template or a template-template, it should be
12492 a function-template. */
12493 gcc_assert ((DECL_FUNCTION_TEMPLATE_P (templ
)
12494 || TREE_CODE (templ
) == OVERLOAD
12495 || BASELINK_P (templ
)));
12497 template_id
= lookup_template_function (templ
, arguments
);
12500 /* If parsing tentatively, replace the sequence of tokens that makes
12501 up the template-id with a CPP_TEMPLATE_ID token. That way,
12502 should we re-parse the token stream, we will not have to repeat
12503 the effort required to do the parse, nor will we issue duplicate
12504 error messages about problems during instantiation of the
12508 cp_token
*token
= cp_lexer_token_at (parser
->lexer
, start_of_id
);
12510 /* Reset the contents of the START_OF_ID token. */
12511 token
->type
= CPP_TEMPLATE_ID
;
12512 /* Retrieve any deferred checks. Do not pop this access checks yet
12513 so the memory will not be reclaimed during token replacing below. */
12514 token
->u
.tree_check_value
= ggc_alloc_cleared_tree_check ();
12515 token
->u
.tree_check_value
->value
= template_id
;
12516 token
->u
.tree_check_value
->checks
= get_deferred_access_checks ();
12517 token
->keyword
= RID_MAX
;
12519 /* Purge all subsequent tokens. */
12520 cp_lexer_purge_tokens_after (parser
->lexer
, start_of_id
);
12522 /* ??? Can we actually assume that, if template_id ==
12523 error_mark_node, we will have issued a diagnostic to the
12524 user, as opposed to simply marking the tentative parse as
12526 if (cp_parser_error_occurred (parser
) && template_id
!= error_mark_node
)
12527 error_at (token
->location
, "parse error in template argument list");
12530 pop_deferring_access_checks ();
12531 return template_id
;
12534 /* Parse a template-name.
12539 The standard should actually say:
12543 operator-function-id
12545 A defect report has been filed about this issue.
12547 A conversion-function-id cannot be a template name because they cannot
12548 be part of a template-id. In fact, looking at this code:
12550 a.operator K<int>()
12552 the conversion-function-id is "operator K<int>", and K<int> is a type-id.
12553 It is impossible to call a templated conversion-function-id with an
12554 explicit argument list, since the only allowed template parameter is
12555 the type to which it is converting.
12557 If TEMPLATE_KEYWORD_P is true, then we have just seen the
12558 `template' keyword, in a construction like:
12562 In that case `f' is taken to be a template-name, even though there
12563 is no way of knowing for sure.
12565 Returns the TEMPLATE_DECL for the template, or an OVERLOAD if the
12566 name refers to a set of overloaded functions, at least one of which
12567 is a template, or an IDENTIFIER_NODE with the name of the template,
12568 if TEMPLATE_KEYWORD_P is true. If CHECK_DEPENDENCY_P is FALSE,
12569 names are looked up inside uninstantiated templates. */
12572 cp_parser_template_name (cp_parser
* parser
,
12573 bool template_keyword_p
,
12574 bool check_dependency_p
,
12575 bool is_declaration
,
12576 bool *is_identifier
)
12581 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
12583 /* If the next token is `operator', then we have either an
12584 operator-function-id or a conversion-function-id. */
12585 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_OPERATOR
))
12587 /* We don't know whether we're looking at an
12588 operator-function-id or a conversion-function-id. */
12589 cp_parser_parse_tentatively (parser
);
12590 /* Try an operator-function-id. */
12591 identifier
= cp_parser_operator_function_id (parser
);
12592 /* If that didn't work, try a conversion-function-id. */
12593 if (!cp_parser_parse_definitely (parser
))
12595 cp_parser_error (parser
, "expected template-name");
12596 return error_mark_node
;
12599 /* Look for the identifier. */
12601 identifier
= cp_parser_identifier (parser
);
12603 /* If we didn't find an identifier, we don't have a template-id. */
12604 if (identifier
== error_mark_node
)
12605 return error_mark_node
;
12607 /* If the name immediately followed the `template' keyword, then it
12608 is a template-name. However, if the next token is not `<', then
12609 we do not treat it as a template-name, since it is not being used
12610 as part of a template-id. This enables us to handle constructs
12613 template <typename T> struct S { S(); };
12614 template <typename T> S<T>::S();
12616 correctly. We would treat `S' as a template -- if it were `S<T>'
12617 -- but we do not if there is no `<'. */
12619 if (processing_template_decl
12620 && cp_parser_nth_token_starts_template_argument_list_p (parser
, 1))
12622 /* In a declaration, in a dependent context, we pretend that the
12623 "template" keyword was present in order to improve error
12624 recovery. For example, given:
12626 template <typename T> void f(T::X<int>);
12628 we want to treat "X<int>" as a template-id. */
12630 && !template_keyword_p
12631 && parser
->scope
&& TYPE_P (parser
->scope
)
12632 && check_dependency_p
12633 && dependent_scope_p (parser
->scope
)
12634 /* Do not do this for dtors (or ctors), since they never
12635 need the template keyword before their name. */
12636 && !constructor_name_p (identifier
, parser
->scope
))
12638 cp_token_position start
= 0;
12640 /* Explain what went wrong. */
12641 error_at (token
->location
, "non-template %qD used as template",
12643 inform (token
->location
, "use %<%T::template %D%> to indicate that it is a template",
12644 parser
->scope
, identifier
);
12645 /* If parsing tentatively, find the location of the "<" token. */
12646 if (cp_parser_simulate_error (parser
))
12647 start
= cp_lexer_token_position (parser
->lexer
, true);
12648 /* Parse the template arguments so that we can issue error
12649 messages about them. */
12650 cp_lexer_consume_token (parser
->lexer
);
12651 cp_parser_enclosed_template_argument_list (parser
);
12652 /* Skip tokens until we find a good place from which to
12653 continue parsing. */
12654 cp_parser_skip_to_closing_parenthesis (parser
,
12655 /*recovering=*/true,
12657 /*consume_paren=*/false);
12658 /* If parsing tentatively, permanently remove the
12659 template argument list. That will prevent duplicate
12660 error messages from being issued about the missing
12661 "template" keyword. */
12663 cp_lexer_purge_tokens_after (parser
->lexer
, start
);
12665 *is_identifier
= true;
12669 /* If the "template" keyword is present, then there is generally
12670 no point in doing name-lookup, so we just return IDENTIFIER.
12671 But, if the qualifying scope is non-dependent then we can
12672 (and must) do name-lookup normally. */
12673 if (template_keyword_p
12675 || (TYPE_P (parser
->scope
)
12676 && dependent_type_p (parser
->scope
))))
12680 /* Look up the name. */
12681 decl
= cp_parser_lookup_name (parser
, identifier
,
12683 /*is_template=*/true,
12684 /*is_namespace=*/false,
12685 check_dependency_p
,
12686 /*ambiguous_decls=*/NULL
,
12689 /* If DECL is a template, then the name was a template-name. */
12690 if (TREE_CODE (decl
) == TEMPLATE_DECL
)
12694 tree fn
= NULL_TREE
;
12696 /* The standard does not explicitly indicate whether a name that
12697 names a set of overloaded declarations, some of which are
12698 templates, is a template-name. However, such a name should
12699 be a template-name; otherwise, there is no way to form a
12700 template-id for the overloaded templates. */
12701 fns
= BASELINK_P (decl
) ? BASELINK_FUNCTIONS (decl
) : decl
;
12702 if (TREE_CODE (fns
) == OVERLOAD
)
12703 for (fn
= fns
; fn
; fn
= OVL_NEXT (fn
))
12704 if (TREE_CODE (OVL_CURRENT (fn
)) == TEMPLATE_DECL
)
12709 /* The name does not name a template. */
12710 cp_parser_error (parser
, "expected template-name");
12711 return error_mark_node
;
12715 /* If DECL is dependent, and refers to a function, then just return
12716 its name; we will look it up again during template instantiation. */
12717 if (DECL_FUNCTION_TEMPLATE_P (decl
) || !DECL_P (decl
))
12719 tree scope
= ovl_scope (decl
);
12720 if (TYPE_P (scope
) && dependent_type_p (scope
))
12727 /* Parse a template-argument-list.
12729 template-argument-list:
12730 template-argument ... [opt]
12731 template-argument-list , template-argument ... [opt]
12733 Returns a TREE_VEC containing the arguments. */
12736 cp_parser_template_argument_list (cp_parser
* parser
)
12738 tree fixed_args
[10];
12739 unsigned n_args
= 0;
12740 unsigned alloced
= 10;
12741 tree
*arg_ary
= fixed_args
;
12743 bool saved_in_template_argument_list_p
;
12745 bool saved_non_ice_p
;
12747 saved_in_template_argument_list_p
= parser
->in_template_argument_list_p
;
12748 parser
->in_template_argument_list_p
= true;
12749 /* Even if the template-id appears in an integral
12750 constant-expression, the contents of the argument list do
12752 saved_ice_p
= parser
->integral_constant_expression_p
;
12753 parser
->integral_constant_expression_p
= false;
12754 saved_non_ice_p
= parser
->non_integral_constant_expression_p
;
12755 parser
->non_integral_constant_expression_p
= false;
12757 /* Parse the arguments. */
12763 /* Consume the comma. */
12764 cp_lexer_consume_token (parser
->lexer
);
12766 /* Parse the template-argument. */
12767 argument
= cp_parser_template_argument (parser
);
12769 /* If the next token is an ellipsis, we're expanding a template
12771 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
12773 if (argument
== error_mark_node
)
12775 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
12776 error_at (token
->location
,
12777 "expected parameter pack before %<...%>");
12779 /* Consume the `...' token. */
12780 cp_lexer_consume_token (parser
->lexer
);
12782 /* Make the argument into a TYPE_PACK_EXPANSION or
12783 EXPR_PACK_EXPANSION. */
12784 argument
= make_pack_expansion (argument
);
12787 if (n_args
== alloced
)
12791 if (arg_ary
== fixed_args
)
12793 arg_ary
= XNEWVEC (tree
, alloced
);
12794 memcpy (arg_ary
, fixed_args
, sizeof (tree
) * n_args
);
12797 arg_ary
= XRESIZEVEC (tree
, arg_ary
, alloced
);
12799 arg_ary
[n_args
++] = argument
;
12801 while (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
));
12803 vec
= make_tree_vec (n_args
);
12806 TREE_VEC_ELT (vec
, n_args
) = arg_ary
[n_args
];
12808 if (arg_ary
!= fixed_args
)
12810 parser
->non_integral_constant_expression_p
= saved_non_ice_p
;
12811 parser
->integral_constant_expression_p
= saved_ice_p
;
12812 parser
->in_template_argument_list_p
= saved_in_template_argument_list_p
;
12813 #ifdef ENABLE_CHECKING
12814 SET_NON_DEFAULT_TEMPLATE_ARGS_COUNT (vec
, TREE_VEC_LENGTH (vec
));
12819 /* Parse a template-argument.
12822 assignment-expression
12826 The representation is that of an assignment-expression, type-id, or
12827 id-expression -- except that the qualified id-expression is
12828 evaluated, so that the value returned is either a DECL or an
12831 Although the standard says "assignment-expression", it forbids
12832 throw-expressions or assignments in the template argument.
12833 Therefore, we use "conditional-expression" instead. */
12836 cp_parser_template_argument (cp_parser
* parser
)
12841 bool maybe_type_id
= false;
12842 cp_token
*token
= NULL
, *argument_start_token
= NULL
;
12843 location_t loc
= 0;
12846 /* There's really no way to know what we're looking at, so we just
12847 try each alternative in order.
12851 In a template-argument, an ambiguity between a type-id and an
12852 expression is resolved to a type-id, regardless of the form of
12853 the corresponding template-parameter.
12855 Therefore, we try a type-id first. */
12856 cp_parser_parse_tentatively (parser
);
12857 argument
= cp_parser_template_type_arg (parser
);
12858 /* If there was no error parsing the type-id but the next token is a
12859 '>>', our behavior depends on which dialect of C++ we're
12860 parsing. In C++98, we probably found a typo for '> >'. But there
12861 are type-id which are also valid expressions. For instance:
12863 struct X { int operator >> (int); };
12864 template <int V> struct Foo {};
12867 Here 'X()' is a valid type-id of a function type, but the user just
12868 wanted to write the expression "X() >> 5". Thus, we remember that we
12869 found a valid type-id, but we still try to parse the argument as an
12870 expression to see what happens.
12872 In C++0x, the '>>' will be considered two separate '>'
12874 if (!cp_parser_error_occurred (parser
)
12875 && cxx_dialect
== cxx98
12876 && cp_lexer_next_token_is (parser
->lexer
, CPP_RSHIFT
))
12878 maybe_type_id
= true;
12879 cp_parser_abort_tentative_parse (parser
);
12883 /* If the next token isn't a `,' or a `>', then this argument wasn't
12884 really finished. This means that the argument is not a valid
12886 if (!cp_parser_next_token_ends_template_argument_p (parser
))
12887 cp_parser_error (parser
, "expected template-argument");
12888 /* If that worked, we're done. */
12889 if (cp_parser_parse_definitely (parser
))
12892 /* We're still not sure what the argument will be. */
12893 cp_parser_parse_tentatively (parser
);
12894 /* Try a template. */
12895 argument_start_token
= cp_lexer_peek_token (parser
->lexer
);
12896 argument
= cp_parser_id_expression (parser
,
12897 /*template_keyword_p=*/false,
12898 /*check_dependency_p=*/true,
12900 /*declarator_p=*/false,
12901 /*optional_p=*/false);
12902 /* If the next token isn't a `,' or a `>', then this argument wasn't
12903 really finished. */
12904 if (!cp_parser_next_token_ends_template_argument_p (parser
))
12905 cp_parser_error (parser
, "expected template-argument");
12906 if (!cp_parser_error_occurred (parser
))
12908 /* Figure out what is being referred to. If the id-expression
12909 was for a class template specialization, then we will have a
12910 TYPE_DECL at this point. There is no need to do name lookup
12911 at this point in that case. */
12912 if (TREE_CODE (argument
) != TYPE_DECL
)
12913 argument
= cp_parser_lookup_name (parser
, argument
,
12915 /*is_template=*/template_p
,
12916 /*is_namespace=*/false,
12917 /*check_dependency=*/true,
12918 /*ambiguous_decls=*/NULL
,
12919 argument_start_token
->location
);
12920 if (TREE_CODE (argument
) != TEMPLATE_DECL
12921 && TREE_CODE (argument
) != UNBOUND_CLASS_TEMPLATE
)
12922 cp_parser_error (parser
, "expected template-name");
12924 if (cp_parser_parse_definitely (parser
))
12926 /* It must be a non-type argument. There permitted cases are given
12927 in [temp.arg.nontype]:
12929 -- an integral constant-expression of integral or enumeration
12932 -- the name of a non-type template-parameter; or
12934 -- the name of an object or function with external linkage...
12936 -- the address of an object or function with external linkage...
12938 -- a pointer to member... */
12939 /* Look for a non-type template parameter. */
12940 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
12942 cp_parser_parse_tentatively (parser
);
12943 argument
= cp_parser_primary_expression (parser
,
12944 /*address_p=*/false,
12946 /*template_arg_p=*/true,
12948 if (TREE_CODE (argument
) != TEMPLATE_PARM_INDEX
12949 || !cp_parser_next_token_ends_template_argument_p (parser
))
12950 cp_parser_simulate_error (parser
);
12951 if (cp_parser_parse_definitely (parser
))
12955 /* If the next token is "&", the argument must be the address of an
12956 object or function with external linkage. */
12957 address_p
= cp_lexer_next_token_is (parser
->lexer
, CPP_AND
);
12960 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
12961 cp_lexer_consume_token (parser
->lexer
);
12963 /* See if we might have an id-expression. */
12964 token
= cp_lexer_peek_token (parser
->lexer
);
12965 if (token
->type
== CPP_NAME
12966 || token
->keyword
== RID_OPERATOR
12967 || token
->type
== CPP_SCOPE
12968 || token
->type
== CPP_TEMPLATE_ID
12969 || token
->type
== CPP_NESTED_NAME_SPECIFIER
)
12971 cp_parser_parse_tentatively (parser
);
12972 argument
= cp_parser_primary_expression (parser
,
12975 /*template_arg_p=*/true,
12977 if (cp_parser_error_occurred (parser
)
12978 || !cp_parser_next_token_ends_template_argument_p (parser
))
12979 cp_parser_abort_tentative_parse (parser
);
12984 if (TREE_CODE (argument
) == INDIRECT_REF
)
12986 gcc_assert (REFERENCE_REF_P (argument
));
12987 argument
= TREE_OPERAND (argument
, 0);
12990 /* If we're in a template, we represent a qualified-id referring
12991 to a static data member as a SCOPE_REF even if the scope isn't
12992 dependent so that we can check access control later. */
12994 if (TREE_CODE (probe
) == SCOPE_REF
)
12995 probe
= TREE_OPERAND (probe
, 1);
12996 if (TREE_CODE (probe
) == VAR_DECL
)
12998 /* A variable without external linkage might still be a
12999 valid constant-expression, so no error is issued here
13000 if the external-linkage check fails. */
13001 if (!address_p
&& !DECL_EXTERNAL_LINKAGE_P (probe
))
13002 cp_parser_simulate_error (parser
);
13004 else if (is_overloaded_fn (argument
))
13005 /* All overloaded functions are allowed; if the external
13006 linkage test does not pass, an error will be issued
13010 && (TREE_CODE (argument
) == OFFSET_REF
13011 || TREE_CODE (argument
) == SCOPE_REF
))
13012 /* A pointer-to-member. */
13014 else if (TREE_CODE (argument
) == TEMPLATE_PARM_INDEX
)
13017 cp_parser_simulate_error (parser
);
13019 if (cp_parser_parse_definitely (parser
))
13022 argument
= build_x_unary_op (loc
, ADDR_EXPR
, argument
,
13023 tf_warning_or_error
);
13028 /* If the argument started with "&", there are no other valid
13029 alternatives at this point. */
13032 cp_parser_error (parser
, "invalid non-type template argument");
13033 return error_mark_node
;
13036 /* If the argument wasn't successfully parsed as a type-id followed
13037 by '>>', the argument can only be a constant expression now.
13038 Otherwise, we try parsing the constant-expression tentatively,
13039 because the argument could really be a type-id. */
13041 cp_parser_parse_tentatively (parser
);
13042 argument
= cp_parser_constant_expression (parser
,
13043 /*allow_non_constant_p=*/false,
13044 /*non_constant_p=*/NULL
);
13045 argument
= fold_non_dependent_expr (argument
);
13046 if (!maybe_type_id
)
13048 if (!cp_parser_next_token_ends_template_argument_p (parser
))
13049 cp_parser_error (parser
, "expected template-argument");
13050 if (cp_parser_parse_definitely (parser
))
13052 /* We did our best to parse the argument as a non type-id, but that
13053 was the only alternative that matched (albeit with a '>' after
13054 it). We can assume it's just a typo from the user, and a
13055 diagnostic will then be issued. */
13056 return cp_parser_template_type_arg (parser
);
13059 /* Parse an explicit-instantiation.
13061 explicit-instantiation:
13062 template declaration
13064 Although the standard says `declaration', what it really means is:
13066 explicit-instantiation:
13067 template decl-specifier-seq [opt] declarator [opt] ;
13069 Things like `template int S<int>::i = 5, int S<double>::j;' are not
13070 supposed to be allowed. A defect report has been filed about this
13075 explicit-instantiation:
13076 storage-class-specifier template
13077 decl-specifier-seq [opt] declarator [opt] ;
13078 function-specifier template
13079 decl-specifier-seq [opt] declarator [opt] ; */
13082 cp_parser_explicit_instantiation (cp_parser
* parser
)
13084 int declares_class_or_enum
;
13085 cp_decl_specifier_seq decl_specifiers
;
13086 tree extension_specifier
= NULL_TREE
;
13088 timevar_push (TV_TEMPLATE_INST
);
13090 /* Look for an (optional) storage-class-specifier or
13091 function-specifier. */
13092 if (cp_parser_allow_gnu_extensions_p (parser
))
13094 extension_specifier
13095 = cp_parser_storage_class_specifier_opt (parser
);
13096 if (!extension_specifier
)
13097 extension_specifier
13098 = cp_parser_function_specifier_opt (parser
,
13099 /*decl_specs=*/NULL
);
13102 /* Look for the `template' keyword. */
13103 cp_parser_require_keyword (parser
, RID_TEMPLATE
, RT_TEMPLATE
);
13104 /* Let the front end know that we are processing an explicit
13106 begin_explicit_instantiation ();
13107 /* [temp.explicit] says that we are supposed to ignore access
13108 control while processing explicit instantiation directives. */
13109 push_deferring_access_checks (dk_no_check
);
13110 /* Parse a decl-specifier-seq. */
13111 cp_parser_decl_specifier_seq (parser
,
13112 CP_PARSER_FLAGS_OPTIONAL
,
13114 &declares_class_or_enum
);
13115 /* If there was exactly one decl-specifier, and it declared a class,
13116 and there's no declarator, then we have an explicit type
13118 if (declares_class_or_enum
&& cp_parser_declares_only_class_p (parser
))
13122 type
= check_tag_decl (&decl_specifiers
);
13123 /* Turn access control back on for names used during
13124 template instantiation. */
13125 pop_deferring_access_checks ();
13127 do_type_instantiation (type
, extension_specifier
,
13128 /*complain=*/tf_error
);
13132 cp_declarator
*declarator
;
13135 /* Parse the declarator. */
13137 = cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_NAMED
,
13138 /*ctor_dtor_or_conv_p=*/NULL
,
13139 /*parenthesized_p=*/NULL
,
13140 /*member_p=*/false);
13141 if (declares_class_or_enum
& 2)
13142 cp_parser_check_for_definition_in_return_type (declarator
,
13143 decl_specifiers
.type
,
13144 decl_specifiers
.locations
[ds_type_spec
]);
13145 if (declarator
!= cp_error_declarator
)
13147 if (decl_spec_seq_has_spec_p (&decl_specifiers
, ds_inline
))
13148 permerror (decl_specifiers
.locations
[ds_inline
],
13149 "explicit instantiation shall not use"
13150 " %<inline%> specifier");
13151 if (decl_spec_seq_has_spec_p (&decl_specifiers
, ds_constexpr
))
13152 permerror (decl_specifiers
.locations
[ds_constexpr
],
13153 "explicit instantiation shall not use"
13154 " %<constexpr%> specifier");
13156 decl
= grokdeclarator (declarator
, &decl_specifiers
,
13157 NORMAL
, 0, &decl_specifiers
.attributes
);
13158 /* Turn access control back on for names used during
13159 template instantiation. */
13160 pop_deferring_access_checks ();
13161 /* Do the explicit instantiation. */
13162 do_decl_instantiation (decl
, extension_specifier
);
13166 pop_deferring_access_checks ();
13167 /* Skip the body of the explicit instantiation. */
13168 cp_parser_skip_to_end_of_statement (parser
);
13171 /* We're done with the instantiation. */
13172 end_explicit_instantiation ();
13174 cp_parser_consume_semicolon_at_end_of_statement (parser
);
13176 timevar_pop (TV_TEMPLATE_INST
);
13179 /* Parse an explicit-specialization.
13181 explicit-specialization:
13182 template < > declaration
13184 Although the standard says `declaration', what it really means is:
13186 explicit-specialization:
13187 template <> decl-specifier [opt] init-declarator [opt] ;
13188 template <> function-definition
13189 template <> explicit-specialization
13190 template <> template-declaration */
13193 cp_parser_explicit_specialization (cp_parser
* parser
)
13195 bool need_lang_pop
;
13196 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
13198 /* Look for the `template' keyword. */
13199 cp_parser_require_keyword (parser
, RID_TEMPLATE
, RT_TEMPLATE
);
13200 /* Look for the `<'. */
13201 cp_parser_require (parser
, CPP_LESS
, RT_LESS
);
13202 /* Look for the `>'. */
13203 cp_parser_require (parser
, CPP_GREATER
, RT_GREATER
);
13204 /* We have processed another parameter list. */
13205 ++parser
->num_template_parameter_lists
;
13208 A template ... explicit specialization ... shall not have C
13210 if (current_lang_name
== lang_name_c
)
13212 error_at (token
->location
, "template specialization with C linkage");
13213 /* Give it C++ linkage to avoid confusing other parts of the
13215 push_lang_context (lang_name_cplusplus
);
13216 need_lang_pop
= true;
13219 need_lang_pop
= false;
13220 /* Let the front end know that we are beginning a specialization. */
13221 if (!begin_specialization ())
13223 end_specialization ();
13227 /* If the next keyword is `template', we need to figure out whether
13228 or not we're looking a template-declaration. */
13229 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TEMPLATE
))
13231 if (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
== CPP_LESS
13232 && cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
!= CPP_GREATER
)
13233 cp_parser_template_declaration_after_export (parser
,
13234 /*member_p=*/false);
13236 cp_parser_explicit_specialization (parser
);
13239 /* Parse the dependent declaration. */
13240 cp_parser_single_declaration (parser
,
13242 /*member_p=*/false,
13243 /*explicit_specialization_p=*/true,
13244 /*friend_p=*/NULL
);
13245 /* We're done with the specialization. */
13246 end_specialization ();
13247 /* For the erroneous case of a template with C linkage, we pushed an
13248 implicit C++ linkage scope; exit that scope now. */
13250 pop_lang_context ();
13251 /* We're done with this parameter list. */
13252 --parser
->num_template_parameter_lists
;
13255 /* Parse a type-specifier.
13258 simple-type-specifier
13261 elaborated-type-specifier
13269 Returns a representation of the type-specifier. For a
13270 class-specifier, enum-specifier, or elaborated-type-specifier, a
13271 TREE_TYPE is returned; otherwise, a TYPE_DECL is returned.
13273 The parser flags FLAGS is used to control type-specifier parsing.
13275 If IS_DECLARATION is TRUE, then this type-specifier is appearing
13276 in a decl-specifier-seq.
13278 If DECLARES_CLASS_OR_ENUM is non-NULL, and the type-specifier is a
13279 class-specifier, enum-specifier, or elaborated-type-specifier, then
13280 *DECLARES_CLASS_OR_ENUM is set to a nonzero value. The value is 1
13281 if a type is declared; 2 if it is defined. Otherwise, it is set to
13284 If IS_CV_QUALIFIER is non-NULL, and the type-specifier is a
13285 cv-qualifier, then IS_CV_QUALIFIER is set to TRUE. Otherwise, it
13286 is set to FALSE. */
13289 cp_parser_type_specifier (cp_parser
* parser
,
13290 cp_parser_flags flags
,
13291 cp_decl_specifier_seq
*decl_specs
,
13292 bool is_declaration
,
13293 int* declares_class_or_enum
,
13294 bool* is_cv_qualifier
)
13296 tree type_spec
= NULL_TREE
;
13299 cp_decl_spec ds
= ds_last
;
13301 /* Assume this type-specifier does not declare a new type. */
13302 if (declares_class_or_enum
)
13303 *declares_class_or_enum
= 0;
13304 /* And that it does not specify a cv-qualifier. */
13305 if (is_cv_qualifier
)
13306 *is_cv_qualifier
= false;
13307 /* Peek at the next token. */
13308 token
= cp_lexer_peek_token (parser
->lexer
);
13310 /* If we're looking at a keyword, we can use that to guide the
13311 production we choose. */
13312 keyword
= token
->keyword
;
13316 if ((flags
& CP_PARSER_FLAGS_NO_TYPE_DEFINITIONS
))
13317 goto elaborated_type_specifier
;
13319 /* Look for the enum-specifier. */
13320 type_spec
= cp_parser_enum_specifier (parser
);
13321 /* If that worked, we're done. */
13324 if (declares_class_or_enum
)
13325 *declares_class_or_enum
= 2;
13327 cp_parser_set_decl_spec_type (decl_specs
,
13330 /*type_definition_p=*/true);
13334 goto elaborated_type_specifier
;
13336 /* Any of these indicate either a class-specifier, or an
13337 elaborated-type-specifier. */
13341 if ((flags
& CP_PARSER_FLAGS_NO_TYPE_DEFINITIONS
))
13342 goto elaborated_type_specifier
;
13344 /* Parse tentatively so that we can back up if we don't find a
13345 class-specifier. */
13346 cp_parser_parse_tentatively (parser
);
13347 /* Look for the class-specifier. */
13348 type_spec
= cp_parser_class_specifier (parser
);
13349 invoke_plugin_callbacks (PLUGIN_FINISH_TYPE
, type_spec
);
13350 /* If that worked, we're done. */
13351 if (cp_parser_parse_definitely (parser
))
13353 if (declares_class_or_enum
)
13354 *declares_class_or_enum
= 2;
13356 cp_parser_set_decl_spec_type (decl_specs
,
13359 /*type_definition_p=*/true);
13363 /* Fall through. */
13364 elaborated_type_specifier
:
13365 /* We're declaring (not defining) a class or enum. */
13366 if (declares_class_or_enum
)
13367 *declares_class_or_enum
= 1;
13369 /* Fall through. */
13371 /* Look for an elaborated-type-specifier. */
13373 = (cp_parser_elaborated_type_specifier
13375 decl_spec_seq_has_spec_p (decl_specs
, ds_friend
),
13378 cp_parser_set_decl_spec_type (decl_specs
,
13381 /*type_definition_p=*/false);
13386 if (is_cv_qualifier
)
13387 *is_cv_qualifier
= true;
13392 if (is_cv_qualifier
)
13393 *is_cv_qualifier
= true;
13398 if (is_cv_qualifier
)
13399 *is_cv_qualifier
= true;
13403 /* The `__complex__' keyword is a GNU extension. */
13411 /* Handle simple keywords. */
13416 set_and_check_decl_spec_loc (decl_specs
, ds
, token
->location
);
13417 decl_specs
->any_specifiers_p
= true;
13419 return cp_lexer_consume_token (parser
->lexer
)->u
.value
;
13422 /* If we do not already have a type-specifier, assume we are looking
13423 at a simple-type-specifier. */
13424 type_spec
= cp_parser_simple_type_specifier (parser
,
13428 /* If we didn't find a type-specifier, and a type-specifier was not
13429 optional in this context, issue an error message. */
13430 if (!type_spec
&& !(flags
& CP_PARSER_FLAGS_OPTIONAL
))
13432 cp_parser_error (parser
, "expected type specifier");
13433 return error_mark_node
;
13439 /* Parse a simple-type-specifier.
13441 simple-type-specifier:
13442 :: [opt] nested-name-specifier [opt] type-name
13443 :: [opt] nested-name-specifier template template-id
13458 simple-type-specifier:
13460 decltype ( expression )
13463 __underlying_type ( type-id )
13467 simple-type-specifier:
13469 __typeof__ unary-expression
13470 __typeof__ ( type-id )
13472 Returns the indicated TYPE_DECL. If DECL_SPECS is not NULL, it is
13473 appropriately updated. */
13476 cp_parser_simple_type_specifier (cp_parser
* parser
,
13477 cp_decl_specifier_seq
*decl_specs
,
13478 cp_parser_flags flags
)
13480 tree type
= NULL_TREE
;
13483 /* Peek at the next token. */
13484 token
= cp_lexer_peek_token (parser
->lexer
);
13486 /* If we're looking at a keyword, things are easy. */
13487 switch (token
->keyword
)
13491 decl_specs
->explicit_char_p
= true;
13492 type
= char_type_node
;
13495 type
= char16_type_node
;
13498 type
= char32_type_node
;
13501 type
= wchar_type_node
;
13504 type
= boolean_type_node
;
13507 set_and_check_decl_spec_loc (decl_specs
, ds_short
, token
->location
);
13508 type
= short_integer_type_node
;
13512 decl_specs
->explicit_int_p
= true;
13513 type
= integer_type_node
;
13516 if (!int128_integer_type_node
)
13519 decl_specs
->explicit_int128_p
= true;
13520 type
= int128_integer_type_node
;
13524 set_and_check_decl_spec_loc (decl_specs
, ds_long
, token
->location
);
13525 type
= long_integer_type_node
;
13528 set_and_check_decl_spec_loc (decl_specs
, ds_signed
, token
->location
);
13529 type
= integer_type_node
;
13532 set_and_check_decl_spec_loc (decl_specs
, ds_unsigned
, token
->location
);
13533 type
= unsigned_type_node
;
13536 type
= float_type_node
;
13539 type
= double_type_node
;
13542 type
= void_type_node
;
13546 maybe_warn_cpp0x (CPP0X_AUTO
);
13547 type
= make_auto ();
13551 /* Since DR 743, decltype can either be a simple-type-specifier by
13552 itself or begin a nested-name-specifier. Parsing it will replace
13553 it with a CPP_DECLTYPE, so just rewind and let the CPP_DECLTYPE
13554 handling below decide what to do. */
13555 cp_parser_decltype (parser
);
13556 cp_lexer_set_token_position (parser
->lexer
, token
);
13560 /* Consume the `typeof' token. */
13561 cp_lexer_consume_token (parser
->lexer
);
13562 /* Parse the operand to `typeof'. */
13563 type
= cp_parser_sizeof_operand (parser
, RID_TYPEOF
);
13564 /* If it is not already a TYPE, take its type. */
13565 if (!TYPE_P (type
))
13566 type
= finish_typeof (type
);
13569 cp_parser_set_decl_spec_type (decl_specs
, type
,
13571 /*type_definition_p=*/false);
13575 case RID_UNDERLYING_TYPE
:
13576 type
= cp_parser_trait_expr (parser
, RID_UNDERLYING_TYPE
);
13578 cp_parser_set_decl_spec_type (decl_specs
, type
,
13580 /*type_definition_p=*/false);
13585 case RID_DIRECT_BASES
:
13586 type
= cp_parser_trait_expr (parser
, token
->keyword
);
13588 cp_parser_set_decl_spec_type (decl_specs
, type
,
13590 /*type_definition_p=*/false);
13596 /* If token is an already-parsed decltype not followed by ::,
13597 it's a simple-type-specifier. */
13598 if (token
->type
== CPP_DECLTYPE
13599 && cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
!= CPP_SCOPE
)
13601 type
= token
->u
.value
;
13603 cp_parser_set_decl_spec_type (decl_specs
, type
,
13605 /*type_definition_p=*/false);
13606 cp_lexer_consume_token (parser
->lexer
);
13610 /* If the type-specifier was for a built-in type, we're done. */
13613 /* Record the type. */
13615 && (token
->keyword
!= RID_SIGNED
13616 && token
->keyword
!= RID_UNSIGNED
13617 && token
->keyword
!= RID_SHORT
13618 && token
->keyword
!= RID_LONG
))
13619 cp_parser_set_decl_spec_type (decl_specs
,
13622 /*type_definition_p=*/false);
13624 decl_specs
->any_specifiers_p
= true;
13626 /* Consume the token. */
13627 cp_lexer_consume_token (parser
->lexer
);
13629 /* There is no valid C++ program where a non-template type is
13630 followed by a "<". That usually indicates that the user thought
13631 that the type was a template. */
13632 cp_parser_check_for_invalid_template_id (parser
, type
, token
->location
);
13634 return TYPE_NAME (type
);
13637 /* The type-specifier must be a user-defined type. */
13638 if (!(flags
& CP_PARSER_FLAGS_NO_USER_DEFINED_TYPES
))
13643 /* Don't gobble tokens or issue error messages if this is an
13644 optional type-specifier. */
13645 if (flags
& CP_PARSER_FLAGS_OPTIONAL
)
13646 cp_parser_parse_tentatively (parser
);
13648 /* Look for the optional `::' operator. */
13650 = (cp_parser_global_scope_opt (parser
,
13651 /*current_scope_valid_p=*/false)
13653 /* Look for the nested-name specifier. */
13655 = (cp_parser_nested_name_specifier_opt (parser
,
13656 /*typename_keyword_p=*/false,
13657 /*check_dependency_p=*/true,
13659 /*is_declaration=*/false)
13661 token
= cp_lexer_peek_token (parser
->lexer
);
13662 /* If we have seen a nested-name-specifier, and the next token
13663 is `template', then we are using the template-id production. */
13665 && cp_parser_optional_template_keyword (parser
))
13667 /* Look for the template-id. */
13668 type
= cp_parser_template_id (parser
,
13669 /*template_keyword_p=*/true,
13670 /*check_dependency_p=*/true,
13671 /*is_declaration=*/false);
13672 /* If the template-id did not name a type, we are out of
13674 if (TREE_CODE (type
) != TYPE_DECL
)
13676 cp_parser_error (parser
, "expected template-id for type");
13680 /* Otherwise, look for a type-name. */
13682 type
= cp_parser_type_name (parser
);
13683 /* Keep track of all name-lookups performed in class scopes. */
13687 && TREE_CODE (type
) == TYPE_DECL
13688 && TREE_CODE (DECL_NAME (type
)) == IDENTIFIER_NODE
)
13689 maybe_note_name_used_in_class (DECL_NAME (type
), type
);
13690 /* If it didn't work out, we don't have a TYPE. */
13691 if ((flags
& CP_PARSER_FLAGS_OPTIONAL
)
13692 && !cp_parser_parse_definitely (parser
))
13694 if (type
&& decl_specs
)
13695 cp_parser_set_decl_spec_type (decl_specs
, type
,
13697 /*type_definition_p=*/false);
13700 /* If we didn't get a type-name, issue an error message. */
13701 if (!type
&& !(flags
& CP_PARSER_FLAGS_OPTIONAL
))
13703 cp_parser_error (parser
, "expected type-name");
13704 return error_mark_node
;
13707 if (type
&& type
!= error_mark_node
)
13709 /* See if TYPE is an Objective-C type, and if so, parse and
13710 accept any protocol references following it. Do this before
13711 the cp_parser_check_for_invalid_template_id() call, because
13712 Objective-C types can be followed by '<...>' which would
13713 enclose protocol names rather than template arguments, and so
13714 everything is fine. */
13715 if (c_dialect_objc () && !parser
->scope
13716 && (objc_is_id (type
) || objc_is_class_name (type
)))
13718 tree protos
= cp_parser_objc_protocol_refs_opt (parser
);
13719 tree qual_type
= objc_get_protocol_qualified_type (type
, protos
);
13721 /* Clobber the "unqualified" type previously entered into
13722 DECL_SPECS with the new, improved protocol-qualified version. */
13724 decl_specs
->type
= qual_type
;
13729 /* There is no valid C++ program where a non-template type is
13730 followed by a "<". That usually indicates that the user
13731 thought that the type was a template. */
13732 cp_parser_check_for_invalid_template_id (parser
, TREE_TYPE (type
),
13739 /* Parse a type-name.
13745 simple-template-id [in c++0x]
13753 Returns a TYPE_DECL for the type. */
13756 cp_parser_type_name (cp_parser
* parser
)
13760 /* We can't know yet whether it is a class-name or not. */
13761 cp_parser_parse_tentatively (parser
);
13762 /* Try a class-name. */
13763 type_decl
= cp_parser_class_name (parser
,
13764 /*typename_keyword_p=*/false,
13765 /*template_keyword_p=*/false,
13767 /*check_dependency_p=*/true,
13768 /*class_head_p=*/false,
13769 /*is_declaration=*/false);
13770 /* If it's not a class-name, keep looking. */
13771 if (!cp_parser_parse_definitely (parser
))
13773 if (cxx_dialect
< cxx0x
)
13774 /* It must be a typedef-name or an enum-name. */
13775 return cp_parser_nonclass_name (parser
);
13777 cp_parser_parse_tentatively (parser
);
13778 /* It is either a simple-template-id representing an
13779 instantiation of an alias template... */
13780 type_decl
= cp_parser_template_id (parser
,
13781 /*template_keyword_p=*/false,
13782 /*check_dependency_p=*/false,
13783 /*is_declaration=*/false);
13784 /* Note that this must be an instantiation of an alias template
13785 because [temp.names]/6 says:
13787 A template-id that names an alias template specialization
13790 Whereas [temp.names]/7 says:
13792 A simple-template-id that names a class template
13793 specialization is a class-name. */
13794 if (type_decl
!= NULL_TREE
13795 && TREE_CODE (type_decl
) == TYPE_DECL
13796 && TYPE_DECL_ALIAS_P (type_decl
))
13797 gcc_assert (DECL_TEMPLATE_INSTANTIATION (type_decl
));
13799 cp_parser_simulate_error (parser
);
13801 if (!cp_parser_parse_definitely (parser
))
13802 /* ... Or a typedef-name or an enum-name. */
13803 return cp_parser_nonclass_name (parser
);
13809 /* Parse a non-class type-name, that is, either an enum-name or a typedef-name.
13817 Returns a TYPE_DECL for the type. */
13820 cp_parser_nonclass_name (cp_parser
* parser
)
13825 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
13826 identifier
= cp_parser_identifier (parser
);
13827 if (identifier
== error_mark_node
)
13828 return error_mark_node
;
13830 /* Look up the type-name. */
13831 type_decl
= cp_parser_lookup_name_simple (parser
, identifier
, token
->location
);
13833 if (TREE_CODE (type_decl
) == USING_DECL
)
13835 if (!DECL_DEPENDENT_P (type_decl
))
13836 type_decl
= strip_using_decl (type_decl
);
13837 else if (USING_DECL_TYPENAME_P (type_decl
))
13839 /* We have found a type introduced by a using
13840 declaration at class scope that refers to a dependent
13843 using typename :: [opt] nested-name-specifier unqualified-id ;
13845 type_decl
= make_typename_type (TREE_TYPE (type_decl
),
13846 DECL_NAME (type_decl
),
13847 typename_type
, tf_error
);
13848 if (type_decl
!= error_mark_node
)
13849 type_decl
= TYPE_NAME (type_decl
);
13853 if (TREE_CODE (type_decl
) != TYPE_DECL
13854 && (objc_is_id (identifier
) || objc_is_class_name (identifier
)))
13856 /* See if this is an Objective-C type. */
13857 tree protos
= cp_parser_objc_protocol_refs_opt (parser
);
13858 tree type
= objc_get_protocol_qualified_type (identifier
, protos
);
13860 type_decl
= TYPE_NAME (type
);
13863 /* Issue an error if we did not find a type-name. */
13864 if (TREE_CODE (type_decl
) != TYPE_DECL
13865 /* In Objective-C, we have the complication that class names are
13866 normally type names and start declarations (eg, the
13867 "NSObject" in "NSObject *object;"), but can be used in an
13868 Objective-C 2.0 dot-syntax (as in "NSObject.version") which
13869 is an expression. So, a classname followed by a dot is not a
13870 valid type-name. */
13871 || (objc_is_class_name (TREE_TYPE (type_decl
))
13872 && cp_lexer_peek_token (parser
->lexer
)->type
== CPP_DOT
))
13874 if (!cp_parser_simulate_error (parser
))
13875 cp_parser_name_lookup_error (parser
, identifier
, type_decl
,
13876 NLE_TYPE
, token
->location
);
13877 return error_mark_node
;
13879 /* Remember that the name was used in the definition of the
13880 current class so that we can check later to see if the
13881 meaning would have been different after the class was
13882 entirely defined. */
13883 else if (type_decl
!= error_mark_node
13885 maybe_note_name_used_in_class (identifier
, type_decl
);
13890 /* Parse an elaborated-type-specifier. Note that the grammar given
13891 here incorporates the resolution to DR68.
13893 elaborated-type-specifier:
13894 class-key :: [opt] nested-name-specifier [opt] identifier
13895 class-key :: [opt] nested-name-specifier [opt] template [opt] template-id
13896 enum-key :: [opt] nested-name-specifier [opt] identifier
13897 typename :: [opt] nested-name-specifier identifier
13898 typename :: [opt] nested-name-specifier template [opt]
13903 elaborated-type-specifier:
13904 class-key attributes :: [opt] nested-name-specifier [opt] identifier
13905 class-key attributes :: [opt] nested-name-specifier [opt]
13906 template [opt] template-id
13907 enum attributes :: [opt] nested-name-specifier [opt] identifier
13909 If IS_FRIEND is TRUE, then this elaborated-type-specifier is being
13910 declared `friend'. If IS_DECLARATION is TRUE, then this
13911 elaborated-type-specifier appears in a decl-specifiers-seq, i.e.,
13912 something is being declared.
13914 Returns the TYPE specified. */
13917 cp_parser_elaborated_type_specifier (cp_parser
* parser
,
13919 bool is_declaration
)
13921 enum tag_types tag_type
;
13923 tree type
= NULL_TREE
;
13924 tree attributes
= NULL_TREE
;
13926 cp_token
*token
= NULL
;
13928 /* See if we're looking at the `enum' keyword. */
13929 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_ENUM
))
13931 /* Consume the `enum' token. */
13932 cp_lexer_consume_token (parser
->lexer
);
13933 /* Remember that it's an enumeration type. */
13934 tag_type
= enum_type
;
13935 /* Issue a warning if the `struct' or `class' key (for C++0x scoped
13936 enums) is used here. */
13937 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_CLASS
)
13938 || cp_lexer_next_token_is_keyword (parser
->lexer
, RID_STRUCT
))
13940 pedwarn (input_location
, 0, "elaborated-type-specifier "
13941 "for a scoped enum must not use the %<%D%> keyword",
13942 cp_lexer_peek_token (parser
->lexer
)->u
.value
);
13943 /* Consume the `struct' or `class' and parse it anyway. */
13944 cp_lexer_consume_token (parser
->lexer
);
13946 /* Parse the attributes. */
13947 attributes
= cp_parser_attributes_opt (parser
);
13949 /* Or, it might be `typename'. */
13950 else if (cp_lexer_next_token_is_keyword (parser
->lexer
,
13953 /* Consume the `typename' token. */
13954 cp_lexer_consume_token (parser
->lexer
);
13955 /* Remember that it's a `typename' type. */
13956 tag_type
= typename_type
;
13958 /* Otherwise it must be a class-key. */
13961 tag_type
= cp_parser_class_key (parser
);
13962 if (tag_type
== none_type
)
13963 return error_mark_node
;
13964 /* Parse the attributes. */
13965 attributes
= cp_parser_attributes_opt (parser
);
13968 /* Look for the `::' operator. */
13969 globalscope
= cp_parser_global_scope_opt (parser
,
13970 /*current_scope_valid_p=*/false);
13971 /* Look for the nested-name-specifier. */
13972 if (tag_type
== typename_type
&& !globalscope
)
13974 if (!cp_parser_nested_name_specifier (parser
,
13975 /*typename_keyword_p=*/true,
13976 /*check_dependency_p=*/true,
13979 return error_mark_node
;
13982 /* Even though `typename' is not present, the proposed resolution
13983 to Core Issue 180 says that in `class A<T>::B', `B' should be
13984 considered a type-name, even if `A<T>' is dependent. */
13985 cp_parser_nested_name_specifier_opt (parser
,
13986 /*typename_keyword_p=*/true,
13987 /*check_dependency_p=*/true,
13990 /* For everything but enumeration types, consider a template-id.
13991 For an enumeration type, consider only a plain identifier. */
13992 if (tag_type
!= enum_type
)
13994 bool template_p
= false;
13997 /* Allow the `template' keyword. */
13998 template_p
= cp_parser_optional_template_keyword (parser
);
13999 /* If we didn't see `template', we don't know if there's a
14000 template-id or not. */
14002 cp_parser_parse_tentatively (parser
);
14003 /* Parse the template-id. */
14004 token
= cp_lexer_peek_token (parser
->lexer
);
14005 decl
= cp_parser_template_id (parser
, template_p
,
14006 /*check_dependency_p=*/true,
14008 /* If we didn't find a template-id, look for an ordinary
14010 if (!template_p
&& !cp_parser_parse_definitely (parser
))
14012 /* If DECL is a TEMPLATE_ID_EXPR, and the `typename' keyword is
14013 in effect, then we must assume that, upon instantiation, the
14014 template will correspond to a class. */
14015 else if (TREE_CODE (decl
) == TEMPLATE_ID_EXPR
14016 && tag_type
== typename_type
)
14017 type
= make_typename_type (parser
->scope
, decl
,
14019 /*complain=*/tf_error
);
14020 /* If the `typename' keyword is in effect and DECL is not a type
14021 decl. Then type is non existant. */
14022 else if (tag_type
== typename_type
&& TREE_CODE (decl
) != TYPE_DECL
)
14025 type
= check_elaborated_type_specifier (tag_type
, decl
,
14026 /*allow_template_p=*/true);
14031 token
= cp_lexer_peek_token (parser
->lexer
);
14032 identifier
= cp_parser_identifier (parser
);
14034 if (identifier
== error_mark_node
)
14036 parser
->scope
= NULL_TREE
;
14037 return error_mark_node
;
14040 /* For a `typename', we needn't call xref_tag. */
14041 if (tag_type
== typename_type
14042 && TREE_CODE (parser
->scope
) != NAMESPACE_DECL
)
14043 return cp_parser_make_typename_type (parser
, parser
->scope
,
14046 /* Look up a qualified name in the usual way. */
14050 tree ambiguous_decls
;
14052 decl
= cp_parser_lookup_name (parser
, identifier
,
14054 /*is_template=*/false,
14055 /*is_namespace=*/false,
14056 /*check_dependency=*/true,
14060 /* If the lookup was ambiguous, an error will already have been
14062 if (ambiguous_decls
)
14063 return error_mark_node
;
14065 /* If we are parsing friend declaration, DECL may be a
14066 TEMPLATE_DECL tree node here. However, we need to check
14067 whether this TEMPLATE_DECL results in valid code. Consider
14068 the following example:
14071 template <class T> class C {};
14074 template <class T> friend class N::C; // #1, valid code
14076 template <class T> class Y {
14077 friend class N::C; // #2, invalid code
14080 For both case #1 and #2, we arrive at a TEMPLATE_DECL after
14081 name lookup of `N::C'. We see that friend declaration must
14082 be template for the code to be valid. Note that
14083 processing_template_decl does not work here since it is
14084 always 1 for the above two cases. */
14086 decl
= (cp_parser_maybe_treat_template_as_class
14087 (decl
, /*tag_name_p=*/is_friend
14088 && parser
->num_template_parameter_lists
));
14090 if (TREE_CODE (decl
) != TYPE_DECL
)
14092 cp_parser_diagnose_invalid_type_name (parser
,
14096 return error_mark_node
;
14099 if (TREE_CODE (TREE_TYPE (decl
)) != TYPENAME_TYPE
)
14101 bool allow_template
= (parser
->num_template_parameter_lists
14102 || DECL_SELF_REFERENCE_P (decl
));
14103 type
= check_elaborated_type_specifier (tag_type
, decl
,
14106 if (type
== error_mark_node
)
14107 return error_mark_node
;
14110 /* Forward declarations of nested types, such as
14115 are invalid unless all components preceding the final '::'
14116 are complete. If all enclosing types are complete, these
14117 declarations become merely pointless.
14119 Invalid forward declarations of nested types are errors
14120 caught elsewhere in parsing. Those that are pointless arrive
14123 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
)
14124 && !is_friend
&& !processing_explicit_instantiation
)
14125 warning (0, "declaration %qD does not declare anything", decl
);
14127 type
= TREE_TYPE (decl
);
14131 /* An elaborated-type-specifier sometimes introduces a new type and
14132 sometimes names an existing type. Normally, the rule is that it
14133 introduces a new type only if there is not an existing type of
14134 the same name already in scope. For example, given:
14137 void f() { struct S s; }
14139 the `struct S' in the body of `f' is the same `struct S' as in
14140 the global scope; the existing definition is used. However, if
14141 there were no global declaration, this would introduce a new
14142 local class named `S'.
14144 An exception to this rule applies to the following code:
14146 namespace N { struct S; }
14148 Here, the elaborated-type-specifier names a new type
14149 unconditionally; even if there is already an `S' in the
14150 containing scope this declaration names a new type.
14151 This exception only applies if the elaborated-type-specifier
14152 forms the complete declaration:
14156 A declaration consisting solely of `class-key identifier ;' is
14157 either a redeclaration of the name in the current scope or a
14158 forward declaration of the identifier as a class name. It
14159 introduces the name into the current scope.
14161 We are in this situation precisely when the next token is a `;'.
14163 An exception to the exception is that a `friend' declaration does
14164 *not* name a new type; i.e., given:
14166 struct S { friend struct T; };
14168 `T' is not a new type in the scope of `S'.
14170 Also, `new struct S' or `sizeof (struct S)' never results in the
14171 definition of a new type; a new type can only be declared in a
14172 declaration context. */
14178 /* Friends have special name lookup rules. */
14179 ts
= ts_within_enclosing_non_class
;
14180 else if (is_declaration
14181 && cp_lexer_next_token_is (parser
->lexer
,
14183 /* This is a `class-key identifier ;' */
14189 (parser
->num_template_parameter_lists
14190 && (cp_parser_next_token_starts_class_definition_p (parser
)
14191 || cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
)));
14192 /* An unqualified name was used to reference this type, so
14193 there were no qualifying templates. */
14194 if (!cp_parser_check_template_parameters (parser
,
14195 /*num_templates=*/0,
14197 /*declarator=*/NULL
))
14198 return error_mark_node
;
14199 type
= xref_tag (tag_type
, identifier
, ts
, template_p
);
14203 if (type
== error_mark_node
)
14204 return error_mark_node
;
14206 /* Allow attributes on forward declarations of classes. */
14209 if (TREE_CODE (type
) == TYPENAME_TYPE
)
14210 warning (OPT_Wattributes
,
14211 "attributes ignored on uninstantiated type");
14212 else if (tag_type
!= enum_type
&& CLASSTYPE_TEMPLATE_INSTANTIATION (type
)
14213 && ! processing_explicit_instantiation
)
14214 warning (OPT_Wattributes
,
14215 "attributes ignored on template instantiation");
14216 else if (is_declaration
&& cp_parser_declares_only_class_p (parser
))
14217 cplus_decl_attributes (&type
, attributes
, (int) ATTR_FLAG_TYPE_IN_PLACE
);
14219 warning (OPT_Wattributes
,
14220 "attributes ignored on elaborated-type-specifier that is not a forward declaration");
14223 if (tag_type
!= enum_type
)
14225 /* Indicate whether this class was declared as a `class' or as a
14227 if (TREE_CODE (type
) == RECORD_TYPE
)
14228 CLASSTYPE_DECLARED_CLASS (type
) = (tag_type
== class_type
);
14229 cp_parser_check_class_key (tag_type
, type
);
14232 /* A "<" cannot follow an elaborated type specifier. If that
14233 happens, the user was probably trying to form a template-id. */
14234 cp_parser_check_for_invalid_template_id (parser
, type
, token
->location
);
14239 /* Parse an enum-specifier.
14242 enum-head { enumerator-list [opt] }
14243 enum-head { enumerator-list , } [C++0x]
14246 enum-key identifier [opt] enum-base [opt]
14247 enum-key nested-name-specifier identifier enum-base [opt]
14252 enum struct [C++0x]
14255 : type-specifier-seq
14257 opaque-enum-specifier:
14258 enum-key identifier enum-base [opt] ;
14261 enum-key attributes[opt] identifier [opt] enum-base [opt]
14262 { enumerator-list [opt] }attributes[opt]
14263 enum-key attributes[opt] identifier [opt] enum-base [opt]
14264 { enumerator-list, }attributes[opt] [C++0x]
14266 Returns an ENUM_TYPE representing the enumeration, or NULL_TREE
14267 if the token stream isn't an enum-specifier after all. */
14270 cp_parser_enum_specifier (cp_parser
* parser
)
14273 tree type
= NULL_TREE
;
14275 tree nested_name_specifier
= NULL_TREE
;
14277 bool scoped_enum_p
= false;
14278 bool has_underlying_type
= false;
14279 bool nested_being_defined
= false;
14280 bool new_value_list
= false;
14281 bool is_new_type
= false;
14282 bool is_anonymous
= false;
14283 tree underlying_type
= NULL_TREE
;
14284 cp_token
*type_start_token
= NULL
;
14285 bool saved_colon_corrects_to_scope_p
= parser
->colon_corrects_to_scope_p
;
14287 parser
->colon_corrects_to_scope_p
= false;
14289 /* Parse tentatively so that we can back up if we don't find a
14291 cp_parser_parse_tentatively (parser
);
14293 /* Caller guarantees that the current token is 'enum', an identifier
14294 possibly follows, and the token after that is an opening brace.
14295 If we don't have an identifier, fabricate an anonymous name for
14296 the enumeration being defined. */
14297 cp_lexer_consume_token (parser
->lexer
);
14299 /* Parse the "class" or "struct", which indicates a scoped
14300 enumeration type in C++0x. */
14301 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_CLASS
)
14302 || cp_lexer_next_token_is_keyword (parser
->lexer
, RID_STRUCT
))
14304 if (cxx_dialect
< cxx0x
)
14305 maybe_warn_cpp0x (CPP0X_SCOPED_ENUMS
);
14307 /* Consume the `struct' or `class' token. */
14308 cp_lexer_consume_token (parser
->lexer
);
14310 scoped_enum_p
= true;
14313 attributes
= cp_parser_attributes_opt (parser
);
14315 /* Clear the qualification. */
14316 parser
->scope
= NULL_TREE
;
14317 parser
->qualifying_scope
= NULL_TREE
;
14318 parser
->object_scope
= NULL_TREE
;
14320 /* Figure out in what scope the declaration is being placed. */
14321 prev_scope
= current_scope ();
14323 type_start_token
= cp_lexer_peek_token (parser
->lexer
);
14325 push_deferring_access_checks (dk_no_check
);
14326 nested_name_specifier
14327 = cp_parser_nested_name_specifier_opt (parser
,
14328 /*typename_keyword_p=*/true,
14329 /*check_dependency_p=*/false,
14331 /*is_declaration=*/false);
14333 if (nested_name_specifier
)
14337 identifier
= cp_parser_identifier (parser
);
14338 name
= cp_parser_lookup_name (parser
, identifier
,
14340 /*is_template=*/false,
14341 /*is_namespace=*/false,
14342 /*check_dependency=*/true,
14343 /*ambiguous_decls=*/NULL
,
14347 type
= TREE_TYPE (name
);
14348 if (TREE_CODE (type
) == TYPENAME_TYPE
)
14350 /* Are template enums allowed in ISO? */
14351 if (template_parm_scope_p ())
14352 pedwarn (type_start_token
->location
, OPT_Wpedantic
,
14353 "%qD is an enumeration template", name
);
14354 /* ignore a typename reference, for it will be solved by name
14360 error_at (type_start_token
->location
,
14361 "%qD is not an enumerator-name", identifier
);
14365 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
14366 identifier
= cp_parser_identifier (parser
);
14369 identifier
= make_anon_name ();
14370 is_anonymous
= true;
14373 pop_deferring_access_checks ();
14375 /* Check for the `:' that denotes a specified underlying type in C++0x.
14376 Note that a ':' could also indicate a bitfield width, however. */
14377 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
))
14379 cp_decl_specifier_seq type_specifiers
;
14381 /* Consume the `:'. */
14382 cp_lexer_consume_token (parser
->lexer
);
14384 /* Parse the type-specifier-seq. */
14385 cp_parser_type_specifier_seq (parser
, /*is_declaration=*/false,
14386 /*is_trailing_return=*/false,
14389 /* At this point this is surely not elaborated type specifier. */
14390 if (!cp_parser_parse_definitely (parser
))
14393 if (cxx_dialect
< cxx0x
)
14394 maybe_warn_cpp0x (CPP0X_SCOPED_ENUMS
);
14396 has_underlying_type
= true;
14398 /* If that didn't work, stop. */
14399 if (type_specifiers
.type
!= error_mark_node
)
14401 underlying_type
= grokdeclarator (NULL
, &type_specifiers
, TYPENAME
,
14402 /*initialized=*/0, NULL
);
14403 if (underlying_type
== error_mark_node
)
14404 underlying_type
= NULL_TREE
;
14408 /* Look for the `{' but don't consume it yet. */
14409 if (!cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
14411 if (cxx_dialect
< cxx0x
|| (!scoped_enum_p
&& !underlying_type
))
14413 cp_parser_error (parser
, "expected %<{%>");
14414 if (has_underlying_type
)
14420 /* An opaque-enum-specifier must have a ';' here. */
14421 if ((scoped_enum_p
|| underlying_type
)
14422 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
14424 cp_parser_error (parser
, "expected %<;%> or %<{%>");
14425 if (has_underlying_type
)
14433 if (!has_underlying_type
&& !cp_parser_parse_definitely (parser
))
14436 if (nested_name_specifier
)
14438 if (CLASS_TYPE_P (nested_name_specifier
))
14440 nested_being_defined
= TYPE_BEING_DEFINED (nested_name_specifier
);
14441 TYPE_BEING_DEFINED (nested_name_specifier
) = 1;
14442 push_scope (nested_name_specifier
);
14444 else if (TREE_CODE (nested_name_specifier
) == NAMESPACE_DECL
)
14446 push_nested_namespace (nested_name_specifier
);
14450 /* Issue an error message if type-definitions are forbidden here. */
14451 if (!cp_parser_check_type_definition (parser
))
14452 type
= error_mark_node
;
14454 /* Create the new type. We do this before consuming the opening
14455 brace so the enum will be recorded as being on the line of its
14456 tag (or the 'enum' keyword, if there is no tag). */
14457 type
= start_enum (identifier
, type
, underlying_type
,
14458 scoped_enum_p
, &is_new_type
);
14460 /* If the next token is not '{' it is an opaque-enum-specifier or an
14461 elaborated-type-specifier. */
14462 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
14464 timevar_push (TV_PARSE_ENUM
);
14465 if (nested_name_specifier
)
14467 /* The following catches invalid code such as:
14468 enum class S<int>::E { A, B, C }; */
14469 if (!processing_specialization
14470 && CLASS_TYPE_P (nested_name_specifier
)
14471 && CLASSTYPE_USE_TEMPLATE (nested_name_specifier
))
14472 error_at (type_start_token
->location
, "cannot add an enumerator "
14473 "list to a template instantiation");
14475 /* If that scope does not contain the scope in which the
14476 class was originally declared, the program is invalid. */
14477 if (prev_scope
&& !is_ancestor (prev_scope
, nested_name_specifier
))
14479 if (at_namespace_scope_p ())
14480 error_at (type_start_token
->location
,
14481 "declaration of %qD in namespace %qD which does not "
14483 type
, prev_scope
, nested_name_specifier
);
14485 error_at (type_start_token
->location
,
14486 "declaration of %qD in %qD which does not enclose %qD",
14487 type
, prev_scope
, nested_name_specifier
);
14488 type
= error_mark_node
;
14493 begin_scope (sk_scoped_enum
, type
);
14495 /* Consume the opening brace. */
14496 cp_lexer_consume_token (parser
->lexer
);
14498 if (type
== error_mark_node
)
14499 ; /* Nothing to add */
14500 else if (OPAQUE_ENUM_P (type
)
14501 || (cxx_dialect
> cxx98
&& processing_specialization
))
14503 new_value_list
= true;
14504 SET_OPAQUE_ENUM_P (type
, false);
14505 DECL_SOURCE_LOCATION (TYPE_NAME (type
)) = type_start_token
->location
;
14509 error_at (type_start_token
->location
, "multiple definition of %q#T", type
);
14510 error_at (DECL_SOURCE_LOCATION (TYPE_MAIN_DECL (type
)),
14511 "previous definition here");
14512 type
= error_mark_node
;
14515 if (type
== error_mark_node
)
14516 cp_parser_skip_to_end_of_block_or_statement (parser
);
14517 /* If the next token is not '}', then there are some enumerators. */
14518 else if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_BRACE
))
14519 cp_parser_enumerator_list (parser
, type
);
14521 /* Consume the final '}'. */
14522 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
14526 timevar_pop (TV_PARSE_ENUM
);
14530 /* If a ';' follows, then it is an opaque-enum-specifier
14531 and additional restrictions apply. */
14532 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
14535 error_at (type_start_token
->location
,
14536 "opaque-enum-specifier without name");
14537 else if (nested_name_specifier
)
14538 error_at (type_start_token
->location
,
14539 "opaque-enum-specifier must use a simple identifier");
14543 /* Look for trailing attributes to apply to this enumeration, and
14544 apply them if appropriate. */
14545 if (cp_parser_allow_gnu_extensions_p (parser
))
14547 tree trailing_attr
= cp_parser_attributes_opt (parser
);
14548 trailing_attr
= chainon (trailing_attr
, attributes
);
14549 cplus_decl_attributes (&type
,
14551 (int) ATTR_FLAG_TYPE_IN_PLACE
);
14554 /* Finish up the enumeration. */
14555 if (type
!= error_mark_node
)
14557 if (new_value_list
)
14558 finish_enum_value_list (type
);
14560 finish_enum (type
);
14563 if (nested_name_specifier
)
14565 if (CLASS_TYPE_P (nested_name_specifier
))
14567 TYPE_BEING_DEFINED (nested_name_specifier
) = nested_being_defined
;
14568 pop_scope (nested_name_specifier
);
14570 else if (TREE_CODE (nested_name_specifier
) == NAMESPACE_DECL
)
14572 pop_nested_namespace (nested_name_specifier
);
14576 parser
->colon_corrects_to_scope_p
= saved_colon_corrects_to_scope_p
;
14580 /* Parse an enumerator-list. The enumerators all have the indicated
14584 enumerator-definition
14585 enumerator-list , enumerator-definition */
14588 cp_parser_enumerator_list (cp_parser
* parser
, tree type
)
14592 /* Parse an enumerator-definition. */
14593 cp_parser_enumerator_definition (parser
, type
);
14595 /* If the next token is not a ',', we've reached the end of
14597 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
14599 /* Otherwise, consume the `,' and keep going. */
14600 cp_lexer_consume_token (parser
->lexer
);
14601 /* If the next token is a `}', there is a trailing comma. */
14602 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_BRACE
))
14604 if (cxx_dialect
< cxx0x
&& !in_system_header
)
14605 pedwarn (input_location
, OPT_Wpedantic
,
14606 "comma at end of enumerator list");
14612 /* Parse an enumerator-definition. The enumerator has the indicated
14615 enumerator-definition:
14617 enumerator = constant-expression
14623 cp_parser_enumerator_definition (cp_parser
* parser
, tree type
)
14629 /* Save the input location because we are interested in the location
14630 of the identifier and not the location of the explicit value. */
14631 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
14633 /* Look for the identifier. */
14634 identifier
= cp_parser_identifier (parser
);
14635 if (identifier
== error_mark_node
)
14638 /* If the next token is an '=', then there is an explicit value. */
14639 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
14641 /* Consume the `=' token. */
14642 cp_lexer_consume_token (parser
->lexer
);
14643 /* Parse the value. */
14644 value
= cp_parser_constant_expression (parser
,
14645 /*allow_non_constant_p=*/false,
14651 /* If we are processing a template, make sure the initializer of the
14652 enumerator doesn't contain any bare template parameter pack. */
14653 if (check_for_bare_parameter_packs (value
))
14654 value
= error_mark_node
;
14656 /* integral_constant_value will pull out this expression, so make sure
14657 it's folded as appropriate. */
14658 value
= fold_non_dependent_expr (value
);
14660 /* Create the enumerator. */
14661 build_enumerator (identifier
, value
, type
, loc
);
14664 /* Parse a namespace-name.
14667 original-namespace-name
14670 Returns the NAMESPACE_DECL for the namespace. */
14673 cp_parser_namespace_name (cp_parser
* parser
)
14676 tree namespace_decl
;
14678 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
14680 /* Get the name of the namespace. */
14681 identifier
= cp_parser_identifier (parser
);
14682 if (identifier
== error_mark_node
)
14683 return error_mark_node
;
14685 /* Look up the identifier in the currently active scope. Look only
14686 for namespaces, due to:
14688 [basic.lookup.udir]
14690 When looking up a namespace-name in a using-directive or alias
14691 definition, only namespace names are considered.
14695 [basic.lookup.qual]
14697 During the lookup of a name preceding the :: scope resolution
14698 operator, object, function, and enumerator names are ignored.
14700 (Note that cp_parser_qualifying_entity only calls this
14701 function if the token after the name is the scope resolution
14703 namespace_decl
= cp_parser_lookup_name (parser
, identifier
,
14705 /*is_template=*/false,
14706 /*is_namespace=*/true,
14707 /*check_dependency=*/true,
14708 /*ambiguous_decls=*/NULL
,
14710 /* If it's not a namespace, issue an error. */
14711 if (namespace_decl
== error_mark_node
14712 || TREE_CODE (namespace_decl
) != NAMESPACE_DECL
)
14714 if (!cp_parser_uncommitted_to_tentative_parse_p (parser
))
14715 error_at (token
->location
, "%qD is not a namespace-name", identifier
);
14716 cp_parser_error (parser
, "expected namespace-name");
14717 namespace_decl
= error_mark_node
;
14720 return namespace_decl
;
14723 /* Parse a namespace-definition.
14725 namespace-definition:
14726 named-namespace-definition
14727 unnamed-namespace-definition
14729 named-namespace-definition:
14730 original-namespace-definition
14731 extension-namespace-definition
14733 original-namespace-definition:
14734 namespace identifier { namespace-body }
14736 extension-namespace-definition:
14737 namespace original-namespace-name { namespace-body }
14739 unnamed-namespace-definition:
14740 namespace { namespace-body } */
14743 cp_parser_namespace_definition (cp_parser
* parser
)
14745 tree identifier
, attribs
;
14746 bool has_visibility
;
14749 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_INLINE
))
14751 maybe_warn_cpp0x (CPP0X_INLINE_NAMESPACES
);
14753 cp_lexer_consume_token (parser
->lexer
);
14758 /* Look for the `namespace' keyword. */
14759 cp_parser_require_keyword (parser
, RID_NAMESPACE
, RT_NAMESPACE
);
14761 /* Get the name of the namespace. We do not attempt to distinguish
14762 between an original-namespace-definition and an
14763 extension-namespace-definition at this point. The semantic
14764 analysis routines are responsible for that. */
14765 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
14766 identifier
= cp_parser_identifier (parser
);
14768 identifier
= NULL_TREE
;
14770 /* Parse any specified attributes. */
14771 attribs
= cp_parser_attributes_opt (parser
);
14773 /* Look for the `{' to start the namespace. */
14774 cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
);
14775 /* Start the namespace. */
14776 push_namespace (identifier
);
14778 /* "inline namespace" is equivalent to a stub namespace definition
14779 followed by a strong using directive. */
14782 tree name_space
= current_namespace
;
14783 /* Set up namespace association. */
14784 DECL_NAMESPACE_ASSOCIATIONS (name_space
)
14785 = tree_cons (CP_DECL_CONTEXT (name_space
), NULL_TREE
,
14786 DECL_NAMESPACE_ASSOCIATIONS (name_space
));
14787 /* Import the contents of the inline namespace. */
14789 do_using_directive (name_space
);
14790 push_namespace (identifier
);
14793 has_visibility
= handle_namespace_attrs (current_namespace
, attribs
);
14795 /* Parse the body of the namespace. */
14796 cp_parser_namespace_body (parser
);
14798 if (has_visibility
)
14799 pop_visibility (1);
14801 /* Finish the namespace. */
14803 /* Look for the final `}'. */
14804 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
14807 /* Parse a namespace-body.
14810 declaration-seq [opt] */
14813 cp_parser_namespace_body (cp_parser
* parser
)
14815 cp_parser_declaration_seq_opt (parser
);
14818 /* Parse a namespace-alias-definition.
14820 namespace-alias-definition:
14821 namespace identifier = qualified-namespace-specifier ; */
14824 cp_parser_namespace_alias_definition (cp_parser
* parser
)
14827 tree namespace_specifier
;
14829 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
14831 /* Look for the `namespace' keyword. */
14832 cp_parser_require_keyword (parser
, RID_NAMESPACE
, RT_NAMESPACE
);
14833 /* Look for the identifier. */
14834 identifier
= cp_parser_identifier (parser
);
14835 if (identifier
== error_mark_node
)
14837 /* Look for the `=' token. */
14838 if (!cp_parser_uncommitted_to_tentative_parse_p (parser
)
14839 && cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
14841 error_at (token
->location
, "%<namespace%> definition is not allowed here");
14842 /* Skip the definition. */
14843 cp_lexer_consume_token (parser
->lexer
);
14844 if (cp_parser_skip_to_closing_brace (parser
))
14845 cp_lexer_consume_token (parser
->lexer
);
14848 cp_parser_require (parser
, CPP_EQ
, RT_EQ
);
14849 /* Look for the qualified-namespace-specifier. */
14850 namespace_specifier
14851 = cp_parser_qualified_namespace_specifier (parser
);
14852 /* Look for the `;' token. */
14853 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
14855 /* Register the alias in the symbol table. */
14856 do_namespace_alias (identifier
, namespace_specifier
);
14859 /* Parse a qualified-namespace-specifier.
14861 qualified-namespace-specifier:
14862 :: [opt] nested-name-specifier [opt] namespace-name
14864 Returns a NAMESPACE_DECL corresponding to the specified
14868 cp_parser_qualified_namespace_specifier (cp_parser
* parser
)
14870 /* Look for the optional `::'. */
14871 cp_parser_global_scope_opt (parser
,
14872 /*current_scope_valid_p=*/false);
14874 /* Look for the optional nested-name-specifier. */
14875 cp_parser_nested_name_specifier_opt (parser
,
14876 /*typename_keyword_p=*/false,
14877 /*check_dependency_p=*/true,
14879 /*is_declaration=*/true);
14881 return cp_parser_namespace_name (parser
);
14884 /* Parse a using-declaration, or, if ACCESS_DECLARATION_P is true, an
14885 access declaration.
14888 using typename [opt] :: [opt] nested-name-specifier unqualified-id ;
14889 using :: unqualified-id ;
14891 access-declaration:
14897 cp_parser_using_declaration (cp_parser
* parser
,
14898 bool access_declaration_p
)
14901 bool typename_p
= false;
14902 bool global_scope_p
;
14906 int oldcount
= errorcount
;
14907 cp_token
*diag_token
= NULL
;
14909 if (access_declaration_p
)
14911 diag_token
= cp_lexer_peek_token (parser
->lexer
);
14912 cp_parser_parse_tentatively (parser
);
14916 /* Look for the `using' keyword. */
14917 cp_parser_require_keyword (parser
, RID_USING
, RT_USING
);
14919 /* Peek at the next token. */
14920 token
= cp_lexer_peek_token (parser
->lexer
);
14921 /* See if it's `typename'. */
14922 if (token
->keyword
== RID_TYPENAME
)
14924 /* Remember that we've seen it. */
14926 /* Consume the `typename' token. */
14927 cp_lexer_consume_token (parser
->lexer
);
14931 /* Look for the optional global scope qualification. */
14933 = (cp_parser_global_scope_opt (parser
,
14934 /*current_scope_valid_p=*/false)
14937 /* If we saw `typename', or didn't see `::', then there must be a
14938 nested-name-specifier present. */
14939 if (typename_p
|| !global_scope_p
)
14940 qscope
= cp_parser_nested_name_specifier (parser
, typename_p
,
14941 /*check_dependency_p=*/true,
14943 /*is_declaration=*/true);
14944 /* Otherwise, we could be in either of the two productions. In that
14945 case, treat the nested-name-specifier as optional. */
14947 qscope
= cp_parser_nested_name_specifier_opt (parser
,
14948 /*typename_keyword_p=*/false,
14949 /*check_dependency_p=*/true,
14951 /*is_declaration=*/true);
14953 qscope
= global_namespace
;
14955 if (access_declaration_p
&& cp_parser_error_occurred (parser
))
14956 /* Something has already gone wrong; there's no need to parse
14957 further. Since an error has occurred, the return value of
14958 cp_parser_parse_definitely will be false, as required. */
14959 return cp_parser_parse_definitely (parser
);
14961 token
= cp_lexer_peek_token (parser
->lexer
);
14962 /* Parse the unqualified-id. */
14963 identifier
= cp_parser_unqualified_id (parser
,
14964 /*template_keyword_p=*/false,
14965 /*check_dependency_p=*/true,
14966 /*declarator_p=*/true,
14967 /*optional_p=*/false);
14969 if (access_declaration_p
)
14971 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
14972 cp_parser_simulate_error (parser
);
14973 if (!cp_parser_parse_definitely (parser
))
14977 /* The function we call to handle a using-declaration is different
14978 depending on what scope we are in. */
14979 if (qscope
== error_mark_node
|| identifier
== error_mark_node
)
14981 else if (TREE_CODE (identifier
) != IDENTIFIER_NODE
14982 && TREE_CODE (identifier
) != BIT_NOT_EXPR
)
14983 /* [namespace.udecl]
14985 A using declaration shall not name a template-id. */
14986 error_at (token
->location
,
14987 "a template-id may not appear in a using-declaration");
14990 if (at_class_scope_p ())
14992 /* Create the USING_DECL. */
14993 decl
= do_class_using_decl (parser
->scope
, identifier
);
14995 if (decl
&& typename_p
)
14996 USING_DECL_TYPENAME_P (decl
) = 1;
14998 if (check_for_bare_parameter_packs (decl
))
15001 /* Add it to the list of members in this class. */
15002 finish_member_declaration (decl
);
15006 decl
= cp_parser_lookup_name_simple (parser
,
15009 if (decl
== error_mark_node
)
15010 cp_parser_name_lookup_error (parser
, identifier
,
15013 else if (check_for_bare_parameter_packs (decl
))
15015 else if (!at_namespace_scope_p ())
15016 do_local_using_decl (decl
, qscope
, identifier
);
15018 do_toplevel_using_decl (decl
, qscope
, identifier
);
15022 /* Look for the final `;'. */
15023 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
15025 if (access_declaration_p
&& errorcount
== oldcount
)
15026 warning_at (diag_token
->location
, OPT_Wdeprecated
,
15027 "access declarations are deprecated "
15028 "in favour of using-declarations; "
15029 "suggestion: add the %<using%> keyword");
15034 /* Parse an alias-declaration.
15037 using identifier attribute-specifier-seq [opt] = type-id */
15040 cp_parser_alias_declaration (cp_parser
* parser
)
15042 tree id
, type
, decl
, pushed_scope
= NULL_TREE
, attributes
;
15043 location_t id_location
, using_location
, attrs_location
= 0;
15044 cp_declarator
*declarator
;
15045 cp_decl_specifier_seq decl_specs
;
15047 const char *saved_message
= NULL
;
15049 /* Look for the `using' keyword. */
15050 using_location
= cp_lexer_peek_token (parser
->lexer
)->location
;
15051 cp_parser_require_keyword (parser
, RID_USING
, RT_USING
);
15052 id_location
= cp_lexer_peek_token (parser
->lexer
)->location
;
15053 id
= cp_parser_identifier (parser
);
15054 if (id
== error_mark_node
)
15055 return error_mark_node
;
15057 attrs_location
= cp_lexer_peek_token (parser
->lexer
)->location
;
15058 attributes
= cp_parser_attributes_opt (parser
);
15059 if (attributes
== error_mark_node
)
15060 return error_mark_node
;
15062 cp_parser_require (parser
, CPP_EQ
, RT_EQ
);
15064 if (cp_parser_error_occurred (parser
))
15065 return error_mark_node
;
15067 /* Now we are going to parse the type-id of the declaration. */
15072 "A type-specifier-seq shall not define a class or enumeration
15073 unless it appears in the type-id of an alias-declaration (7.1.3) that
15074 is not the declaration of a template-declaration."
15076 In other words, if we currently are in an alias template, the
15077 type-id should not define a type.
15079 So let's set parser->type_definition_forbidden_message in that
15080 case; cp_parser_check_type_definition (called by
15081 cp_parser_class_specifier) will then emit an error if a type is
15082 defined in the type-id. */
15083 if (parser
->num_template_parameter_lists
)
15085 saved_message
= parser
->type_definition_forbidden_message
;
15086 parser
->type_definition_forbidden_message
=
15087 G_("types may not be defined in alias template declarations");
15090 type
= cp_parser_type_id (parser
);
15092 /* Restore the error message if need be. */
15093 if (parser
->num_template_parameter_lists
)
15094 parser
->type_definition_forbidden_message
= saved_message
;
15096 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
15098 if (cp_parser_error_occurred (parser
))
15099 return error_mark_node
;
15101 /* A typedef-name can also be introduced by an alias-declaration. The
15102 identifier following the using keyword becomes a typedef-name. It has
15103 the same semantics as if it were introduced by the typedef
15104 specifier. In particular, it does not define a new type and it shall
15105 not appear in the type-id. */
15107 clear_decl_specs (&decl_specs
);
15108 decl_specs
.type
= type
;
15109 if (attributes
!= NULL_TREE
)
15111 decl_specs
.attributes
= attributes
;
15112 set_and_check_decl_spec_loc (&decl_specs
,
15116 set_and_check_decl_spec_loc (&decl_specs
,
15119 set_and_check_decl_spec_loc (&decl_specs
,
15123 declarator
= make_id_declarator (NULL_TREE
, id
, sfk_none
);
15124 declarator
->id_loc
= id_location
;
15126 member_p
= at_class_scope_p ();
15128 decl
= grokfield (declarator
, &decl_specs
, NULL_TREE
, false,
15129 NULL_TREE
, attributes
);
15131 decl
= start_decl (declarator
, &decl_specs
, 0,
15132 attributes
, NULL_TREE
, &pushed_scope
);
15133 if (decl
== error_mark_node
)
15136 cp_finish_decl (decl
, NULL_TREE
, 0, NULL_TREE
, 0);
15139 pop_scope (pushed_scope
);
15141 /* If decl is a template, return its TEMPLATE_DECL so that it gets
15142 added into the symbol table; otherwise, return the TYPE_DECL. */
15143 if (DECL_LANG_SPECIFIC (decl
)
15144 && DECL_TEMPLATE_INFO (decl
)
15145 && PRIMARY_TEMPLATE_P (DECL_TI_TEMPLATE (decl
)))
15147 decl
= DECL_TI_TEMPLATE (decl
);
15149 check_member_template (decl
);
15155 /* Parse a using-directive.
15158 using namespace :: [opt] nested-name-specifier [opt]
15159 namespace-name ; */
15162 cp_parser_using_directive (cp_parser
* parser
)
15164 tree namespace_decl
;
15167 /* Look for the `using' keyword. */
15168 cp_parser_require_keyword (parser
, RID_USING
, RT_USING
);
15169 /* And the `namespace' keyword. */
15170 cp_parser_require_keyword (parser
, RID_NAMESPACE
, RT_NAMESPACE
);
15171 /* Look for the optional `::' operator. */
15172 cp_parser_global_scope_opt (parser
, /*current_scope_valid_p=*/false);
15173 /* And the optional nested-name-specifier. */
15174 cp_parser_nested_name_specifier_opt (parser
,
15175 /*typename_keyword_p=*/false,
15176 /*check_dependency_p=*/true,
15178 /*is_declaration=*/true);
15179 /* Get the namespace being used. */
15180 namespace_decl
= cp_parser_namespace_name (parser
);
15181 /* And any specified attributes. */
15182 attribs
= cp_parser_attributes_opt (parser
);
15183 /* Update the symbol table. */
15184 parse_using_directive (namespace_decl
, attribs
);
15185 /* Look for the final `;'. */
15186 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
15189 /* Parse an asm-definition.
15192 asm ( string-literal ) ;
15197 asm volatile [opt] ( string-literal ) ;
15198 asm volatile [opt] ( string-literal : asm-operand-list [opt] ) ;
15199 asm volatile [opt] ( string-literal : asm-operand-list [opt]
15200 : asm-operand-list [opt] ) ;
15201 asm volatile [opt] ( string-literal : asm-operand-list [opt]
15202 : asm-operand-list [opt]
15203 : asm-clobber-list [opt] ) ;
15204 asm volatile [opt] goto ( string-literal : : asm-operand-list [opt]
15205 : asm-clobber-list [opt]
15206 : asm-goto-list ) ; */
15209 cp_parser_asm_definition (cp_parser
* parser
)
15212 tree outputs
= NULL_TREE
;
15213 tree inputs
= NULL_TREE
;
15214 tree clobbers
= NULL_TREE
;
15215 tree labels
= NULL_TREE
;
15217 bool volatile_p
= false;
15218 bool extended_p
= false;
15219 bool invalid_inputs_p
= false;
15220 bool invalid_outputs_p
= false;
15221 bool goto_p
= false;
15222 required_token missing
= RT_NONE
;
15224 /* Look for the `asm' keyword. */
15225 cp_parser_require_keyword (parser
, RID_ASM
, RT_ASM
);
15226 /* See if the next token is `volatile'. */
15227 if (cp_parser_allow_gnu_extensions_p (parser
)
15228 && cp_lexer_next_token_is_keyword (parser
->lexer
, RID_VOLATILE
))
15230 /* Remember that we saw the `volatile' keyword. */
15232 /* Consume the token. */
15233 cp_lexer_consume_token (parser
->lexer
);
15235 if (cp_parser_allow_gnu_extensions_p (parser
)
15236 && parser
->in_function_body
15237 && cp_lexer_next_token_is_keyword (parser
->lexer
, RID_GOTO
))
15239 /* Remember that we saw the `goto' keyword. */
15241 /* Consume the token. */
15242 cp_lexer_consume_token (parser
->lexer
);
15244 /* Look for the opening `('. */
15245 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
15247 /* Look for the string. */
15248 string
= cp_parser_string_literal (parser
, false, false);
15249 if (string
== error_mark_node
)
15251 cp_parser_skip_to_closing_parenthesis (parser
, true, false,
15252 /*consume_paren=*/true);
15256 /* If we're allowing GNU extensions, check for the extended assembly
15257 syntax. Unfortunately, the `:' tokens need not be separated by
15258 a space in C, and so, for compatibility, we tolerate that here
15259 too. Doing that means that we have to treat the `::' operator as
15261 if (cp_parser_allow_gnu_extensions_p (parser
)
15262 && parser
->in_function_body
15263 && (cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
)
15264 || cp_lexer_next_token_is (parser
->lexer
, CPP_SCOPE
)))
15266 bool inputs_p
= false;
15267 bool clobbers_p
= false;
15268 bool labels_p
= false;
15270 /* The extended syntax was used. */
15273 /* Look for outputs. */
15274 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
))
15276 /* Consume the `:'. */
15277 cp_lexer_consume_token (parser
->lexer
);
15278 /* Parse the output-operands. */
15279 if (cp_lexer_next_token_is_not (parser
->lexer
,
15281 && cp_lexer_next_token_is_not (parser
->lexer
,
15283 && cp_lexer_next_token_is_not (parser
->lexer
,
15286 outputs
= cp_parser_asm_operand_list (parser
);
15288 if (outputs
== error_mark_node
)
15289 invalid_outputs_p
= true;
15291 /* If the next token is `::', there are no outputs, and the
15292 next token is the beginning of the inputs. */
15293 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_SCOPE
))
15294 /* The inputs are coming next. */
15297 /* Look for inputs. */
15299 || cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
))
15301 /* Consume the `:' or `::'. */
15302 cp_lexer_consume_token (parser
->lexer
);
15303 /* Parse the output-operands. */
15304 if (cp_lexer_next_token_is_not (parser
->lexer
,
15306 && cp_lexer_next_token_is_not (parser
->lexer
,
15308 && cp_lexer_next_token_is_not (parser
->lexer
,
15310 inputs
= cp_parser_asm_operand_list (parser
);
15312 if (inputs
== error_mark_node
)
15313 invalid_inputs_p
= true;
15315 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_SCOPE
))
15316 /* The clobbers are coming next. */
15319 /* Look for clobbers. */
15321 || cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
))
15324 /* Consume the `:' or `::'. */
15325 cp_lexer_consume_token (parser
->lexer
);
15326 /* Parse the clobbers. */
15327 if (cp_lexer_next_token_is_not (parser
->lexer
,
15329 && cp_lexer_next_token_is_not (parser
->lexer
,
15331 clobbers
= cp_parser_asm_clobber_list (parser
);
15334 && cp_lexer_next_token_is (parser
->lexer
, CPP_SCOPE
))
15335 /* The labels are coming next. */
15338 /* Look for labels. */
15340 || (goto_p
&& cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
)))
15343 /* Consume the `:' or `::'. */
15344 cp_lexer_consume_token (parser
->lexer
);
15345 /* Parse the labels. */
15346 labels
= cp_parser_asm_label_list (parser
);
15349 if (goto_p
&& !labels_p
)
15350 missing
= clobbers_p
? RT_COLON
: RT_COLON_SCOPE
;
15353 missing
= RT_COLON_SCOPE
;
15355 /* Look for the closing `)'. */
15356 if (!cp_parser_require (parser
, missing
? CPP_COLON
: CPP_CLOSE_PAREN
,
15357 missing
? missing
: RT_CLOSE_PAREN
))
15358 cp_parser_skip_to_closing_parenthesis (parser
, true, false,
15359 /*consume_paren=*/true);
15360 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
15362 if (!invalid_inputs_p
&& !invalid_outputs_p
)
15364 /* Create the ASM_EXPR. */
15365 if (parser
->in_function_body
)
15367 asm_stmt
= finish_asm_stmt (volatile_p
, string
, outputs
,
15368 inputs
, clobbers
, labels
);
15369 /* If the extended syntax was not used, mark the ASM_EXPR. */
15372 tree temp
= asm_stmt
;
15373 if (TREE_CODE (temp
) == CLEANUP_POINT_EXPR
)
15374 temp
= TREE_OPERAND (temp
, 0);
15376 ASM_INPUT_P (temp
) = 1;
15380 add_asm_node (string
);
15384 /* Declarators [gram.dcl.decl] */
15386 /* Parse an init-declarator.
15389 declarator initializer [opt]
15394 declarator asm-specification [opt] attributes [opt] initializer [opt]
15396 function-definition:
15397 decl-specifier-seq [opt] declarator ctor-initializer [opt]
15399 decl-specifier-seq [opt] declarator function-try-block
15403 function-definition:
15404 __extension__ function-definition
15408 function-definition:
15409 decl-specifier-seq [opt] declarator function-transaction-block
15411 The DECL_SPECIFIERS apply to this declarator. Returns a
15412 representation of the entity declared. If MEMBER_P is TRUE, then
15413 this declarator appears in a class scope. The new DECL created by
15414 this declarator is returned.
15416 The CHECKS are access checks that should be performed once we know
15417 what entity is being declared (and, therefore, what classes have
15420 If FUNCTION_DEFINITION_ALLOWED_P then we handle the declarator and
15421 for a function-definition here as well. If the declarator is a
15422 declarator for a function-definition, *FUNCTION_DEFINITION_P will
15423 be TRUE upon return. By that point, the function-definition will
15424 have been completely parsed.
15426 FUNCTION_DEFINITION_P may be NULL if FUNCTION_DEFINITION_ALLOWED_P
15429 If MAYBE_RANGE_FOR_DECL is not NULL, the pointed tree will be set to the
15430 parsed declaration if it is an uninitialized single declarator not followed
15431 by a `;', or to error_mark_node otherwise. Either way, the trailing `;',
15432 if present, will not be consumed. If returned, this declarator will be
15433 created with SD_INITIALIZED but will not call cp_finish_decl. */
15436 cp_parser_init_declarator (cp_parser
* parser
,
15437 cp_decl_specifier_seq
*decl_specifiers
,
15438 VEC (deferred_access_check
,gc
)* checks
,
15439 bool function_definition_allowed_p
,
15441 int declares_class_or_enum
,
15442 bool* function_definition_p
,
15443 tree
* maybe_range_for_decl
)
15445 cp_token
*token
= NULL
, *asm_spec_start_token
= NULL
,
15446 *attributes_start_token
= NULL
;
15447 cp_declarator
*declarator
;
15448 tree prefix_attributes
;
15450 tree asm_specification
;
15452 tree decl
= NULL_TREE
;
15454 int is_initialized
;
15455 /* Only valid if IS_INITIALIZED is true. In that case, CPP_EQ if
15456 initialized with "= ..", CPP_OPEN_PAREN if initialized with
15458 enum cpp_ttype initialization_kind
;
15459 bool is_direct_init
= false;
15460 bool is_non_constant_init
;
15461 int ctor_dtor_or_conv_p
;
15463 tree pushed_scope
= NULL_TREE
;
15464 bool range_for_decl_p
= false;
15466 /* Gather the attributes that were provided with the
15467 decl-specifiers. */
15468 prefix_attributes
= decl_specifiers
->attributes
;
15470 /* Assume that this is not the declarator for a function
15472 if (function_definition_p
)
15473 *function_definition_p
= false;
15475 /* Defer access checks while parsing the declarator; we cannot know
15476 what names are accessible until we know what is being
15478 resume_deferring_access_checks ();
15480 /* Parse the declarator. */
15481 token
= cp_lexer_peek_token (parser
->lexer
);
15483 = cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_NAMED
,
15484 &ctor_dtor_or_conv_p
,
15485 /*parenthesized_p=*/NULL
,
15487 /* Gather up the deferred checks. */
15488 stop_deferring_access_checks ();
15490 /* If the DECLARATOR was erroneous, there's no need to go
15492 if (declarator
== cp_error_declarator
)
15493 return error_mark_node
;
15495 /* Check that the number of template-parameter-lists is OK. */
15496 if (!cp_parser_check_declarator_template_parameters (parser
, declarator
,
15498 return error_mark_node
;
15500 if (declares_class_or_enum
& 2)
15501 cp_parser_check_for_definition_in_return_type (declarator
,
15502 decl_specifiers
->type
,
15503 decl_specifiers
->locations
[ds_type_spec
]);
15505 /* Figure out what scope the entity declared by the DECLARATOR is
15506 located in. `grokdeclarator' sometimes changes the scope, so
15507 we compute it now. */
15508 scope
= get_scope_of_declarator (declarator
);
15510 /* Perform any lookups in the declared type which were thought to be
15511 dependent, but are not in the scope of the declarator. */
15512 decl_specifiers
->type
15513 = maybe_update_decl_type (decl_specifiers
->type
, scope
);
15515 /* If we're allowing GNU extensions, look for an asm-specification
15517 if (cp_parser_allow_gnu_extensions_p (parser
))
15519 /* Look for an asm-specification. */
15520 asm_spec_start_token
= cp_lexer_peek_token (parser
->lexer
);
15521 asm_specification
= cp_parser_asm_specification_opt (parser
);
15522 /* And attributes. */
15523 attributes_start_token
= cp_lexer_peek_token (parser
->lexer
);
15524 attributes
= cp_parser_attributes_opt (parser
);
15528 asm_specification
= NULL_TREE
;
15529 attributes
= NULL_TREE
;
15532 /* Peek at the next token. */
15533 token
= cp_lexer_peek_token (parser
->lexer
);
15534 /* Check to see if the token indicates the start of a
15535 function-definition. */
15536 if (function_declarator_p (declarator
)
15537 && cp_parser_token_starts_function_definition_p (token
))
15539 if (!function_definition_allowed_p
)
15541 /* If a function-definition should not appear here, issue an
15543 cp_parser_error (parser
,
15544 "a function-definition is not allowed here");
15545 return error_mark_node
;
15549 location_t func_brace_location
15550 = cp_lexer_peek_token (parser
->lexer
)->location
;
15552 /* Neither attributes nor an asm-specification are allowed
15553 on a function-definition. */
15554 if (asm_specification
)
15555 error_at (asm_spec_start_token
->location
,
15556 "an asm-specification is not allowed "
15557 "on a function-definition");
15559 error_at (attributes_start_token
->location
,
15560 "attributes are not allowed on a function-definition");
15561 /* This is a function-definition. */
15562 *function_definition_p
= true;
15564 /* Parse the function definition. */
15566 decl
= cp_parser_save_member_function_body (parser
,
15569 prefix_attributes
);
15572 = (cp_parser_function_definition_from_specifiers_and_declarator
15573 (parser
, decl_specifiers
, prefix_attributes
, declarator
));
15575 if (decl
!= error_mark_node
&& DECL_STRUCT_FUNCTION (decl
))
15577 /* This is where the prologue starts... */
15578 DECL_STRUCT_FUNCTION (decl
)->function_start_locus
15579 = func_brace_location
;
15588 Only in function declarations for constructors, destructors, and
15589 type conversions can the decl-specifier-seq be omitted.
15591 We explicitly postpone this check past the point where we handle
15592 function-definitions because we tolerate function-definitions
15593 that are missing their return types in some modes. */
15594 if (!decl_specifiers
->any_specifiers_p
&& ctor_dtor_or_conv_p
<= 0)
15596 cp_parser_error (parser
,
15597 "expected constructor, destructor, or type conversion");
15598 return error_mark_node
;
15601 /* An `=' or an `(', or an '{' in C++0x, indicates an initializer. */
15602 if (token
->type
== CPP_EQ
15603 || token
->type
== CPP_OPEN_PAREN
15604 || token
->type
== CPP_OPEN_BRACE
)
15606 is_initialized
= SD_INITIALIZED
;
15607 initialization_kind
= token
->type
;
15608 if (maybe_range_for_decl
)
15609 *maybe_range_for_decl
= error_mark_node
;
15611 if (token
->type
== CPP_EQ
15612 && function_declarator_p (declarator
))
15614 cp_token
*t2
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
15615 if (t2
->keyword
== RID_DEFAULT
)
15616 is_initialized
= SD_DEFAULTED
;
15617 else if (t2
->keyword
== RID_DELETE
)
15618 is_initialized
= SD_DELETED
;
15623 /* If the init-declarator isn't initialized and isn't followed by a
15624 `,' or `;', it's not a valid init-declarator. */
15625 if (token
->type
!= CPP_COMMA
15626 && token
->type
!= CPP_SEMICOLON
)
15628 if (maybe_range_for_decl
&& *maybe_range_for_decl
!= error_mark_node
)
15629 range_for_decl_p
= true;
15632 cp_parser_error (parser
, "expected initializer");
15633 return error_mark_node
;
15636 is_initialized
= SD_UNINITIALIZED
;
15637 initialization_kind
= CPP_EOF
;
15640 /* Because start_decl has side-effects, we should only call it if we
15641 know we're going ahead. By this point, we know that we cannot
15642 possibly be looking at any other construct. */
15643 cp_parser_commit_to_tentative_parse (parser
);
15645 /* If the decl specifiers were bad, issue an error now that we're
15646 sure this was intended to be a declarator. Then continue
15647 declaring the variable(s), as int, to try to cut down on further
15649 if (decl_specifiers
->any_specifiers_p
15650 && decl_specifiers
->type
== error_mark_node
)
15652 cp_parser_error (parser
, "invalid type in declaration");
15653 decl_specifiers
->type
= integer_type_node
;
15656 /* Check to see whether or not this declaration is a friend. */
15657 friend_p
= cp_parser_friend_p (decl_specifiers
);
15659 /* Enter the newly declared entry in the symbol table. If we're
15660 processing a declaration in a class-specifier, we wait until
15661 after processing the initializer. */
15664 if (parser
->in_unbraced_linkage_specification_p
)
15665 decl_specifiers
->storage_class
= sc_extern
;
15666 decl
= start_decl (declarator
, decl_specifiers
,
15667 range_for_decl_p
? SD_INITIALIZED
: is_initialized
,
15668 attributes
, prefix_attributes
,
15670 /* Adjust location of decl if declarator->id_loc is more appropriate:
15671 set, and decl wasn't merged with another decl, in which case its
15672 location would be different from input_location, and more accurate. */
15674 && declarator
->id_loc
!= UNKNOWN_LOCATION
15675 && DECL_SOURCE_LOCATION (decl
) == input_location
)
15676 DECL_SOURCE_LOCATION (decl
) = declarator
->id_loc
;
15679 /* Enter the SCOPE. That way unqualified names appearing in the
15680 initializer will be looked up in SCOPE. */
15681 pushed_scope
= push_scope (scope
);
15683 /* Perform deferred access control checks, now that we know in which
15684 SCOPE the declared entity resides. */
15685 if (!member_p
&& decl
)
15687 tree saved_current_function_decl
= NULL_TREE
;
15689 /* If the entity being declared is a function, pretend that we
15690 are in its scope. If it is a `friend', it may have access to
15691 things that would not otherwise be accessible. */
15692 if (TREE_CODE (decl
) == FUNCTION_DECL
)
15694 saved_current_function_decl
= current_function_decl
;
15695 current_function_decl
= decl
;
15698 /* Perform access checks for template parameters. */
15699 cp_parser_perform_template_parameter_access_checks (checks
);
15701 /* Perform the access control checks for the declarator and the
15702 decl-specifiers. */
15703 perform_deferred_access_checks ();
15705 /* Restore the saved value. */
15706 if (TREE_CODE (decl
) == FUNCTION_DECL
)
15707 current_function_decl
= saved_current_function_decl
;
15710 /* Parse the initializer. */
15711 initializer
= NULL_TREE
;
15712 is_direct_init
= false;
15713 is_non_constant_init
= true;
15714 if (is_initialized
)
15716 if (function_declarator_p (declarator
))
15718 cp_token
*initializer_start_token
= cp_lexer_peek_token (parser
->lexer
);
15719 if (initialization_kind
== CPP_EQ
)
15720 initializer
= cp_parser_pure_specifier (parser
);
15723 /* If the declaration was erroneous, we don't really
15724 know what the user intended, so just silently
15725 consume the initializer. */
15726 if (decl
!= error_mark_node
)
15727 error_at (initializer_start_token
->location
,
15728 "initializer provided for function");
15729 cp_parser_skip_to_closing_parenthesis (parser
,
15730 /*recovering=*/true,
15731 /*or_comma=*/false,
15732 /*consume_paren=*/true);
15737 /* We want to record the extra mangling scope for in-class
15738 initializers of class members and initializers of static data
15739 member templates. The former involves deferring
15740 parsing of the initializer until end of class as with default
15741 arguments. So right here we only handle the latter. */
15742 if (!member_p
&& processing_template_decl
)
15743 start_lambda_scope (decl
);
15744 initializer
= cp_parser_initializer (parser
,
15746 &is_non_constant_init
);
15747 if (!member_p
&& processing_template_decl
)
15748 finish_lambda_scope ();
15749 if (initializer
== error_mark_node
)
15750 cp_parser_skip_to_end_of_statement (parser
);
15754 /* The old parser allows attributes to appear after a parenthesized
15755 initializer. Mark Mitchell proposed removing this functionality
15756 on the GCC mailing lists on 2002-08-13. This parser accepts the
15757 attributes -- but ignores them. */
15758 if (cp_parser_allow_gnu_extensions_p (parser
)
15759 && initialization_kind
== CPP_OPEN_PAREN
)
15760 if (cp_parser_attributes_opt (parser
))
15761 warning (OPT_Wattributes
,
15762 "attributes after parenthesized initializer ignored");
15764 /* For an in-class declaration, use `grokfield' to create the
15770 pop_scope (pushed_scope
);
15771 pushed_scope
= NULL_TREE
;
15773 decl
= grokfield (declarator
, decl_specifiers
,
15774 initializer
, !is_non_constant_init
,
15775 /*asmspec=*/NULL_TREE
,
15776 prefix_attributes
);
15777 if (decl
&& TREE_CODE (decl
) == FUNCTION_DECL
)
15778 cp_parser_save_default_args (parser
, decl
);
15781 /* Finish processing the declaration. But, skip member
15783 if (!member_p
&& decl
&& decl
!= error_mark_node
&& !range_for_decl_p
)
15785 cp_finish_decl (decl
,
15786 initializer
, !is_non_constant_init
,
15788 /* If the initializer is in parentheses, then this is
15789 a direct-initialization, which means that an
15790 `explicit' constructor is OK. Otherwise, an
15791 `explicit' constructor cannot be used. */
15792 ((is_direct_init
|| !is_initialized
)
15793 ? LOOKUP_NORMAL
: LOOKUP_IMPLICIT
));
15795 else if ((cxx_dialect
!= cxx98
) && friend_p
15796 && decl
&& TREE_CODE (decl
) == FUNCTION_DECL
)
15797 /* Core issue #226 (C++0x only): A default template-argument
15798 shall not be specified in a friend class template
15800 check_default_tmpl_args (decl
, current_template_parms
, /*is_primary=*/1,
15801 /*is_partial=*/0, /*is_friend_decl=*/1);
15803 if (!friend_p
&& pushed_scope
)
15804 pop_scope (pushed_scope
);
15809 /* Parse a declarator.
15813 ptr-operator declarator
15815 abstract-declarator:
15816 ptr-operator abstract-declarator [opt]
15817 direct-abstract-declarator
15822 attributes [opt] direct-declarator
15823 attributes [opt] ptr-operator declarator
15825 abstract-declarator:
15826 attributes [opt] ptr-operator abstract-declarator [opt]
15827 attributes [opt] direct-abstract-declarator
15829 If CTOR_DTOR_OR_CONV_P is not NULL, *CTOR_DTOR_OR_CONV_P is used to
15830 detect constructor, destructor or conversion operators. It is set
15831 to -1 if the declarator is a name, and +1 if it is a
15832 function. Otherwise it is set to zero. Usually you just want to
15833 test for >0, but internally the negative value is used.
15835 (The reason for CTOR_DTOR_OR_CONV_P is that a declaration must have
15836 a decl-specifier-seq unless it declares a constructor, destructor,
15837 or conversion. It might seem that we could check this condition in
15838 semantic analysis, rather than parsing, but that makes it difficult
15839 to handle something like `f()'. We want to notice that there are
15840 no decl-specifiers, and therefore realize that this is an
15841 expression, not a declaration.)
15843 If PARENTHESIZED_P is non-NULL, *PARENTHESIZED_P is set to true iff
15844 the declarator is a direct-declarator of the form "(...)".
15846 MEMBER_P is true iff this declarator is a member-declarator. */
15848 static cp_declarator
*
15849 cp_parser_declarator (cp_parser
* parser
,
15850 cp_parser_declarator_kind dcl_kind
,
15851 int* ctor_dtor_or_conv_p
,
15852 bool* parenthesized_p
,
15855 cp_declarator
*declarator
;
15856 enum tree_code code
;
15857 cp_cv_quals cv_quals
;
15859 tree attributes
= NULL_TREE
;
15861 /* Assume this is not a constructor, destructor, or type-conversion
15863 if (ctor_dtor_or_conv_p
)
15864 *ctor_dtor_or_conv_p
= 0;
15866 if (cp_parser_allow_gnu_extensions_p (parser
))
15867 attributes
= cp_parser_attributes_opt (parser
);
15869 /* Check for the ptr-operator production. */
15870 cp_parser_parse_tentatively (parser
);
15871 /* Parse the ptr-operator. */
15872 code
= cp_parser_ptr_operator (parser
,
15875 /* If that worked, then we have a ptr-operator. */
15876 if (cp_parser_parse_definitely (parser
))
15878 /* If a ptr-operator was found, then this declarator was not
15880 if (parenthesized_p
)
15881 *parenthesized_p
= true;
15882 /* The dependent declarator is optional if we are parsing an
15883 abstract-declarator. */
15884 if (dcl_kind
!= CP_PARSER_DECLARATOR_NAMED
)
15885 cp_parser_parse_tentatively (parser
);
15887 /* Parse the dependent declarator. */
15888 declarator
= cp_parser_declarator (parser
, dcl_kind
,
15889 /*ctor_dtor_or_conv_p=*/NULL
,
15890 /*parenthesized_p=*/NULL
,
15891 /*member_p=*/false);
15893 /* If we are parsing an abstract-declarator, we must handle the
15894 case where the dependent declarator is absent. */
15895 if (dcl_kind
!= CP_PARSER_DECLARATOR_NAMED
15896 && !cp_parser_parse_definitely (parser
))
15899 declarator
= cp_parser_make_indirect_declarator
15900 (code
, class_type
, cv_quals
, declarator
);
15902 /* Everything else is a direct-declarator. */
15905 if (parenthesized_p
)
15906 *parenthesized_p
= cp_lexer_next_token_is (parser
->lexer
,
15908 declarator
= cp_parser_direct_declarator (parser
, dcl_kind
,
15909 ctor_dtor_or_conv_p
,
15913 if (attributes
&& declarator
&& declarator
!= cp_error_declarator
)
15914 declarator
->attributes
= attributes
;
15919 /* Parse a direct-declarator or direct-abstract-declarator.
15923 direct-declarator ( parameter-declaration-clause )
15924 cv-qualifier-seq [opt]
15925 exception-specification [opt]
15926 direct-declarator [ constant-expression [opt] ]
15929 direct-abstract-declarator:
15930 direct-abstract-declarator [opt]
15931 ( parameter-declaration-clause )
15932 cv-qualifier-seq [opt]
15933 exception-specification [opt]
15934 direct-abstract-declarator [opt] [ constant-expression [opt] ]
15935 ( abstract-declarator )
15937 Returns a representation of the declarator. DCL_KIND is
15938 CP_PARSER_DECLARATOR_ABSTRACT, if we are parsing a
15939 direct-abstract-declarator. It is CP_PARSER_DECLARATOR_NAMED, if
15940 we are parsing a direct-declarator. It is
15941 CP_PARSER_DECLARATOR_EITHER, if we can accept either - in the case
15942 of ambiguity we prefer an abstract declarator, as per
15943 [dcl.ambig.res]. CTOR_DTOR_OR_CONV_P and MEMBER_P are as for
15944 cp_parser_declarator. */
15946 static cp_declarator
*
15947 cp_parser_direct_declarator (cp_parser
* parser
,
15948 cp_parser_declarator_kind dcl_kind
,
15949 int* ctor_dtor_or_conv_p
,
15953 cp_declarator
*declarator
= NULL
;
15954 tree scope
= NULL_TREE
;
15955 bool saved_default_arg_ok_p
= parser
->default_arg_ok_p
;
15956 bool saved_in_declarator_p
= parser
->in_declarator_p
;
15958 tree pushed_scope
= NULL_TREE
;
15962 /* Peek at the next token. */
15963 token
= cp_lexer_peek_token (parser
->lexer
);
15964 if (token
->type
== CPP_OPEN_PAREN
)
15966 /* This is either a parameter-declaration-clause, or a
15967 parenthesized declarator. When we know we are parsing a
15968 named declarator, it must be a parenthesized declarator
15969 if FIRST is true. For instance, `(int)' is a
15970 parameter-declaration-clause, with an omitted
15971 direct-abstract-declarator. But `((*))', is a
15972 parenthesized abstract declarator. Finally, when T is a
15973 template parameter `(T)' is a
15974 parameter-declaration-clause, and not a parenthesized
15977 We first try and parse a parameter-declaration-clause,
15978 and then try a nested declarator (if FIRST is true).
15980 It is not an error for it not to be a
15981 parameter-declaration-clause, even when FIRST is
15987 The first is the declaration of a function while the
15988 second is the definition of a variable, including its
15991 Having seen only the parenthesis, we cannot know which of
15992 these two alternatives should be selected. Even more
15993 complex are examples like:
15998 The former is a function-declaration; the latter is a
15999 variable initialization.
16001 Thus again, we try a parameter-declaration-clause, and if
16002 that fails, we back out and return. */
16004 if (!first
|| dcl_kind
!= CP_PARSER_DECLARATOR_NAMED
)
16007 unsigned saved_num_template_parameter_lists
;
16008 bool is_declarator
= false;
16011 /* In a member-declarator, the only valid interpretation
16012 of a parenthesis is the start of a
16013 parameter-declaration-clause. (It is invalid to
16014 initialize a static data member with a parenthesized
16015 initializer; only the "=" form of initialization is
16018 cp_parser_parse_tentatively (parser
);
16020 /* Consume the `('. */
16021 cp_lexer_consume_token (parser
->lexer
);
16024 /* If this is going to be an abstract declarator, we're
16025 in a declarator and we can't have default args. */
16026 parser
->default_arg_ok_p
= false;
16027 parser
->in_declarator_p
= true;
16030 /* Inside the function parameter list, surrounding
16031 template-parameter-lists do not apply. */
16032 saved_num_template_parameter_lists
16033 = parser
->num_template_parameter_lists
;
16034 parser
->num_template_parameter_lists
= 0;
16036 begin_scope (sk_function_parms
, NULL_TREE
);
16038 /* Parse the parameter-declaration-clause. */
16039 params
= cp_parser_parameter_declaration_clause (parser
);
16041 parser
->num_template_parameter_lists
16042 = saved_num_template_parameter_lists
;
16044 /* Consume the `)'. */
16045 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
16047 /* If all went well, parse the cv-qualifier-seq and the
16048 exception-specification. */
16049 if (member_p
|| cp_parser_parse_definitely (parser
))
16051 cp_cv_quals cv_quals
;
16052 cp_virt_specifiers virt_specifiers
;
16053 tree exception_specification
;
16056 is_declarator
= true;
16058 if (ctor_dtor_or_conv_p
)
16059 *ctor_dtor_or_conv_p
= *ctor_dtor_or_conv_p
< 0;
16062 /* Parse the cv-qualifier-seq. */
16063 cv_quals
= cp_parser_cv_qualifier_seq_opt (parser
);
16064 /* And the exception-specification. */
16065 exception_specification
16066 = cp_parser_exception_specification_opt (parser
);
16067 /* Parse the virt-specifier-seq. */
16068 virt_specifiers
= cp_parser_virt_specifier_seq_opt (parser
);
16070 late_return
= (cp_parser_late_return_type_opt
16071 (parser
, member_p
? cv_quals
: -1));
16073 /* Create the function-declarator. */
16074 declarator
= make_call_declarator (declarator
,
16078 exception_specification
,
16080 /* Any subsequent parameter lists are to do with
16081 return type, so are not those of the declared
16083 parser
->default_arg_ok_p
= false;
16086 /* Remove the function parms from scope. */
16087 for (t
= current_binding_level
->names
; t
; t
= DECL_CHAIN (t
))
16088 pop_binding (DECL_NAME (t
), t
);
16092 /* Repeat the main loop. */
16096 /* If this is the first, we can try a parenthesized
16100 bool saved_in_type_id_in_expr_p
;
16102 parser
->default_arg_ok_p
= saved_default_arg_ok_p
;
16103 parser
->in_declarator_p
= saved_in_declarator_p
;
16105 /* Consume the `('. */
16106 cp_lexer_consume_token (parser
->lexer
);
16107 /* Parse the nested declarator. */
16108 saved_in_type_id_in_expr_p
= parser
->in_type_id_in_expr_p
;
16109 parser
->in_type_id_in_expr_p
= true;
16111 = cp_parser_declarator (parser
, dcl_kind
, ctor_dtor_or_conv_p
,
16112 /*parenthesized_p=*/NULL
,
16114 parser
->in_type_id_in_expr_p
= saved_in_type_id_in_expr_p
;
16116 /* Expect a `)'. */
16117 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
16118 declarator
= cp_error_declarator
;
16119 if (declarator
== cp_error_declarator
)
16122 goto handle_declarator
;
16124 /* Otherwise, we must be done. */
16128 else if ((!first
|| dcl_kind
!= CP_PARSER_DECLARATOR_NAMED
)
16129 && token
->type
== CPP_OPEN_SQUARE
)
16131 /* Parse an array-declarator. */
16134 if (ctor_dtor_or_conv_p
)
16135 *ctor_dtor_or_conv_p
= 0;
16138 parser
->default_arg_ok_p
= false;
16139 parser
->in_declarator_p
= true;
16140 /* Consume the `['. */
16141 cp_lexer_consume_token (parser
->lexer
);
16142 /* Peek at the next token. */
16143 token
= cp_lexer_peek_token (parser
->lexer
);
16144 /* If the next token is `]', then there is no
16145 constant-expression. */
16146 if (token
->type
!= CPP_CLOSE_SQUARE
)
16148 bool non_constant_p
;
16151 = cp_parser_constant_expression (parser
,
16152 /*allow_non_constant=*/true,
16154 if (!non_constant_p
)
16156 else if (error_operand_p (bounds
))
16157 /* Already gave an error. */;
16158 else if (!parser
->in_function_body
16159 || current_binding_level
->kind
== sk_function_parms
)
16161 /* Normally, the array bound must be an integral constant
16162 expression. However, as an extension, we allow VLAs
16163 in function scopes as long as they aren't part of a
16164 parameter declaration. */
16165 cp_parser_error (parser
,
16166 "array bound is not an integer constant");
16167 bounds
= error_mark_node
;
16169 else if (processing_template_decl
)
16171 /* Remember this wasn't a constant-expression. */
16172 bounds
= build_nop (TREE_TYPE (bounds
), bounds
);
16173 TREE_SIDE_EFFECTS (bounds
) = 1;
16177 bounds
= NULL_TREE
;
16178 /* Look for the closing `]'. */
16179 if (!cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
))
16181 declarator
= cp_error_declarator
;
16185 declarator
= make_array_declarator (declarator
, bounds
);
16187 else if (first
&& dcl_kind
!= CP_PARSER_DECLARATOR_ABSTRACT
)
16190 tree qualifying_scope
;
16191 tree unqualified_name
;
16192 special_function_kind sfk
;
16194 bool pack_expansion_p
= false;
16195 cp_token
*declarator_id_start_token
;
16197 /* Parse a declarator-id */
16198 abstract_ok
= (dcl_kind
== CP_PARSER_DECLARATOR_EITHER
);
16201 cp_parser_parse_tentatively (parser
);
16203 /* If we see an ellipsis, we should be looking at a
16205 if (token
->type
== CPP_ELLIPSIS
)
16207 /* Consume the `...' */
16208 cp_lexer_consume_token (parser
->lexer
);
16210 pack_expansion_p
= true;
16214 declarator_id_start_token
= cp_lexer_peek_token (parser
->lexer
);
16216 = cp_parser_declarator_id (parser
, /*optional_p=*/abstract_ok
);
16217 qualifying_scope
= parser
->scope
;
16222 if (!unqualified_name
&& pack_expansion_p
)
16224 /* Check whether an error occurred. */
16225 okay
= !cp_parser_error_occurred (parser
);
16227 /* We already consumed the ellipsis to mark a
16228 parameter pack, but we have no way to report it,
16229 so abort the tentative parse. We will be exiting
16230 immediately anyway. */
16231 cp_parser_abort_tentative_parse (parser
);
16234 okay
= cp_parser_parse_definitely (parser
);
16237 unqualified_name
= error_mark_node
;
16238 else if (unqualified_name
16239 && (qualifying_scope
16240 || (TREE_CODE (unqualified_name
)
16241 != IDENTIFIER_NODE
)))
16243 cp_parser_error (parser
, "expected unqualified-id");
16244 unqualified_name
= error_mark_node
;
16248 if (!unqualified_name
)
16250 if (unqualified_name
== error_mark_node
)
16252 declarator
= cp_error_declarator
;
16253 pack_expansion_p
= false;
16254 declarator
->parameter_pack_p
= false;
16258 if (qualifying_scope
&& at_namespace_scope_p ()
16259 && TREE_CODE (qualifying_scope
) == TYPENAME_TYPE
)
16261 /* In the declaration of a member of a template class
16262 outside of the class itself, the SCOPE will sometimes
16263 be a TYPENAME_TYPE. For example, given:
16265 template <typename T>
16266 int S<T>::R::i = 3;
16268 the SCOPE will be a TYPENAME_TYPE for `S<T>::R'. In
16269 this context, we must resolve S<T>::R to an ordinary
16270 type, rather than a typename type.
16272 The reason we normally avoid resolving TYPENAME_TYPEs
16273 is that a specialization of `S' might render
16274 `S<T>::R' not a type. However, if `S' is
16275 specialized, then this `i' will not be used, so there
16276 is no harm in resolving the types here. */
16279 /* Resolve the TYPENAME_TYPE. */
16280 type
= resolve_typename_type (qualifying_scope
,
16281 /*only_current_p=*/false);
16282 /* If that failed, the declarator is invalid. */
16283 if (TREE_CODE (type
) == TYPENAME_TYPE
)
16285 if (typedef_variant_p (type
))
16286 error_at (declarator_id_start_token
->location
,
16287 "cannot define member of dependent typedef "
16290 error_at (declarator_id_start_token
->location
,
16291 "%<%T::%E%> is not a type",
16292 TYPE_CONTEXT (qualifying_scope
),
16293 TYPE_IDENTIFIER (qualifying_scope
));
16295 qualifying_scope
= type
;
16300 if (unqualified_name
)
16304 if (qualifying_scope
16305 && CLASS_TYPE_P (qualifying_scope
))
16306 class_type
= qualifying_scope
;
16308 class_type
= current_class_type
;
16310 if (TREE_CODE (unqualified_name
) == TYPE_DECL
)
16312 tree name_type
= TREE_TYPE (unqualified_name
);
16313 if (class_type
&& same_type_p (name_type
, class_type
))
16315 if (qualifying_scope
16316 && CLASSTYPE_USE_TEMPLATE (name_type
))
16318 error_at (declarator_id_start_token
->location
,
16319 "invalid use of constructor as a template");
16320 inform (declarator_id_start_token
->location
,
16321 "use %<%T::%D%> instead of %<%T::%D%> to "
16322 "name the constructor in a qualified name",
16324 DECL_NAME (TYPE_TI_TEMPLATE (class_type
)),
16325 class_type
, name_type
);
16326 declarator
= cp_error_declarator
;
16330 unqualified_name
= constructor_name (class_type
);
16334 /* We do not attempt to print the declarator
16335 here because we do not have enough
16336 information about its original syntactic
16338 cp_parser_error (parser
, "invalid declarator");
16339 declarator
= cp_error_declarator
;
16346 if (TREE_CODE (unqualified_name
) == BIT_NOT_EXPR
)
16347 sfk
= sfk_destructor
;
16348 else if (IDENTIFIER_TYPENAME_P (unqualified_name
))
16349 sfk
= sfk_conversion
;
16350 else if (/* There's no way to declare a constructor
16351 for an anonymous type, even if the type
16352 got a name for linkage purposes. */
16353 !TYPE_WAS_ANONYMOUS (class_type
)
16354 && constructor_name_p (unqualified_name
,
16357 unqualified_name
= constructor_name (class_type
);
16358 sfk
= sfk_constructor
;
16360 else if (is_overloaded_fn (unqualified_name
)
16361 && DECL_CONSTRUCTOR_P (get_first_fn
16362 (unqualified_name
)))
16363 sfk
= sfk_constructor
;
16365 if (ctor_dtor_or_conv_p
&& sfk
!= sfk_none
)
16366 *ctor_dtor_or_conv_p
= -1;
16369 declarator
= make_id_declarator (qualifying_scope
,
16372 declarator
->id_loc
= token
->location
;
16373 declarator
->parameter_pack_p
= pack_expansion_p
;
16375 if (pack_expansion_p
)
16376 maybe_warn_variadic_templates ();
16379 handle_declarator
:;
16380 scope
= get_scope_of_declarator (declarator
);
16382 /* Any names that appear after the declarator-id for a
16383 member are looked up in the containing scope. */
16384 pushed_scope
= push_scope (scope
);
16385 parser
->in_declarator_p
= true;
16386 if ((ctor_dtor_or_conv_p
&& *ctor_dtor_or_conv_p
)
16387 || (declarator
&& declarator
->kind
== cdk_id
))
16388 /* Default args are only allowed on function
16390 parser
->default_arg_ok_p
= saved_default_arg_ok_p
;
16392 parser
->default_arg_ok_p
= false;
16401 /* For an abstract declarator, we might wind up with nothing at this
16402 point. That's an error; the declarator is not optional. */
16404 cp_parser_error (parser
, "expected declarator");
16406 /* If we entered a scope, we must exit it now. */
16408 pop_scope (pushed_scope
);
16410 parser
->default_arg_ok_p
= saved_default_arg_ok_p
;
16411 parser
->in_declarator_p
= saved_in_declarator_p
;
16416 /* Parse a ptr-operator.
16419 * cv-qualifier-seq [opt]
16421 :: [opt] nested-name-specifier * cv-qualifier-seq [opt]
16426 & cv-qualifier-seq [opt]
16428 Returns INDIRECT_REF if a pointer, or pointer-to-member, was used.
16429 Returns ADDR_EXPR if a reference was used, or NON_LVALUE_EXPR for
16430 an rvalue reference. In the case of a pointer-to-member, *TYPE is
16431 filled in with the TYPE containing the member. *CV_QUALS is
16432 filled in with the cv-qualifier-seq, or TYPE_UNQUALIFIED, if there
16433 are no cv-qualifiers. Returns ERROR_MARK if an error occurred.
16434 Note that the tree codes returned by this function have nothing
16435 to do with the types of trees that will be eventually be created
16436 to represent the pointer or reference type being parsed. They are
16437 just constants with suggestive names. */
16438 static enum tree_code
16439 cp_parser_ptr_operator (cp_parser
* parser
,
16441 cp_cv_quals
*cv_quals
)
16443 enum tree_code code
= ERROR_MARK
;
16446 /* Assume that it's not a pointer-to-member. */
16448 /* And that there are no cv-qualifiers. */
16449 *cv_quals
= TYPE_UNQUALIFIED
;
16451 /* Peek at the next token. */
16452 token
= cp_lexer_peek_token (parser
->lexer
);
16454 /* If it's a `*', `&' or `&&' we have a pointer or reference. */
16455 if (token
->type
== CPP_MULT
)
16456 code
= INDIRECT_REF
;
16457 else if (token
->type
== CPP_AND
)
16459 else if ((cxx_dialect
!= cxx98
) &&
16460 token
->type
== CPP_AND_AND
) /* C++0x only */
16461 code
= NON_LVALUE_EXPR
;
16463 if (code
!= ERROR_MARK
)
16465 /* Consume the `*', `&' or `&&'. */
16466 cp_lexer_consume_token (parser
->lexer
);
16468 /* A `*' can be followed by a cv-qualifier-seq, and so can a
16469 `&', if we are allowing GNU extensions. (The only qualifier
16470 that can legally appear after `&' is `restrict', but that is
16471 enforced during semantic analysis. */
16472 if (code
== INDIRECT_REF
16473 || cp_parser_allow_gnu_extensions_p (parser
))
16474 *cv_quals
= cp_parser_cv_qualifier_seq_opt (parser
);
16478 /* Try the pointer-to-member case. */
16479 cp_parser_parse_tentatively (parser
);
16480 /* Look for the optional `::' operator. */
16481 cp_parser_global_scope_opt (parser
,
16482 /*current_scope_valid_p=*/false);
16483 /* Look for the nested-name specifier. */
16484 token
= cp_lexer_peek_token (parser
->lexer
);
16485 cp_parser_nested_name_specifier (parser
,
16486 /*typename_keyword_p=*/false,
16487 /*check_dependency_p=*/true,
16489 /*is_declaration=*/false);
16490 /* If we found it, and the next token is a `*', then we are
16491 indeed looking at a pointer-to-member operator. */
16492 if (!cp_parser_error_occurred (parser
)
16493 && cp_parser_require (parser
, CPP_MULT
, RT_MULT
))
16495 /* Indicate that the `*' operator was used. */
16496 code
= INDIRECT_REF
;
16498 if (TREE_CODE (parser
->scope
) == NAMESPACE_DECL
)
16499 error_at (token
->location
, "%qD is a namespace", parser
->scope
);
16500 else if (TREE_CODE (parser
->scope
) == ENUMERAL_TYPE
)
16501 error_at (token
->location
, "cannot form pointer to member of "
16502 "non-class %q#T", parser
->scope
);
16505 /* The type of which the member is a member is given by the
16507 *type
= parser
->scope
;
16508 /* The next name will not be qualified. */
16509 parser
->scope
= NULL_TREE
;
16510 parser
->qualifying_scope
= NULL_TREE
;
16511 parser
->object_scope
= NULL_TREE
;
16512 /* Look for the optional cv-qualifier-seq. */
16513 *cv_quals
= cp_parser_cv_qualifier_seq_opt (parser
);
16516 /* If that didn't work we don't have a ptr-operator. */
16517 if (!cp_parser_parse_definitely (parser
))
16518 cp_parser_error (parser
, "expected ptr-operator");
16524 /* Parse an (optional) cv-qualifier-seq.
16527 cv-qualifier cv-qualifier-seq [opt]
16538 Returns a bitmask representing the cv-qualifiers. */
16541 cp_parser_cv_qualifier_seq_opt (cp_parser
* parser
)
16543 cp_cv_quals cv_quals
= TYPE_UNQUALIFIED
;
16548 cp_cv_quals cv_qualifier
;
16550 /* Peek at the next token. */
16551 token
= cp_lexer_peek_token (parser
->lexer
);
16552 /* See if it's a cv-qualifier. */
16553 switch (token
->keyword
)
16556 cv_qualifier
= TYPE_QUAL_CONST
;
16560 cv_qualifier
= TYPE_QUAL_VOLATILE
;
16564 cv_qualifier
= TYPE_QUAL_RESTRICT
;
16568 cv_qualifier
= TYPE_UNQUALIFIED
;
16575 if (cv_quals
& cv_qualifier
)
16577 error_at (token
->location
, "duplicate cv-qualifier");
16578 cp_lexer_purge_token (parser
->lexer
);
16582 cp_lexer_consume_token (parser
->lexer
);
16583 cv_quals
|= cv_qualifier
;
16590 /* Parse an (optional) virt-specifier-seq.
16592 virt-specifier-seq:
16593 virt-specifier virt-specifier-seq [opt]
16599 Returns a bitmask representing the virt-specifiers. */
16601 static cp_virt_specifiers
16602 cp_parser_virt_specifier_seq_opt (cp_parser
* parser
)
16604 cp_virt_specifiers virt_specifiers
= VIRT_SPEC_UNSPECIFIED
;
16609 cp_virt_specifiers virt_specifier
;
16611 /* Peek at the next token. */
16612 token
= cp_lexer_peek_token (parser
->lexer
);
16613 /* See if it's a virt-specifier-qualifier. */
16614 if (token
->type
!= CPP_NAME
)
16616 if (!strcmp (IDENTIFIER_POINTER(token
->u
.value
), "override"))
16618 maybe_warn_cpp0x (CPP0X_OVERRIDE_CONTROLS
);
16619 virt_specifier
= VIRT_SPEC_OVERRIDE
;
16621 else if (!strcmp (IDENTIFIER_POINTER(token
->u
.value
), "final"))
16623 maybe_warn_cpp0x (CPP0X_OVERRIDE_CONTROLS
);
16624 virt_specifier
= VIRT_SPEC_FINAL
;
16626 else if (!strcmp (IDENTIFIER_POINTER(token
->u
.value
), "__final"))
16628 virt_specifier
= VIRT_SPEC_FINAL
;
16633 if (virt_specifiers
& virt_specifier
)
16635 error_at (token
->location
, "duplicate virt-specifier");
16636 cp_lexer_purge_token (parser
->lexer
);
16640 cp_lexer_consume_token (parser
->lexer
);
16641 virt_specifiers
|= virt_specifier
;
16644 return virt_specifiers
;
16647 /* Used by handling of trailing-return-types and NSDMI, in which 'this'
16648 is in scope even though it isn't real. */
16651 inject_this_parameter (tree ctype
, cp_cv_quals quals
)
16655 if (current_class_ptr
)
16657 /* We don't clear this between NSDMIs. Is it already what we want? */
16658 tree type
= TREE_TYPE (TREE_TYPE (current_class_ptr
));
16659 if (same_type_ignoring_top_level_qualifiers_p (ctype
, type
)
16660 && cp_type_quals (type
) == quals
)
16664 this_parm
= build_this_parm (ctype
, quals
);
16665 /* Clear this first to avoid shortcut in cp_build_indirect_ref. */
16666 current_class_ptr
= NULL_TREE
;
16668 = cp_build_indirect_ref (this_parm
, RO_NULL
, tf_warning_or_error
);
16669 current_class_ptr
= this_parm
;
16672 /* Parse a late-specified return type, if any. This is not a separate
16673 non-terminal, but part of a function declarator, which looks like
16675 -> trailing-type-specifier-seq abstract-declarator(opt)
16677 Returns the type indicated by the type-id.
16679 QUALS is either a bitmask of cv_qualifiers or -1 for a non-member
16683 cp_parser_late_return_type_opt (cp_parser
* parser
, cp_cv_quals quals
)
16688 /* Peek at the next token. */
16689 token
= cp_lexer_peek_token (parser
->lexer
);
16690 /* A late-specified return type is indicated by an initial '->'. */
16691 if (token
->type
!= CPP_DEREF
)
16694 /* Consume the ->. */
16695 cp_lexer_consume_token (parser
->lexer
);
16699 /* DR 1207: 'this' is in scope in the trailing return type. */
16700 gcc_assert (current_class_ptr
== NULL_TREE
);
16701 inject_this_parameter (current_class_type
, quals
);
16704 type
= cp_parser_trailing_type_id (parser
);
16707 current_class_ptr
= current_class_ref
= NULL_TREE
;
16712 /* Parse a declarator-id.
16716 :: [opt] nested-name-specifier [opt] type-name
16718 In the `id-expression' case, the value returned is as for
16719 cp_parser_id_expression if the id-expression was an unqualified-id.
16720 If the id-expression was a qualified-id, then a SCOPE_REF is
16721 returned. The first operand is the scope (either a NAMESPACE_DECL
16722 or TREE_TYPE), but the second is still just a representation of an
16726 cp_parser_declarator_id (cp_parser
* parser
, bool optional_p
)
16729 /* The expression must be an id-expression. Assume that qualified
16730 names are the names of types so that:
16733 int S<T>::R::i = 3;
16735 will work; we must treat `S<T>::R' as the name of a type.
16736 Similarly, assume that qualified names are templates, where
16740 int S<T>::R<T>::i = 3;
16743 id
= cp_parser_id_expression (parser
,
16744 /*template_keyword_p=*/false,
16745 /*check_dependency_p=*/false,
16746 /*template_p=*/NULL
,
16747 /*declarator_p=*/true,
16749 if (id
&& BASELINK_P (id
))
16750 id
= BASELINK_FUNCTIONS (id
);
16754 /* Parse a type-id.
16757 type-specifier-seq abstract-declarator [opt]
16759 Returns the TYPE specified. */
16762 cp_parser_type_id_1 (cp_parser
* parser
, bool is_template_arg
,
16763 bool is_trailing_return
)
16765 cp_decl_specifier_seq type_specifier_seq
;
16766 cp_declarator
*abstract_declarator
;
16768 /* Parse the type-specifier-seq. */
16769 cp_parser_type_specifier_seq (parser
, /*is_declaration=*/false,
16770 is_trailing_return
,
16771 &type_specifier_seq
);
16772 if (type_specifier_seq
.type
== error_mark_node
)
16773 return error_mark_node
;
16775 /* There might or might not be an abstract declarator. */
16776 cp_parser_parse_tentatively (parser
);
16777 /* Look for the declarator. */
16778 abstract_declarator
16779 = cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_ABSTRACT
, NULL
,
16780 /*parenthesized_p=*/NULL
,
16781 /*member_p=*/false);
16782 /* Check to see if there really was a declarator. */
16783 if (!cp_parser_parse_definitely (parser
))
16784 abstract_declarator
= NULL
;
16786 if (type_specifier_seq
.type
16787 && type_uses_auto (type_specifier_seq
.type
))
16789 /* A type-id with type 'auto' is only ok if the abstract declarator
16790 is a function declarator with a late-specified return type. */
16791 if (abstract_declarator
16792 && abstract_declarator
->kind
== cdk_function
16793 && abstract_declarator
->u
.function
.late_return_type
)
16797 error ("invalid use of %<auto%>");
16798 return error_mark_node
;
16802 return groktypename (&type_specifier_seq
, abstract_declarator
,
16806 static tree
cp_parser_type_id (cp_parser
*parser
)
16808 return cp_parser_type_id_1 (parser
, false, false);
16811 static tree
cp_parser_template_type_arg (cp_parser
*parser
)
16814 const char *saved_message
= parser
->type_definition_forbidden_message
;
16815 parser
->type_definition_forbidden_message
16816 = G_("types may not be defined in template arguments");
16817 r
= cp_parser_type_id_1 (parser
, true, false);
16818 parser
->type_definition_forbidden_message
= saved_message
;
16822 static tree
cp_parser_trailing_type_id (cp_parser
*parser
)
16824 return cp_parser_type_id_1 (parser
, false, true);
16827 /* Parse a type-specifier-seq.
16829 type-specifier-seq:
16830 type-specifier type-specifier-seq [opt]
16834 type-specifier-seq:
16835 attributes type-specifier-seq [opt]
16837 If IS_DECLARATION is true, we are at the start of a "condition" or
16838 exception-declaration, so we might be followed by a declarator-id.
16840 If IS_TRAILING_RETURN is true, we are in a trailing-return-type,
16841 i.e. we've just seen "->".
16843 Sets *TYPE_SPECIFIER_SEQ to represent the sequence. */
16846 cp_parser_type_specifier_seq (cp_parser
* parser
,
16847 bool is_declaration
,
16848 bool is_trailing_return
,
16849 cp_decl_specifier_seq
*type_specifier_seq
)
16851 bool seen_type_specifier
= false;
16852 cp_parser_flags flags
= CP_PARSER_FLAGS_OPTIONAL
;
16853 cp_token
*start_token
= NULL
;
16855 /* Clear the TYPE_SPECIFIER_SEQ. */
16856 clear_decl_specs (type_specifier_seq
);
16858 /* In the context of a trailing return type, enum E { } is an
16859 elaborated-type-specifier followed by a function-body, not an
16861 if (is_trailing_return
)
16862 flags
|= CP_PARSER_FLAGS_NO_TYPE_DEFINITIONS
;
16864 /* Parse the type-specifiers and attributes. */
16867 tree type_specifier
;
16868 bool is_cv_qualifier
;
16870 /* Check for attributes first. */
16871 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_ATTRIBUTE
))
16873 type_specifier_seq
->attributes
=
16874 chainon (type_specifier_seq
->attributes
,
16875 cp_parser_attributes_opt (parser
));
16879 /* record the token of the beginning of the type specifier seq,
16880 for error reporting purposes*/
16882 start_token
= cp_lexer_peek_token (parser
->lexer
);
16884 /* Look for the type-specifier. */
16885 type_specifier
= cp_parser_type_specifier (parser
,
16887 type_specifier_seq
,
16888 /*is_declaration=*/false,
16891 if (!type_specifier
)
16893 /* If the first type-specifier could not be found, this is not a
16894 type-specifier-seq at all. */
16895 if (!seen_type_specifier
)
16897 cp_parser_error (parser
, "expected type-specifier");
16898 type_specifier_seq
->type
= error_mark_node
;
16901 /* If subsequent type-specifiers could not be found, the
16902 type-specifier-seq is complete. */
16906 seen_type_specifier
= true;
16907 /* The standard says that a condition can be:
16909 type-specifier-seq declarator = assignment-expression
16916 we should treat the "S" as a declarator, not as a
16917 type-specifier. The standard doesn't say that explicitly for
16918 type-specifier-seq, but it does say that for
16919 decl-specifier-seq in an ordinary declaration. Perhaps it
16920 would be clearer just to allow a decl-specifier-seq here, and
16921 then add a semantic restriction that if any decl-specifiers
16922 that are not type-specifiers appear, the program is invalid. */
16923 if (is_declaration
&& !is_cv_qualifier
)
16924 flags
|= CP_PARSER_FLAGS_NO_USER_DEFINED_TYPES
;
16928 /* Parse a parameter-declaration-clause.
16930 parameter-declaration-clause:
16931 parameter-declaration-list [opt] ... [opt]
16932 parameter-declaration-list , ...
16934 Returns a representation for the parameter declarations. A return
16935 value of NULL indicates a parameter-declaration-clause consisting
16936 only of an ellipsis. */
16939 cp_parser_parameter_declaration_clause (cp_parser
* parser
)
16946 /* Peek at the next token. */
16947 token
= cp_lexer_peek_token (parser
->lexer
);
16948 /* Check for trivial parameter-declaration-clauses. */
16949 if (token
->type
== CPP_ELLIPSIS
)
16951 /* Consume the `...' token. */
16952 cp_lexer_consume_token (parser
->lexer
);
16955 else if (token
->type
== CPP_CLOSE_PAREN
)
16956 /* There are no parameters. */
16958 #ifndef NO_IMPLICIT_EXTERN_C
16959 if (in_system_header
&& current_class_type
== NULL
16960 && current_lang_name
== lang_name_c
)
16964 return void_list_node
;
16966 /* Check for `(void)', too, which is a special case. */
16967 else if (token
->keyword
== RID_VOID
16968 && (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
16969 == CPP_CLOSE_PAREN
))
16971 /* Consume the `void' token. */
16972 cp_lexer_consume_token (parser
->lexer
);
16973 /* There are no parameters. */
16974 return void_list_node
;
16977 /* Parse the parameter-declaration-list. */
16978 parameters
= cp_parser_parameter_declaration_list (parser
, &is_error
);
16979 /* If a parse error occurred while parsing the
16980 parameter-declaration-list, then the entire
16981 parameter-declaration-clause is erroneous. */
16985 /* Peek at the next token. */
16986 token
= cp_lexer_peek_token (parser
->lexer
);
16987 /* If it's a `,', the clause should terminate with an ellipsis. */
16988 if (token
->type
== CPP_COMMA
)
16990 /* Consume the `,'. */
16991 cp_lexer_consume_token (parser
->lexer
);
16992 /* Expect an ellipsis. */
16994 = (cp_parser_require (parser
, CPP_ELLIPSIS
, RT_ELLIPSIS
) != NULL
);
16996 /* It might also be `...' if the optional trailing `,' was
16998 else if (token
->type
== CPP_ELLIPSIS
)
17000 /* Consume the `...' token. */
17001 cp_lexer_consume_token (parser
->lexer
);
17002 /* And remember that we saw it. */
17006 ellipsis_p
= false;
17008 /* Finish the parameter list. */
17010 parameters
= chainon (parameters
, void_list_node
);
17015 /* Parse a parameter-declaration-list.
17017 parameter-declaration-list:
17018 parameter-declaration
17019 parameter-declaration-list , parameter-declaration
17021 Returns a representation of the parameter-declaration-list, as for
17022 cp_parser_parameter_declaration_clause. However, the
17023 `void_list_node' is never appended to the list. Upon return,
17024 *IS_ERROR will be true iff an error occurred. */
17027 cp_parser_parameter_declaration_list (cp_parser
* parser
, bool *is_error
)
17029 tree parameters
= NULL_TREE
;
17030 tree
*tail
= ¶meters
;
17031 bool saved_in_unbraced_linkage_specification_p
;
17034 /* Assume all will go well. */
17036 /* The special considerations that apply to a function within an
17037 unbraced linkage specifications do not apply to the parameters
17038 to the function. */
17039 saved_in_unbraced_linkage_specification_p
17040 = parser
->in_unbraced_linkage_specification_p
;
17041 parser
->in_unbraced_linkage_specification_p
= false;
17043 /* Look for more parameters. */
17046 cp_parameter_declarator
*parameter
;
17047 tree decl
= error_mark_node
;
17048 bool parenthesized_p
= false;
17049 /* Parse the parameter. */
17051 = cp_parser_parameter_declaration (parser
,
17052 /*template_parm_p=*/false,
17055 /* We don't know yet if the enclosing context is deprecated, so wait
17056 and warn in grokparms if appropriate. */
17057 deprecated_state
= DEPRECATED_SUPPRESS
;
17060 decl
= grokdeclarator (parameter
->declarator
,
17061 ¶meter
->decl_specifiers
,
17063 parameter
->default_argument
!= NULL_TREE
,
17064 ¶meter
->decl_specifiers
.attributes
);
17066 deprecated_state
= DEPRECATED_NORMAL
;
17068 /* If a parse error occurred parsing the parameter declaration,
17069 then the entire parameter-declaration-list is erroneous. */
17070 if (decl
== error_mark_node
)
17073 parameters
= error_mark_node
;
17077 if (parameter
->decl_specifiers
.attributes
)
17078 cplus_decl_attributes (&decl
,
17079 parameter
->decl_specifiers
.attributes
,
17081 if (DECL_NAME (decl
))
17082 decl
= pushdecl (decl
);
17084 if (decl
!= error_mark_node
)
17086 retrofit_lang_decl (decl
);
17087 DECL_PARM_INDEX (decl
) = ++index
;
17088 DECL_PARM_LEVEL (decl
) = function_parm_depth ();
17091 /* Add the new parameter to the list. */
17092 *tail
= build_tree_list (parameter
->default_argument
, decl
);
17093 tail
= &TREE_CHAIN (*tail
);
17095 /* Peek at the next token. */
17096 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_PAREN
)
17097 || cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
)
17098 /* These are for Objective-C++ */
17099 || cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
)
17100 || cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
17101 /* The parameter-declaration-list is complete. */
17103 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
17107 /* Peek at the next token. */
17108 token
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
17109 /* If it's an ellipsis, then the list is complete. */
17110 if (token
->type
== CPP_ELLIPSIS
)
17112 /* Otherwise, there must be more parameters. Consume the
17114 cp_lexer_consume_token (parser
->lexer
);
17115 /* When parsing something like:
17117 int i(float f, double d)
17119 we can tell after seeing the declaration for "f" that we
17120 are not looking at an initialization of a variable "i",
17121 but rather at the declaration of a function "i".
17123 Due to the fact that the parsing of template arguments
17124 (as specified to a template-id) requires backtracking we
17125 cannot use this technique when inside a template argument
17127 if (!parser
->in_template_argument_list_p
17128 && !parser
->in_type_id_in_expr_p
17129 && cp_parser_uncommitted_to_tentative_parse_p (parser
)
17130 /* However, a parameter-declaration of the form
17131 "foat(f)" (which is a valid declaration of a
17132 parameter "f") can also be interpreted as an
17133 expression (the conversion of "f" to "float"). */
17134 && !parenthesized_p
)
17135 cp_parser_commit_to_tentative_parse (parser
);
17139 cp_parser_error (parser
, "expected %<,%> or %<...%>");
17140 if (!cp_parser_uncommitted_to_tentative_parse_p (parser
))
17141 cp_parser_skip_to_closing_parenthesis (parser
,
17142 /*recovering=*/true,
17143 /*or_comma=*/false,
17144 /*consume_paren=*/false);
17149 parser
->in_unbraced_linkage_specification_p
17150 = saved_in_unbraced_linkage_specification_p
;
17155 /* Parse a parameter declaration.
17157 parameter-declaration:
17158 decl-specifier-seq ... [opt] declarator
17159 decl-specifier-seq declarator = assignment-expression
17160 decl-specifier-seq ... [opt] abstract-declarator [opt]
17161 decl-specifier-seq abstract-declarator [opt] = assignment-expression
17163 If TEMPLATE_PARM_P is TRUE, then this parameter-declaration
17164 declares a template parameter. (In that case, a non-nested `>'
17165 token encountered during the parsing of the assignment-expression
17166 is not interpreted as a greater-than operator.)
17168 Returns a representation of the parameter, or NULL if an error
17169 occurs. If PARENTHESIZED_P is non-NULL, *PARENTHESIZED_P is set to
17170 true iff the declarator is of the form "(p)". */
17172 static cp_parameter_declarator
*
17173 cp_parser_parameter_declaration (cp_parser
*parser
,
17174 bool template_parm_p
,
17175 bool *parenthesized_p
)
17177 int declares_class_or_enum
;
17178 cp_decl_specifier_seq decl_specifiers
;
17179 cp_declarator
*declarator
;
17180 tree default_argument
;
17181 cp_token
*token
= NULL
, *declarator_token_start
= NULL
;
17182 const char *saved_message
;
17184 /* In a template parameter, `>' is not an operator.
17188 When parsing a default template-argument for a non-type
17189 template-parameter, the first non-nested `>' is taken as the end
17190 of the template parameter-list rather than a greater-than
17193 /* Type definitions may not appear in parameter types. */
17194 saved_message
= parser
->type_definition_forbidden_message
;
17195 parser
->type_definition_forbidden_message
17196 = G_("types may not be defined in parameter types");
17198 /* Parse the declaration-specifiers. */
17199 cp_parser_decl_specifier_seq (parser
,
17200 CP_PARSER_FLAGS_NONE
,
17202 &declares_class_or_enum
);
17204 /* Complain about missing 'typename' or other invalid type names. */
17205 if (!decl_specifiers
.any_type_specifiers_p
)
17206 cp_parser_parse_and_diagnose_invalid_type_name (parser
);
17208 /* If an error occurred, there's no reason to attempt to parse the
17209 rest of the declaration. */
17210 if (cp_parser_error_occurred (parser
))
17212 parser
->type_definition_forbidden_message
= saved_message
;
17216 /* Peek at the next token. */
17217 token
= cp_lexer_peek_token (parser
->lexer
);
17219 /* If the next token is a `)', `,', `=', `>', or `...', then there
17220 is no declarator. However, when variadic templates are enabled,
17221 there may be a declarator following `...'. */
17222 if (token
->type
== CPP_CLOSE_PAREN
17223 || token
->type
== CPP_COMMA
17224 || token
->type
== CPP_EQ
17225 || token
->type
== CPP_GREATER
)
17228 if (parenthesized_p
)
17229 *parenthesized_p
= false;
17231 /* Otherwise, there should be a declarator. */
17234 bool saved_default_arg_ok_p
= parser
->default_arg_ok_p
;
17235 parser
->default_arg_ok_p
= false;
17237 /* After seeing a decl-specifier-seq, if the next token is not a
17238 "(", there is no possibility that the code is a valid
17239 expression. Therefore, if parsing tentatively, we commit at
17241 if (!parser
->in_template_argument_list_p
17242 /* In an expression context, having seen:
17246 we cannot be sure whether we are looking at a
17247 function-type (taking a "char" as a parameter) or a cast
17248 of some object of type "char" to "int". */
17249 && !parser
->in_type_id_in_expr_p
17250 && cp_parser_uncommitted_to_tentative_parse_p (parser
)
17251 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_BRACE
)
17252 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_PAREN
))
17253 cp_parser_commit_to_tentative_parse (parser
);
17254 /* Parse the declarator. */
17255 declarator_token_start
= token
;
17256 declarator
= cp_parser_declarator (parser
,
17257 CP_PARSER_DECLARATOR_EITHER
,
17258 /*ctor_dtor_or_conv_p=*/NULL
,
17260 /*member_p=*/false);
17261 parser
->default_arg_ok_p
= saved_default_arg_ok_p
;
17262 /* After the declarator, allow more attributes. */
17263 decl_specifiers
.attributes
17264 = chainon (decl_specifiers
.attributes
,
17265 cp_parser_attributes_opt (parser
));
17268 /* If the next token is an ellipsis, and we have not seen a
17269 declarator name, and the type of the declarator contains parameter
17270 packs but it is not a TYPE_PACK_EXPANSION, then we actually have
17271 a parameter pack expansion expression. Otherwise, leave the
17272 ellipsis for a C-style variadic function. */
17273 token
= cp_lexer_peek_token (parser
->lexer
);
17274 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
17276 tree type
= decl_specifiers
.type
;
17278 if (type
&& DECL_P (type
))
17279 type
= TREE_TYPE (type
);
17282 && TREE_CODE (type
) != TYPE_PACK_EXPANSION
17283 && declarator_can_be_parameter_pack (declarator
)
17284 && (!declarator
|| !declarator
->parameter_pack_p
)
17285 && uses_parameter_packs (type
))
17287 /* Consume the `...'. */
17288 cp_lexer_consume_token (parser
->lexer
);
17289 maybe_warn_variadic_templates ();
17291 /* Build a pack expansion type */
17293 declarator
->parameter_pack_p
= true;
17295 decl_specifiers
.type
= make_pack_expansion (type
);
17299 /* The restriction on defining new types applies only to the type
17300 of the parameter, not to the default argument. */
17301 parser
->type_definition_forbidden_message
= saved_message
;
17303 /* If the next token is `=', then process a default argument. */
17304 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
17306 token
= cp_lexer_peek_token (parser
->lexer
);
17307 /* If we are defining a class, then the tokens that make up the
17308 default argument must be saved and processed later. */
17309 if (!template_parm_p
&& at_class_scope_p ()
17310 && TYPE_BEING_DEFINED (current_class_type
)
17311 && !LAMBDA_TYPE_P (current_class_type
))
17312 default_argument
= cp_parser_cache_defarg (parser
, /*nsdmi=*/false);
17313 /* Outside of a class definition, we can just parse the
17314 assignment-expression. */
17317 = cp_parser_default_argument (parser
, template_parm_p
);
17319 if (!parser
->default_arg_ok_p
)
17321 if (flag_permissive
)
17322 warning (0, "deprecated use of default argument for parameter of non-function");
17325 error_at (token
->location
,
17326 "default arguments are only "
17327 "permitted for function parameters");
17328 default_argument
= NULL_TREE
;
17331 else if ((declarator
&& declarator
->parameter_pack_p
)
17332 || (decl_specifiers
.type
17333 && PACK_EXPANSION_P (decl_specifiers
.type
)))
17335 /* Find the name of the parameter pack. */
17336 cp_declarator
*id_declarator
= declarator
;
17337 while (id_declarator
&& id_declarator
->kind
!= cdk_id
)
17338 id_declarator
= id_declarator
->declarator
;
17340 if (id_declarator
&& id_declarator
->kind
== cdk_id
)
17341 error_at (declarator_token_start
->location
,
17343 ? G_("template parameter pack %qD "
17344 "cannot have a default argument")
17345 : G_("parameter pack %qD cannot have "
17346 "a default argument"),
17347 id_declarator
->u
.id
.unqualified_name
);
17349 error_at (declarator_token_start
->location
,
17351 ? G_("template parameter pack cannot have "
17352 "a default argument")
17353 : G_("parameter pack cannot have a "
17354 "default argument"));
17356 default_argument
= NULL_TREE
;
17360 default_argument
= NULL_TREE
;
17362 return make_parameter_declarator (&decl_specifiers
,
17367 /* Parse a default argument and return it.
17369 TEMPLATE_PARM_P is true if this is a default argument for a
17370 non-type template parameter. */
17372 cp_parser_default_argument (cp_parser
*parser
, bool template_parm_p
)
17374 tree default_argument
= NULL_TREE
;
17375 bool saved_greater_than_is_operator_p
;
17376 bool saved_local_variables_forbidden_p
;
17377 bool non_constant_p
, is_direct_init
;
17379 /* Make sure that PARSER->GREATER_THAN_IS_OPERATOR_P is
17381 saved_greater_than_is_operator_p
= parser
->greater_than_is_operator_p
;
17382 parser
->greater_than_is_operator_p
= !template_parm_p
;
17383 /* Local variable names (and the `this' keyword) may not
17384 appear in a default argument. */
17385 saved_local_variables_forbidden_p
= parser
->local_variables_forbidden_p
;
17386 parser
->local_variables_forbidden_p
= true;
17387 /* Parse the assignment-expression. */
17388 if (template_parm_p
)
17389 push_deferring_access_checks (dk_no_deferred
);
17391 = cp_parser_initializer (parser
, &is_direct_init
, &non_constant_p
);
17392 if (BRACE_ENCLOSED_INITIALIZER_P (default_argument
))
17393 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
17394 if (template_parm_p
)
17395 pop_deferring_access_checks ();
17396 parser
->greater_than_is_operator_p
= saved_greater_than_is_operator_p
;
17397 parser
->local_variables_forbidden_p
= saved_local_variables_forbidden_p
;
17399 return default_argument
;
17402 /* Parse a function-body.
17405 compound_statement */
17408 cp_parser_function_body (cp_parser
*parser
, bool in_function_try_block
)
17410 cp_parser_compound_statement (parser
, NULL
, in_function_try_block
, true);
17413 /* Parse a ctor-initializer-opt followed by a function-body. Return
17414 true if a ctor-initializer was present. When IN_FUNCTION_TRY_BLOCK
17415 is true we are parsing a function-try-block. */
17418 cp_parser_ctor_initializer_opt_and_function_body (cp_parser
*parser
,
17419 bool in_function_try_block
)
17422 bool ctor_initializer_p
;
17423 const bool check_body_p
=
17424 DECL_CONSTRUCTOR_P (current_function_decl
)
17425 && DECL_DECLARED_CONSTEXPR_P (current_function_decl
);
17428 /* Begin the function body. */
17429 body
= begin_function_body ();
17430 /* Parse the optional ctor-initializer. */
17431 ctor_initializer_p
= cp_parser_ctor_initializer_opt (parser
);
17433 /* If we're parsing a constexpr constructor definition, we need
17434 to check that the constructor body is indeed empty. However,
17435 before we get to cp_parser_function_body lot of junk has been
17436 generated, so we can't just check that we have an empty block.
17437 Rather we take a snapshot of the outermost block, and check whether
17438 cp_parser_function_body changed its state. */
17441 list
= cur_stmt_list
;
17442 if (STATEMENT_LIST_TAIL (list
))
17443 last
= STATEMENT_LIST_TAIL (list
)->stmt
;
17445 /* Parse the function-body. */
17446 cp_parser_function_body (parser
, in_function_try_block
);
17448 check_constexpr_ctor_body (last
, list
);
17449 /* Finish the function body. */
17450 finish_function_body (body
);
17452 return ctor_initializer_p
;
17455 /* Parse an initializer.
17458 = initializer-clause
17459 ( expression-list )
17461 Returns an expression representing the initializer. If no
17462 initializer is present, NULL_TREE is returned.
17464 *IS_DIRECT_INIT is set to FALSE if the `= initializer-clause'
17465 production is used, and TRUE otherwise. *IS_DIRECT_INIT is
17466 set to TRUE if there is no initializer present. If there is an
17467 initializer, and it is not a constant-expression, *NON_CONSTANT_P
17468 is set to true; otherwise it is set to false. */
17471 cp_parser_initializer (cp_parser
* parser
, bool* is_direct_init
,
17472 bool* non_constant_p
)
17477 /* Peek at the next token. */
17478 token
= cp_lexer_peek_token (parser
->lexer
);
17480 /* Let our caller know whether or not this initializer was
17482 *is_direct_init
= (token
->type
!= CPP_EQ
);
17483 /* Assume that the initializer is constant. */
17484 *non_constant_p
= false;
17486 if (token
->type
== CPP_EQ
)
17488 /* Consume the `='. */
17489 cp_lexer_consume_token (parser
->lexer
);
17490 /* Parse the initializer-clause. */
17491 init
= cp_parser_initializer_clause (parser
, non_constant_p
);
17493 else if (token
->type
== CPP_OPEN_PAREN
)
17496 vec
= cp_parser_parenthesized_expression_list (parser
, non_attr
,
17498 /*allow_expansion_p=*/true,
17501 return error_mark_node
;
17502 init
= build_tree_list_vec (vec
);
17503 release_tree_vector (vec
);
17505 else if (token
->type
== CPP_OPEN_BRACE
)
17507 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
17508 init
= cp_parser_braced_list (parser
, non_constant_p
);
17509 CONSTRUCTOR_IS_DIRECT_INIT (init
) = 1;
17513 /* Anything else is an error. */
17514 cp_parser_error (parser
, "expected initializer");
17515 init
= error_mark_node
;
17521 /* Parse an initializer-clause.
17523 initializer-clause:
17524 assignment-expression
17527 Returns an expression representing the initializer.
17529 If the `assignment-expression' production is used the value
17530 returned is simply a representation for the expression.
17532 Otherwise, calls cp_parser_braced_list. */
17535 cp_parser_initializer_clause (cp_parser
* parser
, bool* non_constant_p
)
17539 /* Assume the expression is constant. */
17540 *non_constant_p
= false;
17542 /* If it is not a `{', then we are looking at an
17543 assignment-expression. */
17544 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_BRACE
))
17547 = cp_parser_constant_expression (parser
,
17548 /*allow_non_constant_p=*/true,
17552 initializer
= cp_parser_braced_list (parser
, non_constant_p
);
17554 return initializer
;
17557 /* Parse a brace-enclosed initializer list.
17560 { initializer-list , [opt] }
17563 Returns a CONSTRUCTOR. The CONSTRUCTOR_ELTS will be
17564 the elements of the initializer-list (or NULL, if the last
17565 production is used). The TREE_TYPE for the CONSTRUCTOR will be
17566 NULL_TREE. There is no way to detect whether or not the optional
17567 trailing `,' was provided. NON_CONSTANT_P is as for
17568 cp_parser_initializer. */
17571 cp_parser_braced_list (cp_parser
* parser
, bool* non_constant_p
)
17575 /* Consume the `{' token. */
17576 cp_lexer_consume_token (parser
->lexer
);
17577 /* Create a CONSTRUCTOR to represent the braced-initializer. */
17578 initializer
= make_node (CONSTRUCTOR
);
17579 /* If it's not a `}', then there is a non-trivial initializer. */
17580 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_BRACE
))
17582 /* Parse the initializer list. */
17583 CONSTRUCTOR_ELTS (initializer
)
17584 = cp_parser_initializer_list (parser
, non_constant_p
);
17585 /* A trailing `,' token is allowed. */
17586 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
17587 cp_lexer_consume_token (parser
->lexer
);
17589 /* Now, there should be a trailing `}'. */
17590 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
17591 TREE_TYPE (initializer
) = init_list_type_node
;
17592 return initializer
;
17595 /* Parse an initializer-list.
17598 initializer-clause ... [opt]
17599 initializer-list , initializer-clause ... [opt]
17604 designation initializer-clause ...[opt]
17605 initializer-list , designation initializer-clause ...[opt]
17610 [ constant-expression ] =
17612 Returns a VEC of constructor_elt. The VALUE of each elt is an expression
17613 for the initializer. If the INDEX of the elt is non-NULL, it is the
17614 IDENTIFIER_NODE naming the field to initialize. NON_CONSTANT_P is
17615 as for cp_parser_initializer. */
17617 static VEC(constructor_elt
,gc
) *
17618 cp_parser_initializer_list (cp_parser
* parser
, bool* non_constant_p
)
17620 VEC(constructor_elt
,gc
) *v
= NULL
;
17622 /* Assume all of the expressions are constant. */
17623 *non_constant_p
= false;
17625 /* Parse the rest of the list. */
17631 bool clause_non_constant_p
;
17633 /* If the next token is an identifier and the following one is a
17634 colon, we are looking at the GNU designated-initializer
17636 if (cp_parser_allow_gnu_extensions_p (parser
)
17637 && cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
)
17638 && cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
== CPP_COLON
)
17640 /* Warn the user that they are using an extension. */
17641 pedwarn (input_location
, OPT_Wpedantic
,
17642 "ISO C++ does not allow designated initializers");
17643 /* Consume the identifier. */
17644 designator
= cp_lexer_consume_token (parser
->lexer
)->u
.value
;
17645 /* Consume the `:'. */
17646 cp_lexer_consume_token (parser
->lexer
);
17648 /* Also handle the C99 syntax, '. id ='. */
17649 else if (cp_parser_allow_gnu_extensions_p (parser
)
17650 && cp_lexer_next_token_is (parser
->lexer
, CPP_DOT
)
17651 && cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
== CPP_NAME
17652 && cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
== CPP_EQ
)
17654 /* Warn the user that they are using an extension. */
17655 pedwarn (input_location
, OPT_Wpedantic
,
17656 "ISO C++ does not allow C99 designated initializers");
17657 /* Consume the `.'. */
17658 cp_lexer_consume_token (parser
->lexer
);
17659 /* Consume the identifier. */
17660 designator
= cp_lexer_consume_token (parser
->lexer
)->u
.value
;
17661 /* Consume the `='. */
17662 cp_lexer_consume_token (parser
->lexer
);
17664 /* Also handle C99 array designators, '[ const ] ='. */
17665 else if (cp_parser_allow_gnu_extensions_p (parser
)
17666 && !c_dialect_objc ()
17667 && cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_SQUARE
))
17669 /* In C++11, [ could start a lambda-introducer. */
17670 cp_parser_parse_tentatively (parser
);
17671 cp_lexer_consume_token (parser
->lexer
);
17672 designator
= cp_parser_constant_expression (parser
, false, NULL
);
17673 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
17674 cp_parser_require (parser
, CPP_EQ
, RT_EQ
);
17675 if (!cp_parser_parse_definitely (parser
))
17676 designator
= NULL_TREE
;
17679 designator
= NULL_TREE
;
17681 /* Parse the initializer. */
17682 initializer
= cp_parser_initializer_clause (parser
,
17683 &clause_non_constant_p
);
17684 /* If any clause is non-constant, so is the entire initializer. */
17685 if (clause_non_constant_p
)
17686 *non_constant_p
= true;
17688 /* If we have an ellipsis, this is an initializer pack
17690 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
17692 /* Consume the `...'. */
17693 cp_lexer_consume_token (parser
->lexer
);
17695 /* Turn the initializer into an initializer expansion. */
17696 initializer
= make_pack_expansion (initializer
);
17699 /* Add it to the vector. */
17700 CONSTRUCTOR_APPEND_ELT (v
, designator
, initializer
);
17702 /* If the next token is not a comma, we have reached the end of
17704 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
17707 /* Peek at the next token. */
17708 token
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
17709 /* If the next token is a `}', then we're still done. An
17710 initializer-clause can have a trailing `,' after the
17711 initializer-list and before the closing `}'. */
17712 if (token
->type
== CPP_CLOSE_BRACE
)
17715 /* Consume the `,' token. */
17716 cp_lexer_consume_token (parser
->lexer
);
17722 /* Classes [gram.class] */
17724 /* Parse a class-name.
17730 TYPENAME_KEYWORD_P is true iff the `typename' keyword has been used
17731 to indicate that names looked up in dependent types should be
17732 assumed to be types. TEMPLATE_KEYWORD_P is true iff the `template'
17733 keyword has been used to indicate that the name that appears next
17734 is a template. TAG_TYPE indicates the explicit tag given before
17735 the type name, if any. If CHECK_DEPENDENCY_P is FALSE, names are
17736 looked up in dependent scopes. If CLASS_HEAD_P is TRUE, this class
17737 is the class being defined in a class-head.
17739 Returns the TYPE_DECL representing the class. */
17742 cp_parser_class_name (cp_parser
*parser
,
17743 bool typename_keyword_p
,
17744 bool template_keyword_p
,
17745 enum tag_types tag_type
,
17746 bool check_dependency_p
,
17748 bool is_declaration
)
17754 tree identifier
= NULL_TREE
;
17756 /* All class-names start with an identifier. */
17757 token
= cp_lexer_peek_token (parser
->lexer
);
17758 if (token
->type
!= CPP_NAME
&& token
->type
!= CPP_TEMPLATE_ID
)
17760 cp_parser_error (parser
, "expected class-name");
17761 return error_mark_node
;
17764 /* PARSER->SCOPE can be cleared when parsing the template-arguments
17765 to a template-id, so we save it here. */
17766 scope
= parser
->scope
;
17767 if (scope
== error_mark_node
)
17768 return error_mark_node
;
17770 /* Any name names a type if we're following the `typename' keyword
17771 in a qualified name where the enclosing scope is type-dependent. */
17772 typename_p
= (typename_keyword_p
&& scope
&& TYPE_P (scope
)
17773 && dependent_type_p (scope
));
17774 /* Handle the common case (an identifier, but not a template-id)
17776 if (token
->type
== CPP_NAME
17777 && !cp_parser_nth_token_starts_template_argument_list_p (parser
, 2))
17779 cp_token
*identifier_token
;
17782 /* Look for the identifier. */
17783 identifier_token
= cp_lexer_peek_token (parser
->lexer
);
17784 ambiguous_p
= identifier_token
->ambiguous_p
;
17785 identifier
= cp_parser_identifier (parser
);
17786 /* If the next token isn't an identifier, we are certainly not
17787 looking at a class-name. */
17788 if (identifier
== error_mark_node
)
17789 decl
= error_mark_node
;
17790 /* If we know this is a type-name, there's no need to look it
17792 else if (typename_p
)
17796 tree ambiguous_decls
;
17797 /* If we already know that this lookup is ambiguous, then
17798 we've already issued an error message; there's no reason
17802 cp_parser_simulate_error (parser
);
17803 return error_mark_node
;
17805 /* If the next token is a `::', then the name must be a type
17808 [basic.lookup.qual]
17810 During the lookup for a name preceding the :: scope
17811 resolution operator, object, function, and enumerator
17812 names are ignored. */
17813 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SCOPE
))
17814 tag_type
= typename_type
;
17815 /* Look up the name. */
17816 decl
= cp_parser_lookup_name (parser
, identifier
,
17818 /*is_template=*/false,
17819 /*is_namespace=*/false,
17820 check_dependency_p
,
17822 identifier_token
->location
);
17823 if (ambiguous_decls
)
17825 if (cp_parser_parsing_tentatively (parser
))
17826 cp_parser_simulate_error (parser
);
17827 return error_mark_node
;
17833 /* Try a template-id. */
17834 decl
= cp_parser_template_id (parser
, template_keyword_p
,
17835 check_dependency_p
,
17837 if (decl
== error_mark_node
)
17838 return error_mark_node
;
17841 decl
= cp_parser_maybe_treat_template_as_class (decl
, class_head_p
);
17843 /* If this is a typename, create a TYPENAME_TYPE. */
17844 if (typename_p
&& decl
!= error_mark_node
)
17846 decl
= make_typename_type (scope
, decl
, typename_type
,
17847 /*complain=*/tf_error
);
17848 if (decl
!= error_mark_node
)
17849 decl
= TYPE_NAME (decl
);
17852 decl
= strip_using_decl (decl
);
17854 /* Check to see that it is really the name of a class. */
17855 if (TREE_CODE (decl
) == TEMPLATE_ID_EXPR
17856 && TREE_CODE (TREE_OPERAND (decl
, 0)) == IDENTIFIER_NODE
17857 && cp_lexer_next_token_is (parser
->lexer
, CPP_SCOPE
))
17858 /* Situations like this:
17860 template <typename T> struct A {
17861 typename T::template X<int>::I i;
17864 are problematic. Is `T::template X<int>' a class-name? The
17865 standard does not seem to be definitive, but there is no other
17866 valid interpretation of the following `::'. Therefore, those
17867 names are considered class-names. */
17869 decl
= make_typename_type (scope
, decl
, tag_type
, tf_error
);
17870 if (decl
!= error_mark_node
)
17871 decl
= TYPE_NAME (decl
);
17873 else if (TREE_CODE (decl
) != TYPE_DECL
17874 || TREE_TYPE (decl
) == error_mark_node
17875 || !MAYBE_CLASS_TYPE_P (TREE_TYPE (decl
))
17876 /* In Objective-C 2.0, a classname followed by '.' starts a
17877 dot-syntax expression, and it's not a type-name. */
17878 || (c_dialect_objc ()
17879 && cp_lexer_peek_token (parser
->lexer
)->type
== CPP_DOT
17880 && objc_is_class_name (decl
)))
17881 decl
= error_mark_node
;
17883 if (decl
== error_mark_node
)
17884 cp_parser_error (parser
, "expected class-name");
17885 else if (identifier
&& !parser
->scope
)
17886 maybe_note_name_used_in_class (identifier
, decl
);
17891 /* Parse a class-specifier.
17894 class-head { member-specification [opt] }
17896 Returns the TREE_TYPE representing the class. */
17899 cp_parser_class_specifier_1 (cp_parser
* parser
)
17902 tree attributes
= NULL_TREE
;
17903 bool nested_name_specifier_p
;
17904 unsigned saved_num_template_parameter_lists
;
17905 bool saved_in_function_body
;
17906 unsigned char in_statement
;
17907 bool in_switch_statement_p
;
17908 bool saved_in_unbraced_linkage_specification_p
;
17909 tree old_scope
= NULL_TREE
;
17910 tree scope
= NULL_TREE
;
17912 cp_token
*closing_brace
;
17914 push_deferring_access_checks (dk_no_deferred
);
17916 /* Parse the class-head. */
17917 type
= cp_parser_class_head (parser
,
17918 &nested_name_specifier_p
,
17920 /* If the class-head was a semantic disaster, skip the entire body
17924 cp_parser_skip_to_end_of_block_or_statement (parser
);
17925 pop_deferring_access_checks ();
17926 return error_mark_node
;
17929 /* Look for the `{'. */
17930 if (!cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
))
17932 pop_deferring_access_checks ();
17933 return error_mark_node
;
17936 /* Process the base classes. If they're invalid, skip the
17937 entire class body. */
17938 if (!xref_basetypes (type
, bases
))
17940 /* Consuming the closing brace yields better error messages
17942 if (cp_parser_skip_to_closing_brace (parser
))
17943 cp_lexer_consume_token (parser
->lexer
);
17944 pop_deferring_access_checks ();
17945 return error_mark_node
;
17948 /* Issue an error message if type-definitions are forbidden here. */
17949 cp_parser_check_type_definition (parser
);
17950 /* Remember that we are defining one more class. */
17951 ++parser
->num_classes_being_defined
;
17952 /* Inside the class, surrounding template-parameter-lists do not
17954 saved_num_template_parameter_lists
17955 = parser
->num_template_parameter_lists
;
17956 parser
->num_template_parameter_lists
= 0;
17957 /* We are not in a function body. */
17958 saved_in_function_body
= parser
->in_function_body
;
17959 parser
->in_function_body
= false;
17960 /* Or in a loop. */
17961 in_statement
= parser
->in_statement
;
17962 parser
->in_statement
= 0;
17963 /* Or in a switch. */
17964 in_switch_statement_p
= parser
->in_switch_statement_p
;
17965 parser
->in_switch_statement_p
= false;
17966 /* We are not immediately inside an extern "lang" block. */
17967 saved_in_unbraced_linkage_specification_p
17968 = parser
->in_unbraced_linkage_specification_p
;
17969 parser
->in_unbraced_linkage_specification_p
= false;
17971 /* Start the class. */
17972 if (nested_name_specifier_p
)
17974 scope
= CP_DECL_CONTEXT (TYPE_MAIN_DECL (type
));
17975 old_scope
= push_inner_scope (scope
);
17977 type
= begin_class_definition (type
);
17979 if (type
== error_mark_node
)
17980 /* If the type is erroneous, skip the entire body of the class. */
17981 cp_parser_skip_to_closing_brace (parser
);
17983 /* Parse the member-specification. */
17984 cp_parser_member_specification_opt (parser
);
17986 /* Look for the trailing `}'. */
17987 closing_brace
= cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
17988 /* Look for trailing attributes to apply to this class. */
17989 if (cp_parser_allow_gnu_extensions_p (parser
))
17990 attributes
= cp_parser_attributes_opt (parser
);
17991 if (type
!= error_mark_node
)
17992 type
= finish_struct (type
, attributes
);
17993 if (nested_name_specifier_p
)
17994 pop_inner_scope (old_scope
, scope
);
17996 /* We've finished a type definition. Check for the common syntax
17997 error of forgetting a semicolon after the definition. We need to
17998 be careful, as we can't just check for not-a-semicolon and be done
17999 with it; the user might have typed:
18001 class X { } c = ...;
18002 class X { } *p = ...;
18004 and so forth. Instead, enumerate all the possible tokens that
18005 might follow this production; if we don't see one of them, then
18006 complain and silently insert the semicolon. */
18008 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
18009 bool want_semicolon
= true;
18011 switch (token
->type
)
18014 case CPP_SEMICOLON
:
18017 case CPP_OPEN_PAREN
:
18018 case CPP_CLOSE_PAREN
:
18020 want_semicolon
= false;
18023 /* While it's legal for type qualifiers and storage class
18024 specifiers to follow type definitions in the grammar, only
18025 compiler testsuites contain code like that. Assume that if
18026 we see such code, then what we're really seeing is a case
18030 const <type> var = ...;
18035 static <type> func (...) ...
18037 i.e. the qualifier or specifier applies to the next
18038 declaration. To do so, however, we need to look ahead one
18039 more token to see if *that* token is a type specifier.
18041 This code could be improved to handle:
18044 static const <type> var = ...; */
18046 if (keyword_is_decl_specifier (token
->keyword
))
18048 cp_token
*lookahead
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
18050 /* Handling user-defined types here would be nice, but very
18053 = (lookahead
->type
== CPP_KEYWORD
18054 && keyword_begins_type_specifier (lookahead
->keyword
));
18061 /* If we don't have a type, then something is very wrong and we
18062 shouldn't try to do anything clever. Likewise for not seeing the
18064 if (closing_brace
&& TYPE_P (type
) && want_semicolon
)
18066 cp_token_position prev
18067 = cp_lexer_previous_token_position (parser
->lexer
);
18068 cp_token
*prev_token
= cp_lexer_token_at (parser
->lexer
, prev
);
18069 location_t loc
= prev_token
->location
;
18071 if (CLASSTYPE_DECLARED_CLASS (type
))
18072 error_at (loc
, "expected %<;%> after class definition");
18073 else if (TREE_CODE (type
) == RECORD_TYPE
)
18074 error_at (loc
, "expected %<;%> after struct definition");
18075 else if (TREE_CODE (type
) == UNION_TYPE
)
18076 error_at (loc
, "expected %<;%> after union definition");
18078 gcc_unreachable ();
18080 /* Unget one token and smash it to look as though we encountered
18081 a semicolon in the input stream. */
18082 cp_lexer_set_token_position (parser
->lexer
, prev
);
18083 token
= cp_lexer_peek_token (parser
->lexer
);
18084 token
->type
= CPP_SEMICOLON
;
18085 token
->keyword
= RID_MAX
;
18089 /* If this class is not itself within the scope of another class,
18090 then we need to parse the bodies of all of the queued function
18091 definitions. Note that the queued functions defined in a class
18092 are not always processed immediately following the
18093 class-specifier for that class. Consider:
18096 struct B { void f() { sizeof (A); } };
18099 If `f' were processed before the processing of `A' were
18100 completed, there would be no way to compute the size of `A'.
18101 Note that the nesting we are interested in here is lexical --
18102 not the semantic nesting given by TYPE_CONTEXT. In particular,
18105 struct A { struct B; };
18106 struct A::B { void f() { } };
18108 there is no need to delay the parsing of `A::B::f'. */
18109 if (--parser
->num_classes_being_defined
== 0)
18112 tree class_type
= NULL_TREE
;
18113 tree pushed_scope
= NULL_TREE
;
18115 cp_default_arg_entry
*e
;
18116 tree save_ccp
, save_ccr
;
18118 /* In a first pass, parse default arguments to the functions.
18119 Then, in a second pass, parse the bodies of the functions.
18120 This two-phased approach handles cases like:
18128 FOR_EACH_VEC_ELT (cp_default_arg_entry
, unparsed_funs_with_default_args
,
18132 /* If there are default arguments that have not yet been processed,
18133 take care of them now. */
18134 if (class_type
!= e
->class_type
)
18137 pop_scope (pushed_scope
);
18138 class_type
= e
->class_type
;
18139 pushed_scope
= push_scope (class_type
);
18141 /* Make sure that any template parameters are in scope. */
18142 maybe_begin_member_template_processing (decl
);
18143 /* Parse the default argument expressions. */
18144 cp_parser_late_parsing_default_args (parser
, decl
);
18145 /* Remove any template parameters from the symbol table. */
18146 maybe_end_member_template_processing ();
18148 VEC_truncate (cp_default_arg_entry
, unparsed_funs_with_default_args
, 0);
18149 /* Now parse any NSDMIs. */
18150 save_ccp
= current_class_ptr
;
18151 save_ccr
= current_class_ref
;
18152 FOR_EACH_VEC_ELT (tree
, unparsed_nsdmis
, ix
, decl
)
18154 if (class_type
!= DECL_CONTEXT (decl
))
18157 pop_scope (pushed_scope
);
18158 class_type
= DECL_CONTEXT (decl
);
18159 pushed_scope
= push_scope (class_type
);
18161 inject_this_parameter (class_type
, TYPE_UNQUALIFIED
);
18162 cp_parser_late_parsing_nsdmi (parser
, decl
);
18164 VEC_truncate (tree
, unparsed_nsdmis
, 0);
18165 current_class_ptr
= save_ccp
;
18166 current_class_ref
= save_ccr
;
18168 pop_scope (pushed_scope
);
18169 /* Now parse the body of the functions. */
18170 FOR_EACH_VEC_ELT (tree
, unparsed_funs_with_definitions
, ix
, decl
)
18171 cp_parser_late_parsing_for_member (parser
, decl
);
18172 VEC_truncate (tree
, unparsed_funs_with_definitions
, 0);
18175 /* Put back any saved access checks. */
18176 pop_deferring_access_checks ();
18178 /* Restore saved state. */
18179 parser
->in_switch_statement_p
= in_switch_statement_p
;
18180 parser
->in_statement
= in_statement
;
18181 parser
->in_function_body
= saved_in_function_body
;
18182 parser
->num_template_parameter_lists
18183 = saved_num_template_parameter_lists
;
18184 parser
->in_unbraced_linkage_specification_p
18185 = saved_in_unbraced_linkage_specification_p
;
18191 cp_parser_class_specifier (cp_parser
* parser
)
18194 timevar_push (TV_PARSE_STRUCT
);
18195 ret
= cp_parser_class_specifier_1 (parser
);
18196 timevar_pop (TV_PARSE_STRUCT
);
18200 /* Parse a class-head.
18203 class-key identifier [opt] base-clause [opt]
18204 class-key nested-name-specifier identifier class-virt-specifier [opt] base-clause [opt]
18205 class-key nested-name-specifier [opt] template-id
18208 class-virt-specifier:
18212 class-key attributes identifier [opt] base-clause [opt]
18213 class-key attributes nested-name-specifier identifier base-clause [opt]
18214 class-key attributes nested-name-specifier [opt] template-id
18217 Upon return BASES is initialized to the list of base classes (or
18218 NULL, if there are none) in the same form returned by
18219 cp_parser_base_clause.
18221 Returns the TYPE of the indicated class. Sets
18222 *NESTED_NAME_SPECIFIER_P to TRUE iff one of the productions
18223 involving a nested-name-specifier was used, and FALSE otherwise.
18225 Returns error_mark_node if this is not a class-head.
18227 Returns NULL_TREE if the class-head is syntactically valid, but
18228 semantically invalid in a way that means we should skip the entire
18229 body of the class. */
18232 cp_parser_class_head (cp_parser
* parser
,
18233 bool* nested_name_specifier_p
,
18236 tree nested_name_specifier
;
18237 enum tag_types class_key
;
18238 tree id
= NULL_TREE
;
18239 tree type
= NULL_TREE
;
18241 cp_virt_specifiers virt_specifiers
= VIRT_SPEC_UNSPECIFIED
;
18242 bool template_id_p
= false;
18243 bool qualified_p
= false;
18244 bool invalid_nested_name_p
= false;
18245 bool invalid_explicit_specialization_p
= false;
18246 bool saved_colon_corrects_to_scope_p
= parser
->colon_corrects_to_scope_p
;
18247 tree pushed_scope
= NULL_TREE
;
18248 unsigned num_templates
;
18249 cp_token
*type_start_token
= NULL
, *nested_name_specifier_token_start
= NULL
;
18250 /* Assume no nested-name-specifier will be present. */
18251 *nested_name_specifier_p
= false;
18252 /* Assume no template parameter lists will be used in defining the
18255 parser
->colon_corrects_to_scope_p
= false;
18257 *bases
= NULL_TREE
;
18259 /* Look for the class-key. */
18260 class_key
= cp_parser_class_key (parser
);
18261 if (class_key
== none_type
)
18262 return error_mark_node
;
18264 /* Parse the attributes. */
18265 attributes
= cp_parser_attributes_opt (parser
);
18267 /* If the next token is `::', that is invalid -- but sometimes
18268 people do try to write:
18272 Handle this gracefully by accepting the extra qualifier, and then
18273 issuing an error about it later if this really is a
18274 class-head. If it turns out just to be an elaborated type
18275 specifier, remain silent. */
18276 if (cp_parser_global_scope_opt (parser
, /*current_scope_valid_p=*/false))
18277 qualified_p
= true;
18279 push_deferring_access_checks (dk_no_check
);
18281 /* Determine the name of the class. Begin by looking for an
18282 optional nested-name-specifier. */
18283 nested_name_specifier_token_start
= cp_lexer_peek_token (parser
->lexer
);
18284 nested_name_specifier
18285 = cp_parser_nested_name_specifier_opt (parser
,
18286 /*typename_keyword_p=*/false,
18287 /*check_dependency_p=*/false,
18289 /*is_declaration=*/false);
18290 /* If there was a nested-name-specifier, then there *must* be an
18292 if (nested_name_specifier
)
18294 type_start_token
= cp_lexer_peek_token (parser
->lexer
);
18295 /* Although the grammar says `identifier', it really means
18296 `class-name' or `template-name'. You are only allowed to
18297 define a class that has already been declared with this
18300 The proposed resolution for Core Issue 180 says that wherever
18301 you see `class T::X' you should treat `X' as a type-name.
18303 It is OK to define an inaccessible class; for example:
18305 class A { class B; };
18308 We do not know if we will see a class-name, or a
18309 template-name. We look for a class-name first, in case the
18310 class-name is a template-id; if we looked for the
18311 template-name first we would stop after the template-name. */
18312 cp_parser_parse_tentatively (parser
);
18313 type
= cp_parser_class_name (parser
,
18314 /*typename_keyword_p=*/false,
18315 /*template_keyword_p=*/false,
18317 /*check_dependency_p=*/false,
18318 /*class_head_p=*/true,
18319 /*is_declaration=*/false);
18320 /* If that didn't work, ignore the nested-name-specifier. */
18321 if (!cp_parser_parse_definitely (parser
))
18323 invalid_nested_name_p
= true;
18324 type_start_token
= cp_lexer_peek_token (parser
->lexer
);
18325 id
= cp_parser_identifier (parser
);
18326 if (id
== error_mark_node
)
18329 /* If we could not find a corresponding TYPE, treat this
18330 declaration like an unqualified declaration. */
18331 if (type
== error_mark_node
)
18332 nested_name_specifier
= NULL_TREE
;
18333 /* Otherwise, count the number of templates used in TYPE and its
18334 containing scopes. */
18339 for (scope
= TREE_TYPE (type
);
18340 scope
&& TREE_CODE (scope
) != NAMESPACE_DECL
;
18341 scope
= (TYPE_P (scope
)
18342 ? TYPE_CONTEXT (scope
)
18343 : DECL_CONTEXT (scope
)))
18345 && CLASS_TYPE_P (scope
)
18346 && CLASSTYPE_TEMPLATE_INFO (scope
)
18347 && PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (scope
))
18348 && !CLASSTYPE_TEMPLATE_SPECIALIZATION (scope
))
18352 /* Otherwise, the identifier is optional. */
18355 /* We don't know whether what comes next is a template-id,
18356 an identifier, or nothing at all. */
18357 cp_parser_parse_tentatively (parser
);
18358 /* Check for a template-id. */
18359 type_start_token
= cp_lexer_peek_token (parser
->lexer
);
18360 id
= cp_parser_template_id (parser
,
18361 /*template_keyword_p=*/false,
18362 /*check_dependency_p=*/true,
18363 /*is_declaration=*/true);
18364 /* If that didn't work, it could still be an identifier. */
18365 if (!cp_parser_parse_definitely (parser
))
18367 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
18369 type_start_token
= cp_lexer_peek_token (parser
->lexer
);
18370 id
= cp_parser_identifier (parser
);
18377 template_id_p
= true;
18382 pop_deferring_access_checks ();
18386 cp_parser_check_for_invalid_template_id (parser
, id
,
18387 type_start_token
->location
);
18389 virt_specifiers
= cp_parser_virt_specifier_seq_opt (parser
);
18391 /* If it's not a `:' or a `{' then we can't really be looking at a
18392 class-head, since a class-head only appears as part of a
18393 class-specifier. We have to detect this situation before calling
18394 xref_tag, since that has irreversible side-effects. */
18395 if (!cp_parser_next_token_starts_class_definition_p (parser
))
18397 cp_parser_error (parser
, "expected %<{%> or %<:%>");
18398 type
= error_mark_node
;
18402 /* At this point, we're going ahead with the class-specifier, even
18403 if some other problem occurs. */
18404 cp_parser_commit_to_tentative_parse (parser
);
18405 if (virt_specifiers
& VIRT_SPEC_OVERRIDE
)
18407 cp_parser_error (parser
,
18408 "cannot specify %<override%> for a class");
18409 type
= error_mark_node
;
18412 /* Issue the error about the overly-qualified name now. */
18415 cp_parser_error (parser
,
18416 "global qualification of class name is invalid");
18417 type
= error_mark_node
;
18420 else if (invalid_nested_name_p
)
18422 cp_parser_error (parser
,
18423 "qualified name does not name a class");
18424 type
= error_mark_node
;
18427 else if (nested_name_specifier
)
18431 /* Reject typedef-names in class heads. */
18432 if (!DECL_IMPLICIT_TYPEDEF_P (type
))
18434 error_at (type_start_token
->location
,
18435 "invalid class name in declaration of %qD",
18441 /* Figure out in what scope the declaration is being placed. */
18442 scope
= current_scope ();
18443 /* If that scope does not contain the scope in which the
18444 class was originally declared, the program is invalid. */
18445 if (scope
&& !is_ancestor (scope
, nested_name_specifier
))
18447 if (at_namespace_scope_p ())
18448 error_at (type_start_token
->location
,
18449 "declaration of %qD in namespace %qD which does not "
18451 type
, scope
, nested_name_specifier
);
18453 error_at (type_start_token
->location
,
18454 "declaration of %qD in %qD which does not enclose %qD",
18455 type
, scope
, nested_name_specifier
);
18461 A declarator-id shall not be qualified except for the
18462 definition of a ... nested class outside of its class
18463 ... [or] the definition or explicit instantiation of a
18464 class member of a namespace outside of its namespace. */
18465 if (scope
== nested_name_specifier
)
18467 permerror (nested_name_specifier_token_start
->location
,
18468 "extra qualification not allowed");
18469 nested_name_specifier
= NULL_TREE
;
18473 /* An explicit-specialization must be preceded by "template <>". If
18474 it is not, try to recover gracefully. */
18475 if (at_namespace_scope_p ()
18476 && parser
->num_template_parameter_lists
== 0
18479 error_at (type_start_token
->location
,
18480 "an explicit specialization must be preceded by %<template <>%>");
18481 invalid_explicit_specialization_p
= true;
18482 /* Take the same action that would have been taken by
18483 cp_parser_explicit_specialization. */
18484 ++parser
->num_template_parameter_lists
;
18485 begin_specialization ();
18487 /* There must be no "return" statements between this point and the
18488 end of this function; set "type "to the correct return value and
18489 use "goto done;" to return. */
18490 /* Make sure that the right number of template parameters were
18492 if (!cp_parser_check_template_parameters (parser
, num_templates
,
18493 type_start_token
->location
,
18494 /*declarator=*/NULL
))
18496 /* If something went wrong, there is no point in even trying to
18497 process the class-definition. */
18502 /* Look up the type. */
18505 if (TREE_CODE (id
) == TEMPLATE_ID_EXPR
18506 && (DECL_FUNCTION_TEMPLATE_P (TREE_OPERAND (id
, 0))
18507 || TREE_CODE (TREE_OPERAND (id
, 0)) == OVERLOAD
))
18509 error_at (type_start_token
->location
,
18510 "function template %qD redeclared as a class template", id
);
18511 type
= error_mark_node
;
18515 type
= TREE_TYPE (id
);
18516 type
= maybe_process_partial_specialization (type
);
18518 if (nested_name_specifier
)
18519 pushed_scope
= push_scope (nested_name_specifier
);
18521 else if (nested_name_specifier
)
18527 template <typename T> struct S { struct T };
18528 template <typename T> struct S<T>::T { };
18530 we will get a TYPENAME_TYPE when processing the definition of
18531 `S::T'. We need to resolve it to the actual type before we
18532 try to define it. */
18533 if (TREE_CODE (TREE_TYPE (type
)) == TYPENAME_TYPE
)
18535 class_type
= resolve_typename_type (TREE_TYPE (type
),
18536 /*only_current_p=*/false);
18537 if (TREE_CODE (class_type
) != TYPENAME_TYPE
)
18538 type
= TYPE_NAME (class_type
);
18541 cp_parser_error (parser
, "could not resolve typename type");
18542 type
= error_mark_node
;
18546 if (maybe_process_partial_specialization (TREE_TYPE (type
))
18547 == error_mark_node
)
18553 class_type
= current_class_type
;
18554 /* Enter the scope indicated by the nested-name-specifier. */
18555 pushed_scope
= push_scope (nested_name_specifier
);
18556 /* Get the canonical version of this type. */
18557 type
= TYPE_MAIN_DECL (TREE_TYPE (type
));
18558 if (PROCESSING_REAL_TEMPLATE_DECL_P ()
18559 && !CLASSTYPE_TEMPLATE_SPECIALIZATION (TREE_TYPE (type
)))
18561 type
= push_template_decl (type
);
18562 if (type
== error_mark_node
)
18569 type
= TREE_TYPE (type
);
18570 *nested_name_specifier_p
= true;
18572 else /* The name is not a nested name. */
18574 /* If the class was unnamed, create a dummy name. */
18576 id
= make_anon_name ();
18577 type
= xref_tag (class_key
, id
, /*tag_scope=*/ts_current
,
18578 parser
->num_template_parameter_lists
);
18581 /* Indicate whether this class was declared as a `class' or as a
18583 if (TREE_CODE (type
) == RECORD_TYPE
)
18584 CLASSTYPE_DECLARED_CLASS (type
) = (class_key
== class_type
);
18585 cp_parser_check_class_key (class_key
, type
);
18587 /* If this type was already complete, and we see another definition,
18588 that's an error. */
18589 if (type
!= error_mark_node
&& COMPLETE_TYPE_P (type
))
18591 error_at (type_start_token
->location
, "redefinition of %q#T",
18593 error_at (type_start_token
->location
, "previous definition of %q+#T",
18598 else if (type
== error_mark_node
)
18603 /* Apply attributes now, before any use of the class as a template
18604 argument in its base list. */
18605 cplus_decl_attributes (&type
, attributes
, (int)ATTR_FLAG_TYPE_IN_PLACE
);
18606 fixup_attribute_variants (type
);
18609 /* We will have entered the scope containing the class; the names of
18610 base classes should be looked up in that context. For example:
18612 struct A { struct B {}; struct C; };
18613 struct A::C : B {};
18617 /* Get the list of base-classes, if there is one. */
18618 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
))
18619 *bases
= cp_parser_base_clause (parser
);
18622 /* Leave the scope given by the nested-name-specifier. We will
18623 enter the class scope itself while processing the members. */
18625 pop_scope (pushed_scope
);
18627 if (invalid_explicit_specialization_p
)
18629 end_specialization ();
18630 --parser
->num_template_parameter_lists
;
18634 DECL_SOURCE_LOCATION (TYPE_NAME (type
)) = type_start_token
->location
;
18635 if (type
&& (virt_specifiers
& VIRT_SPEC_FINAL
))
18636 CLASSTYPE_FINAL (type
) = 1;
18638 parser
->colon_corrects_to_scope_p
= saved_colon_corrects_to_scope_p
;
18642 /* Parse a class-key.
18649 Returns the kind of class-key specified, or none_type to indicate
18652 static enum tag_types
18653 cp_parser_class_key (cp_parser
* parser
)
18656 enum tag_types tag_type
;
18658 /* Look for the class-key. */
18659 token
= cp_parser_require (parser
, CPP_KEYWORD
, RT_CLASS_KEY
);
18663 /* Check to see if the TOKEN is a class-key. */
18664 tag_type
= cp_parser_token_is_class_key (token
);
18666 cp_parser_error (parser
, "expected class-key");
18670 /* Parse an (optional) member-specification.
18672 member-specification:
18673 member-declaration member-specification [opt]
18674 access-specifier : member-specification [opt] */
18677 cp_parser_member_specification_opt (cp_parser
* parser
)
18684 /* Peek at the next token. */
18685 token
= cp_lexer_peek_token (parser
->lexer
);
18686 /* If it's a `}', or EOF then we've seen all the members. */
18687 if (token
->type
== CPP_CLOSE_BRACE
18688 || token
->type
== CPP_EOF
18689 || token
->type
== CPP_PRAGMA_EOL
)
18692 /* See if this token is a keyword. */
18693 keyword
= token
->keyword
;
18697 case RID_PROTECTED
:
18699 /* Consume the access-specifier. */
18700 cp_lexer_consume_token (parser
->lexer
);
18701 /* Remember which access-specifier is active. */
18702 current_access_specifier
= token
->u
.value
;
18703 /* Look for the `:'. */
18704 cp_parser_require (parser
, CPP_COLON
, RT_COLON
);
18708 /* Accept #pragmas at class scope. */
18709 if (token
->type
== CPP_PRAGMA
)
18711 cp_parser_pragma (parser
, pragma_external
);
18715 /* Otherwise, the next construction must be a
18716 member-declaration. */
18717 cp_parser_member_declaration (parser
);
18722 /* Parse a member-declaration.
18724 member-declaration:
18725 decl-specifier-seq [opt] member-declarator-list [opt] ;
18726 function-definition ; [opt]
18727 :: [opt] nested-name-specifier template [opt] unqualified-id ;
18729 template-declaration
18732 member-declarator-list:
18734 member-declarator-list , member-declarator
18737 declarator pure-specifier [opt]
18738 declarator constant-initializer [opt]
18739 identifier [opt] : constant-expression
18743 member-declaration:
18744 __extension__ member-declaration
18747 declarator attributes [opt] pure-specifier [opt]
18748 declarator attributes [opt] constant-initializer [opt]
18749 identifier [opt] attributes [opt] : constant-expression
18753 member-declaration:
18754 static_assert-declaration */
18757 cp_parser_member_declaration (cp_parser
* parser
)
18759 cp_decl_specifier_seq decl_specifiers
;
18760 tree prefix_attributes
;
18762 int declares_class_or_enum
;
18764 cp_token
*token
= NULL
;
18765 cp_token
*decl_spec_token_start
= NULL
;
18766 cp_token
*initializer_token_start
= NULL
;
18767 int saved_pedantic
;
18768 bool saved_colon_corrects_to_scope_p
= parser
->colon_corrects_to_scope_p
;
18770 /* Check for the `__extension__' keyword. */
18771 if (cp_parser_extension_opt (parser
, &saved_pedantic
))
18774 cp_parser_member_declaration (parser
);
18775 /* Restore the old value of the PEDANTIC flag. */
18776 pedantic
= saved_pedantic
;
18781 /* Check for a template-declaration. */
18782 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TEMPLATE
))
18784 /* An explicit specialization here is an error condition, and we
18785 expect the specialization handler to detect and report this. */
18786 if (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
== CPP_LESS
18787 && cp_lexer_peek_nth_token (parser
->lexer
, 3)->type
== CPP_GREATER
)
18788 cp_parser_explicit_specialization (parser
);
18790 cp_parser_template_declaration (parser
, /*member_p=*/true);
18795 /* Check for a using-declaration. */
18796 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_USING
))
18798 if (cxx_dialect
< cxx0x
)
18800 /* Parse the using-declaration. */
18801 cp_parser_using_declaration (parser
,
18802 /*access_declaration_p=*/false);
18808 cp_parser_parse_tentatively (parser
);
18809 decl
= cp_parser_alias_declaration (parser
);
18810 if (cp_parser_parse_definitely (parser
))
18811 finish_member_declaration (decl
);
18813 cp_parser_using_declaration (parser
,
18814 /*access_declaration_p=*/false);
18819 /* Check for @defs. */
18820 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_AT_DEFS
))
18823 tree ivar_chains
= cp_parser_objc_defs_expression (parser
);
18824 ivar
= ivar_chains
;
18828 ivar
= TREE_CHAIN (member
);
18829 TREE_CHAIN (member
) = NULL_TREE
;
18830 finish_member_declaration (member
);
18835 /* If the next token is `static_assert' we have a static assertion. */
18836 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_STATIC_ASSERT
))
18838 cp_parser_static_assert (parser
, /*member_p=*/true);
18842 parser
->colon_corrects_to_scope_p
= false;
18844 if (cp_parser_using_declaration (parser
, /*access_declaration=*/true))
18847 /* Parse the decl-specifier-seq. */
18848 decl_spec_token_start
= cp_lexer_peek_token (parser
->lexer
);
18849 cp_parser_decl_specifier_seq (parser
,
18850 CP_PARSER_FLAGS_OPTIONAL
,
18852 &declares_class_or_enum
);
18853 prefix_attributes
= decl_specifiers
.attributes
;
18854 decl_specifiers
.attributes
= NULL_TREE
;
18855 /* Check for an invalid type-name. */
18856 if (!decl_specifiers
.any_type_specifiers_p
18857 && cp_parser_parse_and_diagnose_invalid_type_name (parser
))
18859 /* If there is no declarator, then the decl-specifier-seq should
18861 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
18863 /* If there was no decl-specifier-seq, and the next token is a
18864 `;', then we have something like:
18870 Each member-declaration shall declare at least one member
18871 name of the class. */
18872 if (!decl_specifiers
.any_specifiers_p
)
18874 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
18875 if (!in_system_header_at (token
->location
))
18876 pedwarn (token
->location
, OPT_Wpedantic
, "extra %<;%>");
18882 /* See if this declaration is a friend. */
18883 friend_p
= cp_parser_friend_p (&decl_specifiers
);
18884 /* If there were decl-specifiers, check to see if there was
18885 a class-declaration. */
18886 type
= check_tag_decl (&decl_specifiers
);
18887 /* Nested classes have already been added to the class, but
18888 a `friend' needs to be explicitly registered. */
18891 /* If the `friend' keyword was present, the friend must
18892 be introduced with a class-key. */
18893 if (!declares_class_or_enum
&& cxx_dialect
< cxx0x
)
18894 pedwarn (decl_spec_token_start
->location
, OPT_Wpedantic
,
18895 "in C++03 a class-key must be used "
18896 "when declaring a friend");
18899 template <typename T> struct A {
18900 friend struct A<T>::B;
18903 A<T>::B will be represented by a TYPENAME_TYPE, and
18904 therefore not recognized by check_tag_decl. */
18907 type
= decl_specifiers
.type
;
18908 if (type
&& TREE_CODE (type
) == TYPE_DECL
)
18909 type
= TREE_TYPE (type
);
18911 if (!type
|| !TYPE_P (type
))
18912 error_at (decl_spec_token_start
->location
,
18913 "friend declaration does not name a class or "
18916 make_friend_class (current_class_type
, type
,
18917 /*complain=*/true);
18919 /* If there is no TYPE, an error message will already have
18921 else if (!type
|| type
== error_mark_node
)
18923 /* An anonymous aggregate has to be handled specially; such
18924 a declaration really declares a data member (with a
18925 particular type), as opposed to a nested class. */
18926 else if (ANON_AGGR_TYPE_P (type
))
18929 if (decl_specifiers
.storage_class
!= sc_none
)
18930 error_at (decl_spec_token_start
->location
,
18931 "a storage class on an anonymous aggregate "
18932 "in class scope is not allowed");
18934 /* Remove constructors and such from TYPE, now that we
18935 know it is an anonymous aggregate. */
18936 fixup_anonymous_aggr (type
);
18937 /* And make the corresponding data member. */
18938 decl
= build_decl (decl_spec_token_start
->location
,
18939 FIELD_DECL
, NULL_TREE
, type
);
18940 /* Add it to the class. */
18941 finish_member_declaration (decl
);
18944 cp_parser_check_access_in_redeclaration
18946 decl_spec_token_start
->location
);
18951 bool assume_semicolon
= false;
18953 /* See if these declarations will be friends. */
18954 friend_p
= cp_parser_friend_p (&decl_specifiers
);
18956 /* Keep going until we hit the `;' at the end of the
18958 while (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
18960 tree attributes
= NULL_TREE
;
18961 tree first_attribute
;
18963 /* Peek at the next token. */
18964 token
= cp_lexer_peek_token (parser
->lexer
);
18966 /* Check for a bitfield declaration. */
18967 if (token
->type
== CPP_COLON
18968 || (token
->type
== CPP_NAME
18969 && cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
18975 /* Get the name of the bitfield. Note that we cannot just
18976 check TOKEN here because it may have been invalidated by
18977 the call to cp_lexer_peek_nth_token above. */
18978 if (cp_lexer_peek_token (parser
->lexer
)->type
!= CPP_COLON
)
18979 identifier
= cp_parser_identifier (parser
);
18981 identifier
= NULL_TREE
;
18983 /* Consume the `:' token. */
18984 cp_lexer_consume_token (parser
->lexer
);
18985 /* Get the width of the bitfield. */
18987 = cp_parser_constant_expression (parser
,
18988 /*allow_non_constant=*/false,
18991 /* Look for attributes that apply to the bitfield. */
18992 attributes
= cp_parser_attributes_opt (parser
);
18993 /* Remember which attributes are prefix attributes and
18995 first_attribute
= attributes
;
18996 /* Combine the attributes. */
18997 attributes
= chainon (prefix_attributes
, attributes
);
18999 /* Create the bitfield declaration. */
19000 decl
= grokbitfield (identifier
19001 ? make_id_declarator (NULL_TREE
,
19011 cp_declarator
*declarator
;
19013 tree asm_specification
;
19014 int ctor_dtor_or_conv_p
;
19016 /* Parse the declarator. */
19018 = cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_NAMED
,
19019 &ctor_dtor_or_conv_p
,
19020 /*parenthesized_p=*/NULL
,
19021 /*member_p=*/true);
19023 /* If something went wrong parsing the declarator, make sure
19024 that we at least consume some tokens. */
19025 if (declarator
== cp_error_declarator
)
19027 /* Skip to the end of the statement. */
19028 cp_parser_skip_to_end_of_statement (parser
);
19029 /* If the next token is not a semicolon, that is
19030 probably because we just skipped over the body of
19031 a function. So, we consume a semicolon if
19032 present, but do not issue an error message if it
19034 if (cp_lexer_next_token_is (parser
->lexer
,
19036 cp_lexer_consume_token (parser
->lexer
);
19040 if (declares_class_or_enum
& 2)
19041 cp_parser_check_for_definition_in_return_type
19042 (declarator
, decl_specifiers
.type
,
19043 decl_specifiers
.locations
[ds_type_spec
]);
19045 /* Look for an asm-specification. */
19046 asm_specification
= cp_parser_asm_specification_opt (parser
);
19047 /* Look for attributes that apply to the declaration. */
19048 attributes
= cp_parser_attributes_opt (parser
);
19049 /* Remember which attributes are prefix attributes and
19051 first_attribute
= attributes
;
19052 /* Combine the attributes. */
19053 attributes
= chainon (prefix_attributes
, attributes
);
19055 /* If it's an `=', then we have a constant-initializer or a
19056 pure-specifier. It is not correct to parse the
19057 initializer before registering the member declaration
19058 since the member declaration should be in scope while
19059 its initializer is processed. However, the rest of the
19060 front end does not yet provide an interface that allows
19061 us to handle this correctly. */
19062 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
19066 A pure-specifier shall be used only in the declaration of
19067 a virtual function.
19069 A member-declarator can contain a constant-initializer
19070 only if it declares a static member of integral or
19073 Therefore, if the DECLARATOR is for a function, we look
19074 for a pure-specifier; otherwise, we look for a
19075 constant-initializer. When we call `grokfield', it will
19076 perform more stringent semantics checks. */
19077 initializer_token_start
= cp_lexer_peek_token (parser
->lexer
);
19078 if (function_declarator_p (declarator
)
19079 || (decl_specifiers
.type
19080 && TREE_CODE (decl_specifiers
.type
) == TYPE_DECL
19081 && (TREE_CODE (TREE_TYPE (decl_specifiers
.type
))
19082 == FUNCTION_TYPE
)))
19083 initializer
= cp_parser_pure_specifier (parser
);
19084 else if (decl_specifiers
.storage_class
!= sc_static
)
19085 initializer
= cp_parser_save_nsdmi (parser
);
19086 else if (cxx_dialect
>= cxx0x
)
19089 /* Don't require a constant rvalue in C++11, since we
19090 might want a reference constant. We'll enforce
19091 constancy later. */
19092 cp_lexer_consume_token (parser
->lexer
);
19093 /* Parse the initializer. */
19094 initializer
= cp_parser_initializer_clause (parser
,
19098 /* Parse the initializer. */
19099 initializer
= cp_parser_constant_initializer (parser
);
19101 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
)
19102 && !function_declarator_p (declarator
))
19105 if (decl_specifiers
.storage_class
!= sc_static
)
19106 initializer
= cp_parser_save_nsdmi (parser
);
19108 initializer
= cp_parser_initializer (parser
, &x
, &x
);
19110 /* Otherwise, there is no initializer. */
19112 initializer
= NULL_TREE
;
19114 /* See if we are probably looking at a function
19115 definition. We are certainly not looking at a
19116 member-declarator. Calling `grokfield' has
19117 side-effects, so we must not do it unless we are sure
19118 that we are looking at a member-declarator. */
19119 if (cp_parser_token_starts_function_definition_p
19120 (cp_lexer_peek_token (parser
->lexer
)))
19122 /* The grammar does not allow a pure-specifier to be
19123 used when a member function is defined. (It is
19124 possible that this fact is an oversight in the
19125 standard, since a pure function may be defined
19126 outside of the class-specifier. */
19127 if (initializer
&& initializer_token_start
)
19128 error_at (initializer_token_start
->location
,
19129 "pure-specifier on function-definition");
19130 decl
= cp_parser_save_member_function_body (parser
,
19134 /* If the member was not a friend, declare it here. */
19136 finish_member_declaration (decl
);
19137 /* Peek at the next token. */
19138 token
= cp_lexer_peek_token (parser
->lexer
);
19139 /* If the next token is a semicolon, consume it. */
19140 if (token
->type
== CPP_SEMICOLON
)
19141 cp_lexer_consume_token (parser
->lexer
);
19145 if (declarator
->kind
== cdk_function
)
19146 declarator
->id_loc
= token
->location
;
19147 /* Create the declaration. */
19148 decl
= grokfield (declarator
, &decl_specifiers
,
19149 initializer
, /*init_const_expr_p=*/true,
19154 /* Reset PREFIX_ATTRIBUTES. */
19155 while (attributes
&& TREE_CHAIN (attributes
) != first_attribute
)
19156 attributes
= TREE_CHAIN (attributes
);
19158 TREE_CHAIN (attributes
) = NULL_TREE
;
19160 /* If there is any qualification still in effect, clear it
19161 now; we will be starting fresh with the next declarator. */
19162 parser
->scope
= NULL_TREE
;
19163 parser
->qualifying_scope
= NULL_TREE
;
19164 parser
->object_scope
= NULL_TREE
;
19165 /* If it's a `,', then there are more declarators. */
19166 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
19167 cp_lexer_consume_token (parser
->lexer
);
19168 /* If the next token isn't a `;', then we have a parse error. */
19169 else if (cp_lexer_next_token_is_not (parser
->lexer
,
19172 /* The next token might be a ways away from where the
19173 actual semicolon is missing. Find the previous token
19174 and use that for our error position. */
19175 cp_token
*token
= cp_lexer_previous_token (parser
->lexer
);
19176 error_at (token
->location
,
19177 "expected %<;%> at end of member declaration");
19179 /* Assume that the user meant to provide a semicolon. If
19180 we were to cp_parser_skip_to_end_of_statement, we might
19181 skip to a semicolon inside a member function definition
19182 and issue nonsensical error messages. */
19183 assume_semicolon
= true;
19188 /* Add DECL to the list of members. */
19190 finish_member_declaration (decl
);
19192 if (TREE_CODE (decl
) == FUNCTION_DECL
)
19193 cp_parser_save_default_args (parser
, decl
);
19194 else if (TREE_CODE (decl
) == FIELD_DECL
19195 && !DECL_C_BIT_FIELD (decl
)
19196 && DECL_INITIAL (decl
))
19197 /* Add DECL to the queue of NSDMI to be parsed later. */
19198 VEC_safe_push (tree
, gc
, unparsed_nsdmis
, decl
);
19201 if (assume_semicolon
)
19206 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
19208 parser
->colon_corrects_to_scope_p
= saved_colon_corrects_to_scope_p
;
19211 /* Parse a pure-specifier.
19216 Returns INTEGER_ZERO_NODE if a pure specifier is found.
19217 Otherwise, ERROR_MARK_NODE is returned. */
19220 cp_parser_pure_specifier (cp_parser
* parser
)
19224 /* Look for the `=' token. */
19225 if (!cp_parser_require (parser
, CPP_EQ
, RT_EQ
))
19226 return error_mark_node
;
19227 /* Look for the `0' token. */
19228 token
= cp_lexer_peek_token (parser
->lexer
);
19230 if (token
->type
== CPP_EOF
19231 || token
->type
== CPP_PRAGMA_EOL
)
19232 return error_mark_node
;
19234 cp_lexer_consume_token (parser
->lexer
);
19236 /* Accept = default or = delete in c++0x mode. */
19237 if (token
->keyword
== RID_DEFAULT
19238 || token
->keyword
== RID_DELETE
)
19240 maybe_warn_cpp0x (CPP0X_DEFAULTED_DELETED
);
19241 return token
->u
.value
;
19244 /* c_lex_with_flags marks a single digit '0' with PURE_ZERO. */
19245 if (token
->type
!= CPP_NUMBER
|| !(token
->flags
& PURE_ZERO
))
19247 cp_parser_error (parser
,
19248 "invalid pure specifier (only %<= 0%> is allowed)");
19249 cp_parser_skip_to_end_of_statement (parser
);
19250 return error_mark_node
;
19252 if (PROCESSING_REAL_TEMPLATE_DECL_P ())
19254 error_at (token
->location
, "templates may not be %<virtual%>");
19255 return error_mark_node
;
19258 return integer_zero_node
;
19261 /* Parse a constant-initializer.
19263 constant-initializer:
19264 = constant-expression
19266 Returns a representation of the constant-expression. */
19269 cp_parser_constant_initializer (cp_parser
* parser
)
19271 /* Look for the `=' token. */
19272 if (!cp_parser_require (parser
, CPP_EQ
, RT_EQ
))
19273 return error_mark_node
;
19275 /* It is invalid to write:
19277 struct S { static const int i = { 7 }; };
19280 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
19282 cp_parser_error (parser
,
19283 "a brace-enclosed initializer is not allowed here");
19284 /* Consume the opening brace. */
19285 cp_lexer_consume_token (parser
->lexer
);
19286 /* Skip the initializer. */
19287 cp_parser_skip_to_closing_brace (parser
);
19288 /* Look for the trailing `}'. */
19289 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
19291 return error_mark_node
;
19294 return cp_parser_constant_expression (parser
,
19295 /*allow_non_constant=*/false,
19299 /* Derived classes [gram.class.derived] */
19301 /* Parse a base-clause.
19304 : base-specifier-list
19306 base-specifier-list:
19307 base-specifier ... [opt]
19308 base-specifier-list , base-specifier ... [opt]
19310 Returns a TREE_LIST representing the base-classes, in the order in
19311 which they were declared. The representation of each node is as
19312 described by cp_parser_base_specifier.
19314 In the case that no bases are specified, this function will return
19315 NULL_TREE, not ERROR_MARK_NODE. */
19318 cp_parser_base_clause (cp_parser
* parser
)
19320 tree bases
= NULL_TREE
;
19322 /* Look for the `:' that begins the list. */
19323 cp_parser_require (parser
, CPP_COLON
, RT_COLON
);
19325 /* Scan the base-specifier-list. */
19330 bool pack_expansion_p
= false;
19332 /* Look for the base-specifier. */
19333 base
= cp_parser_base_specifier (parser
);
19334 /* Look for the (optional) ellipsis. */
19335 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
19337 /* Consume the `...'. */
19338 cp_lexer_consume_token (parser
->lexer
);
19340 pack_expansion_p
= true;
19343 /* Add BASE to the front of the list. */
19344 if (base
&& base
!= error_mark_node
)
19346 if (pack_expansion_p
)
19347 /* Make this a pack expansion type. */
19348 TREE_VALUE (base
) = make_pack_expansion (TREE_VALUE (base
));
19350 if (!check_for_bare_parameter_packs (TREE_VALUE (base
)))
19352 TREE_CHAIN (base
) = bases
;
19356 /* Peek at the next token. */
19357 token
= cp_lexer_peek_token (parser
->lexer
);
19358 /* If it's not a comma, then the list is complete. */
19359 if (token
->type
!= CPP_COMMA
)
19361 /* Consume the `,'. */
19362 cp_lexer_consume_token (parser
->lexer
);
19365 /* PARSER->SCOPE may still be non-NULL at this point, if the last
19366 base class had a qualified name. However, the next name that
19367 appears is certainly not qualified. */
19368 parser
->scope
= NULL_TREE
;
19369 parser
->qualifying_scope
= NULL_TREE
;
19370 parser
->object_scope
= NULL_TREE
;
19372 return nreverse (bases
);
19375 /* Parse a base-specifier.
19378 :: [opt] nested-name-specifier [opt] class-name
19379 virtual access-specifier [opt] :: [opt] nested-name-specifier
19381 access-specifier virtual [opt] :: [opt] nested-name-specifier
19384 Returns a TREE_LIST. The TREE_PURPOSE will be one of
19385 ACCESS_{DEFAULT,PUBLIC,PROTECTED,PRIVATE}_[VIRTUAL]_NODE to
19386 indicate the specifiers provided. The TREE_VALUE will be a TYPE
19387 (or the ERROR_MARK_NODE) indicating the type that was specified. */
19390 cp_parser_base_specifier (cp_parser
* parser
)
19394 bool virtual_p
= false;
19395 bool duplicate_virtual_error_issued_p
= false;
19396 bool duplicate_access_error_issued_p
= false;
19397 bool class_scope_p
, template_p
;
19398 tree access
= access_default_node
;
19401 /* Process the optional `virtual' and `access-specifier'. */
19404 /* Peek at the next token. */
19405 token
= cp_lexer_peek_token (parser
->lexer
);
19406 /* Process `virtual'. */
19407 switch (token
->keyword
)
19410 /* If `virtual' appears more than once, issue an error. */
19411 if (virtual_p
&& !duplicate_virtual_error_issued_p
)
19413 cp_parser_error (parser
,
19414 "%<virtual%> specified more than once in base-specified");
19415 duplicate_virtual_error_issued_p
= true;
19420 /* Consume the `virtual' token. */
19421 cp_lexer_consume_token (parser
->lexer
);
19426 case RID_PROTECTED
:
19428 /* If more than one access specifier appears, issue an
19430 if (access
!= access_default_node
19431 && !duplicate_access_error_issued_p
)
19433 cp_parser_error (parser
,
19434 "more than one access specifier in base-specified");
19435 duplicate_access_error_issued_p
= true;
19438 access
= ridpointers
[(int) token
->keyword
];
19440 /* Consume the access-specifier. */
19441 cp_lexer_consume_token (parser
->lexer
);
19450 /* It is not uncommon to see programs mechanically, erroneously, use
19451 the 'typename' keyword to denote (dependent) qualified types
19452 as base classes. */
19453 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TYPENAME
))
19455 token
= cp_lexer_peek_token (parser
->lexer
);
19456 if (!processing_template_decl
)
19457 error_at (token
->location
,
19458 "keyword %<typename%> not allowed outside of templates");
19460 error_at (token
->location
,
19461 "keyword %<typename%> not allowed in this context "
19462 "(the base class is implicitly a type)");
19463 cp_lexer_consume_token (parser
->lexer
);
19466 /* Look for the optional `::' operator. */
19467 cp_parser_global_scope_opt (parser
, /*current_scope_valid_p=*/false);
19468 /* Look for the nested-name-specifier. The simplest way to
19473 The keyword `typename' is not permitted in a base-specifier or
19474 mem-initializer; in these contexts a qualified name that
19475 depends on a template-parameter is implicitly assumed to be a
19478 is to pretend that we have seen the `typename' keyword at this
19480 cp_parser_nested_name_specifier_opt (parser
,
19481 /*typename_keyword_p=*/true,
19482 /*check_dependency_p=*/true,
19484 /*is_declaration=*/true);
19485 /* If the base class is given by a qualified name, assume that names
19486 we see are type names or templates, as appropriate. */
19487 class_scope_p
= (parser
->scope
&& TYPE_P (parser
->scope
));
19488 template_p
= class_scope_p
&& cp_parser_optional_template_keyword (parser
);
19491 && cp_lexer_next_token_is_decltype (parser
->lexer
))
19492 /* DR 950 allows decltype as a base-specifier. */
19493 type
= cp_parser_decltype (parser
);
19496 /* Otherwise, look for the class-name. */
19497 type
= cp_parser_class_name (parser
,
19501 /*check_dependency_p=*/true,
19502 /*class_head_p=*/false,
19503 /*is_declaration=*/true);
19504 type
= TREE_TYPE (type
);
19507 if (type
== error_mark_node
)
19508 return error_mark_node
;
19510 return finish_base_specifier (type
, access
, virtual_p
);
19513 /* Exception handling [gram.exception] */
19515 /* Parse an (optional) noexcept-specification.
19517 noexcept-specification:
19518 noexcept ( constant-expression ) [opt]
19520 If no noexcept-specification is present, returns NULL_TREE.
19521 Otherwise, if REQUIRE_CONSTEXPR is false, then either parse and return any
19522 expression if parentheses follow noexcept, or return BOOLEAN_TRUE_NODE if
19523 there are no parentheses. CONSUMED_EXPR will be set accordingly.
19524 Otherwise, returns a noexcept specification unless RETURN_COND is true,
19525 in which case a boolean condition is returned instead. */
19528 cp_parser_noexcept_specification_opt (cp_parser
* parser
,
19529 bool require_constexpr
,
19530 bool* consumed_expr
,
19534 const char *saved_message
;
19536 /* Peek at the next token. */
19537 token
= cp_lexer_peek_token (parser
->lexer
);
19539 /* Is it a noexcept-specification? */
19540 if (cp_parser_is_keyword (token
, RID_NOEXCEPT
))
19543 cp_lexer_consume_token (parser
->lexer
);
19545 if (cp_lexer_peek_token (parser
->lexer
)->type
== CPP_OPEN_PAREN
)
19547 cp_lexer_consume_token (parser
->lexer
);
19549 if (require_constexpr
)
19551 /* Types may not be defined in an exception-specification. */
19552 saved_message
= parser
->type_definition_forbidden_message
;
19553 parser
->type_definition_forbidden_message
19554 = G_("types may not be defined in an exception-specification");
19556 expr
= cp_parser_constant_expression (parser
, false, NULL
);
19558 /* Restore the saved message. */
19559 parser
->type_definition_forbidden_message
= saved_message
;
19563 expr
= cp_parser_expression (parser
, false, NULL
);
19564 *consumed_expr
= true;
19567 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
19571 expr
= boolean_true_node
;
19572 if (!require_constexpr
)
19573 *consumed_expr
= false;
19576 /* We cannot build a noexcept-spec right away because this will check
19577 that expr is a constexpr. */
19579 return build_noexcept_spec (expr
, tf_warning_or_error
);
19587 /* Parse an (optional) exception-specification.
19589 exception-specification:
19590 throw ( type-id-list [opt] )
19592 Returns a TREE_LIST representing the exception-specification. The
19593 TREE_VALUE of each node is a type. */
19596 cp_parser_exception_specification_opt (cp_parser
* parser
)
19600 const char *saved_message
;
19602 /* Peek at the next token. */
19603 token
= cp_lexer_peek_token (parser
->lexer
);
19605 /* Is it a noexcept-specification? */
19606 type_id_list
= cp_parser_noexcept_specification_opt(parser
, true, NULL
,
19608 if (type_id_list
!= NULL_TREE
)
19609 return type_id_list
;
19611 /* If it's not `throw', then there's no exception-specification. */
19612 if (!cp_parser_is_keyword (token
, RID_THROW
))
19616 /* Enable this once a lot of code has transitioned to noexcept? */
19617 if (cxx_dialect
>= cxx0x
&& !in_system_header
)
19618 warning (OPT_Wdeprecated
, "dynamic exception specifications are "
19619 "deprecated in C++0x; use %<noexcept%> instead");
19622 /* Consume the `throw'. */
19623 cp_lexer_consume_token (parser
->lexer
);
19625 /* Look for the `('. */
19626 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
19628 /* Peek at the next token. */
19629 token
= cp_lexer_peek_token (parser
->lexer
);
19630 /* If it's not a `)', then there is a type-id-list. */
19631 if (token
->type
!= CPP_CLOSE_PAREN
)
19633 /* Types may not be defined in an exception-specification. */
19634 saved_message
= parser
->type_definition_forbidden_message
;
19635 parser
->type_definition_forbidden_message
19636 = G_("types may not be defined in an exception-specification");
19637 /* Parse the type-id-list. */
19638 type_id_list
= cp_parser_type_id_list (parser
);
19639 /* Restore the saved message. */
19640 parser
->type_definition_forbidden_message
= saved_message
;
19643 type_id_list
= empty_except_spec
;
19645 /* Look for the `)'. */
19646 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
19648 return type_id_list
;
19651 /* Parse an (optional) type-id-list.
19655 type-id-list , type-id ... [opt]
19657 Returns a TREE_LIST. The TREE_VALUE of each node is a TYPE,
19658 in the order that the types were presented. */
19661 cp_parser_type_id_list (cp_parser
* parser
)
19663 tree types
= NULL_TREE
;
19670 /* Get the next type-id. */
19671 type
= cp_parser_type_id (parser
);
19672 /* Parse the optional ellipsis. */
19673 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
19675 /* Consume the `...'. */
19676 cp_lexer_consume_token (parser
->lexer
);
19678 /* Turn the type into a pack expansion expression. */
19679 type
= make_pack_expansion (type
);
19681 /* Add it to the list. */
19682 types
= add_exception_specifier (types
, type
, /*complain=*/1);
19683 /* Peek at the next token. */
19684 token
= cp_lexer_peek_token (parser
->lexer
);
19685 /* If it is not a `,', we are done. */
19686 if (token
->type
!= CPP_COMMA
)
19688 /* Consume the `,'. */
19689 cp_lexer_consume_token (parser
->lexer
);
19692 return nreverse (types
);
19695 /* Parse a try-block.
19698 try compound-statement handler-seq */
19701 cp_parser_try_block (cp_parser
* parser
)
19705 cp_parser_require_keyword (parser
, RID_TRY
, RT_TRY
);
19706 try_block
= begin_try_block ();
19707 cp_parser_compound_statement (parser
, NULL
, true, false);
19708 finish_try_block (try_block
);
19709 cp_parser_handler_seq (parser
);
19710 finish_handler_sequence (try_block
);
19715 /* Parse a function-try-block.
19717 function-try-block:
19718 try ctor-initializer [opt] function-body handler-seq */
19721 cp_parser_function_try_block (cp_parser
* parser
)
19723 tree compound_stmt
;
19725 bool ctor_initializer_p
;
19727 /* Look for the `try' keyword. */
19728 if (!cp_parser_require_keyword (parser
, RID_TRY
, RT_TRY
))
19730 /* Let the rest of the front end know where we are. */
19731 try_block
= begin_function_try_block (&compound_stmt
);
19732 /* Parse the function-body. */
19733 ctor_initializer_p
= cp_parser_ctor_initializer_opt_and_function_body
19734 (parser
, /*in_function_try_block=*/true);
19735 /* We're done with the `try' part. */
19736 finish_function_try_block (try_block
);
19737 /* Parse the handlers. */
19738 cp_parser_handler_seq (parser
);
19739 /* We're done with the handlers. */
19740 finish_function_handler_sequence (try_block
, compound_stmt
);
19742 return ctor_initializer_p
;
19745 /* Parse a handler-seq.
19748 handler handler-seq [opt] */
19751 cp_parser_handler_seq (cp_parser
* parser
)
19757 /* Parse the handler. */
19758 cp_parser_handler (parser
);
19759 /* Peek at the next token. */
19760 token
= cp_lexer_peek_token (parser
->lexer
);
19761 /* If it's not `catch' then there are no more handlers. */
19762 if (!cp_parser_is_keyword (token
, RID_CATCH
))
19767 /* Parse a handler.
19770 catch ( exception-declaration ) compound-statement */
19773 cp_parser_handler (cp_parser
* parser
)
19778 cp_parser_require_keyword (parser
, RID_CATCH
, RT_CATCH
);
19779 handler
= begin_handler ();
19780 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
19781 declaration
= cp_parser_exception_declaration (parser
);
19782 finish_handler_parms (declaration
, handler
);
19783 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
19784 cp_parser_compound_statement (parser
, NULL
, false, false);
19785 finish_handler (handler
);
19788 /* Parse an exception-declaration.
19790 exception-declaration:
19791 type-specifier-seq declarator
19792 type-specifier-seq abstract-declarator
19796 Returns a VAR_DECL for the declaration, or NULL_TREE if the
19797 ellipsis variant is used. */
19800 cp_parser_exception_declaration (cp_parser
* parser
)
19802 cp_decl_specifier_seq type_specifiers
;
19803 cp_declarator
*declarator
;
19804 const char *saved_message
;
19806 /* If it's an ellipsis, it's easy to handle. */
19807 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
19809 /* Consume the `...' token. */
19810 cp_lexer_consume_token (parser
->lexer
);
19814 /* Types may not be defined in exception-declarations. */
19815 saved_message
= parser
->type_definition_forbidden_message
;
19816 parser
->type_definition_forbidden_message
19817 = G_("types may not be defined in exception-declarations");
19819 /* Parse the type-specifier-seq. */
19820 cp_parser_type_specifier_seq (parser
, /*is_declaration=*/true,
19821 /*is_trailing_return=*/false,
19823 /* If it's a `)', then there is no declarator. */
19824 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_PAREN
))
19827 declarator
= cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_EITHER
,
19828 /*ctor_dtor_or_conv_p=*/NULL
,
19829 /*parenthesized_p=*/NULL
,
19830 /*member_p=*/false);
19832 /* Restore the saved message. */
19833 parser
->type_definition_forbidden_message
= saved_message
;
19835 if (!type_specifiers
.any_specifiers_p
)
19836 return error_mark_node
;
19838 return grokdeclarator (declarator
, &type_specifiers
, CATCHPARM
, 1, NULL
);
19841 /* Parse a throw-expression.
19844 throw assignment-expression [opt]
19846 Returns a THROW_EXPR representing the throw-expression. */
19849 cp_parser_throw_expression (cp_parser
* parser
)
19854 cp_parser_require_keyword (parser
, RID_THROW
, RT_THROW
);
19855 token
= cp_lexer_peek_token (parser
->lexer
);
19856 /* Figure out whether or not there is an assignment-expression
19857 following the "throw" keyword. */
19858 if (token
->type
== CPP_COMMA
19859 || token
->type
== CPP_SEMICOLON
19860 || token
->type
== CPP_CLOSE_PAREN
19861 || token
->type
== CPP_CLOSE_SQUARE
19862 || token
->type
== CPP_CLOSE_BRACE
19863 || token
->type
== CPP_COLON
)
19864 expression
= NULL_TREE
;
19866 expression
= cp_parser_assignment_expression (parser
,
19867 /*cast_p=*/false, NULL
);
19869 return build_throw (expression
);
19872 /* GNU Extensions */
19874 /* Parse an (optional) asm-specification.
19877 asm ( string-literal )
19879 If the asm-specification is present, returns a STRING_CST
19880 corresponding to the string-literal. Otherwise, returns
19884 cp_parser_asm_specification_opt (cp_parser
* parser
)
19887 tree asm_specification
;
19889 /* Peek at the next token. */
19890 token
= cp_lexer_peek_token (parser
->lexer
);
19891 /* If the next token isn't the `asm' keyword, then there's no
19892 asm-specification. */
19893 if (!cp_parser_is_keyword (token
, RID_ASM
))
19896 /* Consume the `asm' token. */
19897 cp_lexer_consume_token (parser
->lexer
);
19898 /* Look for the `('. */
19899 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
19901 /* Look for the string-literal. */
19902 asm_specification
= cp_parser_string_literal (parser
, false, false);
19904 /* Look for the `)'. */
19905 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
19907 return asm_specification
;
19910 /* Parse an asm-operand-list.
19914 asm-operand-list , asm-operand
19917 string-literal ( expression )
19918 [ string-literal ] string-literal ( expression )
19920 Returns a TREE_LIST representing the operands. The TREE_VALUE of
19921 each node is the expression. The TREE_PURPOSE is itself a
19922 TREE_LIST whose TREE_PURPOSE is a STRING_CST for the bracketed
19923 string-literal (or NULL_TREE if not present) and whose TREE_VALUE
19924 is a STRING_CST for the string literal before the parenthesis. Returns
19925 ERROR_MARK_NODE if any of the operands are invalid. */
19928 cp_parser_asm_operand_list (cp_parser
* parser
)
19930 tree asm_operands
= NULL_TREE
;
19931 bool invalid_operands
= false;
19935 tree string_literal
;
19939 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_SQUARE
))
19941 /* Consume the `[' token. */
19942 cp_lexer_consume_token (parser
->lexer
);
19943 /* Read the operand name. */
19944 name
= cp_parser_identifier (parser
);
19945 if (name
!= error_mark_node
)
19946 name
= build_string (IDENTIFIER_LENGTH (name
),
19947 IDENTIFIER_POINTER (name
));
19948 /* Look for the closing `]'. */
19949 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
19953 /* Look for the string-literal. */
19954 string_literal
= cp_parser_string_literal (parser
, false, false);
19956 /* Look for the `('. */
19957 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
19958 /* Parse the expression. */
19959 expression
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
19960 /* Look for the `)'. */
19961 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
19963 if (name
== error_mark_node
19964 || string_literal
== error_mark_node
19965 || expression
== error_mark_node
)
19966 invalid_operands
= true;
19968 /* Add this operand to the list. */
19969 asm_operands
= tree_cons (build_tree_list (name
, string_literal
),
19972 /* If the next token is not a `,', there are no more
19974 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
19976 /* Consume the `,'. */
19977 cp_lexer_consume_token (parser
->lexer
);
19980 return invalid_operands
? error_mark_node
: nreverse (asm_operands
);
19983 /* Parse an asm-clobber-list.
19987 asm-clobber-list , string-literal
19989 Returns a TREE_LIST, indicating the clobbers in the order that they
19990 appeared. The TREE_VALUE of each node is a STRING_CST. */
19993 cp_parser_asm_clobber_list (cp_parser
* parser
)
19995 tree clobbers
= NULL_TREE
;
19999 tree string_literal
;
20001 /* Look for the string literal. */
20002 string_literal
= cp_parser_string_literal (parser
, false, false);
20003 /* Add it to the list. */
20004 clobbers
= tree_cons (NULL_TREE
, string_literal
, clobbers
);
20005 /* If the next token is not a `,', then the list is
20007 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
20009 /* Consume the `,' token. */
20010 cp_lexer_consume_token (parser
->lexer
);
20016 /* Parse an asm-label-list.
20020 asm-label-list , identifier
20022 Returns a TREE_LIST, indicating the labels in the order that they
20023 appeared. The TREE_VALUE of each node is a label. */
20026 cp_parser_asm_label_list (cp_parser
* parser
)
20028 tree labels
= NULL_TREE
;
20032 tree identifier
, label
, name
;
20034 /* Look for the identifier. */
20035 identifier
= cp_parser_identifier (parser
);
20036 if (!error_operand_p (identifier
))
20038 label
= lookup_label (identifier
);
20039 if (TREE_CODE (label
) == LABEL_DECL
)
20041 TREE_USED (label
) = 1;
20042 check_goto (label
);
20043 name
= build_string (IDENTIFIER_LENGTH (identifier
),
20044 IDENTIFIER_POINTER (identifier
));
20045 labels
= tree_cons (name
, label
, labels
);
20048 /* If the next token is not a `,', then the list is
20050 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
20052 /* Consume the `,' token. */
20053 cp_lexer_consume_token (parser
->lexer
);
20056 return nreverse (labels
);
20059 /* Parse an (optional) series of attributes.
20062 attributes attribute
20065 __attribute__ (( attribute-list [opt] ))
20067 The return value is as for cp_parser_attribute_list. */
20070 cp_parser_attributes_opt (cp_parser
* parser
)
20072 tree attributes
= NULL_TREE
;
20077 tree attribute_list
;
20080 /* Peek at the next token. */
20081 token
= cp_lexer_peek_token (parser
->lexer
);
20082 /* If it's not `__attribute__', then we're done. */
20083 if (token
->keyword
!= RID_ATTRIBUTE
)
20086 /* Consume the `__attribute__' keyword. */
20087 cp_lexer_consume_token (parser
->lexer
);
20088 /* Look for the two `(' tokens. */
20089 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
20090 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
20092 /* Peek at the next token. */
20093 token
= cp_lexer_peek_token (parser
->lexer
);
20094 if (token
->type
!= CPP_CLOSE_PAREN
)
20095 /* Parse the attribute-list. */
20096 attribute_list
= cp_parser_attribute_list (parser
);
20098 /* If the next token is a `)', then there is no attribute
20100 attribute_list
= NULL
;
20102 /* Look for the two `)' tokens. */
20103 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
20105 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
20108 cp_parser_skip_to_end_of_statement (parser
);
20110 /* Add these new attributes to the list. */
20111 attributes
= chainon (attributes
, attribute_list
);
20117 /* Parse an attribute-list.
20121 attribute-list , attribute
20125 identifier ( identifier )
20126 identifier ( identifier , expression-list )
20127 identifier ( expression-list )
20129 Returns a TREE_LIST, or NULL_TREE on error. Each node corresponds
20130 to an attribute. The TREE_PURPOSE of each node is the identifier
20131 indicating which attribute is in use. The TREE_VALUE represents
20132 the arguments, if any. */
20135 cp_parser_attribute_list (cp_parser
* parser
)
20137 tree attribute_list
= NULL_TREE
;
20138 bool save_translate_strings_p
= parser
->translate_strings_p
;
20140 parser
->translate_strings_p
= false;
20147 /* Look for the identifier. We also allow keywords here; for
20148 example `__attribute__ ((const))' is legal. */
20149 token
= cp_lexer_peek_token (parser
->lexer
);
20150 if (token
->type
== CPP_NAME
20151 || token
->type
== CPP_KEYWORD
)
20153 tree arguments
= NULL_TREE
;
20155 /* Consume the token. */
20156 token
= cp_lexer_consume_token (parser
->lexer
);
20158 /* Save away the identifier that indicates which attribute
20160 identifier
= (token
->type
== CPP_KEYWORD
)
20161 /* For keywords, use the canonical spelling, not the
20162 parsed identifier. */
20163 ? ridpointers
[(int) token
->keyword
]
20166 attribute
= build_tree_list (identifier
, NULL_TREE
);
20168 /* Peek at the next token. */
20169 token
= cp_lexer_peek_token (parser
->lexer
);
20170 /* If it's an `(', then parse the attribute arguments. */
20171 if (token
->type
== CPP_OPEN_PAREN
)
20174 int attr_flag
= (attribute_takes_identifier_p (identifier
)
20175 ? id_attr
: normal_attr
);
20176 vec
= cp_parser_parenthesized_expression_list
20177 (parser
, attr_flag
, /*cast_p=*/false,
20178 /*allow_expansion_p=*/false,
20179 /*non_constant_p=*/NULL
);
20181 arguments
= error_mark_node
;
20184 arguments
= build_tree_list_vec (vec
);
20185 release_tree_vector (vec
);
20187 /* Save the arguments away. */
20188 TREE_VALUE (attribute
) = arguments
;
20191 if (arguments
!= error_mark_node
)
20193 /* Add this attribute to the list. */
20194 TREE_CHAIN (attribute
) = attribute_list
;
20195 attribute_list
= attribute
;
20198 token
= cp_lexer_peek_token (parser
->lexer
);
20200 /* Now, look for more attributes. If the next token isn't a
20201 `,', we're done. */
20202 if (token
->type
!= CPP_COMMA
)
20205 /* Consume the comma and keep going. */
20206 cp_lexer_consume_token (parser
->lexer
);
20208 parser
->translate_strings_p
= save_translate_strings_p
;
20210 /* We built up the list in reverse order. */
20211 return nreverse (attribute_list
);
20214 /* Parse an optional `__extension__' keyword. Returns TRUE if it is
20215 present, and FALSE otherwise. *SAVED_PEDANTIC is set to the
20216 current value of the PEDANTIC flag, regardless of whether or not
20217 the `__extension__' keyword is present. The caller is responsible
20218 for restoring the value of the PEDANTIC flag. */
20221 cp_parser_extension_opt (cp_parser
* parser
, int* saved_pedantic
)
20223 /* Save the old value of the PEDANTIC flag. */
20224 *saved_pedantic
= pedantic
;
20226 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_EXTENSION
))
20228 /* Consume the `__extension__' token. */
20229 cp_lexer_consume_token (parser
->lexer
);
20230 /* We're not being pedantic while the `__extension__' keyword is
20240 /* Parse a label declaration.
20243 __label__ label-declarator-seq ;
20245 label-declarator-seq:
20246 identifier , label-declarator-seq
20250 cp_parser_label_declaration (cp_parser
* parser
)
20252 /* Look for the `__label__' keyword. */
20253 cp_parser_require_keyword (parser
, RID_LABEL
, RT_LABEL
);
20259 /* Look for an identifier. */
20260 identifier
= cp_parser_identifier (parser
);
20261 /* If we failed, stop. */
20262 if (identifier
== error_mark_node
)
20264 /* Declare it as a label. */
20265 finish_label_decl (identifier
);
20266 /* If the next token is a `;', stop. */
20267 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
20269 /* Look for the `,' separating the label declarations. */
20270 cp_parser_require (parser
, CPP_COMMA
, RT_COMMA
);
20273 /* Look for the final `;'. */
20274 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
20277 /* Support Functions */
20279 /* Looks up NAME in the current scope, as given by PARSER->SCOPE.
20280 NAME should have one of the representations used for an
20281 id-expression. If NAME is the ERROR_MARK_NODE, the ERROR_MARK_NODE
20282 is returned. If PARSER->SCOPE is a dependent type, then a
20283 SCOPE_REF is returned.
20285 If NAME is a TEMPLATE_ID_EXPR, then it will be immediately
20286 returned; the name was already resolved when the TEMPLATE_ID_EXPR
20287 was formed. Abstractly, such entities should not be passed to this
20288 function, because they do not need to be looked up, but it is
20289 simpler to check for this special case here, rather than at the
20292 In cases not explicitly covered above, this function returns a
20293 DECL, OVERLOAD, or baselink representing the result of the lookup.
20294 If there was no entity with the indicated NAME, the ERROR_MARK_NODE
20297 If TAG_TYPE is not NONE_TYPE, it indicates an explicit type keyword
20298 (e.g., "struct") that was used. In that case bindings that do not
20299 refer to types are ignored.
20301 If IS_TEMPLATE is TRUE, bindings that do not refer to templates are
20304 If IS_NAMESPACE is TRUE, bindings that do not refer to namespaces
20307 If CHECK_DEPENDENCY is TRUE, names are not looked up in dependent
20310 If AMBIGUOUS_DECLS is non-NULL, *AMBIGUOUS_DECLS is set to a
20311 TREE_LIST of candidates if name-lookup results in an ambiguity, and
20312 NULL_TREE otherwise. */
20315 cp_parser_lookup_name (cp_parser
*parser
, tree name
,
20316 enum tag_types tag_type
,
20319 bool check_dependency
,
20320 tree
*ambiguous_decls
,
20321 location_t name_location
)
20324 tree object_type
= parser
->context
->object_type
;
20326 /* Assume that the lookup will be unambiguous. */
20327 if (ambiguous_decls
)
20328 *ambiguous_decls
= NULL_TREE
;
20330 /* Now that we have looked up the name, the OBJECT_TYPE (if any) is
20331 no longer valid. Note that if we are parsing tentatively, and
20332 the parse fails, OBJECT_TYPE will be automatically restored. */
20333 parser
->context
->object_type
= NULL_TREE
;
20335 if (name
== error_mark_node
)
20336 return error_mark_node
;
20338 /* A template-id has already been resolved; there is no lookup to
20340 if (TREE_CODE (name
) == TEMPLATE_ID_EXPR
)
20342 if (BASELINK_P (name
))
20344 gcc_assert (TREE_CODE (BASELINK_FUNCTIONS (name
))
20345 == TEMPLATE_ID_EXPR
);
20349 /* A BIT_NOT_EXPR is used to represent a destructor. By this point,
20350 it should already have been checked to make sure that the name
20351 used matches the type being destroyed. */
20352 if (TREE_CODE (name
) == BIT_NOT_EXPR
)
20356 /* Figure out to which type this destructor applies. */
20358 type
= parser
->scope
;
20359 else if (object_type
)
20360 type
= object_type
;
20362 type
= current_class_type
;
20363 /* If that's not a class type, there is no destructor. */
20364 if (!type
|| !CLASS_TYPE_P (type
))
20365 return error_mark_node
;
20366 if (CLASSTYPE_LAZY_DESTRUCTOR (type
))
20367 lazily_declare_fn (sfk_destructor
, type
);
20368 if (!CLASSTYPE_DESTRUCTORS (type
))
20369 return error_mark_node
;
20370 /* If it was a class type, return the destructor. */
20371 return CLASSTYPE_DESTRUCTORS (type
);
20374 /* By this point, the NAME should be an ordinary identifier. If
20375 the id-expression was a qualified name, the qualifying scope is
20376 stored in PARSER->SCOPE at this point. */
20377 gcc_assert (TREE_CODE (name
) == IDENTIFIER_NODE
);
20379 /* Perform the lookup. */
20384 if (parser
->scope
== error_mark_node
)
20385 return error_mark_node
;
20387 /* If the SCOPE is dependent, the lookup must be deferred until
20388 the template is instantiated -- unless we are explicitly
20389 looking up names in uninstantiated templates. Even then, we
20390 cannot look up the name if the scope is not a class type; it
20391 might, for example, be a template type parameter. */
20392 dependent_p
= (TYPE_P (parser
->scope
)
20393 && dependent_scope_p (parser
->scope
));
20394 if ((check_dependency
|| !CLASS_TYPE_P (parser
->scope
))
20396 /* Defer lookup. */
20397 decl
= error_mark_node
;
20400 tree pushed_scope
= NULL_TREE
;
20402 /* If PARSER->SCOPE is a dependent type, then it must be a
20403 class type, and we must not be checking dependencies;
20404 otherwise, we would have processed this lookup above. So
20405 that PARSER->SCOPE is not considered a dependent base by
20406 lookup_member, we must enter the scope here. */
20408 pushed_scope
= push_scope (parser
->scope
);
20410 /* If the PARSER->SCOPE is a template specialization, it
20411 may be instantiated during name lookup. In that case,
20412 errors may be issued. Even if we rollback the current
20413 tentative parse, those errors are valid. */
20414 decl
= lookup_qualified_name (parser
->scope
, name
,
20415 tag_type
!= none_type
,
20416 /*complain=*/true);
20418 /* 3.4.3.1: In a lookup in which the constructor is an acceptable
20419 lookup result and the nested-name-specifier nominates a class C:
20420 * if the name specified after the nested-name-specifier, when
20421 looked up in C, is the injected-class-name of C (Clause 9), or
20422 * if the name specified after the nested-name-specifier is the
20423 same as the identifier or the simple-template-id's template-
20424 name in the last component of the nested-name-specifier,
20425 the name is instead considered to name the constructor of
20426 class C. [ Note: for example, the constructor is not an
20427 acceptable lookup result in an elaborated-type-specifier so
20428 the constructor would not be used in place of the
20429 injected-class-name. --end note ] Such a constructor name
20430 shall be used only in the declarator-id of a declaration that
20431 names a constructor or in a using-declaration. */
20432 if (tag_type
== none_type
20433 && DECL_SELF_REFERENCE_P (decl
)
20434 && same_type_p (DECL_CONTEXT (decl
), parser
->scope
))
20435 decl
= lookup_qualified_name (parser
->scope
, ctor_identifier
,
20436 tag_type
!= none_type
,
20437 /*complain=*/true);
20439 /* If we have a single function from a using decl, pull it out. */
20440 if (TREE_CODE (decl
) == OVERLOAD
20441 && !really_overloaded_fn (decl
))
20442 decl
= OVL_FUNCTION (decl
);
20445 pop_scope (pushed_scope
);
20448 /* If the scope is a dependent type and either we deferred lookup or
20449 we did lookup but didn't find the name, rememeber the name. */
20450 if (decl
== error_mark_node
&& TYPE_P (parser
->scope
)
20451 && dependent_type_p (parser
->scope
))
20457 /* The resolution to Core Issue 180 says that `struct
20458 A::B' should be considered a type-name, even if `A'
20460 type
= make_typename_type (parser
->scope
, name
, tag_type
,
20461 /*complain=*/tf_error
);
20462 decl
= TYPE_NAME (type
);
20464 else if (is_template
20465 && (cp_parser_next_token_ends_template_argument_p (parser
)
20466 || cp_lexer_next_token_is (parser
->lexer
,
20468 decl
= make_unbound_class_template (parser
->scope
,
20470 /*complain=*/tf_error
);
20472 decl
= build_qualified_name (/*type=*/NULL_TREE
,
20473 parser
->scope
, name
,
20476 parser
->qualifying_scope
= parser
->scope
;
20477 parser
->object_scope
= NULL_TREE
;
20479 else if (object_type
)
20481 tree object_decl
= NULL_TREE
;
20482 /* Look up the name in the scope of the OBJECT_TYPE, unless the
20483 OBJECT_TYPE is not a class. */
20484 if (CLASS_TYPE_P (object_type
))
20485 /* If the OBJECT_TYPE is a template specialization, it may
20486 be instantiated during name lookup. In that case, errors
20487 may be issued. Even if we rollback the current tentative
20488 parse, those errors are valid. */
20489 object_decl
= lookup_member (object_type
,
20492 tag_type
!= none_type
,
20493 tf_warning_or_error
);
20494 /* Look it up in the enclosing context, too. */
20495 decl
= lookup_name_real (name
, tag_type
!= none_type
,
20497 /*block_p=*/true, is_namespace
, 0);
20498 parser
->object_scope
= object_type
;
20499 parser
->qualifying_scope
= NULL_TREE
;
20501 decl
= object_decl
;
20505 decl
= lookup_name_real (name
, tag_type
!= none_type
,
20507 /*block_p=*/true, is_namespace
, 0);
20508 parser
->qualifying_scope
= NULL_TREE
;
20509 parser
->object_scope
= NULL_TREE
;
20512 /* If the lookup failed, let our caller know. */
20513 if (!decl
|| decl
== error_mark_node
)
20514 return error_mark_node
;
20516 /* Pull out the template from an injected-class-name (or multiple). */
20518 decl
= maybe_get_template_decl_from_type_decl (decl
);
20520 /* If it's a TREE_LIST, the result of the lookup was ambiguous. */
20521 if (TREE_CODE (decl
) == TREE_LIST
)
20523 if (ambiguous_decls
)
20524 *ambiguous_decls
= decl
;
20525 /* The error message we have to print is too complicated for
20526 cp_parser_error, so we incorporate its actions directly. */
20527 if (!cp_parser_simulate_error (parser
))
20529 error_at (name_location
, "reference to %qD is ambiguous",
20531 print_candidates (decl
);
20533 return error_mark_node
;
20536 gcc_assert (DECL_P (decl
)
20537 || TREE_CODE (decl
) == OVERLOAD
20538 || TREE_CODE (decl
) == SCOPE_REF
20539 || TREE_CODE (decl
) == UNBOUND_CLASS_TEMPLATE
20540 || BASELINK_P (decl
));
20542 /* If we have resolved the name of a member declaration, check to
20543 see if the declaration is accessible. When the name resolves to
20544 set of overloaded functions, accessibility is checked when
20545 overload resolution is done.
20547 During an explicit instantiation, access is not checked at all,
20548 as per [temp.explicit]. */
20550 check_accessibility_of_qualified_id (decl
, object_type
, parser
->scope
);
20552 maybe_record_typedef_use (decl
);
20557 /* Like cp_parser_lookup_name, but for use in the typical case where
20558 CHECK_ACCESS is TRUE, IS_TYPE is FALSE, IS_TEMPLATE is FALSE,
20559 IS_NAMESPACE is FALSE, and CHECK_DEPENDENCY is TRUE. */
20562 cp_parser_lookup_name_simple (cp_parser
* parser
, tree name
, location_t location
)
20564 return cp_parser_lookup_name (parser
, name
,
20566 /*is_template=*/false,
20567 /*is_namespace=*/false,
20568 /*check_dependency=*/true,
20569 /*ambiguous_decls=*/NULL
,
20573 /* If DECL is a TEMPLATE_DECL that can be treated like a TYPE_DECL in
20574 the current context, return the TYPE_DECL. If TAG_NAME_P is
20575 true, the DECL indicates the class being defined in a class-head,
20576 or declared in an elaborated-type-specifier.
20578 Otherwise, return DECL. */
20581 cp_parser_maybe_treat_template_as_class (tree decl
, bool tag_name_p
)
20583 /* If the TEMPLATE_DECL is being declared as part of a class-head,
20584 the translation from TEMPLATE_DECL to TYPE_DECL occurs:
20587 template <typename T> struct B;
20590 template <typename T> struct A::B {};
20592 Similarly, in an elaborated-type-specifier:
20594 namespace N { struct X{}; }
20597 template <typename T> friend struct N::X;
20600 However, if the DECL refers to a class type, and we are in
20601 the scope of the class, then the name lookup automatically
20602 finds the TYPE_DECL created by build_self_reference rather
20603 than a TEMPLATE_DECL. For example, in:
20605 template <class T> struct S {
20609 there is no need to handle such case. */
20611 if (DECL_CLASS_TEMPLATE_P (decl
) && tag_name_p
)
20612 return DECL_TEMPLATE_RESULT (decl
);
20617 /* If too many, or too few, template-parameter lists apply to the
20618 declarator, issue an error message. Returns TRUE if all went well,
20619 and FALSE otherwise. */
20622 cp_parser_check_declarator_template_parameters (cp_parser
* parser
,
20623 cp_declarator
*declarator
,
20624 location_t declarator_location
)
20626 unsigned num_templates
;
20628 /* We haven't seen any classes that involve template parameters yet. */
20631 switch (declarator
->kind
)
20634 if (declarator
->u
.id
.qualifying_scope
)
20638 scope
= declarator
->u
.id
.qualifying_scope
;
20640 while (scope
&& CLASS_TYPE_P (scope
))
20642 /* You're supposed to have one `template <...>'
20643 for every template class, but you don't need one
20644 for a full specialization. For example:
20646 template <class T> struct S{};
20647 template <> struct S<int> { void f(); };
20648 void S<int>::f () {}
20650 is correct; there shouldn't be a `template <>' for
20651 the definition of `S<int>::f'. */
20652 if (!CLASSTYPE_TEMPLATE_INFO (scope
))
20653 /* If SCOPE does not have template information of any
20654 kind, then it is not a template, nor is it nested
20655 within a template. */
20657 if (explicit_class_specialization_p (scope
))
20659 if (PRIMARY_TEMPLATE_P (CLASSTYPE_TI_TEMPLATE (scope
)))
20662 scope
= TYPE_CONTEXT (scope
);
20665 else if (TREE_CODE (declarator
->u
.id
.unqualified_name
)
20666 == TEMPLATE_ID_EXPR
)
20667 /* If the DECLARATOR has the form `X<y>' then it uses one
20668 additional level of template parameters. */
20671 return cp_parser_check_template_parameters
20672 (parser
, num_templates
, declarator_location
, declarator
);
20678 case cdk_reference
:
20680 return (cp_parser_check_declarator_template_parameters
20681 (parser
, declarator
->declarator
, declarator_location
));
20687 gcc_unreachable ();
20692 /* NUM_TEMPLATES were used in the current declaration. If that is
20693 invalid, return FALSE and issue an error messages. Otherwise,
20694 return TRUE. If DECLARATOR is non-NULL, then we are checking a
20695 declarator and we can print more accurate diagnostics. */
20698 cp_parser_check_template_parameters (cp_parser
* parser
,
20699 unsigned num_templates
,
20700 location_t location
,
20701 cp_declarator
*declarator
)
20703 /* If there are the same number of template classes and parameter
20704 lists, that's OK. */
20705 if (parser
->num_template_parameter_lists
== num_templates
)
20707 /* If there are more, but only one more, then we are referring to a
20708 member template. That's OK too. */
20709 if (parser
->num_template_parameter_lists
== num_templates
+ 1)
20711 /* If there are more template classes than parameter lists, we have
20714 template <class T> void S<T>::R<T>::f (); */
20715 if (parser
->num_template_parameter_lists
< num_templates
)
20717 if (declarator
&& !current_function_decl
)
20718 error_at (location
, "specializing member %<%T::%E%> "
20719 "requires %<template<>%> syntax",
20720 declarator
->u
.id
.qualifying_scope
,
20721 declarator
->u
.id
.unqualified_name
);
20722 else if (declarator
)
20723 error_at (location
, "invalid declaration of %<%T::%E%>",
20724 declarator
->u
.id
.qualifying_scope
,
20725 declarator
->u
.id
.unqualified_name
);
20727 error_at (location
, "too few template-parameter-lists");
20730 /* Otherwise, there are too many template parameter lists. We have
20733 template <class T> template <class U> void S::f(); */
20734 error_at (location
, "too many template-parameter-lists");
20738 /* Parse an optional `::' token indicating that the following name is
20739 from the global namespace. If so, PARSER->SCOPE is set to the
20740 GLOBAL_NAMESPACE. Otherwise, PARSER->SCOPE is set to NULL_TREE,
20741 unless CURRENT_SCOPE_VALID_P is TRUE, in which case it is left alone.
20742 Returns the new value of PARSER->SCOPE, if the `::' token is
20743 present, and NULL_TREE otherwise. */
20746 cp_parser_global_scope_opt (cp_parser
* parser
, bool current_scope_valid_p
)
20750 /* Peek at the next token. */
20751 token
= cp_lexer_peek_token (parser
->lexer
);
20752 /* If we're looking at a `::' token then we're starting from the
20753 global namespace, not our current location. */
20754 if (token
->type
== CPP_SCOPE
)
20756 /* Consume the `::' token. */
20757 cp_lexer_consume_token (parser
->lexer
);
20758 /* Set the SCOPE so that we know where to start the lookup. */
20759 parser
->scope
= global_namespace
;
20760 parser
->qualifying_scope
= global_namespace
;
20761 parser
->object_scope
= NULL_TREE
;
20763 return parser
->scope
;
20765 else if (!current_scope_valid_p
)
20767 parser
->scope
= NULL_TREE
;
20768 parser
->qualifying_scope
= NULL_TREE
;
20769 parser
->object_scope
= NULL_TREE
;
20775 /* Returns TRUE if the upcoming token sequence is the start of a
20776 constructor declarator. If FRIEND_P is true, the declarator is
20777 preceded by the `friend' specifier. */
20780 cp_parser_constructor_declarator_p (cp_parser
*parser
, bool friend_p
)
20782 bool constructor_p
;
20783 tree nested_name_specifier
;
20784 cp_token
*next_token
;
20786 /* The common case is that this is not a constructor declarator, so
20787 try to avoid doing lots of work if at all possible. It's not
20788 valid declare a constructor at function scope. */
20789 if (parser
->in_function_body
)
20791 /* And only certain tokens can begin a constructor declarator. */
20792 next_token
= cp_lexer_peek_token (parser
->lexer
);
20793 if (next_token
->type
!= CPP_NAME
20794 && next_token
->type
!= CPP_SCOPE
20795 && next_token
->type
!= CPP_NESTED_NAME_SPECIFIER
20796 && next_token
->type
!= CPP_TEMPLATE_ID
)
20799 /* Parse tentatively; we are going to roll back all of the tokens
20801 cp_parser_parse_tentatively (parser
);
20802 /* Assume that we are looking at a constructor declarator. */
20803 constructor_p
= true;
20805 /* Look for the optional `::' operator. */
20806 cp_parser_global_scope_opt (parser
,
20807 /*current_scope_valid_p=*/false);
20808 /* Look for the nested-name-specifier. */
20809 nested_name_specifier
20810 = (cp_parser_nested_name_specifier_opt (parser
,
20811 /*typename_keyword_p=*/false,
20812 /*check_dependency_p=*/false,
20814 /*is_declaration=*/false));
20815 /* Outside of a class-specifier, there must be a
20816 nested-name-specifier. */
20817 if (!nested_name_specifier
&&
20818 (!at_class_scope_p () || !TYPE_BEING_DEFINED (current_class_type
)
20820 constructor_p
= false;
20821 else if (nested_name_specifier
== error_mark_node
)
20822 constructor_p
= false;
20824 /* If we have a class scope, this is easy; DR 147 says that S::S always
20825 names the constructor, and no other qualified name could. */
20826 if (constructor_p
&& nested_name_specifier
20827 && CLASS_TYPE_P (nested_name_specifier
))
20829 tree id
= cp_parser_unqualified_id (parser
,
20830 /*template_keyword_p=*/false,
20831 /*check_dependency_p=*/false,
20832 /*declarator_p=*/true,
20833 /*optional_p=*/false);
20834 if (is_overloaded_fn (id
))
20835 id
= DECL_NAME (get_first_fn (id
));
20836 if (!constructor_name_p (id
, nested_name_specifier
))
20837 constructor_p
= false;
20839 /* If we still think that this might be a constructor-declarator,
20840 look for a class-name. */
20841 else if (constructor_p
)
20845 template <typename T> struct S {
20849 we must recognize that the nested `S' names a class. */
20851 type_decl
= cp_parser_class_name (parser
,
20852 /*typename_keyword_p=*/false,
20853 /*template_keyword_p=*/false,
20855 /*check_dependency_p=*/false,
20856 /*class_head_p=*/false,
20857 /*is_declaration=*/false);
20858 /* If there was no class-name, then this is not a constructor. */
20859 constructor_p
= !cp_parser_error_occurred (parser
);
20861 /* If we're still considering a constructor, we have to see a `(',
20862 to begin the parameter-declaration-clause, followed by either a
20863 `)', an `...', or a decl-specifier. We need to check for a
20864 type-specifier to avoid being fooled into thinking that:
20868 is a constructor. (It is actually a function named `f' that
20869 takes one parameter (of type `int') and returns a value of type
20872 && !cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
20873 constructor_p
= false;
20876 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_PAREN
)
20877 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_ELLIPSIS
)
20878 /* A parameter declaration begins with a decl-specifier,
20879 which is either the "attribute" keyword, a storage class
20880 specifier, or (usually) a type-specifier. */
20881 && !cp_lexer_next_token_is_decl_specifier_keyword (parser
->lexer
))
20884 tree pushed_scope
= NULL_TREE
;
20885 unsigned saved_num_template_parameter_lists
;
20887 /* Names appearing in the type-specifier should be looked up
20888 in the scope of the class. */
20889 if (current_class_type
)
20893 type
= TREE_TYPE (type_decl
);
20894 if (TREE_CODE (type
) == TYPENAME_TYPE
)
20896 type
= resolve_typename_type (type
,
20897 /*only_current_p=*/false);
20898 if (TREE_CODE (type
) == TYPENAME_TYPE
)
20900 cp_parser_abort_tentative_parse (parser
);
20904 pushed_scope
= push_scope (type
);
20907 /* Inside the constructor parameter list, surrounding
20908 template-parameter-lists do not apply. */
20909 saved_num_template_parameter_lists
20910 = parser
->num_template_parameter_lists
;
20911 parser
->num_template_parameter_lists
= 0;
20913 /* Look for the type-specifier. */
20914 cp_parser_type_specifier (parser
,
20915 CP_PARSER_FLAGS_NONE
,
20916 /*decl_specs=*/NULL
,
20917 /*is_declarator=*/true,
20918 /*declares_class_or_enum=*/NULL
,
20919 /*is_cv_qualifier=*/NULL
);
20921 parser
->num_template_parameter_lists
20922 = saved_num_template_parameter_lists
;
20924 /* Leave the scope of the class. */
20926 pop_scope (pushed_scope
);
20928 constructor_p
= !cp_parser_error_occurred (parser
);
20932 /* We did not really want to consume any tokens. */
20933 cp_parser_abort_tentative_parse (parser
);
20935 return constructor_p
;
20938 /* Parse the definition of the function given by the DECL_SPECIFIERS,
20939 ATTRIBUTES, and DECLARATOR. The access checks have been deferred;
20940 they must be performed once we are in the scope of the function.
20942 Returns the function defined. */
20945 cp_parser_function_definition_from_specifiers_and_declarator
20946 (cp_parser
* parser
,
20947 cp_decl_specifier_seq
*decl_specifiers
,
20949 const cp_declarator
*declarator
)
20954 /* Begin the function-definition. */
20955 success_p
= start_function (decl_specifiers
, declarator
, attributes
);
20957 /* The things we're about to see are not directly qualified by any
20958 template headers we've seen thus far. */
20959 reset_specialization ();
20961 /* If there were names looked up in the decl-specifier-seq that we
20962 did not check, check them now. We must wait until we are in the
20963 scope of the function to perform the checks, since the function
20964 might be a friend. */
20965 perform_deferred_access_checks ();
20969 /* Skip the entire function. */
20970 cp_parser_skip_to_end_of_block_or_statement (parser
);
20971 fn
= error_mark_node
;
20973 else if (DECL_INITIAL (current_function_decl
) != error_mark_node
)
20975 /* Seen already, skip it. An error message has already been output. */
20976 cp_parser_skip_to_end_of_block_or_statement (parser
);
20977 fn
= current_function_decl
;
20978 current_function_decl
= NULL_TREE
;
20979 /* If this is a function from a class, pop the nested class. */
20980 if (current_class_name
)
20981 pop_nested_class ();
20986 if (DECL_DECLARED_INLINE_P (current_function_decl
))
20987 tv
= TV_PARSE_INLINE
;
20989 tv
= TV_PARSE_FUNC
;
20991 fn
= cp_parser_function_definition_after_declarator (parser
,
20992 /*inline_p=*/false);
20999 /* Parse the part of a function-definition that follows the
21000 declarator. INLINE_P is TRUE iff this function is an inline
21001 function defined within a class-specifier.
21003 Returns the function defined. */
21006 cp_parser_function_definition_after_declarator (cp_parser
* parser
,
21010 bool ctor_initializer_p
= false;
21011 bool saved_in_unbraced_linkage_specification_p
;
21012 bool saved_in_function_body
;
21013 unsigned saved_num_template_parameter_lists
;
21016 saved_in_function_body
= parser
->in_function_body
;
21017 parser
->in_function_body
= true;
21018 /* If the next token is `return', then the code may be trying to
21019 make use of the "named return value" extension that G++ used to
21021 token
= cp_lexer_peek_token (parser
->lexer
);
21022 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_RETURN
))
21024 /* Consume the `return' keyword. */
21025 cp_lexer_consume_token (parser
->lexer
);
21026 /* Look for the identifier that indicates what value is to be
21028 cp_parser_identifier (parser
);
21029 /* Issue an error message. */
21030 error_at (token
->location
,
21031 "named return values are no longer supported");
21032 /* Skip tokens until we reach the start of the function body. */
21035 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
21036 if (token
->type
== CPP_OPEN_BRACE
21037 || token
->type
== CPP_EOF
21038 || token
->type
== CPP_PRAGMA_EOL
)
21040 cp_lexer_consume_token (parser
->lexer
);
21043 /* The `extern' in `extern "C" void f () { ... }' does not apply to
21044 anything declared inside `f'. */
21045 saved_in_unbraced_linkage_specification_p
21046 = parser
->in_unbraced_linkage_specification_p
;
21047 parser
->in_unbraced_linkage_specification_p
= false;
21048 /* Inside the function, surrounding template-parameter-lists do not
21050 saved_num_template_parameter_lists
21051 = parser
->num_template_parameter_lists
;
21052 parser
->num_template_parameter_lists
= 0;
21054 start_lambda_scope (current_function_decl
);
21056 /* If the next token is `try', `__transaction_atomic', or
21057 `__transaction_relaxed`, then we are looking at either function-try-block
21058 or function-transaction-block. Note that all of these include the
21060 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TRANSACTION_ATOMIC
))
21061 ctor_initializer_p
= cp_parser_function_transaction (parser
,
21062 RID_TRANSACTION_ATOMIC
);
21063 else if (cp_lexer_next_token_is_keyword (parser
->lexer
,
21064 RID_TRANSACTION_RELAXED
))
21065 ctor_initializer_p
= cp_parser_function_transaction (parser
,
21066 RID_TRANSACTION_RELAXED
);
21067 else if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TRY
))
21068 ctor_initializer_p
= cp_parser_function_try_block (parser
);
21070 ctor_initializer_p
= cp_parser_ctor_initializer_opt_and_function_body
21071 (parser
, /*in_function_try_block=*/false);
21073 finish_lambda_scope ();
21075 /* Finish the function. */
21076 fn
= finish_function ((ctor_initializer_p
? 1 : 0) |
21077 (inline_p
? 2 : 0));
21078 /* Generate code for it, if necessary. */
21079 expand_or_defer_fn (fn
);
21080 /* Restore the saved values. */
21081 parser
->in_unbraced_linkage_specification_p
21082 = saved_in_unbraced_linkage_specification_p
;
21083 parser
->num_template_parameter_lists
21084 = saved_num_template_parameter_lists
;
21085 parser
->in_function_body
= saved_in_function_body
;
21090 /* Parse a template-declaration, assuming that the `export' (and
21091 `extern') keywords, if present, has already been scanned. MEMBER_P
21092 is as for cp_parser_template_declaration. */
21095 cp_parser_template_declaration_after_export (cp_parser
* parser
, bool member_p
)
21097 tree decl
= NULL_TREE
;
21098 VEC (deferred_access_check
,gc
) *checks
;
21099 tree parameter_list
;
21100 bool friend_p
= false;
21101 bool need_lang_pop
;
21104 /* Look for the `template' keyword. */
21105 token
= cp_lexer_peek_token (parser
->lexer
);
21106 if (!cp_parser_require_keyword (parser
, RID_TEMPLATE
, RT_TEMPLATE
))
21110 if (!cp_parser_require (parser
, CPP_LESS
, RT_LESS
))
21112 if (at_class_scope_p () && current_function_decl
)
21114 /* 14.5.2.2 [temp.mem]
21116 A local class shall not have member templates. */
21117 error_at (token
->location
,
21118 "invalid declaration of member template in local class");
21119 cp_parser_skip_to_end_of_block_or_statement (parser
);
21124 A template ... shall not have C linkage. */
21125 if (current_lang_name
== lang_name_c
)
21127 error_at (token
->location
, "template with C linkage");
21128 /* Give it C++ linkage to avoid confusing other parts of the
21130 push_lang_context (lang_name_cplusplus
);
21131 need_lang_pop
= true;
21134 need_lang_pop
= false;
21136 /* We cannot perform access checks on the template parameter
21137 declarations until we know what is being declared, just as we
21138 cannot check the decl-specifier list. */
21139 push_deferring_access_checks (dk_deferred
);
21141 /* If the next token is `>', then we have an invalid
21142 specialization. Rather than complain about an invalid template
21143 parameter, issue an error message here. */
21144 if (cp_lexer_next_token_is (parser
->lexer
, CPP_GREATER
))
21146 cp_parser_error (parser
, "invalid explicit specialization");
21147 begin_specialization ();
21148 parameter_list
= NULL_TREE
;
21152 /* Parse the template parameters. */
21153 parameter_list
= cp_parser_template_parameter_list (parser
);
21154 fixup_template_parms ();
21157 /* Get the deferred access checks from the parameter list. These
21158 will be checked once we know what is being declared, as for a
21159 member template the checks must be performed in the scope of the
21160 class containing the member. */
21161 checks
= get_deferred_access_checks ();
21163 /* Look for the `>'. */
21164 cp_parser_skip_to_end_of_template_parameter_list (parser
);
21165 /* We just processed one more parameter list. */
21166 ++parser
->num_template_parameter_lists
;
21167 /* If the next token is `template', there are more template
21169 if (cp_lexer_next_token_is_keyword (parser
->lexer
,
21171 cp_parser_template_declaration_after_export (parser
, member_p
);
21172 else if (cxx_dialect
>= cxx0x
21173 && cp_lexer_next_token_is_keyword (parser
->lexer
, RID_USING
))
21174 decl
= cp_parser_alias_declaration (parser
);
21177 /* There are no access checks when parsing a template, as we do not
21178 know if a specialization will be a friend. */
21179 push_deferring_access_checks (dk_no_check
);
21180 token
= cp_lexer_peek_token (parser
->lexer
);
21181 decl
= cp_parser_single_declaration (parser
,
21184 /*explicit_specialization_p=*/false,
21186 pop_deferring_access_checks ();
21188 /* If this is a member template declaration, let the front
21190 if (member_p
&& !friend_p
&& decl
)
21192 if (TREE_CODE (decl
) == TYPE_DECL
)
21193 cp_parser_check_access_in_redeclaration (decl
, token
->location
);
21195 decl
= finish_member_template_decl (decl
);
21197 else if (friend_p
&& decl
&& TREE_CODE (decl
) == TYPE_DECL
)
21198 make_friend_class (current_class_type
, TREE_TYPE (decl
),
21199 /*complain=*/true);
21201 /* We are done with the current parameter list. */
21202 --parser
->num_template_parameter_lists
;
21204 pop_deferring_access_checks ();
21207 finish_template_decl (parameter_list
);
21209 /* Check the template arguments for a literal operator template. */
21211 && (TREE_CODE (decl
) == FUNCTION_DECL
|| DECL_FUNCTION_TEMPLATE_P (decl
))
21212 && UDLIT_OPER_P (DECL_NAME (decl
)))
21215 if (parameter_list
== NULL_TREE
)
21219 int num_parms
= TREE_VEC_LENGTH (parameter_list
);
21220 if (num_parms
!= 1)
21224 tree parm_list
= TREE_VEC_ELT (parameter_list
, 0);
21225 tree parm
= INNERMOST_TEMPLATE_PARMS (parm_list
);
21226 if (TREE_TYPE (parm
) != char_type_node
21227 || !TEMPLATE_PARM_PARAMETER_PACK (DECL_INITIAL (parm
)))
21232 error ("literal operator template %qD has invalid parameter list."
21233 " Expected non-type template argument pack <char...>",
21236 /* Register member declarations. */
21237 if (member_p
&& !friend_p
&& decl
&& !DECL_CLASS_TEMPLATE_P (decl
))
21238 finish_member_declaration (decl
);
21239 /* For the erroneous case of a template with C linkage, we pushed an
21240 implicit C++ linkage scope; exit that scope now. */
21242 pop_lang_context ();
21243 /* If DECL is a function template, we must return to parse it later.
21244 (Even though there is no definition, there might be default
21245 arguments that need handling.) */
21246 if (member_p
&& decl
21247 && (TREE_CODE (decl
) == FUNCTION_DECL
21248 || DECL_FUNCTION_TEMPLATE_P (decl
)))
21249 VEC_safe_push (tree
, gc
, unparsed_funs_with_definitions
, decl
);
21252 /* Perform the deferred access checks from a template-parameter-list.
21253 CHECKS is a TREE_LIST of access checks, as returned by
21254 get_deferred_access_checks. */
21257 cp_parser_perform_template_parameter_access_checks (VEC (deferred_access_check
,gc
)* checks
)
21259 ++processing_template_parmlist
;
21260 perform_access_checks (checks
);
21261 --processing_template_parmlist
;
21264 /* Parse a `decl-specifier-seq [opt] init-declarator [opt] ;' or
21265 `function-definition' sequence. MEMBER_P is true, this declaration
21266 appears in a class scope.
21268 Returns the DECL for the declared entity. If FRIEND_P is non-NULL,
21269 *FRIEND_P is set to TRUE iff the declaration is a friend. */
21272 cp_parser_single_declaration (cp_parser
* parser
,
21273 VEC (deferred_access_check
,gc
)* checks
,
21275 bool explicit_specialization_p
,
21278 int declares_class_or_enum
;
21279 tree decl
= NULL_TREE
;
21280 cp_decl_specifier_seq decl_specifiers
;
21281 bool function_definition_p
= false;
21282 cp_token
*decl_spec_token_start
;
21284 /* This function is only used when processing a template
21286 gcc_assert (innermost_scope_kind () == sk_template_parms
21287 || innermost_scope_kind () == sk_template_spec
);
21289 /* Defer access checks until we know what is being declared. */
21290 push_deferring_access_checks (dk_deferred
);
21292 /* Try the `decl-specifier-seq [opt] init-declarator [opt]'
21294 decl_spec_token_start
= cp_lexer_peek_token (parser
->lexer
);
21295 cp_parser_decl_specifier_seq (parser
,
21296 CP_PARSER_FLAGS_OPTIONAL
,
21298 &declares_class_or_enum
);
21300 *friend_p
= cp_parser_friend_p (&decl_specifiers
);
21302 /* There are no template typedefs. */
21303 if (decl_spec_seq_has_spec_p (&decl_specifiers
, ds_typedef
))
21305 error_at (decl_spec_token_start
->location
,
21306 "template declaration of %<typedef%>");
21307 decl
= error_mark_node
;
21310 /* Gather up the access checks that occurred the
21311 decl-specifier-seq. */
21312 stop_deferring_access_checks ();
21314 /* Check for the declaration of a template class. */
21315 if (declares_class_or_enum
)
21317 if (cp_parser_declares_only_class_p (parser
))
21319 decl
= shadow_tag (&decl_specifiers
);
21324 friend template <typename T> struct A<T>::B;
21327 A<T>::B will be represented by a TYPENAME_TYPE, and
21328 therefore not recognized by shadow_tag. */
21329 if (friend_p
&& *friend_p
21331 && decl_specifiers
.type
21332 && TYPE_P (decl_specifiers
.type
))
21333 decl
= decl_specifiers
.type
;
21335 if (decl
&& decl
!= error_mark_node
)
21336 decl
= TYPE_NAME (decl
);
21338 decl
= error_mark_node
;
21340 /* Perform access checks for template parameters. */
21341 cp_parser_perform_template_parameter_access_checks (checks
);
21345 /* Complain about missing 'typename' or other invalid type names. */
21346 if (!decl_specifiers
.any_type_specifiers_p
21347 && cp_parser_parse_and_diagnose_invalid_type_name (parser
))
21349 /* cp_parser_parse_and_diagnose_invalid_type_name calls
21350 cp_parser_skip_to_end_of_block_or_statement, so don't try to parse
21351 the rest of this declaration. */
21352 decl
= error_mark_node
;
21356 /* If it's not a template class, try for a template function. If
21357 the next token is a `;', then this declaration does not declare
21358 anything. But, if there were errors in the decl-specifiers, then
21359 the error might well have come from an attempted class-specifier.
21360 In that case, there's no need to warn about a missing declarator. */
21362 && (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
)
21363 || decl_specifiers
.type
!= error_mark_node
))
21365 decl
= cp_parser_init_declarator (parser
,
21368 /*function_definition_allowed_p=*/true,
21370 declares_class_or_enum
,
21371 &function_definition_p
,
21374 /* 7.1.1-1 [dcl.stc]
21376 A storage-class-specifier shall not be specified in an explicit
21377 specialization... */
21379 && explicit_specialization_p
21380 && decl_specifiers
.storage_class
!= sc_none
)
21382 error_at (decl_spec_token_start
->location
,
21383 "explicit template specialization cannot have a storage class");
21384 decl
= error_mark_node
;
21388 /* Look for a trailing `;' after the declaration. */
21389 if (!function_definition_p
21390 && (decl
== error_mark_node
21391 || !cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
)))
21392 cp_parser_skip_to_end_of_block_or_statement (parser
);
21395 pop_deferring_access_checks ();
21397 /* Clear any current qualification; whatever comes next is the start
21398 of something new. */
21399 parser
->scope
= NULL_TREE
;
21400 parser
->qualifying_scope
= NULL_TREE
;
21401 parser
->object_scope
= NULL_TREE
;
21406 /* Parse a cast-expression that is not the operand of a unary "&". */
21409 cp_parser_simple_cast_expression (cp_parser
*parser
)
21411 return cp_parser_cast_expression (parser
, /*address_p=*/false,
21412 /*cast_p=*/false, NULL
);
21415 /* Parse a functional cast to TYPE. Returns an expression
21416 representing the cast. */
21419 cp_parser_functional_cast (cp_parser
* parser
, tree type
)
21422 tree expression_list
;
21426 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
21428 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
21429 expression_list
= cp_parser_braced_list (parser
, &nonconst_p
);
21430 CONSTRUCTOR_IS_DIRECT_INIT (expression_list
) = 1;
21431 if (TREE_CODE (type
) == TYPE_DECL
)
21432 type
= TREE_TYPE (type
);
21433 return finish_compound_literal (type
, expression_list
,
21434 tf_warning_or_error
);
21438 vec
= cp_parser_parenthesized_expression_list (parser
, non_attr
,
21440 /*allow_expansion_p=*/true,
21441 /*non_constant_p=*/NULL
);
21443 expression_list
= error_mark_node
;
21446 expression_list
= build_tree_list_vec (vec
);
21447 release_tree_vector (vec
);
21450 cast
= build_functional_cast (type
, expression_list
,
21451 tf_warning_or_error
);
21452 /* [expr.const]/1: In an integral constant expression "only type
21453 conversions to integral or enumeration type can be used". */
21454 if (TREE_CODE (type
) == TYPE_DECL
)
21455 type
= TREE_TYPE (type
);
21456 if (cast
!= error_mark_node
21457 && !cast_valid_in_integral_constant_expression_p (type
)
21458 && cp_parser_non_integral_constant_expression (parser
,
21460 return error_mark_node
;
21464 /* Save the tokens that make up the body of a member function defined
21465 in a class-specifier. The DECL_SPECIFIERS and DECLARATOR have
21466 already been parsed. The ATTRIBUTES are any GNU "__attribute__"
21467 specifiers applied to the declaration. Returns the FUNCTION_DECL
21468 for the member function. */
21471 cp_parser_save_member_function_body (cp_parser
* parser
,
21472 cp_decl_specifier_seq
*decl_specifiers
,
21473 cp_declarator
*declarator
,
21480 /* Create the FUNCTION_DECL. */
21481 fn
= grokmethod (decl_specifiers
, declarator
, attributes
);
21482 /* If something went badly wrong, bail out now. */
21483 if (fn
== error_mark_node
)
21485 /* If there's a function-body, skip it. */
21486 if (cp_parser_token_starts_function_definition_p
21487 (cp_lexer_peek_token (parser
->lexer
)))
21488 cp_parser_skip_to_end_of_block_or_statement (parser
);
21489 return error_mark_node
;
21492 /* Remember it, if there default args to post process. */
21493 cp_parser_save_default_args (parser
, fn
);
21495 /* Save away the tokens that make up the body of the
21497 first
= parser
->lexer
->next_token
;
21498 /* We can have braced-init-list mem-initializers before the fn body. */
21499 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COLON
))
21501 cp_lexer_consume_token (parser
->lexer
);
21502 while (cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_BRACE
)
21503 && cp_lexer_next_token_is_not_keyword (parser
->lexer
, RID_TRY
))
21505 /* cache_group will stop after an un-nested { } pair, too. */
21506 if (cp_parser_cache_group (parser
, CPP_CLOSE_PAREN
, /*depth=*/0))
21509 /* variadic mem-inits have ... after the ')'. */
21510 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
21511 cp_lexer_consume_token (parser
->lexer
);
21514 cp_parser_cache_group (parser
, CPP_CLOSE_BRACE
, /*depth=*/0);
21515 /* Handle function try blocks. */
21516 while (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_CATCH
))
21517 cp_parser_cache_group (parser
, CPP_CLOSE_BRACE
, /*depth=*/0);
21518 last
= parser
->lexer
->next_token
;
21520 /* Save away the inline definition; we will process it when the
21521 class is complete. */
21522 DECL_PENDING_INLINE_INFO (fn
) = cp_token_cache_new (first
, last
);
21523 DECL_PENDING_INLINE_P (fn
) = 1;
21525 /* We need to know that this was defined in the class, so that
21526 friend templates are handled correctly. */
21527 DECL_INITIALIZED_IN_CLASS_P (fn
) = 1;
21529 /* Add FN to the queue of functions to be parsed later. */
21530 VEC_safe_push (tree
, gc
, unparsed_funs_with_definitions
, fn
);
21535 /* Save the tokens that make up the in-class initializer for a non-static
21536 data member. Returns a DEFAULT_ARG. */
21539 cp_parser_save_nsdmi (cp_parser
* parser
)
21541 return cp_parser_cache_defarg (parser
, /*nsdmi=*/true);
21544 /* Parse a template-argument-list, as well as the trailing ">" (but
21545 not the opening "<"). See cp_parser_template_argument_list for the
21549 cp_parser_enclosed_template_argument_list (cp_parser
* parser
)
21553 tree saved_qualifying_scope
;
21554 tree saved_object_scope
;
21555 bool saved_greater_than_is_operator_p
;
21556 int saved_unevaluated_operand
;
21557 int saved_inhibit_evaluation_warnings
;
21561 When parsing a template-id, the first non-nested `>' is taken as
21562 the end of the template-argument-list rather than a greater-than
21564 saved_greater_than_is_operator_p
21565 = parser
->greater_than_is_operator_p
;
21566 parser
->greater_than_is_operator_p
= false;
21567 /* Parsing the argument list may modify SCOPE, so we save it
21569 saved_scope
= parser
->scope
;
21570 saved_qualifying_scope
= parser
->qualifying_scope
;
21571 saved_object_scope
= parser
->object_scope
;
21572 /* We need to evaluate the template arguments, even though this
21573 template-id may be nested within a "sizeof". */
21574 saved_unevaluated_operand
= cp_unevaluated_operand
;
21575 cp_unevaluated_operand
= 0;
21576 saved_inhibit_evaluation_warnings
= c_inhibit_evaluation_warnings
;
21577 c_inhibit_evaluation_warnings
= 0;
21578 /* Parse the template-argument-list itself. */
21579 if (cp_lexer_next_token_is (parser
->lexer
, CPP_GREATER
)
21580 || cp_lexer_next_token_is (parser
->lexer
, CPP_RSHIFT
))
21581 arguments
= NULL_TREE
;
21583 arguments
= cp_parser_template_argument_list (parser
);
21584 /* Look for the `>' that ends the template-argument-list. If we find
21585 a '>>' instead, it's probably just a typo. */
21586 if (cp_lexer_next_token_is (parser
->lexer
, CPP_RSHIFT
))
21588 if (cxx_dialect
!= cxx98
)
21590 /* In C++0x, a `>>' in a template argument list or cast
21591 expression is considered to be two separate `>'
21592 tokens. So, change the current token to a `>', but don't
21593 consume it: it will be consumed later when the outer
21594 template argument list (or cast expression) is parsed.
21595 Note that this replacement of `>' for `>>' is necessary
21596 even if we are parsing tentatively: in the tentative
21597 case, after calling
21598 cp_parser_enclosed_template_argument_list we will always
21599 throw away all of the template arguments and the first
21600 closing `>', either because the template argument list
21601 was erroneous or because we are replacing those tokens
21602 with a CPP_TEMPLATE_ID token. The second `>' (which will
21603 not have been thrown away) is needed either to close an
21604 outer template argument list or to complete a new-style
21606 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
21607 token
->type
= CPP_GREATER
;
21609 else if (!saved_greater_than_is_operator_p
)
21611 /* If we're in a nested template argument list, the '>>' has
21612 to be a typo for '> >'. We emit the error message, but we
21613 continue parsing and we push a '>' as next token, so that
21614 the argument list will be parsed correctly. Note that the
21615 global source location is still on the token before the
21616 '>>', so we need to say explicitly where we want it. */
21617 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
21618 error_at (token
->location
, "%<>>%> should be %<> >%> "
21619 "within a nested template argument list");
21621 token
->type
= CPP_GREATER
;
21625 /* If this is not a nested template argument list, the '>>'
21626 is a typo for '>'. Emit an error message and continue.
21627 Same deal about the token location, but here we can get it
21628 right by consuming the '>>' before issuing the diagnostic. */
21629 cp_token
*token
= cp_lexer_consume_token (parser
->lexer
);
21630 error_at (token
->location
,
21631 "spurious %<>>%>, use %<>%> to terminate "
21632 "a template argument list");
21636 cp_parser_skip_to_end_of_template_parameter_list (parser
);
21637 /* The `>' token might be a greater-than operator again now. */
21638 parser
->greater_than_is_operator_p
21639 = saved_greater_than_is_operator_p
;
21640 /* Restore the SAVED_SCOPE. */
21641 parser
->scope
= saved_scope
;
21642 parser
->qualifying_scope
= saved_qualifying_scope
;
21643 parser
->object_scope
= saved_object_scope
;
21644 cp_unevaluated_operand
= saved_unevaluated_operand
;
21645 c_inhibit_evaluation_warnings
= saved_inhibit_evaluation_warnings
;
21650 /* MEMBER_FUNCTION is a member function, or a friend. If default
21651 arguments, or the body of the function have not yet been parsed,
21655 cp_parser_late_parsing_for_member (cp_parser
* parser
, tree member_function
)
21657 timevar_push (TV_PARSE_INMETH
);
21658 /* If this member is a template, get the underlying
21660 if (DECL_FUNCTION_TEMPLATE_P (member_function
))
21661 member_function
= DECL_TEMPLATE_RESULT (member_function
);
21663 /* There should not be any class definitions in progress at this
21664 point; the bodies of members are only parsed outside of all class
21666 gcc_assert (parser
->num_classes_being_defined
== 0);
21667 /* While we're parsing the member functions we might encounter more
21668 classes. We want to handle them right away, but we don't want
21669 them getting mixed up with functions that are currently in the
21671 push_unparsed_function_queues (parser
);
21673 /* Make sure that any template parameters are in scope. */
21674 maybe_begin_member_template_processing (member_function
);
21676 /* If the body of the function has not yet been parsed, parse it
21678 if (DECL_PENDING_INLINE_P (member_function
))
21680 tree function_scope
;
21681 cp_token_cache
*tokens
;
21683 /* The function is no longer pending; we are processing it. */
21684 tokens
= DECL_PENDING_INLINE_INFO (member_function
);
21685 DECL_PENDING_INLINE_INFO (member_function
) = NULL
;
21686 DECL_PENDING_INLINE_P (member_function
) = 0;
21688 /* If this is a local class, enter the scope of the containing
21690 function_scope
= current_function_decl
;
21691 if (function_scope
)
21692 push_function_context ();
21694 /* Push the body of the function onto the lexer stack. */
21695 cp_parser_push_lexer_for_tokens (parser
, tokens
);
21697 /* Let the front end know that we going to be defining this
21699 start_preparsed_function (member_function
, NULL_TREE
,
21700 SF_PRE_PARSED
| SF_INCLASS_INLINE
);
21702 /* Don't do access checking if it is a templated function. */
21703 if (processing_template_decl
)
21704 push_deferring_access_checks (dk_no_check
);
21706 /* Now, parse the body of the function. */
21707 cp_parser_function_definition_after_declarator (parser
,
21708 /*inline_p=*/true);
21710 if (processing_template_decl
)
21711 pop_deferring_access_checks ();
21713 /* Leave the scope of the containing function. */
21714 if (function_scope
)
21715 pop_function_context ();
21716 cp_parser_pop_lexer (parser
);
21719 /* Remove any template parameters from the symbol table. */
21720 maybe_end_member_template_processing ();
21722 /* Restore the queue. */
21723 pop_unparsed_function_queues (parser
);
21724 timevar_pop (TV_PARSE_INMETH
);
21727 /* If DECL contains any default args, remember it on the unparsed
21728 functions queue. */
21731 cp_parser_save_default_args (cp_parser
* parser
, tree decl
)
21735 for (probe
= TYPE_ARG_TYPES (TREE_TYPE (decl
));
21737 probe
= TREE_CHAIN (probe
))
21738 if (TREE_PURPOSE (probe
))
21740 cp_default_arg_entry
*entry
21741 = VEC_safe_push (cp_default_arg_entry
, gc
,
21742 unparsed_funs_with_default_args
, NULL
);
21743 entry
->class_type
= current_class_type
;
21744 entry
->decl
= decl
;
21749 /* DEFAULT_ARG contains the saved tokens for the initializer of DECL,
21750 which is either a FIELD_DECL or PARM_DECL. Parse it and return
21751 the result. For a PARM_DECL, PARMTYPE is the corresponding type
21752 from the parameter-type-list. */
21755 cp_parser_late_parse_one_default_arg (cp_parser
*parser
, tree decl
,
21756 tree default_arg
, tree parmtype
)
21758 cp_token_cache
*tokens
;
21762 if (default_arg
== error_mark_node
)
21763 return error_mark_node
;
21765 /* Push the saved tokens for the default argument onto the parser's
21767 tokens
= DEFARG_TOKENS (default_arg
);
21768 cp_parser_push_lexer_for_tokens (parser
, tokens
);
21770 start_lambda_scope (decl
);
21772 /* Parse the default argument. */
21773 parsed_arg
= cp_parser_initializer (parser
, &dummy
, &dummy
);
21774 if (BRACE_ENCLOSED_INITIALIZER_P (parsed_arg
))
21775 maybe_warn_cpp0x (CPP0X_INITIALIZER_LISTS
);
21777 finish_lambda_scope ();
21779 if (parsed_arg
== error_mark_node
)
21780 cp_parser_skip_to_end_of_statement (parser
);
21782 if (!processing_template_decl
)
21784 /* In a non-template class, check conversions now. In a template,
21785 we'll wait and instantiate these as needed. */
21786 if (TREE_CODE (decl
) == PARM_DECL
)
21787 parsed_arg
= check_default_argument (parmtype
, parsed_arg
);
21790 int flags
= LOOKUP_IMPLICIT
;
21791 if (BRACE_ENCLOSED_INITIALIZER_P (parsed_arg
)
21792 && CONSTRUCTOR_IS_DIRECT_INIT (parsed_arg
))
21793 flags
= LOOKUP_NORMAL
;
21794 parsed_arg
= digest_init_flags (TREE_TYPE (decl
), parsed_arg
, flags
);
21798 /* If the token stream has not been completely used up, then
21799 there was extra junk after the end of the default
21801 if (!cp_lexer_next_token_is (parser
->lexer
, CPP_EOF
))
21803 if (TREE_CODE (decl
) == PARM_DECL
)
21804 cp_parser_error (parser
, "expected %<,%>");
21806 cp_parser_error (parser
, "expected %<;%>");
21809 /* Revert to the main lexer. */
21810 cp_parser_pop_lexer (parser
);
21815 /* FIELD is a non-static data member with an initializer which we saved for
21816 later; parse it now. */
21819 cp_parser_late_parsing_nsdmi (cp_parser
*parser
, tree field
)
21823 push_unparsed_function_queues (parser
);
21824 def
= cp_parser_late_parse_one_default_arg (parser
, field
,
21825 DECL_INITIAL (field
),
21827 pop_unparsed_function_queues (parser
);
21829 DECL_INITIAL (field
) = def
;
21832 /* FN is a FUNCTION_DECL which may contains a parameter with an
21833 unparsed DEFAULT_ARG. Parse the default args now. This function
21834 assumes that the current scope is the scope in which the default
21835 argument should be processed. */
21838 cp_parser_late_parsing_default_args (cp_parser
*parser
, tree fn
)
21840 bool saved_local_variables_forbidden_p
;
21841 tree parm
, parmdecl
;
21843 /* While we're parsing the default args, we might (due to the
21844 statement expression extension) encounter more classes. We want
21845 to handle them right away, but we don't want them getting mixed
21846 up with default args that are currently in the queue. */
21847 push_unparsed_function_queues (parser
);
21849 /* Local variable names (and the `this' keyword) may not appear
21850 in a default argument. */
21851 saved_local_variables_forbidden_p
= parser
->local_variables_forbidden_p
;
21852 parser
->local_variables_forbidden_p
= true;
21854 push_defarg_context (fn
);
21856 for (parm
= TYPE_ARG_TYPES (TREE_TYPE (fn
)),
21857 parmdecl
= DECL_ARGUMENTS (fn
);
21858 parm
&& parm
!= void_list_node
;
21859 parm
= TREE_CHAIN (parm
),
21860 parmdecl
= DECL_CHAIN (parmdecl
))
21862 tree default_arg
= TREE_PURPOSE (parm
);
21864 VEC(tree
,gc
) *insts
;
21871 if (TREE_CODE (default_arg
) != DEFAULT_ARG
)
21872 /* This can happen for a friend declaration for a function
21873 already declared with default arguments. */
21877 = cp_parser_late_parse_one_default_arg (parser
, parmdecl
,
21879 TREE_VALUE (parm
));
21880 if (parsed_arg
== error_mark_node
)
21885 TREE_PURPOSE (parm
) = parsed_arg
;
21887 /* Update any instantiations we've already created. */
21888 for (insts
= DEFARG_INSTANTIATIONS (default_arg
), ix
= 0;
21889 VEC_iterate (tree
, insts
, ix
, copy
); ix
++)
21890 TREE_PURPOSE (copy
) = parsed_arg
;
21893 pop_defarg_context ();
21895 /* Make sure no default arg is missing. */
21896 check_default_args (fn
);
21898 /* Restore the state of local_variables_forbidden_p. */
21899 parser
->local_variables_forbidden_p
= saved_local_variables_forbidden_p
;
21901 /* Restore the queue. */
21902 pop_unparsed_function_queues (parser
);
21905 /* Parse the operand of `sizeof' (or a similar operator). Returns
21906 either a TYPE or an expression, depending on the form of the
21907 input. The KEYWORD indicates which kind of expression we have
21911 cp_parser_sizeof_operand (cp_parser
* parser
, enum rid keyword
)
21913 tree expr
= NULL_TREE
;
21914 const char *saved_message
;
21916 bool saved_integral_constant_expression_p
;
21917 bool saved_non_integral_constant_expression_p
;
21918 bool pack_expansion_p
= false;
21920 /* Types cannot be defined in a `sizeof' expression. Save away the
21922 saved_message
= parser
->type_definition_forbidden_message
;
21923 /* And create the new one. */
21924 tmp
= concat ("types may not be defined in %<",
21925 IDENTIFIER_POINTER (ridpointers
[keyword
]),
21926 "%> expressions", NULL
);
21927 parser
->type_definition_forbidden_message
= tmp
;
21929 /* The restrictions on constant-expressions do not apply inside
21930 sizeof expressions. */
21931 saved_integral_constant_expression_p
21932 = parser
->integral_constant_expression_p
;
21933 saved_non_integral_constant_expression_p
21934 = parser
->non_integral_constant_expression_p
;
21935 parser
->integral_constant_expression_p
= false;
21937 /* If it's a `...', then we are computing the length of a parameter
21939 if (keyword
== RID_SIZEOF
21940 && cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
21942 /* Consume the `...'. */
21943 cp_lexer_consume_token (parser
->lexer
);
21944 maybe_warn_variadic_templates ();
21946 /* Note that this is an expansion. */
21947 pack_expansion_p
= true;
21950 /* Do not actually evaluate the expression. */
21951 ++cp_unevaluated_operand
;
21952 ++c_inhibit_evaluation_warnings
;
21953 /* If it's a `(', then we might be looking at the type-id
21955 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
21958 bool saved_in_type_id_in_expr_p
;
21960 /* We can't be sure yet whether we're looking at a type-id or an
21962 cp_parser_parse_tentatively (parser
);
21963 /* Consume the `('. */
21964 cp_lexer_consume_token (parser
->lexer
);
21965 /* Parse the type-id. */
21966 saved_in_type_id_in_expr_p
= parser
->in_type_id_in_expr_p
;
21967 parser
->in_type_id_in_expr_p
= true;
21968 type
= cp_parser_type_id (parser
);
21969 parser
->in_type_id_in_expr_p
= saved_in_type_id_in_expr_p
;
21970 /* Now, look for the trailing `)'. */
21971 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
21972 /* If all went well, then we're done. */
21973 if (cp_parser_parse_definitely (parser
))
21975 cp_decl_specifier_seq decl_specs
;
21977 /* Build a trivial decl-specifier-seq. */
21978 clear_decl_specs (&decl_specs
);
21979 decl_specs
.type
= type
;
21981 /* Call grokdeclarator to figure out what type this is. */
21982 expr
= grokdeclarator (NULL
,
21986 /*attrlist=*/NULL
);
21989 else if (pack_expansion_p
)
21990 permerror (cp_lexer_peek_token (parser
->lexer
)->location
,
21991 "%<sizeof...%> argument must be surrounded by parentheses");
21993 /* If the type-id production did not work out, then we must be
21994 looking at the unary-expression production. */
21996 expr
= cp_parser_unary_expression (parser
, /*address_p=*/false,
21997 /*cast_p=*/false, NULL
);
21999 if (pack_expansion_p
)
22000 /* Build a pack expansion. */
22001 expr
= make_pack_expansion (expr
);
22003 /* Go back to evaluating expressions. */
22004 --cp_unevaluated_operand
;
22005 --c_inhibit_evaluation_warnings
;
22007 /* Free the message we created. */
22009 /* And restore the old one. */
22010 parser
->type_definition_forbidden_message
= saved_message
;
22011 parser
->integral_constant_expression_p
22012 = saved_integral_constant_expression_p
;
22013 parser
->non_integral_constant_expression_p
22014 = saved_non_integral_constant_expression_p
;
22019 /* If the current declaration has no declarator, return true. */
22022 cp_parser_declares_only_class_p (cp_parser
*parser
)
22024 /* If the next token is a `;' or a `,' then there is no
22026 return (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
)
22027 || cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
));
22030 /* Update the DECL_SPECS to reflect the storage class indicated by
22034 cp_parser_set_storage_class (cp_parser
*parser
,
22035 cp_decl_specifier_seq
*decl_specs
,
22037 location_t location
)
22039 cp_storage_class storage_class
;
22041 if (parser
->in_unbraced_linkage_specification_p
)
22043 error_at (location
, "invalid use of %qD in linkage specification",
22044 ridpointers
[keyword
]);
22047 else if (decl_specs
->storage_class
!= sc_none
)
22049 decl_specs
->conflicting_specifiers_p
= true;
22053 if ((keyword
== RID_EXTERN
|| keyword
== RID_STATIC
)
22054 && decl_spec_seq_has_spec_p (decl_specs
, ds_thread
))
22056 error_at (decl_specs
->locations
[ds_thread
],
22057 "%<__thread%> before %qD", ridpointers
[keyword
]);
22058 decl_specs
->locations
[ds_thread
] = 0;
22064 storage_class
= sc_auto
;
22067 storage_class
= sc_register
;
22070 storage_class
= sc_static
;
22073 storage_class
= sc_extern
;
22076 storage_class
= sc_mutable
;
22079 gcc_unreachable ();
22081 decl_specs
->storage_class
= storage_class
;
22082 set_and_check_decl_spec_loc (decl_specs
, ds_storage_class
, location
);
22084 /* A storage class specifier cannot be applied alongside a typedef
22085 specifier. If there is a typedef specifier present then set
22086 conflicting_specifiers_p which will trigger an error later
22087 on in grokdeclarator. */
22088 if (decl_spec_seq_has_spec_p (decl_specs
, ds_typedef
))
22089 decl_specs
->conflicting_specifiers_p
= true;
22092 /* Update the DECL_SPECS to reflect the TYPE_SPEC. If TYPE_DEFINITION_P
22093 is true, the type is a class or enum definition. */
22096 cp_parser_set_decl_spec_type (cp_decl_specifier_seq
*decl_specs
,
22098 location_t location
,
22099 bool type_definition_p
)
22101 decl_specs
->any_specifiers_p
= true;
22103 /* If the user tries to redeclare bool, char16_t, char32_t, or wchar_t
22104 (with, for example, in "typedef int wchar_t;") we remember that
22105 this is what happened. In system headers, we ignore these
22106 declarations so that G++ can work with system headers that are not
22108 if (decl_spec_seq_has_spec_p (decl_specs
, ds_typedef
)
22109 && !type_definition_p
22110 && (type_spec
== boolean_type_node
22111 || type_spec
== char16_type_node
22112 || type_spec
== char32_type_node
22113 || type_spec
== wchar_type_node
)
22114 && (decl_specs
->type
22115 || decl_spec_seq_has_spec_p (decl_specs
, ds_long
)
22116 || decl_spec_seq_has_spec_p (decl_specs
, ds_short
)
22117 || decl_spec_seq_has_spec_p (decl_specs
, ds_unsigned
)
22118 || decl_spec_seq_has_spec_p (decl_specs
, ds_signed
)))
22120 decl_specs
->redefined_builtin_type
= type_spec
;
22121 set_and_check_decl_spec_loc (decl_specs
,
22122 ds_redefined_builtin_type_spec
,
22124 if (!decl_specs
->type
)
22126 decl_specs
->type
= type_spec
;
22127 decl_specs
->type_definition_p
= false;
22128 set_and_check_decl_spec_loc (decl_specs
,ds_type_spec
, location
);
22131 else if (decl_specs
->type
)
22132 decl_specs
->multiple_types_p
= true;
22135 decl_specs
->type
= type_spec
;
22136 decl_specs
->type_definition_p
= type_definition_p
;
22137 decl_specs
->redefined_builtin_type
= NULL_TREE
;
22138 set_and_check_decl_spec_loc (decl_specs
, ds_type_spec
, location
);
22142 /* Set the location for a declarator specifier and check if it is
22145 DECL_SPECS is the sequence of declarator specifiers onto which to
22148 DS is the single declarator specifier to set which location is to
22149 be set onto the existing sequence of declarators.
22151 LOCATION is the location for the declarator specifier to
22155 set_and_check_decl_spec_loc (cp_decl_specifier_seq
*decl_specs
,
22156 cp_decl_spec ds
, source_location location
)
22158 gcc_assert (ds
< ds_last
);
22160 if (decl_specs
== NULL
)
22163 if (decl_specs
->locations
[ds
] == 0)
22164 decl_specs
->locations
[ds
] = location
;
22169 if (decl_specs
->locations
[ds_long_long
] != 0)
22170 error_at (location
,
22171 "%<long long long%> is too long for GCC");
22174 decl_specs
->locations
[ds_long_long
] = location
;
22175 pedwarn_cxx98 (location
,
22177 "ISO C++ 1998 does not support %<long long%>");
22182 static const char *const decl_spec_names
[] = {
22200 error_at (location
,
22201 "duplicate %qs", decl_spec_names
[ds
]);
22206 /* Return true iff the declarator specifier DS is present in the
22207 sequence of declarator specifiers DECL_SPECS. */
22210 decl_spec_seq_has_spec_p (const cp_decl_specifier_seq
* decl_specs
,
22213 gcc_assert (ds
< ds_last
);
22215 if (decl_specs
== NULL
)
22218 return decl_specs
->locations
[ds
] != 0;
22221 /* DECL_SPECIFIERS is the representation of a decl-specifier-seq.
22222 Returns TRUE iff `friend' appears among the DECL_SPECIFIERS. */
22225 cp_parser_friend_p (const cp_decl_specifier_seq
*decl_specifiers
)
22227 return decl_spec_seq_has_spec_p (decl_specifiers
, ds_friend
);
22230 /* Issue an error message indicating that TOKEN_DESC was expected.
22231 If KEYWORD is true, it indicated this function is called by
22232 cp_parser_require_keword and the required token can only be
22233 a indicated keyword. */
22236 cp_parser_required_error (cp_parser
*parser
,
22237 required_token token_desc
,
22240 switch (token_desc
)
22243 cp_parser_error (parser
, "expected %<new%>");
22246 cp_parser_error (parser
, "expected %<delete%>");
22249 cp_parser_error (parser
, "expected %<return%>");
22252 cp_parser_error (parser
, "expected %<while%>");
22255 cp_parser_error (parser
, "expected %<extern%>");
22257 case RT_STATIC_ASSERT
:
22258 cp_parser_error (parser
, "expected %<static_assert%>");
22261 cp_parser_error (parser
, "expected %<decltype%>");
22264 cp_parser_error (parser
, "expected %<operator%>");
22267 cp_parser_error (parser
, "expected %<class%>");
22270 cp_parser_error (parser
, "expected %<template%>");
22273 cp_parser_error (parser
, "expected %<namespace%>");
22276 cp_parser_error (parser
, "expected %<using%>");
22279 cp_parser_error (parser
, "expected %<asm%>");
22282 cp_parser_error (parser
, "expected %<try%>");
22285 cp_parser_error (parser
, "expected %<catch%>");
22288 cp_parser_error (parser
, "expected %<throw%>");
22291 cp_parser_error (parser
, "expected %<__label__%>");
22294 cp_parser_error (parser
, "expected %<@try%>");
22296 case RT_AT_SYNCHRONIZED
:
22297 cp_parser_error (parser
, "expected %<@synchronized%>");
22300 cp_parser_error (parser
, "expected %<@throw%>");
22302 case RT_TRANSACTION_ATOMIC
:
22303 cp_parser_error (parser
, "expected %<__transaction_atomic%>");
22305 case RT_TRANSACTION_RELAXED
:
22306 cp_parser_error (parser
, "expected %<__transaction_relaxed%>");
22313 switch (token_desc
)
22316 cp_parser_error (parser
, "expected %<;%>");
22318 case RT_OPEN_PAREN
:
22319 cp_parser_error (parser
, "expected %<(%>");
22321 case RT_CLOSE_BRACE
:
22322 cp_parser_error (parser
, "expected %<}%>");
22324 case RT_OPEN_BRACE
:
22325 cp_parser_error (parser
, "expected %<{%>");
22327 case RT_CLOSE_SQUARE
:
22328 cp_parser_error (parser
, "expected %<]%>");
22330 case RT_OPEN_SQUARE
:
22331 cp_parser_error (parser
, "expected %<[%>");
22334 cp_parser_error (parser
, "expected %<,%>");
22337 cp_parser_error (parser
, "expected %<::%>");
22340 cp_parser_error (parser
, "expected %<<%>");
22343 cp_parser_error (parser
, "expected %<>%>");
22346 cp_parser_error (parser
, "expected %<=%>");
22349 cp_parser_error (parser
, "expected %<...%>");
22352 cp_parser_error (parser
, "expected %<*%>");
22355 cp_parser_error (parser
, "expected %<~%>");
22358 cp_parser_error (parser
, "expected %<:%>");
22360 case RT_COLON_SCOPE
:
22361 cp_parser_error (parser
, "expected %<:%> or %<::%>");
22363 case RT_CLOSE_PAREN
:
22364 cp_parser_error (parser
, "expected %<)%>");
22366 case RT_COMMA_CLOSE_PAREN
:
22367 cp_parser_error (parser
, "expected %<,%> or %<)%>");
22369 case RT_PRAGMA_EOL
:
22370 cp_parser_error (parser
, "expected end of line");
22373 cp_parser_error (parser
, "expected identifier");
22376 cp_parser_error (parser
, "expected selection-statement");
22378 case RT_INTERATION
:
22379 cp_parser_error (parser
, "expected iteration-statement");
22382 cp_parser_error (parser
, "expected jump-statement");
22385 cp_parser_error (parser
, "expected class-key");
22387 case RT_CLASS_TYPENAME_TEMPLATE
:
22388 cp_parser_error (parser
,
22389 "expected %<class%>, %<typename%>, or %<template%>");
22392 gcc_unreachable ();
22396 gcc_unreachable ();
22401 /* If the next token is of the indicated TYPE, consume it. Otherwise,
22402 issue an error message indicating that TOKEN_DESC was expected.
22404 Returns the token consumed, if the token had the appropriate type.
22405 Otherwise, returns NULL. */
22408 cp_parser_require (cp_parser
* parser
,
22409 enum cpp_ttype type
,
22410 required_token token_desc
)
22412 if (cp_lexer_next_token_is (parser
->lexer
, type
))
22413 return cp_lexer_consume_token (parser
->lexer
);
22416 /* Output the MESSAGE -- unless we're parsing tentatively. */
22417 if (!cp_parser_simulate_error (parser
))
22418 cp_parser_required_error (parser
, token_desc
, /*keyword=*/false);
22423 /* An error message is produced if the next token is not '>'.
22424 All further tokens are skipped until the desired token is
22425 found or '{', '}', ';' or an unbalanced ')' or ']'. */
22428 cp_parser_skip_to_end_of_template_parameter_list (cp_parser
* parser
)
22430 /* Current level of '< ... >'. */
22431 unsigned level
= 0;
22432 /* Ignore '<' and '>' nested inside '( ... )' or '[ ... ]'. */
22433 unsigned nesting_depth
= 0;
22435 /* Are we ready, yet? If not, issue error message. */
22436 if (cp_parser_require (parser
, CPP_GREATER
, RT_GREATER
))
22439 /* Skip tokens until the desired token is found. */
22442 /* Peek at the next token. */
22443 switch (cp_lexer_peek_token (parser
->lexer
)->type
)
22446 if (!nesting_depth
)
22451 if (cxx_dialect
== cxx98
)
22452 /* C++0x views the `>>' operator as two `>' tokens, but
22455 else if (!nesting_depth
&& level
-- == 0)
22457 /* We've hit a `>>' where the first `>' closes the
22458 template argument list, and the second `>' is
22459 spurious. Just consume the `>>' and stop; we've
22460 already produced at least one error. */
22461 cp_lexer_consume_token (parser
->lexer
);
22464 /* Fall through for C++0x, so we handle the second `>' in
22468 if (!nesting_depth
&& level
-- == 0)
22470 /* We've reached the token we want, consume it and stop. */
22471 cp_lexer_consume_token (parser
->lexer
);
22476 case CPP_OPEN_PAREN
:
22477 case CPP_OPEN_SQUARE
:
22481 case CPP_CLOSE_PAREN
:
22482 case CPP_CLOSE_SQUARE
:
22483 if (nesting_depth
-- == 0)
22488 case CPP_PRAGMA_EOL
:
22489 case CPP_SEMICOLON
:
22490 case CPP_OPEN_BRACE
:
22491 case CPP_CLOSE_BRACE
:
22492 /* The '>' was probably forgotten, don't look further. */
22499 /* Consume this token. */
22500 cp_lexer_consume_token (parser
->lexer
);
22504 /* If the next token is the indicated keyword, consume it. Otherwise,
22505 issue an error message indicating that TOKEN_DESC was expected.
22507 Returns the token consumed, if the token had the appropriate type.
22508 Otherwise, returns NULL. */
22511 cp_parser_require_keyword (cp_parser
* parser
,
22513 required_token token_desc
)
22515 cp_token
*token
= cp_parser_require (parser
, CPP_KEYWORD
, token_desc
);
22517 if (token
&& token
->keyword
!= keyword
)
22519 cp_parser_required_error (parser
, token_desc
, /*keyword=*/true);
22526 /* Returns TRUE iff TOKEN is a token that can begin the body of a
22527 function-definition. */
22530 cp_parser_token_starts_function_definition_p (cp_token
* token
)
22532 return (/* An ordinary function-body begins with an `{'. */
22533 token
->type
== CPP_OPEN_BRACE
22534 /* A ctor-initializer begins with a `:'. */
22535 || token
->type
== CPP_COLON
22536 /* A function-try-block begins with `try'. */
22537 || token
->keyword
== RID_TRY
22538 /* A function-transaction-block begins with `__transaction_atomic'
22539 or `__transaction_relaxed'. */
22540 || token
->keyword
== RID_TRANSACTION_ATOMIC
22541 || token
->keyword
== RID_TRANSACTION_RELAXED
22542 /* The named return value extension begins with `return'. */
22543 || token
->keyword
== RID_RETURN
);
22546 /* Returns TRUE iff the next token is the ":" or "{" beginning a class
22550 cp_parser_next_token_starts_class_definition_p (cp_parser
*parser
)
22554 token
= cp_lexer_peek_token (parser
->lexer
);
22555 return (token
->type
== CPP_OPEN_BRACE
|| token
->type
== CPP_COLON
);
22558 /* Returns TRUE iff the next token is the "," or ">" (or `>>', in
22559 C++0x) ending a template-argument. */
22562 cp_parser_next_token_ends_template_argument_p (cp_parser
*parser
)
22566 token
= cp_lexer_peek_token (parser
->lexer
);
22567 return (token
->type
== CPP_COMMA
22568 || token
->type
== CPP_GREATER
22569 || token
->type
== CPP_ELLIPSIS
22570 || ((cxx_dialect
!= cxx98
) && token
->type
== CPP_RSHIFT
));
22573 /* Returns TRUE iff the n-th token is a "<", or the n-th is a "[" and the
22574 (n+1)-th is a ":" (which is a possible digraph typo for "< ::"). */
22577 cp_parser_nth_token_starts_template_argument_list_p (cp_parser
* parser
,
22582 token
= cp_lexer_peek_nth_token (parser
->lexer
, n
);
22583 if (token
->type
== CPP_LESS
)
22585 /* Check for the sequence `<::' in the original code. It would be lexed as
22586 `[:', where `[' is a digraph, and there is no whitespace before
22588 if (token
->type
== CPP_OPEN_SQUARE
&& token
->flags
& DIGRAPH
)
22591 token2
= cp_lexer_peek_nth_token (parser
->lexer
, n
+1);
22592 if (token2
->type
== CPP_COLON
&& !(token2
->flags
& PREV_WHITE
))
22598 /* Returns the kind of tag indicated by TOKEN, if it is a class-key,
22599 or none_type otherwise. */
22601 static enum tag_types
22602 cp_parser_token_is_class_key (cp_token
* token
)
22604 switch (token
->keyword
)
22609 return record_type
;
22618 /* Issue an error message if the CLASS_KEY does not match the TYPE. */
22621 cp_parser_check_class_key (enum tag_types class_key
, tree type
)
22623 if (type
== error_mark_node
)
22625 if ((TREE_CODE (type
) == UNION_TYPE
) != (class_key
== union_type
))
22627 permerror (input_location
, "%qs tag used in naming %q#T",
22628 class_key
== union_type
? "union"
22629 : class_key
== record_type
? "struct" : "class",
22631 inform (DECL_SOURCE_LOCATION (TYPE_NAME (type
)),
22632 "%q#T was previously declared here", type
);
22636 /* Issue an error message if DECL is redeclared with different
22637 access than its original declaration [class.access.spec/3].
22638 This applies to nested classes and nested class templates.
22642 cp_parser_check_access_in_redeclaration (tree decl
, location_t location
)
22644 if (!decl
|| !CLASS_TYPE_P (TREE_TYPE (decl
)))
22647 if ((TREE_PRIVATE (decl
)
22648 != (current_access_specifier
== access_private_node
))
22649 || (TREE_PROTECTED (decl
)
22650 != (current_access_specifier
== access_protected_node
)))
22651 error_at (location
, "%qD redeclared with different access", decl
);
22654 /* Look for the `template' keyword, as a syntactic disambiguator.
22655 Return TRUE iff it is present, in which case it will be
22659 cp_parser_optional_template_keyword (cp_parser
*parser
)
22661 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TEMPLATE
))
22663 /* The `template' keyword can only be used within templates;
22664 outside templates the parser can always figure out what is a
22665 template and what is not. */
22666 if (!processing_template_decl
)
22668 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
22669 error_at (token
->location
,
22670 "%<template%> (as a disambiguator) is only allowed "
22671 "within templates");
22672 /* If this part of the token stream is rescanned, the same
22673 error message would be generated. So, we purge the token
22674 from the stream. */
22675 cp_lexer_purge_token (parser
->lexer
);
22680 /* Consume the `template' keyword. */
22681 cp_lexer_consume_token (parser
->lexer
);
22689 /* The next token is a CPP_NESTED_NAME_SPECIFIER. Consume the token,
22690 set PARSER->SCOPE, and perform other related actions. */
22693 cp_parser_pre_parsed_nested_name_specifier (cp_parser
*parser
)
22696 struct tree_check
*check_value
;
22697 deferred_access_check
*chk
;
22698 VEC (deferred_access_check
,gc
) *checks
;
22700 /* Get the stored value. */
22701 check_value
= cp_lexer_consume_token (parser
->lexer
)->u
.tree_check_value
;
22702 /* Perform any access checks that were deferred. */
22703 checks
= check_value
->checks
;
22706 FOR_EACH_VEC_ELT (deferred_access_check
, checks
, i
, chk
)
22707 perform_or_defer_access_check (chk
->binfo
,
22711 /* Set the scope from the stored value. */
22712 parser
->scope
= check_value
->value
;
22713 parser
->qualifying_scope
= check_value
->qualifying_scope
;
22714 parser
->object_scope
= NULL_TREE
;
22717 /* Consume tokens up through a non-nested END token. Returns TRUE if we
22718 encounter the end of a block before what we were looking for. */
22721 cp_parser_cache_group (cp_parser
*parser
,
22722 enum cpp_ttype end
,
22727 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
22729 /* Abort a parenthesized expression if we encounter a semicolon. */
22730 if ((end
== CPP_CLOSE_PAREN
|| depth
== 0)
22731 && token
->type
== CPP_SEMICOLON
)
22733 /* If we've reached the end of the file, stop. */
22734 if (token
->type
== CPP_EOF
22735 || (end
!= CPP_PRAGMA_EOL
22736 && token
->type
== CPP_PRAGMA_EOL
))
22738 if (token
->type
== CPP_CLOSE_BRACE
&& depth
== 0)
22739 /* We've hit the end of an enclosing block, so there's been some
22740 kind of syntax error. */
22743 /* Consume the token. */
22744 cp_lexer_consume_token (parser
->lexer
);
22745 /* See if it starts a new group. */
22746 if (token
->type
== CPP_OPEN_BRACE
)
22748 cp_parser_cache_group (parser
, CPP_CLOSE_BRACE
, depth
+ 1);
22749 /* In theory this should probably check end == '}', but
22750 cp_parser_save_member_function_body needs it to exit
22751 after either '}' or ')' when called with ')'. */
22755 else if (token
->type
== CPP_OPEN_PAREN
)
22757 cp_parser_cache_group (parser
, CPP_CLOSE_PAREN
, depth
+ 1);
22758 if (depth
== 0 && end
== CPP_CLOSE_PAREN
)
22761 else if (token
->type
== CPP_PRAGMA
)
22762 cp_parser_cache_group (parser
, CPP_PRAGMA_EOL
, depth
+ 1);
22763 else if (token
->type
== end
)
22768 /* Like above, for caching a default argument or NSDMI. Both of these are
22769 terminated by a non-nested comma, but it can be unclear whether or not a
22770 comma is nested in a template argument list unless we do more parsing.
22771 In order to handle this ambiguity, when we encounter a ',' after a '<'
22772 we try to parse what follows as a parameter-declaration-list (in the
22773 case of a default argument) or a member-declarator (in the case of an
22774 NSDMI). If that succeeds, then we stop caching. */
22777 cp_parser_cache_defarg (cp_parser
*parser
, bool nsdmi
)
22779 unsigned depth
= 0;
22780 int maybe_template_id
= 0;
22781 cp_token
*first_token
;
22783 tree default_argument
;
22785 /* Add tokens until we have processed the entire default
22786 argument. We add the range [first_token, token). */
22787 first_token
= cp_lexer_peek_token (parser
->lexer
);
22788 if (first_token
->type
== CPP_OPEN_BRACE
)
22790 /* For list-initialization, this is straightforward. */
22791 cp_parser_cache_group (parser
, CPP_CLOSE_BRACE
, /*depth=*/0);
22792 token
= cp_lexer_peek_token (parser
->lexer
);
22798 /* Peek at the next token. */
22799 token
= cp_lexer_peek_token (parser
->lexer
);
22800 /* What we do depends on what token we have. */
22801 switch (token
->type
)
22803 /* In valid code, a default argument must be
22804 immediately followed by a `,' `)', or `...'. */
22806 if (depth
== 0 && maybe_template_id
)
22808 /* If we've seen a '<', we might be in a
22809 template-argument-list. Until Core issue 325 is
22810 resolved, we don't know how this situation ought
22811 to be handled, so try to DTRT. We check whether
22812 what comes after the comma is a valid parameter
22813 declaration list. If it is, then the comma ends
22814 the default argument; otherwise the default
22815 argument continues. */
22816 bool error
= false;
22819 /* Set ITALP so cp_parser_parameter_declaration_list
22820 doesn't decide to commit to this parse. */
22821 bool saved_italp
= parser
->in_template_argument_list_p
;
22822 parser
->in_template_argument_list_p
= true;
22824 cp_parser_parse_tentatively (parser
);
22825 cp_lexer_consume_token (parser
->lexer
);
22829 int ctor_dtor_or_conv_p
;
22830 cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_NAMED
,
22831 &ctor_dtor_or_conv_p
,
22832 /*parenthesized_p=*/NULL
,
22833 /*member_p=*/true);
22837 begin_scope (sk_function_parms
, NULL_TREE
);
22838 cp_parser_parameter_declaration_list (parser
, &error
);
22839 for (t
= current_binding_level
->names
; t
; t
= DECL_CHAIN (t
))
22840 pop_binding (DECL_NAME (t
), t
);
22843 if (!cp_parser_error_occurred (parser
) && !error
)
22845 cp_parser_abort_tentative_parse (parser
);
22847 parser
->in_template_argument_list_p
= saved_italp
;
22850 case CPP_CLOSE_PAREN
:
22852 /* If we run into a non-nested `;', `}', or `]',
22853 then the code is invalid -- but the default
22854 argument is certainly over. */
22855 case CPP_SEMICOLON
:
22856 case CPP_CLOSE_BRACE
:
22857 case CPP_CLOSE_SQUARE
:
22860 /* Update DEPTH, if necessary. */
22861 else if (token
->type
== CPP_CLOSE_PAREN
22862 || token
->type
== CPP_CLOSE_BRACE
22863 || token
->type
== CPP_CLOSE_SQUARE
)
22867 case CPP_OPEN_PAREN
:
22868 case CPP_OPEN_SQUARE
:
22869 case CPP_OPEN_BRACE
:
22875 /* This might be the comparison operator, or it might
22876 start a template argument list. */
22877 ++maybe_template_id
;
22881 if (cxx_dialect
== cxx98
)
22883 /* Fall through for C++0x, which treats the `>>'
22884 operator like two `>' tokens in certain
22890 /* This might be an operator, or it might close a
22891 template argument list. But if a previous '<'
22892 started a template argument list, this will have
22893 closed it, so we can't be in one anymore. */
22894 maybe_template_id
-= 1 + (token
->type
== CPP_RSHIFT
);
22895 if (maybe_template_id
< 0)
22896 maybe_template_id
= 0;
22900 /* If we run out of tokens, issue an error message. */
22902 case CPP_PRAGMA_EOL
:
22903 error_at (token
->location
, "file ends in default argument");
22909 /* In these cases, we should look for template-ids.
22910 For example, if the default argument is
22911 `X<int, double>()', we need to do name lookup to
22912 figure out whether or not `X' is a template; if
22913 so, the `,' does not end the default argument.
22915 That is not yet done. */
22922 /* If we've reached the end, stop. */
22926 /* Add the token to the token block. */
22927 token
= cp_lexer_consume_token (parser
->lexer
);
22930 /* Create a DEFAULT_ARG to represent the unparsed default
22932 default_argument
= make_node (DEFAULT_ARG
);
22933 DEFARG_TOKENS (default_argument
)
22934 = cp_token_cache_new (first_token
, token
);
22935 DEFARG_INSTANTIATIONS (default_argument
) = NULL
;
22937 return default_argument
;
22940 /* Begin parsing tentatively. We always save tokens while parsing
22941 tentatively so that if the tentative parsing fails we can restore the
22945 cp_parser_parse_tentatively (cp_parser
* parser
)
22947 /* Enter a new parsing context. */
22948 parser
->context
= cp_parser_context_new (parser
->context
);
22949 /* Begin saving tokens. */
22950 cp_lexer_save_tokens (parser
->lexer
);
22951 /* In order to avoid repetitive access control error messages,
22952 access checks are queued up until we are no longer parsing
22954 push_deferring_access_checks (dk_deferred
);
22957 /* Commit to the currently active tentative parse. */
22960 cp_parser_commit_to_tentative_parse (cp_parser
* parser
)
22962 cp_parser_context
*context
;
22965 /* Mark all of the levels as committed. */
22966 lexer
= parser
->lexer
;
22967 for (context
= parser
->context
; context
->next
; context
= context
->next
)
22969 if (context
->status
== CP_PARSER_STATUS_KIND_COMMITTED
)
22971 context
->status
= CP_PARSER_STATUS_KIND_COMMITTED
;
22972 while (!cp_lexer_saving_tokens (lexer
))
22973 lexer
= lexer
->next
;
22974 cp_lexer_commit_tokens (lexer
);
22978 /* Abort the currently active tentative parse. All consumed tokens
22979 will be rolled back, and no diagnostics will be issued. */
22982 cp_parser_abort_tentative_parse (cp_parser
* parser
)
22984 gcc_assert (parser
->context
->status
!= CP_PARSER_STATUS_KIND_COMMITTED
22985 || errorcount
> 0);
22986 cp_parser_simulate_error (parser
);
22987 /* Now, pretend that we want to see if the construct was
22988 successfully parsed. */
22989 cp_parser_parse_definitely (parser
);
22992 /* Stop parsing tentatively. If a parse error has occurred, restore the
22993 token stream. Otherwise, commit to the tokens we have consumed.
22994 Returns true if no error occurred; false otherwise. */
22997 cp_parser_parse_definitely (cp_parser
* parser
)
22999 bool error_occurred
;
23000 cp_parser_context
*context
;
23002 /* Remember whether or not an error occurred, since we are about to
23003 destroy that information. */
23004 error_occurred
= cp_parser_error_occurred (parser
);
23005 /* Remove the topmost context from the stack. */
23006 context
= parser
->context
;
23007 parser
->context
= context
->next
;
23008 /* If no parse errors occurred, commit to the tentative parse. */
23009 if (!error_occurred
)
23011 /* Commit to the tokens read tentatively, unless that was
23013 if (context
->status
!= CP_PARSER_STATUS_KIND_COMMITTED
)
23014 cp_lexer_commit_tokens (parser
->lexer
);
23016 pop_to_parent_deferring_access_checks ();
23018 /* Otherwise, if errors occurred, roll back our state so that things
23019 are just as they were before we began the tentative parse. */
23022 cp_lexer_rollback_tokens (parser
->lexer
);
23023 pop_deferring_access_checks ();
23025 /* Add the context to the front of the free list. */
23026 context
->next
= cp_parser_context_free_list
;
23027 cp_parser_context_free_list
= context
;
23029 return !error_occurred
;
23032 /* Returns true if we are parsing tentatively and are not committed to
23033 this tentative parse. */
23036 cp_parser_uncommitted_to_tentative_parse_p (cp_parser
* parser
)
23038 return (cp_parser_parsing_tentatively (parser
)
23039 && parser
->context
->status
!= CP_PARSER_STATUS_KIND_COMMITTED
);
23042 /* Returns nonzero iff an error has occurred during the most recent
23043 tentative parse. */
23046 cp_parser_error_occurred (cp_parser
* parser
)
23048 return (cp_parser_parsing_tentatively (parser
)
23049 && parser
->context
->status
== CP_PARSER_STATUS_KIND_ERROR
);
23052 /* Returns nonzero if GNU extensions are allowed. */
23055 cp_parser_allow_gnu_extensions_p (cp_parser
* parser
)
23057 return parser
->allow_gnu_extensions_p
;
23060 /* Objective-C++ Productions */
23063 /* Parse an Objective-C expression, which feeds into a primary-expression
23067 objc-message-expression
23068 objc-string-literal
23069 objc-encode-expression
23070 objc-protocol-expression
23071 objc-selector-expression
23073 Returns a tree representation of the expression. */
23076 cp_parser_objc_expression (cp_parser
* parser
)
23078 /* Try to figure out what kind of declaration is present. */
23079 cp_token
*kwd
= cp_lexer_peek_token (parser
->lexer
);
23083 case CPP_OPEN_SQUARE
:
23084 return cp_parser_objc_message_expression (parser
);
23086 case CPP_OBJC_STRING
:
23087 kwd
= cp_lexer_consume_token (parser
->lexer
);
23088 return objc_build_string_object (kwd
->u
.value
);
23091 switch (kwd
->keyword
)
23093 case RID_AT_ENCODE
:
23094 return cp_parser_objc_encode_expression (parser
);
23096 case RID_AT_PROTOCOL
:
23097 return cp_parser_objc_protocol_expression (parser
);
23099 case RID_AT_SELECTOR
:
23100 return cp_parser_objc_selector_expression (parser
);
23106 error_at (kwd
->location
,
23107 "misplaced %<@%D%> Objective-C++ construct",
23109 cp_parser_skip_to_end_of_block_or_statement (parser
);
23112 return error_mark_node
;
23115 /* Parse an Objective-C message expression.
23117 objc-message-expression:
23118 [ objc-message-receiver objc-message-args ]
23120 Returns a representation of an Objective-C message. */
23123 cp_parser_objc_message_expression (cp_parser
* parser
)
23125 tree receiver
, messageargs
;
23127 cp_lexer_consume_token (parser
->lexer
); /* Eat '['. */
23128 receiver
= cp_parser_objc_message_receiver (parser
);
23129 messageargs
= cp_parser_objc_message_args (parser
);
23130 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
23132 return objc_build_message_expr (receiver
, messageargs
);
23135 /* Parse an objc-message-receiver.
23137 objc-message-receiver:
23139 simple-type-specifier
23141 Returns a representation of the type or expression. */
23144 cp_parser_objc_message_receiver (cp_parser
* parser
)
23148 /* An Objective-C message receiver may be either (1) a type
23149 or (2) an expression. */
23150 cp_parser_parse_tentatively (parser
);
23151 rcv
= cp_parser_expression (parser
, false, NULL
);
23153 if (cp_parser_parse_definitely (parser
))
23156 rcv
= cp_parser_simple_type_specifier (parser
,
23157 /*decl_specs=*/NULL
,
23158 CP_PARSER_FLAGS_NONE
);
23160 return objc_get_class_reference (rcv
);
23163 /* Parse the arguments and selectors comprising an Objective-C message.
23168 objc-selector-args , objc-comma-args
23170 objc-selector-args:
23171 objc-selector [opt] : assignment-expression
23172 objc-selector-args objc-selector [opt] : assignment-expression
23175 assignment-expression
23176 objc-comma-args , assignment-expression
23178 Returns a TREE_LIST, with TREE_PURPOSE containing a list of
23179 selector arguments and TREE_VALUE containing a list of comma
23183 cp_parser_objc_message_args (cp_parser
* parser
)
23185 tree sel_args
= NULL_TREE
, addl_args
= NULL_TREE
;
23186 bool maybe_unary_selector_p
= true;
23187 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
23189 while (cp_parser_objc_selector_p (token
->type
) || token
->type
== CPP_COLON
)
23191 tree selector
= NULL_TREE
, arg
;
23193 if (token
->type
!= CPP_COLON
)
23194 selector
= cp_parser_objc_selector (parser
);
23196 /* Detect if we have a unary selector. */
23197 if (maybe_unary_selector_p
23198 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_COLON
))
23199 return build_tree_list (selector
, NULL_TREE
);
23201 maybe_unary_selector_p
= false;
23202 cp_parser_require (parser
, CPP_COLON
, RT_COLON
);
23203 arg
= cp_parser_assignment_expression (parser
, false, NULL
);
23206 = chainon (sel_args
,
23207 build_tree_list (selector
, arg
));
23209 token
= cp_lexer_peek_token (parser
->lexer
);
23212 /* Handle non-selector arguments, if any. */
23213 while (token
->type
== CPP_COMMA
)
23217 cp_lexer_consume_token (parser
->lexer
);
23218 arg
= cp_parser_assignment_expression (parser
, false, NULL
);
23221 = chainon (addl_args
,
23222 build_tree_list (NULL_TREE
, arg
));
23224 token
= cp_lexer_peek_token (parser
->lexer
);
23227 if (sel_args
== NULL_TREE
&& addl_args
== NULL_TREE
)
23229 cp_parser_error (parser
, "objective-c++ message argument(s) are expected");
23230 return build_tree_list (error_mark_node
, error_mark_node
);
23233 return build_tree_list (sel_args
, addl_args
);
23236 /* Parse an Objective-C encode expression.
23238 objc-encode-expression:
23239 @encode objc-typename
23241 Returns an encoded representation of the type argument. */
23244 cp_parser_objc_encode_expression (cp_parser
* parser
)
23249 cp_lexer_consume_token (parser
->lexer
); /* Eat '@encode'. */
23250 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
23251 token
= cp_lexer_peek_token (parser
->lexer
);
23252 type
= complete_type (cp_parser_type_id (parser
));
23253 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
23257 error_at (token
->location
,
23258 "%<@encode%> must specify a type as an argument");
23259 return error_mark_node
;
23262 /* This happens if we find @encode(T) (where T is a template
23263 typename or something dependent on a template typename) when
23264 parsing a template. In that case, we can't compile it
23265 immediately, but we rather create an AT_ENCODE_EXPR which will
23266 need to be instantiated when the template is used.
23268 if (dependent_type_p (type
))
23270 tree value
= build_min (AT_ENCODE_EXPR
, size_type_node
, type
);
23271 TREE_READONLY (value
) = 1;
23275 return objc_build_encode_expr (type
);
23278 /* Parse an Objective-C @defs expression. */
23281 cp_parser_objc_defs_expression (cp_parser
*parser
)
23285 cp_lexer_consume_token (parser
->lexer
); /* Eat '@defs'. */
23286 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
23287 name
= cp_parser_identifier (parser
);
23288 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
23290 return objc_get_class_ivars (name
);
23293 /* Parse an Objective-C protocol expression.
23295 objc-protocol-expression:
23296 @protocol ( identifier )
23298 Returns a representation of the protocol expression. */
23301 cp_parser_objc_protocol_expression (cp_parser
* parser
)
23305 cp_lexer_consume_token (parser
->lexer
); /* Eat '@protocol'. */
23306 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
23307 proto
= cp_parser_identifier (parser
);
23308 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
23310 return objc_build_protocol_expr (proto
);
23313 /* Parse an Objective-C selector expression.
23315 objc-selector-expression:
23316 @selector ( objc-method-signature )
23318 objc-method-signature:
23324 objc-selector-seq objc-selector :
23326 Returns a representation of the method selector. */
23329 cp_parser_objc_selector_expression (cp_parser
* parser
)
23331 tree sel_seq
= NULL_TREE
;
23332 bool maybe_unary_selector_p
= true;
23334 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
23336 cp_lexer_consume_token (parser
->lexer
); /* Eat '@selector'. */
23337 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
23338 token
= cp_lexer_peek_token (parser
->lexer
);
23340 while (cp_parser_objc_selector_p (token
->type
) || token
->type
== CPP_COLON
23341 || token
->type
== CPP_SCOPE
)
23343 tree selector
= NULL_TREE
;
23345 if (token
->type
!= CPP_COLON
23346 || token
->type
== CPP_SCOPE
)
23347 selector
= cp_parser_objc_selector (parser
);
23349 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COLON
)
23350 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_SCOPE
))
23352 /* Detect if we have a unary selector. */
23353 if (maybe_unary_selector_p
)
23355 sel_seq
= selector
;
23356 goto finish_selector
;
23360 cp_parser_error (parser
, "expected %<:%>");
23363 maybe_unary_selector_p
= false;
23364 token
= cp_lexer_consume_token (parser
->lexer
);
23366 if (token
->type
== CPP_SCOPE
)
23369 = chainon (sel_seq
,
23370 build_tree_list (selector
, NULL_TREE
));
23372 = chainon (sel_seq
,
23373 build_tree_list (NULL_TREE
, NULL_TREE
));
23377 = chainon (sel_seq
,
23378 build_tree_list (selector
, NULL_TREE
));
23380 token
= cp_lexer_peek_token (parser
->lexer
);
23384 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
23386 return objc_build_selector_expr (loc
, sel_seq
);
23389 /* Parse a list of identifiers.
23391 objc-identifier-list:
23393 objc-identifier-list , identifier
23395 Returns a TREE_LIST of identifier nodes. */
23398 cp_parser_objc_identifier_list (cp_parser
* parser
)
23404 identifier
= cp_parser_identifier (parser
);
23405 if (identifier
== error_mark_node
)
23406 return error_mark_node
;
23408 list
= build_tree_list (NULL_TREE
, identifier
);
23409 sep
= cp_lexer_peek_token (parser
->lexer
);
23411 while (sep
->type
== CPP_COMMA
)
23413 cp_lexer_consume_token (parser
->lexer
); /* Eat ','. */
23414 identifier
= cp_parser_identifier (parser
);
23415 if (identifier
== error_mark_node
)
23418 list
= chainon (list
, build_tree_list (NULL_TREE
,
23420 sep
= cp_lexer_peek_token (parser
->lexer
);
23426 /* Parse an Objective-C alias declaration.
23428 objc-alias-declaration:
23429 @compatibility_alias identifier identifier ;
23431 This function registers the alias mapping with the Objective-C front end.
23432 It returns nothing. */
23435 cp_parser_objc_alias_declaration (cp_parser
* parser
)
23439 cp_lexer_consume_token (parser
->lexer
); /* Eat '@compatibility_alias'. */
23440 alias
= cp_parser_identifier (parser
);
23441 orig
= cp_parser_identifier (parser
);
23442 objc_declare_alias (alias
, orig
);
23443 cp_parser_consume_semicolon_at_end_of_statement (parser
);
23446 /* Parse an Objective-C class forward-declaration.
23448 objc-class-declaration:
23449 @class objc-identifier-list ;
23451 The function registers the forward declarations with the Objective-C
23452 front end. It returns nothing. */
23455 cp_parser_objc_class_declaration (cp_parser
* parser
)
23457 cp_lexer_consume_token (parser
->lexer
); /* Eat '@class'. */
23462 id
= cp_parser_identifier (parser
);
23463 if (id
== error_mark_node
)
23466 objc_declare_class (id
);
23468 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
23469 cp_lexer_consume_token (parser
->lexer
);
23473 cp_parser_consume_semicolon_at_end_of_statement (parser
);
23476 /* Parse a list of Objective-C protocol references.
23478 objc-protocol-refs-opt:
23479 objc-protocol-refs [opt]
23481 objc-protocol-refs:
23482 < objc-identifier-list >
23484 Returns a TREE_LIST of identifiers, if any. */
23487 cp_parser_objc_protocol_refs_opt (cp_parser
* parser
)
23489 tree protorefs
= NULL_TREE
;
23491 if(cp_lexer_next_token_is (parser
->lexer
, CPP_LESS
))
23493 cp_lexer_consume_token (parser
->lexer
); /* Eat '<'. */
23494 protorefs
= cp_parser_objc_identifier_list (parser
);
23495 cp_parser_require (parser
, CPP_GREATER
, RT_GREATER
);
23501 /* Parse a Objective-C visibility specification. */
23504 cp_parser_objc_visibility_spec (cp_parser
* parser
)
23506 cp_token
*vis
= cp_lexer_peek_token (parser
->lexer
);
23508 switch (vis
->keyword
)
23510 case RID_AT_PRIVATE
:
23511 objc_set_visibility (OBJC_IVAR_VIS_PRIVATE
);
23513 case RID_AT_PROTECTED
:
23514 objc_set_visibility (OBJC_IVAR_VIS_PROTECTED
);
23516 case RID_AT_PUBLIC
:
23517 objc_set_visibility (OBJC_IVAR_VIS_PUBLIC
);
23519 case RID_AT_PACKAGE
:
23520 objc_set_visibility (OBJC_IVAR_VIS_PACKAGE
);
23526 /* Eat '@private'/'@protected'/'@public'. */
23527 cp_lexer_consume_token (parser
->lexer
);
23530 /* Parse an Objective-C method type. Return 'true' if it is a class
23531 (+) method, and 'false' if it is an instance (-) method. */
23534 cp_parser_objc_method_type (cp_parser
* parser
)
23536 if (cp_lexer_consume_token (parser
->lexer
)->type
== CPP_PLUS
)
23542 /* Parse an Objective-C protocol qualifier. */
23545 cp_parser_objc_protocol_qualifiers (cp_parser
* parser
)
23547 tree quals
= NULL_TREE
, node
;
23548 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
23550 node
= token
->u
.value
;
23552 while (node
&& TREE_CODE (node
) == IDENTIFIER_NODE
23553 && (node
== ridpointers
[(int) RID_IN
]
23554 || node
== ridpointers
[(int) RID_OUT
]
23555 || node
== ridpointers
[(int) RID_INOUT
]
23556 || node
== ridpointers
[(int) RID_BYCOPY
]
23557 || node
== ridpointers
[(int) RID_BYREF
]
23558 || node
== ridpointers
[(int) RID_ONEWAY
]))
23560 quals
= tree_cons (NULL_TREE
, node
, quals
);
23561 cp_lexer_consume_token (parser
->lexer
);
23562 token
= cp_lexer_peek_token (parser
->lexer
);
23563 node
= token
->u
.value
;
23569 /* Parse an Objective-C typename. */
23572 cp_parser_objc_typename (cp_parser
* parser
)
23574 tree type_name
= NULL_TREE
;
23576 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
23578 tree proto_quals
, cp_type
= NULL_TREE
;
23580 cp_lexer_consume_token (parser
->lexer
); /* Eat '('. */
23581 proto_quals
= cp_parser_objc_protocol_qualifiers (parser
);
23583 /* An ObjC type name may consist of just protocol qualifiers, in which
23584 case the type shall default to 'id'. */
23585 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_PAREN
))
23587 cp_type
= cp_parser_type_id (parser
);
23589 /* If the type could not be parsed, an error has already
23590 been produced. For error recovery, behave as if it had
23591 not been specified, which will use the default type
23593 if (cp_type
== error_mark_node
)
23595 cp_type
= NULL_TREE
;
23596 /* We need to skip to the closing parenthesis as
23597 cp_parser_type_id() does not seem to do it for
23599 cp_parser_skip_to_closing_parenthesis (parser
,
23600 /*recovering=*/true,
23601 /*or_comma=*/false,
23602 /*consume_paren=*/false);
23606 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
23607 type_name
= build_tree_list (proto_quals
, cp_type
);
23613 /* Check to see if TYPE refers to an Objective-C selector name. */
23616 cp_parser_objc_selector_p (enum cpp_ttype type
)
23618 return (type
== CPP_NAME
|| type
== CPP_KEYWORD
23619 || type
== CPP_AND_AND
|| type
== CPP_AND_EQ
|| type
== CPP_AND
23620 || type
== CPP_OR
|| type
== CPP_COMPL
|| type
== CPP_NOT
23621 || type
== CPP_NOT_EQ
|| type
== CPP_OR_OR
|| type
== CPP_OR_EQ
23622 || type
== CPP_XOR
|| type
== CPP_XOR_EQ
);
23625 /* Parse an Objective-C selector. */
23628 cp_parser_objc_selector (cp_parser
* parser
)
23630 cp_token
*token
= cp_lexer_consume_token (parser
->lexer
);
23632 if (!cp_parser_objc_selector_p (token
->type
))
23634 error_at (token
->location
, "invalid Objective-C++ selector name");
23635 return error_mark_node
;
23638 /* C++ operator names are allowed to appear in ObjC selectors. */
23639 switch (token
->type
)
23641 case CPP_AND_AND
: return get_identifier ("and");
23642 case CPP_AND_EQ
: return get_identifier ("and_eq");
23643 case CPP_AND
: return get_identifier ("bitand");
23644 case CPP_OR
: return get_identifier ("bitor");
23645 case CPP_COMPL
: return get_identifier ("compl");
23646 case CPP_NOT
: return get_identifier ("not");
23647 case CPP_NOT_EQ
: return get_identifier ("not_eq");
23648 case CPP_OR_OR
: return get_identifier ("or");
23649 case CPP_OR_EQ
: return get_identifier ("or_eq");
23650 case CPP_XOR
: return get_identifier ("xor");
23651 case CPP_XOR_EQ
: return get_identifier ("xor_eq");
23652 default: return token
->u
.value
;
23656 /* Parse an Objective-C params list. */
23659 cp_parser_objc_method_keyword_params (cp_parser
* parser
, tree
* attributes
)
23661 tree params
= NULL_TREE
;
23662 bool maybe_unary_selector_p
= true;
23663 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
23665 while (cp_parser_objc_selector_p (token
->type
) || token
->type
== CPP_COLON
)
23667 tree selector
= NULL_TREE
, type_name
, identifier
;
23668 tree parm_attr
= NULL_TREE
;
23670 if (token
->keyword
== RID_ATTRIBUTE
)
23673 if (token
->type
!= CPP_COLON
)
23674 selector
= cp_parser_objc_selector (parser
);
23676 /* Detect if we have a unary selector. */
23677 if (maybe_unary_selector_p
23678 && cp_lexer_next_token_is_not (parser
->lexer
, CPP_COLON
))
23680 params
= selector
; /* Might be followed by attributes. */
23684 maybe_unary_selector_p
= false;
23685 if (!cp_parser_require (parser
, CPP_COLON
, RT_COLON
))
23687 /* Something went quite wrong. There should be a colon
23688 here, but there is not. Stop parsing parameters. */
23691 type_name
= cp_parser_objc_typename (parser
);
23692 /* New ObjC allows attributes on parameters too. */
23693 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_ATTRIBUTE
))
23694 parm_attr
= cp_parser_attributes_opt (parser
);
23695 identifier
= cp_parser_identifier (parser
);
23699 objc_build_keyword_decl (selector
,
23704 token
= cp_lexer_peek_token (parser
->lexer
);
23707 if (params
== NULL_TREE
)
23709 cp_parser_error (parser
, "objective-c++ method declaration is expected");
23710 return error_mark_node
;
23713 /* We allow tail attributes for the method. */
23714 if (token
->keyword
== RID_ATTRIBUTE
)
23716 *attributes
= cp_parser_attributes_opt (parser
);
23717 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
)
23718 || cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
23720 cp_parser_error (parser
,
23721 "method attributes must be specified at the end");
23722 return error_mark_node
;
23725 if (params
== NULL_TREE
)
23727 cp_parser_error (parser
, "objective-c++ method declaration is expected");
23728 return error_mark_node
;
23733 /* Parse the non-keyword Objective-C params. */
23736 cp_parser_objc_method_tail_params_opt (cp_parser
* parser
, bool *ellipsisp
,
23739 tree params
= make_node (TREE_LIST
);
23740 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
23741 *ellipsisp
= false; /* Initially, assume no ellipsis. */
23743 while (token
->type
== CPP_COMMA
)
23745 cp_parameter_declarator
*parmdecl
;
23748 cp_lexer_consume_token (parser
->lexer
); /* Eat ','. */
23749 token
= cp_lexer_peek_token (parser
->lexer
);
23751 if (token
->type
== CPP_ELLIPSIS
)
23753 cp_lexer_consume_token (parser
->lexer
); /* Eat '...'. */
23755 token
= cp_lexer_peek_token (parser
->lexer
);
23759 /* TODO: parse attributes for tail parameters. */
23760 parmdecl
= cp_parser_parameter_declaration (parser
, false, NULL
);
23761 parm
= grokdeclarator (parmdecl
->declarator
,
23762 &parmdecl
->decl_specifiers
,
23763 PARM
, /*initialized=*/0,
23764 /*attrlist=*/NULL
);
23766 chainon (params
, build_tree_list (NULL_TREE
, parm
));
23767 token
= cp_lexer_peek_token (parser
->lexer
);
23770 /* We allow tail attributes for the method. */
23771 if (token
->keyword
== RID_ATTRIBUTE
)
23773 if (*attributes
== NULL_TREE
)
23775 *attributes
= cp_parser_attributes_opt (parser
);
23776 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
)
23777 || cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
23781 /* We have an error, but parse the attributes, so that we can
23783 *attributes
= cp_parser_attributes_opt (parser
);
23785 cp_parser_error (parser
,
23786 "method attributes must be specified at the end");
23787 return error_mark_node
;
23793 /* Parse a linkage specification, a pragma, an extra semicolon or a block. */
23796 cp_parser_objc_interstitial_code (cp_parser
* parser
)
23798 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
23800 /* If the next token is `extern' and the following token is a string
23801 literal, then we have a linkage specification. */
23802 if (token
->keyword
== RID_EXTERN
23803 && cp_parser_is_pure_string_literal
23804 (cp_lexer_peek_nth_token (parser
->lexer
, 2)))
23805 cp_parser_linkage_specification (parser
);
23806 /* Handle #pragma, if any. */
23807 else if (token
->type
== CPP_PRAGMA
)
23808 cp_parser_pragma (parser
, pragma_external
);
23809 /* Allow stray semicolons. */
23810 else if (token
->type
== CPP_SEMICOLON
)
23811 cp_lexer_consume_token (parser
->lexer
);
23812 /* Mark methods as optional or required, when building protocols. */
23813 else if (token
->keyword
== RID_AT_OPTIONAL
)
23815 cp_lexer_consume_token (parser
->lexer
);
23816 objc_set_method_opt (true);
23818 else if (token
->keyword
== RID_AT_REQUIRED
)
23820 cp_lexer_consume_token (parser
->lexer
);
23821 objc_set_method_opt (false);
23823 else if (token
->keyword
== RID_NAMESPACE
)
23824 cp_parser_namespace_definition (parser
);
23825 /* Other stray characters must generate errors. */
23826 else if (token
->type
== CPP_OPEN_BRACE
|| token
->type
== CPP_CLOSE_BRACE
)
23828 cp_lexer_consume_token (parser
->lexer
);
23829 error ("stray %qs between Objective-C++ methods",
23830 token
->type
== CPP_OPEN_BRACE
? "{" : "}");
23832 /* Finally, try to parse a block-declaration, or a function-definition. */
23834 cp_parser_block_declaration (parser
, /*statement_p=*/false);
23837 /* Parse a method signature. */
23840 cp_parser_objc_method_signature (cp_parser
* parser
, tree
* attributes
)
23842 tree rettype
, kwdparms
, optparms
;
23843 bool ellipsis
= false;
23844 bool is_class_method
;
23846 is_class_method
= cp_parser_objc_method_type (parser
);
23847 rettype
= cp_parser_objc_typename (parser
);
23848 *attributes
= NULL_TREE
;
23849 kwdparms
= cp_parser_objc_method_keyword_params (parser
, attributes
);
23850 if (kwdparms
== error_mark_node
)
23851 return error_mark_node
;
23852 optparms
= cp_parser_objc_method_tail_params_opt (parser
, &ellipsis
, attributes
);
23853 if (optparms
== error_mark_node
)
23854 return error_mark_node
;
23856 return objc_build_method_signature (is_class_method
, rettype
, kwdparms
, optparms
, ellipsis
);
23860 cp_parser_objc_method_maybe_bad_prefix_attributes (cp_parser
* parser
)
23863 cp_lexer_save_tokens (parser
->lexer
);
23864 tattr
= cp_parser_attributes_opt (parser
);
23865 gcc_assert (tattr
) ;
23867 /* If the attributes are followed by a method introducer, this is not allowed.
23868 Dump the attributes and flag the situation. */
23869 if (cp_lexer_next_token_is (parser
->lexer
, CPP_PLUS
)
23870 || cp_lexer_next_token_is (parser
->lexer
, CPP_MINUS
))
23873 /* Otherwise, the attributes introduce some interstitial code, possibly so
23874 rewind to allow that check. */
23875 cp_lexer_rollback_tokens (parser
->lexer
);
23879 /* Parse an Objective-C method prototype list. */
23882 cp_parser_objc_method_prototype_list (cp_parser
* parser
)
23884 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
23886 while (token
->keyword
!= RID_AT_END
&& token
->type
!= CPP_EOF
)
23888 if (token
->type
== CPP_PLUS
|| token
->type
== CPP_MINUS
)
23890 tree attributes
, sig
;
23891 bool is_class_method
;
23892 if (token
->type
== CPP_PLUS
)
23893 is_class_method
= true;
23895 is_class_method
= false;
23896 sig
= cp_parser_objc_method_signature (parser
, &attributes
);
23897 if (sig
== error_mark_node
)
23899 cp_parser_skip_to_end_of_block_or_statement (parser
);
23900 token
= cp_lexer_peek_token (parser
->lexer
);
23903 objc_add_method_declaration (is_class_method
, sig
, attributes
);
23904 cp_parser_consume_semicolon_at_end_of_statement (parser
);
23906 else if (token
->keyword
== RID_AT_PROPERTY
)
23907 cp_parser_objc_at_property_declaration (parser
);
23908 else if (token
->keyword
== RID_ATTRIBUTE
23909 && cp_parser_objc_method_maybe_bad_prefix_attributes(parser
))
23910 warning_at (cp_lexer_peek_token (parser
->lexer
)->location
,
23912 "prefix attributes are ignored for methods");
23914 /* Allow for interspersed non-ObjC++ code. */
23915 cp_parser_objc_interstitial_code (parser
);
23917 token
= cp_lexer_peek_token (parser
->lexer
);
23920 if (token
->type
!= CPP_EOF
)
23921 cp_lexer_consume_token (parser
->lexer
); /* Eat '@end'. */
23923 cp_parser_error (parser
, "expected %<@end%>");
23925 objc_finish_interface ();
23928 /* Parse an Objective-C method definition list. */
23931 cp_parser_objc_method_definition_list (cp_parser
* parser
)
23933 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
23935 while (token
->keyword
!= RID_AT_END
&& token
->type
!= CPP_EOF
)
23939 if (token
->type
== CPP_PLUS
|| token
->type
== CPP_MINUS
)
23942 tree sig
, attribute
;
23943 bool is_class_method
;
23944 if (token
->type
== CPP_PLUS
)
23945 is_class_method
= true;
23947 is_class_method
= false;
23948 push_deferring_access_checks (dk_deferred
);
23949 sig
= cp_parser_objc_method_signature (parser
, &attribute
);
23950 if (sig
== error_mark_node
)
23952 cp_parser_skip_to_end_of_block_or_statement (parser
);
23953 token
= cp_lexer_peek_token (parser
->lexer
);
23956 objc_start_method_definition (is_class_method
, sig
, attribute
,
23959 /* For historical reasons, we accept an optional semicolon. */
23960 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
23961 cp_lexer_consume_token (parser
->lexer
);
23963 ptk
= cp_lexer_peek_token (parser
->lexer
);
23964 if (!(ptk
->type
== CPP_PLUS
|| ptk
->type
== CPP_MINUS
23965 || ptk
->type
== CPP_EOF
|| ptk
->keyword
== RID_AT_END
))
23967 perform_deferred_access_checks ();
23968 stop_deferring_access_checks ();
23969 meth
= cp_parser_function_definition_after_declarator (parser
,
23971 pop_deferring_access_checks ();
23972 objc_finish_method_definition (meth
);
23975 /* The following case will be removed once @synthesize is
23976 completely implemented. */
23977 else if (token
->keyword
== RID_AT_PROPERTY
)
23978 cp_parser_objc_at_property_declaration (parser
);
23979 else if (token
->keyword
== RID_AT_SYNTHESIZE
)
23980 cp_parser_objc_at_synthesize_declaration (parser
);
23981 else if (token
->keyword
== RID_AT_DYNAMIC
)
23982 cp_parser_objc_at_dynamic_declaration (parser
);
23983 else if (token
->keyword
== RID_ATTRIBUTE
23984 && cp_parser_objc_method_maybe_bad_prefix_attributes(parser
))
23985 warning_at (token
->location
, OPT_Wattributes
,
23986 "prefix attributes are ignored for methods");
23988 /* Allow for interspersed non-ObjC++ code. */
23989 cp_parser_objc_interstitial_code (parser
);
23991 token
= cp_lexer_peek_token (parser
->lexer
);
23994 if (token
->type
!= CPP_EOF
)
23995 cp_lexer_consume_token (parser
->lexer
); /* Eat '@end'. */
23997 cp_parser_error (parser
, "expected %<@end%>");
23999 objc_finish_implementation ();
24002 /* Parse Objective-C ivars. */
24005 cp_parser_objc_class_ivars (cp_parser
* parser
)
24007 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
24009 if (token
->type
!= CPP_OPEN_BRACE
)
24010 return; /* No ivars specified. */
24012 cp_lexer_consume_token (parser
->lexer
); /* Eat '{'. */
24013 token
= cp_lexer_peek_token (parser
->lexer
);
24015 while (token
->type
!= CPP_CLOSE_BRACE
24016 && token
->keyword
!= RID_AT_END
&& token
->type
!= CPP_EOF
)
24018 cp_decl_specifier_seq declspecs
;
24019 int decl_class_or_enum_p
;
24020 tree prefix_attributes
;
24022 cp_parser_objc_visibility_spec (parser
);
24024 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_BRACE
))
24027 cp_parser_decl_specifier_seq (parser
,
24028 CP_PARSER_FLAGS_OPTIONAL
,
24030 &decl_class_or_enum_p
);
24032 /* auto, register, static, extern, mutable. */
24033 if (declspecs
.storage_class
!= sc_none
)
24035 cp_parser_error (parser
, "invalid type for instance variable");
24036 declspecs
.storage_class
= sc_none
;
24040 if (decl_spec_seq_has_spec_p (&declspecs
, ds_thread
))
24042 cp_parser_error (parser
, "invalid type for instance variable");
24043 declspecs
.locations
[ds_thread
] = 0;
24047 if (decl_spec_seq_has_spec_p (&declspecs
, ds_typedef
))
24049 cp_parser_error (parser
, "invalid type for instance variable");
24050 declspecs
.locations
[ds_thread
] = 0;
24053 prefix_attributes
= declspecs
.attributes
;
24054 declspecs
.attributes
= NULL_TREE
;
24056 /* Keep going until we hit the `;' at the end of the
24058 while (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
24060 tree width
= NULL_TREE
, attributes
, first_attribute
, decl
;
24061 cp_declarator
*declarator
= NULL
;
24062 int ctor_dtor_or_conv_p
;
24064 /* Check for a (possibly unnamed) bitfield declaration. */
24065 token
= cp_lexer_peek_token (parser
->lexer
);
24066 if (token
->type
== CPP_COLON
)
24069 if (token
->type
== CPP_NAME
24070 && (cp_lexer_peek_nth_token (parser
->lexer
, 2)->type
24073 /* Get the name of the bitfield. */
24074 declarator
= make_id_declarator (NULL_TREE
,
24075 cp_parser_identifier (parser
),
24079 cp_lexer_consume_token (parser
->lexer
); /* Eat ':'. */
24080 /* Get the width of the bitfield. */
24082 = cp_parser_constant_expression (parser
,
24083 /*allow_non_constant=*/false,
24088 /* Parse the declarator. */
24090 = cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_NAMED
,
24091 &ctor_dtor_or_conv_p
,
24092 /*parenthesized_p=*/NULL
,
24093 /*member_p=*/false);
24096 /* Look for attributes that apply to the ivar. */
24097 attributes
= cp_parser_attributes_opt (parser
);
24098 /* Remember which attributes are prefix attributes and
24100 first_attribute
= attributes
;
24101 /* Combine the attributes. */
24102 attributes
= chainon (prefix_attributes
, attributes
);
24105 /* Create the bitfield declaration. */
24106 decl
= grokbitfield (declarator
, &declspecs
,
24110 decl
= grokfield (declarator
, &declspecs
,
24111 NULL_TREE
, /*init_const_expr_p=*/false,
24112 NULL_TREE
, attributes
);
24114 /* Add the instance variable. */
24115 if (decl
!= error_mark_node
&& decl
!= NULL_TREE
)
24116 objc_add_instance_variable (decl
);
24118 /* Reset PREFIX_ATTRIBUTES. */
24119 while (attributes
&& TREE_CHAIN (attributes
) != first_attribute
)
24120 attributes
= TREE_CHAIN (attributes
);
24122 TREE_CHAIN (attributes
) = NULL_TREE
;
24124 token
= cp_lexer_peek_token (parser
->lexer
);
24126 if (token
->type
== CPP_COMMA
)
24128 cp_lexer_consume_token (parser
->lexer
); /* Eat ','. */
24134 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24135 token
= cp_lexer_peek_token (parser
->lexer
);
24138 if (token
->keyword
== RID_AT_END
)
24139 cp_parser_error (parser
, "expected %<}%>");
24141 /* Do not consume the RID_AT_END, so it will be read again as terminating
24142 the @interface of @implementation. */
24143 if (token
->keyword
!= RID_AT_END
&& token
->type
!= CPP_EOF
)
24144 cp_lexer_consume_token (parser
->lexer
); /* Eat '}'. */
24146 /* For historical reasons, we accept an optional semicolon. */
24147 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
24148 cp_lexer_consume_token (parser
->lexer
);
24151 /* Parse an Objective-C protocol declaration. */
24154 cp_parser_objc_protocol_declaration (cp_parser
* parser
, tree attributes
)
24156 tree proto
, protorefs
;
24159 cp_lexer_consume_token (parser
->lexer
); /* Eat '@protocol'. */
24160 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_NAME
))
24162 tok
= cp_lexer_peek_token (parser
->lexer
);
24163 error_at (tok
->location
, "identifier expected after %<@protocol%>");
24164 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24168 /* See if we have a forward declaration or a definition. */
24169 tok
= cp_lexer_peek_nth_token (parser
->lexer
, 2);
24171 /* Try a forward declaration first. */
24172 if (tok
->type
== CPP_COMMA
|| tok
->type
== CPP_SEMICOLON
)
24178 id
= cp_parser_identifier (parser
);
24179 if (id
== error_mark_node
)
24182 objc_declare_protocol (id
, attributes
);
24184 if(cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
24185 cp_lexer_consume_token (parser
->lexer
);
24189 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24192 /* Ok, we got a full-fledged definition (or at least should). */
24195 proto
= cp_parser_identifier (parser
);
24196 protorefs
= cp_parser_objc_protocol_refs_opt (parser
);
24197 objc_start_protocol (proto
, protorefs
, attributes
);
24198 cp_parser_objc_method_prototype_list (parser
);
24202 /* Parse an Objective-C superclass or category. */
24205 cp_parser_objc_superclass_or_category (cp_parser
*parser
,
24208 tree
*categ
, bool *is_class_extension
)
24210 cp_token
*next
= cp_lexer_peek_token (parser
->lexer
);
24212 *super
= *categ
= NULL_TREE
;
24213 *is_class_extension
= false;
24214 if (next
->type
== CPP_COLON
)
24216 cp_lexer_consume_token (parser
->lexer
); /* Eat ':'. */
24217 *super
= cp_parser_identifier (parser
);
24219 else if (next
->type
== CPP_OPEN_PAREN
)
24221 cp_lexer_consume_token (parser
->lexer
); /* Eat '('. */
24223 /* If there is no category name, and this is an @interface, we
24224 have a class extension. */
24225 if (iface_p
&& cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_PAREN
))
24227 *categ
= NULL_TREE
;
24228 *is_class_extension
= true;
24231 *categ
= cp_parser_identifier (parser
);
24233 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
24237 /* Parse an Objective-C class interface. */
24240 cp_parser_objc_class_interface (cp_parser
* parser
, tree attributes
)
24242 tree name
, super
, categ
, protos
;
24243 bool is_class_extension
;
24245 cp_lexer_consume_token (parser
->lexer
); /* Eat '@interface'. */
24246 name
= cp_parser_identifier (parser
);
24247 if (name
== error_mark_node
)
24249 /* It's hard to recover because even if valid @interface stuff
24250 is to follow, we can't compile it (or validate it) if we
24251 don't even know which class it refers to. Let's assume this
24252 was a stray '@interface' token in the stream and skip it.
24256 cp_parser_objc_superclass_or_category (parser
, true, &super
, &categ
,
24257 &is_class_extension
);
24258 protos
= cp_parser_objc_protocol_refs_opt (parser
);
24260 /* We have either a class or a category on our hands. */
24261 if (categ
|| is_class_extension
)
24262 objc_start_category_interface (name
, categ
, protos
, attributes
);
24265 objc_start_class_interface (name
, super
, protos
, attributes
);
24266 /* Handle instance variable declarations, if any. */
24267 cp_parser_objc_class_ivars (parser
);
24268 objc_continue_interface ();
24271 cp_parser_objc_method_prototype_list (parser
);
24274 /* Parse an Objective-C class implementation. */
24277 cp_parser_objc_class_implementation (cp_parser
* parser
)
24279 tree name
, super
, categ
;
24280 bool is_class_extension
;
24282 cp_lexer_consume_token (parser
->lexer
); /* Eat '@implementation'. */
24283 name
= cp_parser_identifier (parser
);
24284 if (name
== error_mark_node
)
24286 /* It's hard to recover because even if valid @implementation
24287 stuff is to follow, we can't compile it (or validate it) if
24288 we don't even know which class it refers to. Let's assume
24289 this was a stray '@implementation' token in the stream and
24294 cp_parser_objc_superclass_or_category (parser
, false, &super
, &categ
,
24295 &is_class_extension
);
24297 /* We have either a class or a category on our hands. */
24299 objc_start_category_implementation (name
, categ
);
24302 objc_start_class_implementation (name
, super
);
24303 /* Handle instance variable declarations, if any. */
24304 cp_parser_objc_class_ivars (parser
);
24305 objc_continue_implementation ();
24308 cp_parser_objc_method_definition_list (parser
);
24311 /* Consume the @end token and finish off the implementation. */
24314 cp_parser_objc_end_implementation (cp_parser
* parser
)
24316 cp_lexer_consume_token (parser
->lexer
); /* Eat '@end'. */
24317 objc_finish_implementation ();
24320 /* Parse an Objective-C declaration. */
24323 cp_parser_objc_declaration (cp_parser
* parser
, tree attributes
)
24325 /* Try to figure out what kind of declaration is present. */
24326 cp_token
*kwd
= cp_lexer_peek_token (parser
->lexer
);
24329 switch (kwd
->keyword
)
24334 error_at (kwd
->location
, "attributes may not be specified before"
24335 " the %<@%D%> Objective-C++ keyword",
24339 case RID_AT_IMPLEMENTATION
:
24340 warning_at (kwd
->location
, OPT_Wattributes
,
24341 "prefix attributes are ignored before %<@%D%>",
24348 switch (kwd
->keyword
)
24351 cp_parser_objc_alias_declaration (parser
);
24354 cp_parser_objc_class_declaration (parser
);
24356 case RID_AT_PROTOCOL
:
24357 cp_parser_objc_protocol_declaration (parser
, attributes
);
24359 case RID_AT_INTERFACE
:
24360 cp_parser_objc_class_interface (parser
, attributes
);
24362 case RID_AT_IMPLEMENTATION
:
24363 cp_parser_objc_class_implementation (parser
);
24366 cp_parser_objc_end_implementation (parser
);
24369 error_at (kwd
->location
, "misplaced %<@%D%> Objective-C++ construct",
24371 cp_parser_skip_to_end_of_block_or_statement (parser
);
24375 /* Parse an Objective-C try-catch-finally statement.
24377 objc-try-catch-finally-stmt:
24378 @try compound-statement objc-catch-clause-seq [opt]
24379 objc-finally-clause [opt]
24381 objc-catch-clause-seq:
24382 objc-catch-clause objc-catch-clause-seq [opt]
24385 @catch ( objc-exception-declaration ) compound-statement
24387 objc-finally-clause:
24388 @finally compound-statement
24390 objc-exception-declaration:
24391 parameter-declaration
24394 where '...' is to be interpreted literally, that is, it means CPP_ELLIPSIS.
24398 PS: This function is identical to c_parser_objc_try_catch_finally_statement
24399 for C. Keep them in sync. */
24402 cp_parser_objc_try_catch_finally_statement (cp_parser
*parser
)
24404 location_t location
;
24407 cp_parser_require_keyword (parser
, RID_AT_TRY
, RT_AT_TRY
);
24408 location
= cp_lexer_peek_token (parser
->lexer
)->location
;
24409 objc_maybe_warn_exceptions (location
);
24410 /* NB: The @try block needs to be wrapped in its own STATEMENT_LIST
24411 node, lest it get absorbed into the surrounding block. */
24412 stmt
= push_stmt_list ();
24413 cp_parser_compound_statement (parser
, NULL
, false, false);
24414 objc_begin_try_stmt (location
, pop_stmt_list (stmt
));
24416 while (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_AT_CATCH
))
24418 cp_parameter_declarator
*parm
;
24419 tree parameter_declaration
= error_mark_node
;
24420 bool seen_open_paren
= false;
24422 cp_lexer_consume_token (parser
->lexer
);
24423 if (cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
24424 seen_open_paren
= true;
24425 if (cp_lexer_next_token_is (parser
->lexer
, CPP_ELLIPSIS
))
24427 /* We have "@catch (...)" (where the '...' are literally
24428 what is in the code). Skip the '...'.
24429 parameter_declaration is set to NULL_TREE, and
24430 objc_being_catch_clauses() knows that that means
24432 cp_lexer_consume_token (parser
->lexer
);
24433 parameter_declaration
= NULL_TREE
;
24437 /* We have "@catch (NSException *exception)" or something
24438 like that. Parse the parameter declaration. */
24439 parm
= cp_parser_parameter_declaration (parser
, false, NULL
);
24441 parameter_declaration
= error_mark_node
;
24443 parameter_declaration
= grokdeclarator (parm
->declarator
,
24444 &parm
->decl_specifiers
,
24445 PARM
, /*initialized=*/0,
24446 /*attrlist=*/NULL
);
24448 if (seen_open_paren
)
24449 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
24452 /* If there was no open parenthesis, we are recovering from
24453 an error, and we are trying to figure out what mistake
24454 the user has made. */
24456 /* If there is an immediate closing parenthesis, the user
24457 probably forgot the opening one (ie, they typed "@catch
24458 NSException *e)". Parse the closing parenthesis and keep
24460 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_PAREN
))
24461 cp_lexer_consume_token (parser
->lexer
);
24463 /* If these is no immediate closing parenthesis, the user
24464 probably doesn't know that parenthesis are required at
24465 all (ie, they typed "@catch NSException *e"). So, just
24466 forget about the closing parenthesis and keep going. */
24468 objc_begin_catch_clause (parameter_declaration
);
24469 cp_parser_compound_statement (parser
, NULL
, false, false);
24470 objc_finish_catch_clause ();
24472 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_AT_FINALLY
))
24474 cp_lexer_consume_token (parser
->lexer
);
24475 location
= cp_lexer_peek_token (parser
->lexer
)->location
;
24476 /* NB: The @finally block needs to be wrapped in its own STATEMENT_LIST
24477 node, lest it get absorbed into the surrounding block. */
24478 stmt
= push_stmt_list ();
24479 cp_parser_compound_statement (parser
, NULL
, false, false);
24480 objc_build_finally_clause (location
, pop_stmt_list (stmt
));
24483 return objc_finish_try_stmt ();
24486 /* Parse an Objective-C synchronized statement.
24488 objc-synchronized-stmt:
24489 @synchronized ( expression ) compound-statement
24491 Returns NULL_TREE. */
24494 cp_parser_objc_synchronized_statement (cp_parser
*parser
)
24496 location_t location
;
24499 cp_parser_require_keyword (parser
, RID_AT_SYNCHRONIZED
, RT_AT_SYNCHRONIZED
);
24501 location
= cp_lexer_peek_token (parser
->lexer
)->location
;
24502 objc_maybe_warn_exceptions (location
);
24503 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
24504 lock
= cp_parser_expression (parser
, false, NULL
);
24505 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
24507 /* NB: The @synchronized block needs to be wrapped in its own STATEMENT_LIST
24508 node, lest it get absorbed into the surrounding block. */
24509 stmt
= push_stmt_list ();
24510 cp_parser_compound_statement (parser
, NULL
, false, false);
24512 return objc_build_synchronized (location
, lock
, pop_stmt_list (stmt
));
24515 /* Parse an Objective-C throw statement.
24518 @throw assignment-expression [opt] ;
24520 Returns a constructed '@throw' statement. */
24523 cp_parser_objc_throw_statement (cp_parser
*parser
)
24525 tree expr
= NULL_TREE
;
24526 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
24528 cp_parser_require_keyword (parser
, RID_AT_THROW
, RT_AT_THROW
);
24530 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
24531 expr
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
24533 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24535 return objc_build_throw_stmt (loc
, expr
);
24538 /* Parse an Objective-C statement. */
24541 cp_parser_objc_statement (cp_parser
* parser
)
24543 /* Try to figure out what kind of declaration is present. */
24544 cp_token
*kwd
= cp_lexer_peek_token (parser
->lexer
);
24546 switch (kwd
->keyword
)
24549 return cp_parser_objc_try_catch_finally_statement (parser
);
24550 case RID_AT_SYNCHRONIZED
:
24551 return cp_parser_objc_synchronized_statement (parser
);
24553 return cp_parser_objc_throw_statement (parser
);
24555 error_at (kwd
->location
, "misplaced %<@%D%> Objective-C++ construct",
24557 cp_parser_skip_to_end_of_block_or_statement (parser
);
24560 return error_mark_node
;
24563 /* If we are compiling ObjC++ and we see an __attribute__ we neeed to
24564 look ahead to see if an objc keyword follows the attributes. This
24565 is to detect the use of prefix attributes on ObjC @interface and
24569 cp_parser_objc_valid_prefix_attributes (cp_parser
* parser
, tree
*attrib
)
24571 cp_lexer_save_tokens (parser
->lexer
);
24572 *attrib
= cp_parser_attributes_opt (parser
);
24573 gcc_assert (*attrib
);
24574 if (OBJC_IS_AT_KEYWORD (cp_lexer_peek_token (parser
->lexer
)->keyword
))
24576 cp_lexer_commit_tokens (parser
->lexer
);
24579 cp_lexer_rollback_tokens (parser
->lexer
);
24583 /* This routine is a minimal replacement for
24584 c_parser_struct_declaration () used when parsing the list of
24585 types/names or ObjC++ properties. For example, when parsing the
24588 @property (readonly) int a, b, c;
24590 this function is responsible for parsing "int a, int b, int c" and
24591 returning the declarations as CHAIN of DECLs.
24593 TODO: Share this code with cp_parser_objc_class_ivars. It's very
24594 similar parsing. */
24596 cp_parser_objc_struct_declaration (cp_parser
*parser
)
24598 tree decls
= NULL_TREE
;
24599 cp_decl_specifier_seq declspecs
;
24600 int decl_class_or_enum_p
;
24601 tree prefix_attributes
;
24603 cp_parser_decl_specifier_seq (parser
,
24604 CP_PARSER_FLAGS_NONE
,
24606 &decl_class_or_enum_p
);
24608 if (declspecs
.type
== error_mark_node
)
24609 return error_mark_node
;
24611 /* auto, register, static, extern, mutable. */
24612 if (declspecs
.storage_class
!= sc_none
)
24614 cp_parser_error (parser
, "invalid type for property");
24615 declspecs
.storage_class
= sc_none
;
24619 if (decl_spec_seq_has_spec_p (&declspecs
, ds_thread
))
24621 cp_parser_error (parser
, "invalid type for property");
24622 declspecs
.locations
[ds_thread
] = 0;
24626 if (decl_spec_seq_has_spec_p (&declspecs
, ds_typedef
))
24628 cp_parser_error (parser
, "invalid type for property");
24629 declspecs
.locations
[ds_typedef
] = 0;
24632 prefix_attributes
= declspecs
.attributes
;
24633 declspecs
.attributes
= NULL_TREE
;
24635 /* Keep going until we hit the `;' at the end of the declaration. */
24636 while (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
24638 tree attributes
, first_attribute
, decl
;
24639 cp_declarator
*declarator
;
24642 /* Parse the declarator. */
24643 declarator
= cp_parser_declarator (parser
, CP_PARSER_DECLARATOR_NAMED
,
24644 NULL
, NULL
, false);
24646 /* Look for attributes that apply to the ivar. */
24647 attributes
= cp_parser_attributes_opt (parser
);
24648 /* Remember which attributes are prefix attributes and
24650 first_attribute
= attributes
;
24651 /* Combine the attributes. */
24652 attributes
= chainon (prefix_attributes
, attributes
);
24654 decl
= grokfield (declarator
, &declspecs
,
24655 NULL_TREE
, /*init_const_expr_p=*/false,
24656 NULL_TREE
, attributes
);
24658 if (decl
== error_mark_node
|| decl
== NULL_TREE
)
24659 return error_mark_node
;
24661 /* Reset PREFIX_ATTRIBUTES. */
24662 while (attributes
&& TREE_CHAIN (attributes
) != first_attribute
)
24663 attributes
= TREE_CHAIN (attributes
);
24665 TREE_CHAIN (attributes
) = NULL_TREE
;
24667 DECL_CHAIN (decl
) = decls
;
24670 token
= cp_lexer_peek_token (parser
->lexer
);
24671 if (token
->type
== CPP_COMMA
)
24673 cp_lexer_consume_token (parser
->lexer
); /* Eat ','. */
24682 /* Parse an Objective-C @property declaration. The syntax is:
24684 objc-property-declaration:
24685 '@property' objc-property-attributes[opt] struct-declaration ;
24687 objc-property-attributes:
24688 '(' objc-property-attribute-list ')'
24690 objc-property-attribute-list:
24691 objc-property-attribute
24692 objc-property-attribute-list, objc-property-attribute
24694 objc-property-attribute
24695 'getter' = identifier
24696 'setter' = identifier
24705 @property NSString *name;
24706 @property (readonly) id object;
24707 @property (retain, nonatomic, getter=getTheName) id name;
24708 @property int a, b, c;
24710 PS: This function is identical to
24711 c_parser_objc_at_property_declaration for C. Keep them in sync. */
24713 cp_parser_objc_at_property_declaration (cp_parser
*parser
)
24715 /* The following variables hold the attributes of the properties as
24716 parsed. They are 'false' or 'NULL_TREE' if the attribute was not
24717 seen. When we see an attribute, we set them to 'true' (if they
24718 are boolean properties) or to the identifier (if they have an
24719 argument, ie, for getter and setter). Note that here we only
24720 parse the list of attributes, check the syntax and accumulate the
24721 attributes that we find. objc_add_property_declaration() will
24722 then process the information. */
24723 bool property_assign
= false;
24724 bool property_copy
= false;
24725 tree property_getter_ident
= NULL_TREE
;
24726 bool property_nonatomic
= false;
24727 bool property_readonly
= false;
24728 bool property_readwrite
= false;
24729 bool property_retain
= false;
24730 tree property_setter_ident
= NULL_TREE
;
24732 /* 'properties' is the list of properties that we read. Usually a
24733 single one, but maybe more (eg, in "@property int a, b, c;" there
24738 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
24740 cp_lexer_consume_token (parser
->lexer
); /* Eat '@property'. */
24742 /* Parse the optional attribute list... */
24743 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
24746 cp_lexer_consume_token (parser
->lexer
);
24750 bool syntax_error
= false;
24751 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
24754 if (token
->type
!= CPP_NAME
)
24756 cp_parser_error (parser
, "expected identifier");
24759 keyword
= C_RID_CODE (token
->u
.value
);
24760 cp_lexer_consume_token (parser
->lexer
);
24763 case RID_ASSIGN
: property_assign
= true; break;
24764 case RID_COPY
: property_copy
= true; break;
24765 case RID_NONATOMIC
: property_nonatomic
= true; break;
24766 case RID_READONLY
: property_readonly
= true; break;
24767 case RID_READWRITE
: property_readwrite
= true; break;
24768 case RID_RETAIN
: property_retain
= true; break;
24772 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_EQ
))
24774 if (keyword
== RID_GETTER
)
24775 cp_parser_error (parser
,
24776 "missing %<=%> (after %<getter%> attribute)");
24778 cp_parser_error (parser
,
24779 "missing %<=%> (after %<setter%> attribute)");
24780 syntax_error
= true;
24783 cp_lexer_consume_token (parser
->lexer
); /* eat the = */
24784 if (!cp_parser_objc_selector_p (cp_lexer_peek_token (parser
->lexer
)->type
))
24786 cp_parser_error (parser
, "expected identifier");
24787 syntax_error
= true;
24790 if (keyword
== RID_SETTER
)
24792 if (property_setter_ident
!= NULL_TREE
)
24794 cp_parser_error (parser
, "the %<setter%> attribute may only be specified once");
24795 cp_lexer_consume_token (parser
->lexer
);
24798 property_setter_ident
= cp_parser_objc_selector (parser
);
24799 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COLON
))
24800 cp_parser_error (parser
, "setter name must terminate with %<:%>");
24802 cp_lexer_consume_token (parser
->lexer
);
24806 if (property_getter_ident
!= NULL_TREE
)
24808 cp_parser_error (parser
, "the %<getter%> attribute may only be specified once");
24809 cp_lexer_consume_token (parser
->lexer
);
24812 property_getter_ident
= cp_parser_objc_selector (parser
);
24816 cp_parser_error (parser
, "unknown property attribute");
24817 syntax_error
= true;
24824 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
24825 cp_lexer_consume_token (parser
->lexer
);
24830 /* FIXME: "@property (setter, assign);" will generate a spurious
24831 "error: expected ‘)’ before ‘,’ token". This is because
24832 cp_parser_require, unlike the C counterpart, will produce an
24833 error even if we are in error recovery. */
24834 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
24836 cp_parser_skip_to_closing_parenthesis (parser
,
24837 /*recovering=*/true,
24838 /*or_comma=*/false,
24839 /*consume_paren=*/true);
24843 /* ... and the property declaration(s). */
24844 properties
= cp_parser_objc_struct_declaration (parser
);
24846 if (properties
== error_mark_node
)
24848 cp_parser_skip_to_end_of_statement (parser
);
24849 /* If the next token is now a `;', consume it. */
24850 if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
24851 cp_lexer_consume_token (parser
->lexer
);
24855 if (properties
== NULL_TREE
)
24856 cp_parser_error (parser
, "expected identifier");
24859 /* Comma-separated properties are chained together in
24860 reverse order; add them one by one. */
24861 properties
= nreverse (properties
);
24863 for (; properties
; properties
= TREE_CHAIN (properties
))
24864 objc_add_property_declaration (loc
, copy_node (properties
),
24865 property_readonly
, property_readwrite
,
24866 property_assign
, property_retain
,
24867 property_copy
, property_nonatomic
,
24868 property_getter_ident
, property_setter_ident
);
24871 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24874 /* Parse an Objective-C++ @synthesize declaration. The syntax is:
24876 objc-synthesize-declaration:
24877 @synthesize objc-synthesize-identifier-list ;
24879 objc-synthesize-identifier-list:
24880 objc-synthesize-identifier
24881 objc-synthesize-identifier-list, objc-synthesize-identifier
24883 objc-synthesize-identifier
24885 identifier = identifier
24888 @synthesize MyProperty;
24889 @synthesize OneProperty, AnotherProperty=MyIvar, YetAnotherProperty;
24891 PS: This function is identical to c_parser_objc_at_synthesize_declaration
24892 for C. Keep them in sync.
24895 cp_parser_objc_at_synthesize_declaration (cp_parser
*parser
)
24897 tree list
= NULL_TREE
;
24899 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
24901 cp_lexer_consume_token (parser
->lexer
); /* Eat '@synthesize'. */
24904 tree property
, ivar
;
24905 property
= cp_parser_identifier (parser
);
24906 if (property
== error_mark_node
)
24908 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24911 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EQ
))
24913 cp_lexer_consume_token (parser
->lexer
);
24914 ivar
= cp_parser_identifier (parser
);
24915 if (ivar
== error_mark_node
)
24917 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24923 list
= chainon (list
, build_tree_list (ivar
, property
));
24924 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
24925 cp_lexer_consume_token (parser
->lexer
);
24929 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24930 objc_add_synthesize_declaration (loc
, list
);
24933 /* Parse an Objective-C++ @dynamic declaration. The syntax is:
24935 objc-dynamic-declaration:
24936 @dynamic identifier-list ;
24939 @dynamic MyProperty;
24940 @dynamic MyProperty, AnotherProperty;
24942 PS: This function is identical to c_parser_objc_at_dynamic_declaration
24943 for C. Keep them in sync.
24946 cp_parser_objc_at_dynamic_declaration (cp_parser
*parser
)
24948 tree list
= NULL_TREE
;
24950 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
24952 cp_lexer_consume_token (parser
->lexer
); /* Eat '@dynamic'. */
24956 property
= cp_parser_identifier (parser
);
24957 if (property
== error_mark_node
)
24959 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24962 list
= chainon (list
, build_tree_list (NULL
, property
));
24963 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
24964 cp_lexer_consume_token (parser
->lexer
);
24968 cp_parser_consume_semicolon_at_end_of_statement (parser
);
24969 objc_add_dynamic_declaration (loc
, list
);
24973 /* OpenMP 2.5 parsing routines. */
24975 /* Returns name of the next clause.
24976 If the clause is not recognized PRAGMA_OMP_CLAUSE_NONE is returned and
24977 the token is not consumed. Otherwise appropriate pragma_omp_clause is
24978 returned and the token is consumed. */
24980 static pragma_omp_clause
24981 cp_parser_omp_clause_name (cp_parser
*parser
)
24983 pragma_omp_clause result
= PRAGMA_OMP_CLAUSE_NONE
;
24985 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_IF
))
24986 result
= PRAGMA_OMP_CLAUSE_IF
;
24987 else if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_DEFAULT
))
24988 result
= PRAGMA_OMP_CLAUSE_DEFAULT
;
24989 else if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_PRIVATE
))
24990 result
= PRAGMA_OMP_CLAUSE_PRIVATE
;
24991 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
24993 tree id
= cp_lexer_peek_token (parser
->lexer
)->u
.value
;
24994 const char *p
= IDENTIFIER_POINTER (id
);
24999 if (!strcmp ("collapse", p
))
25000 result
= PRAGMA_OMP_CLAUSE_COLLAPSE
;
25001 else if (!strcmp ("copyin", p
))
25002 result
= PRAGMA_OMP_CLAUSE_COPYIN
;
25003 else if (!strcmp ("copyprivate", p
))
25004 result
= PRAGMA_OMP_CLAUSE_COPYPRIVATE
;
25007 if (!strcmp ("final", p
))
25008 result
= PRAGMA_OMP_CLAUSE_FINAL
;
25009 else if (!strcmp ("firstprivate", p
))
25010 result
= PRAGMA_OMP_CLAUSE_FIRSTPRIVATE
;
25013 if (!strcmp ("lastprivate", p
))
25014 result
= PRAGMA_OMP_CLAUSE_LASTPRIVATE
;
25017 if (!strcmp ("mergeable", p
))
25018 result
= PRAGMA_OMP_CLAUSE_MERGEABLE
;
25021 if (!strcmp ("nowait", p
))
25022 result
= PRAGMA_OMP_CLAUSE_NOWAIT
;
25023 else if (!strcmp ("num_threads", p
))
25024 result
= PRAGMA_OMP_CLAUSE_NUM_THREADS
;
25027 if (!strcmp ("ordered", p
))
25028 result
= PRAGMA_OMP_CLAUSE_ORDERED
;
25031 if (!strcmp ("reduction", p
))
25032 result
= PRAGMA_OMP_CLAUSE_REDUCTION
;
25035 if (!strcmp ("schedule", p
))
25036 result
= PRAGMA_OMP_CLAUSE_SCHEDULE
;
25037 else if (!strcmp ("shared", p
))
25038 result
= PRAGMA_OMP_CLAUSE_SHARED
;
25041 if (!strcmp ("untied", p
))
25042 result
= PRAGMA_OMP_CLAUSE_UNTIED
;
25047 if (result
!= PRAGMA_OMP_CLAUSE_NONE
)
25048 cp_lexer_consume_token (parser
->lexer
);
25053 /* Validate that a clause of the given type does not already exist. */
25056 check_no_duplicate_clause (tree clauses
, enum omp_clause_code code
,
25057 const char *name
, location_t location
)
25061 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
25062 if (OMP_CLAUSE_CODE (c
) == code
)
25064 error_at (location
, "too many %qs clauses", name
);
25072 variable-list , identifier
25074 In addition, we match a closing parenthesis. An opening parenthesis
25075 will have been consumed by the caller.
25077 If KIND is nonzero, create the appropriate node and install the decl
25078 in OMP_CLAUSE_DECL and add the node to the head of the list.
25080 If KIND is zero, create a TREE_LIST with the decl in TREE_PURPOSE;
25081 return the list created. */
25084 cp_parser_omp_var_list_no_open (cp_parser
*parser
, enum omp_clause_code kind
,
25092 token
= cp_lexer_peek_token (parser
->lexer
);
25093 name
= cp_parser_id_expression (parser
, /*template_p=*/false,
25094 /*check_dependency_p=*/true,
25095 /*template_p=*/NULL
,
25096 /*declarator_p=*/false,
25097 /*optional_p=*/false);
25098 if (name
== error_mark_node
)
25101 decl
= cp_parser_lookup_name_simple (parser
, name
, token
->location
);
25102 if (decl
== error_mark_node
)
25103 cp_parser_name_lookup_error (parser
, name
, decl
, NLE_NULL
,
25105 else if (kind
!= 0)
25107 tree u
= build_omp_clause (token
->location
, kind
);
25108 OMP_CLAUSE_DECL (u
) = decl
;
25109 OMP_CLAUSE_CHAIN (u
) = list
;
25113 list
= tree_cons (decl
, NULL_TREE
, list
);
25116 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_COMMA
))
25118 cp_lexer_consume_token (parser
->lexer
);
25121 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
25125 /* Try to resync to an unnested comma. Copied from
25126 cp_parser_parenthesized_expression_list. */
25128 ending
= cp_parser_skip_to_closing_parenthesis (parser
,
25129 /*recovering=*/true,
25131 /*consume_paren=*/true);
25139 /* Similarly, but expect leading and trailing parenthesis. This is a very
25140 common case for omp clauses. */
25143 cp_parser_omp_var_list (cp_parser
*parser
, enum omp_clause_code kind
, tree list
)
25145 if (cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25146 return cp_parser_omp_var_list_no_open (parser
, kind
, list
);
25151 collapse ( constant-expression ) */
25154 cp_parser_omp_clause_collapse (cp_parser
*parser
, tree list
, location_t location
)
25160 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
25161 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25164 num
= cp_parser_constant_expression (parser
, false, NULL
);
25166 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
25167 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
25168 /*or_comma=*/false,
25169 /*consume_paren=*/true);
25171 if (num
== error_mark_node
)
25173 num
= fold_non_dependent_expr (num
);
25174 if (!INTEGRAL_TYPE_P (TREE_TYPE (num
))
25175 || !host_integerp (num
, 0)
25176 || (n
= tree_low_cst (num
, 0)) <= 0
25179 error_at (loc
, "collapse argument needs positive constant integer expression");
25183 check_no_duplicate_clause (list
, OMP_CLAUSE_COLLAPSE
, "collapse", location
);
25184 c
= build_omp_clause (loc
, OMP_CLAUSE_COLLAPSE
);
25185 OMP_CLAUSE_CHAIN (c
) = list
;
25186 OMP_CLAUSE_COLLAPSE_EXPR (c
) = num
;
25192 default ( shared | none ) */
25195 cp_parser_omp_clause_default (cp_parser
*parser
, tree list
, location_t location
)
25197 enum omp_clause_default_kind kind
= OMP_CLAUSE_DEFAULT_UNSPECIFIED
;
25200 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25202 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
25204 tree id
= cp_lexer_peek_token (parser
->lexer
)->u
.value
;
25205 const char *p
= IDENTIFIER_POINTER (id
);
25210 if (strcmp ("none", p
) != 0)
25212 kind
= OMP_CLAUSE_DEFAULT_NONE
;
25216 if (strcmp ("shared", p
) != 0)
25218 kind
= OMP_CLAUSE_DEFAULT_SHARED
;
25225 cp_lexer_consume_token (parser
->lexer
);
25230 cp_parser_error (parser
, "expected %<none%> or %<shared%>");
25233 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
25234 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
25235 /*or_comma=*/false,
25236 /*consume_paren=*/true);
25238 if (kind
== OMP_CLAUSE_DEFAULT_UNSPECIFIED
)
25241 check_no_duplicate_clause (list
, OMP_CLAUSE_DEFAULT
, "default", location
);
25242 c
= build_omp_clause (location
, OMP_CLAUSE_DEFAULT
);
25243 OMP_CLAUSE_CHAIN (c
) = list
;
25244 OMP_CLAUSE_DEFAULT_KIND (c
) = kind
;
25250 final ( expression ) */
25253 cp_parser_omp_clause_final (cp_parser
*parser
, tree list
, location_t location
)
25257 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25260 t
= cp_parser_condition (parser
);
25262 if (t
== error_mark_node
25263 || !cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
25264 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
25265 /*or_comma=*/false,
25266 /*consume_paren=*/true);
25268 check_no_duplicate_clause (list
, OMP_CLAUSE_FINAL
, "final", location
);
25270 c
= build_omp_clause (location
, OMP_CLAUSE_FINAL
);
25271 OMP_CLAUSE_FINAL_EXPR (c
) = t
;
25272 OMP_CLAUSE_CHAIN (c
) = list
;
25278 if ( expression ) */
25281 cp_parser_omp_clause_if (cp_parser
*parser
, tree list
, location_t location
)
25285 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25288 t
= cp_parser_condition (parser
);
25290 if (t
== error_mark_node
25291 || !cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
25292 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
25293 /*or_comma=*/false,
25294 /*consume_paren=*/true);
25296 check_no_duplicate_clause (list
, OMP_CLAUSE_IF
, "if", location
);
25298 c
= build_omp_clause (location
, OMP_CLAUSE_IF
);
25299 OMP_CLAUSE_IF_EXPR (c
) = t
;
25300 OMP_CLAUSE_CHAIN (c
) = list
;
25309 cp_parser_omp_clause_mergeable (cp_parser
*parser ATTRIBUTE_UNUSED
,
25310 tree list
, location_t location
)
25314 check_no_duplicate_clause (list
, OMP_CLAUSE_MERGEABLE
, "mergeable",
25317 c
= build_omp_clause (location
, OMP_CLAUSE_MERGEABLE
);
25318 OMP_CLAUSE_CHAIN (c
) = list
;
25326 cp_parser_omp_clause_nowait (cp_parser
*parser ATTRIBUTE_UNUSED
,
25327 tree list
, location_t location
)
25331 check_no_duplicate_clause (list
, OMP_CLAUSE_NOWAIT
, "nowait", location
);
25333 c
= build_omp_clause (location
, OMP_CLAUSE_NOWAIT
);
25334 OMP_CLAUSE_CHAIN (c
) = list
;
25339 num_threads ( expression ) */
25342 cp_parser_omp_clause_num_threads (cp_parser
*parser
, tree list
,
25343 location_t location
)
25347 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25350 t
= cp_parser_expression (parser
, false, NULL
);
25352 if (t
== error_mark_node
25353 || !cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
25354 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
25355 /*or_comma=*/false,
25356 /*consume_paren=*/true);
25358 check_no_duplicate_clause (list
, OMP_CLAUSE_NUM_THREADS
,
25359 "num_threads", location
);
25361 c
= build_omp_clause (location
, OMP_CLAUSE_NUM_THREADS
);
25362 OMP_CLAUSE_NUM_THREADS_EXPR (c
) = t
;
25363 OMP_CLAUSE_CHAIN (c
) = list
;
25372 cp_parser_omp_clause_ordered (cp_parser
*parser ATTRIBUTE_UNUSED
,
25373 tree list
, location_t location
)
25377 check_no_duplicate_clause (list
, OMP_CLAUSE_ORDERED
,
25378 "ordered", location
);
25380 c
= build_omp_clause (location
, OMP_CLAUSE_ORDERED
);
25381 OMP_CLAUSE_CHAIN (c
) = list
;
25386 reduction ( reduction-operator : variable-list )
25388 reduction-operator:
25389 One of: + * - & ^ | && ||
25393 reduction-operator:
25394 One of: + * - & ^ | && || min max */
25397 cp_parser_omp_clause_reduction (cp_parser
*parser
, tree list
)
25399 enum tree_code code
;
25402 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25405 switch (cp_lexer_peek_token (parser
->lexer
)->type
)
25417 code
= BIT_AND_EXPR
;
25420 code
= BIT_XOR_EXPR
;
25423 code
= BIT_IOR_EXPR
;
25426 code
= TRUTH_ANDIF_EXPR
;
25429 code
= TRUTH_ORIF_EXPR
;
25433 tree id
= cp_lexer_peek_token (parser
->lexer
)->u
.value
;
25434 const char *p
= IDENTIFIER_POINTER (id
);
25436 if (strcmp (p
, "min") == 0)
25441 if (strcmp (p
, "max") == 0)
25449 cp_parser_error (parser
, "expected %<+%>, %<*%>, %<-%>, %<&%>, %<^%>, "
25450 "%<|%>, %<&&%>, %<||%>, %<min%> or %<max%>");
25452 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
25453 /*or_comma=*/false,
25454 /*consume_paren=*/true);
25457 cp_lexer_consume_token (parser
->lexer
);
25459 if (!cp_parser_require (parser
, CPP_COLON
, RT_COLON
))
25462 nlist
= cp_parser_omp_var_list_no_open (parser
, OMP_CLAUSE_REDUCTION
, list
);
25463 for (c
= nlist
; c
!= list
; c
= OMP_CLAUSE_CHAIN (c
))
25464 OMP_CLAUSE_REDUCTION_CODE (c
) = code
;
25470 schedule ( schedule-kind )
25471 schedule ( schedule-kind , expression )
25474 static | dynamic | guided | runtime | auto */
25477 cp_parser_omp_clause_schedule (cp_parser
*parser
, tree list
, location_t location
)
25481 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
25484 c
= build_omp_clause (location
, OMP_CLAUSE_SCHEDULE
);
25486 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
25488 tree id
= cp_lexer_peek_token (parser
->lexer
)->u
.value
;
25489 const char *p
= IDENTIFIER_POINTER (id
);
25494 if (strcmp ("dynamic", p
) != 0)
25496 OMP_CLAUSE_SCHEDULE_KIND (c
) = OMP_CLAUSE_SCHEDULE_DYNAMIC
;
25500 if (strcmp ("guided", p
) != 0)
25502 OMP_CLAUSE_SCHEDULE_KIND (c
) = OMP_CLAUSE_SCHEDULE_GUIDED
;
25506 if (strcmp ("runtime", p
) != 0)
25508 OMP_CLAUSE_SCHEDULE_KIND (c
) = OMP_CLAUSE_SCHEDULE_RUNTIME
;
25515 else if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_STATIC
))
25516 OMP_CLAUSE_SCHEDULE_KIND (c
) = OMP_CLAUSE_SCHEDULE_STATIC
;
25517 else if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_AUTO
))
25518 OMP_CLAUSE_SCHEDULE_KIND (c
) = OMP_CLAUSE_SCHEDULE_AUTO
;
25521 cp_lexer_consume_token (parser
->lexer
);
25523 if (cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
25526 cp_lexer_consume_token (parser
->lexer
);
25528 token
= cp_lexer_peek_token (parser
->lexer
);
25529 t
= cp_parser_assignment_expression (parser
, false, NULL
);
25531 if (t
== error_mark_node
)
25533 else if (OMP_CLAUSE_SCHEDULE_KIND (c
) == OMP_CLAUSE_SCHEDULE_RUNTIME
)
25534 error_at (token
->location
, "schedule %<runtime%> does not take "
25535 "a %<chunk_size%> parameter");
25536 else if (OMP_CLAUSE_SCHEDULE_KIND (c
) == OMP_CLAUSE_SCHEDULE_AUTO
)
25537 error_at (token
->location
, "schedule %<auto%> does not take "
25538 "a %<chunk_size%> parameter");
25540 OMP_CLAUSE_SCHEDULE_CHUNK_EXPR (c
) = t
;
25542 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
25545 else if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_COMMA_CLOSE_PAREN
))
25548 check_no_duplicate_clause (list
, OMP_CLAUSE_SCHEDULE
, "schedule", location
);
25549 OMP_CLAUSE_CHAIN (c
) = list
;
25553 cp_parser_error (parser
, "invalid schedule kind");
25555 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
25556 /*or_comma=*/false,
25557 /*consume_paren=*/true);
25565 cp_parser_omp_clause_untied (cp_parser
*parser ATTRIBUTE_UNUSED
,
25566 tree list
, location_t location
)
25570 check_no_duplicate_clause (list
, OMP_CLAUSE_UNTIED
, "untied", location
);
25572 c
= build_omp_clause (location
, OMP_CLAUSE_UNTIED
);
25573 OMP_CLAUSE_CHAIN (c
) = list
;
25577 /* Parse all OpenMP clauses. The set clauses allowed by the directive
25578 is a bitmask in MASK. Return the list of clauses found; the result
25579 of clause default goes in *pdefault. */
25582 cp_parser_omp_all_clauses (cp_parser
*parser
, unsigned int mask
,
25583 const char *where
, cp_token
*pragma_tok
)
25585 tree clauses
= NULL
;
25587 cp_token
*token
= NULL
;
25589 while (cp_lexer_next_token_is_not (parser
->lexer
, CPP_PRAGMA_EOL
))
25591 pragma_omp_clause c_kind
;
25592 const char *c_name
;
25593 tree prev
= clauses
;
25595 if (!first
&& cp_lexer_next_token_is (parser
->lexer
, CPP_COMMA
))
25596 cp_lexer_consume_token (parser
->lexer
);
25598 token
= cp_lexer_peek_token (parser
->lexer
);
25599 c_kind
= cp_parser_omp_clause_name (parser
);
25604 case PRAGMA_OMP_CLAUSE_COLLAPSE
:
25605 clauses
= cp_parser_omp_clause_collapse (parser
, clauses
,
25607 c_name
= "collapse";
25609 case PRAGMA_OMP_CLAUSE_COPYIN
:
25610 clauses
= cp_parser_omp_var_list (parser
, OMP_CLAUSE_COPYIN
, clauses
);
25613 case PRAGMA_OMP_CLAUSE_COPYPRIVATE
:
25614 clauses
= cp_parser_omp_var_list (parser
, OMP_CLAUSE_COPYPRIVATE
,
25616 c_name
= "copyprivate";
25618 case PRAGMA_OMP_CLAUSE_DEFAULT
:
25619 clauses
= cp_parser_omp_clause_default (parser
, clauses
,
25621 c_name
= "default";
25623 case PRAGMA_OMP_CLAUSE_FINAL
:
25624 clauses
= cp_parser_omp_clause_final (parser
, clauses
, token
->location
);
25627 case PRAGMA_OMP_CLAUSE_FIRSTPRIVATE
:
25628 clauses
= cp_parser_omp_var_list (parser
, OMP_CLAUSE_FIRSTPRIVATE
,
25630 c_name
= "firstprivate";
25632 case PRAGMA_OMP_CLAUSE_IF
:
25633 clauses
= cp_parser_omp_clause_if (parser
, clauses
, token
->location
);
25636 case PRAGMA_OMP_CLAUSE_LASTPRIVATE
:
25637 clauses
= cp_parser_omp_var_list (parser
, OMP_CLAUSE_LASTPRIVATE
,
25639 c_name
= "lastprivate";
25641 case PRAGMA_OMP_CLAUSE_MERGEABLE
:
25642 clauses
= cp_parser_omp_clause_mergeable (parser
, clauses
,
25644 c_name
= "mergeable";
25646 case PRAGMA_OMP_CLAUSE_NOWAIT
:
25647 clauses
= cp_parser_omp_clause_nowait (parser
, clauses
, token
->location
);
25650 case PRAGMA_OMP_CLAUSE_NUM_THREADS
:
25651 clauses
= cp_parser_omp_clause_num_threads (parser
, clauses
,
25653 c_name
= "num_threads";
25655 case PRAGMA_OMP_CLAUSE_ORDERED
:
25656 clauses
= cp_parser_omp_clause_ordered (parser
, clauses
,
25658 c_name
= "ordered";
25660 case PRAGMA_OMP_CLAUSE_PRIVATE
:
25661 clauses
= cp_parser_omp_var_list (parser
, OMP_CLAUSE_PRIVATE
,
25663 c_name
= "private";
25665 case PRAGMA_OMP_CLAUSE_REDUCTION
:
25666 clauses
= cp_parser_omp_clause_reduction (parser
, clauses
);
25667 c_name
= "reduction";
25669 case PRAGMA_OMP_CLAUSE_SCHEDULE
:
25670 clauses
= cp_parser_omp_clause_schedule (parser
, clauses
,
25672 c_name
= "schedule";
25674 case PRAGMA_OMP_CLAUSE_SHARED
:
25675 clauses
= cp_parser_omp_var_list (parser
, OMP_CLAUSE_SHARED
,
25679 case PRAGMA_OMP_CLAUSE_UNTIED
:
25680 clauses
= cp_parser_omp_clause_untied (parser
, clauses
,
25685 cp_parser_error (parser
, "expected %<#pragma omp%> clause");
25689 if (((mask
>> c_kind
) & 1) == 0)
25691 /* Remove the invalid clause(s) from the list to avoid
25692 confusing the rest of the compiler. */
25694 error_at (token
->location
, "%qs is not valid for %qs", c_name
, where
);
25698 cp_parser_skip_to_pragma_eol (parser
, pragma_tok
);
25699 return finish_omp_clauses (clauses
);
25706 In practice, we're also interested in adding the statement to an
25707 outer node. So it is convenient if we work around the fact that
25708 cp_parser_statement calls add_stmt. */
25711 cp_parser_begin_omp_structured_block (cp_parser
*parser
)
25713 unsigned save
= parser
->in_statement
;
25715 /* Only move the values to IN_OMP_BLOCK if they weren't false.
25716 This preserves the "not within loop or switch" style error messages
25717 for nonsense cases like
25723 if (parser
->in_statement
)
25724 parser
->in_statement
= IN_OMP_BLOCK
;
25730 cp_parser_end_omp_structured_block (cp_parser
*parser
, unsigned save
)
25732 parser
->in_statement
= save
;
25736 cp_parser_omp_structured_block (cp_parser
*parser
)
25738 tree stmt
= begin_omp_structured_block ();
25739 unsigned int save
= cp_parser_begin_omp_structured_block (parser
);
25741 cp_parser_statement (parser
, NULL_TREE
, false, NULL
);
25743 cp_parser_end_omp_structured_block (parser
, save
);
25744 return finish_omp_structured_block (stmt
);
25748 # pragma omp atomic new-line
25752 x binop= expr | x++ | ++x | x-- | --x
25754 +, *, -, /, &, ^, |, <<, >>
25756 where x is an lvalue expression with scalar type.
25759 # pragma omp atomic new-line
25762 # pragma omp atomic read new-line
25765 # pragma omp atomic write new-line
25768 # pragma omp atomic update new-line
25771 # pragma omp atomic capture new-line
25774 # pragma omp atomic capture new-line
25782 expression-stmt | x = x binop expr
25784 v = x binop= expr | v = x++ | v = ++x | v = x-- | v = --x
25786 { v = x; update-stmt; } | { update-stmt; v = x; }
25788 where x and v are lvalue expressions with scalar type. */
25791 cp_parser_omp_atomic (cp_parser
*parser
, cp_token
*pragma_tok
)
25793 tree lhs
= NULL_TREE
, rhs
= NULL_TREE
, v
= NULL_TREE
, lhs1
= NULL_TREE
;
25794 tree rhs1
= NULL_TREE
, orig_lhs
;
25795 enum tree_code code
= OMP_ATOMIC
, opcode
= NOP_EXPR
;
25796 bool structured_block
= false;
25798 if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
25800 tree id
= cp_lexer_peek_token (parser
->lexer
)->u
.value
;
25801 const char *p
= IDENTIFIER_POINTER (id
);
25803 if (!strcmp (p
, "read"))
25804 code
= OMP_ATOMIC_READ
;
25805 else if (!strcmp (p
, "write"))
25807 else if (!strcmp (p
, "update"))
25809 else if (!strcmp (p
, "capture"))
25810 code
= OMP_ATOMIC_CAPTURE_NEW
;
25814 cp_lexer_consume_token (parser
->lexer
);
25816 cp_parser_require_pragma_eol (parser
, pragma_tok
);
25820 case OMP_ATOMIC_READ
:
25821 case NOP_EXPR
: /* atomic write */
25822 v
= cp_parser_unary_expression (parser
, /*address_p=*/false,
25823 /*cast_p=*/false, NULL
);
25824 if (v
== error_mark_node
)
25826 if (!cp_parser_require (parser
, CPP_EQ
, RT_EQ
))
25828 if (code
== NOP_EXPR
)
25829 lhs
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
25831 lhs
= cp_parser_unary_expression (parser
, /*address_p=*/false,
25832 /*cast_p=*/false, NULL
);
25833 if (lhs
== error_mark_node
)
25835 if (code
== NOP_EXPR
)
25837 /* atomic write is represented by OMP_ATOMIC with NOP_EXPR
25845 case OMP_ATOMIC_CAPTURE_NEW
:
25846 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
25848 cp_lexer_consume_token (parser
->lexer
);
25849 structured_block
= true;
25853 v
= cp_parser_unary_expression (parser
, /*address_p=*/false,
25854 /*cast_p=*/false, NULL
);
25855 if (v
== error_mark_node
)
25857 if (!cp_parser_require (parser
, CPP_EQ
, RT_EQ
))
25865 lhs
= cp_parser_unary_expression (parser
, /*address_p=*/false,
25866 /*cast_p=*/false, NULL
);
25868 switch (TREE_CODE (lhs
))
25873 case POSTINCREMENT_EXPR
:
25874 if (code
== OMP_ATOMIC_CAPTURE_NEW
&& !structured_block
)
25875 code
= OMP_ATOMIC_CAPTURE_OLD
;
25877 case PREINCREMENT_EXPR
:
25878 lhs
= TREE_OPERAND (lhs
, 0);
25879 opcode
= PLUS_EXPR
;
25880 rhs
= integer_one_node
;
25883 case POSTDECREMENT_EXPR
:
25884 if (code
== OMP_ATOMIC_CAPTURE_NEW
&& !structured_block
)
25885 code
= OMP_ATOMIC_CAPTURE_OLD
;
25887 case PREDECREMENT_EXPR
:
25888 lhs
= TREE_OPERAND (lhs
, 0);
25889 opcode
= MINUS_EXPR
;
25890 rhs
= integer_one_node
;
25893 case COMPOUND_EXPR
:
25894 if (TREE_CODE (TREE_OPERAND (lhs
, 0)) == SAVE_EXPR
25895 && TREE_CODE (TREE_OPERAND (lhs
, 1)) == COMPOUND_EXPR
25896 && TREE_CODE (TREE_OPERAND (TREE_OPERAND (lhs
, 1), 0)) == MODIFY_EXPR
25897 && TREE_OPERAND (TREE_OPERAND (lhs
, 1), 1) == TREE_OPERAND (lhs
, 0)
25898 && TREE_CODE (TREE_TYPE (TREE_OPERAND (TREE_OPERAND
25899 (TREE_OPERAND (lhs
, 1), 0), 0)))
25901 /* Undo effects of boolean_increment for post {in,de}crement. */
25902 lhs
= TREE_OPERAND (TREE_OPERAND (lhs
, 1), 0);
25905 if (TREE_CODE (lhs
) == MODIFY_EXPR
25906 && TREE_CODE (TREE_TYPE (TREE_OPERAND (lhs
, 0))) == BOOLEAN_TYPE
)
25908 /* Undo effects of boolean_increment. */
25909 if (integer_onep (TREE_OPERAND (lhs
, 1)))
25911 /* This is pre or post increment. */
25912 rhs
= TREE_OPERAND (lhs
, 1);
25913 lhs
= TREE_OPERAND (lhs
, 0);
25915 if (code
== OMP_ATOMIC_CAPTURE_NEW
25916 && !structured_block
25917 && TREE_CODE (orig_lhs
) == COMPOUND_EXPR
)
25918 code
= OMP_ATOMIC_CAPTURE_OLD
;
25924 switch (cp_lexer_peek_token (parser
->lexer
)->type
)
25927 opcode
= MULT_EXPR
;
25930 opcode
= TRUNC_DIV_EXPR
;
25933 opcode
= PLUS_EXPR
;
25936 opcode
= MINUS_EXPR
;
25938 case CPP_LSHIFT_EQ
:
25939 opcode
= LSHIFT_EXPR
;
25941 case CPP_RSHIFT_EQ
:
25942 opcode
= RSHIFT_EXPR
;
25945 opcode
= BIT_AND_EXPR
;
25948 opcode
= BIT_IOR_EXPR
;
25951 opcode
= BIT_XOR_EXPR
;
25954 if (structured_block
|| code
== OMP_ATOMIC
)
25956 enum cp_parser_prec oprec
;
25958 cp_lexer_consume_token (parser
->lexer
);
25959 rhs1
= cp_parser_unary_expression (parser
, /*address_p=*/false,
25960 /*cast_p=*/false, NULL
);
25961 if (rhs1
== error_mark_node
)
25963 token
= cp_lexer_peek_token (parser
->lexer
);
25964 switch (token
->type
)
25966 case CPP_SEMICOLON
:
25967 if (code
== OMP_ATOMIC_CAPTURE_NEW
)
25969 code
= OMP_ATOMIC_CAPTURE_OLD
;
25974 cp_lexer_consume_token (parser
->lexer
);
25977 cp_parser_error (parser
,
25978 "invalid form of %<#pragma omp atomic%>");
25981 opcode
= MULT_EXPR
;
25984 opcode
= TRUNC_DIV_EXPR
;
25987 opcode
= PLUS_EXPR
;
25990 opcode
= MINUS_EXPR
;
25993 opcode
= LSHIFT_EXPR
;
25996 opcode
= RSHIFT_EXPR
;
25999 opcode
= BIT_AND_EXPR
;
26002 opcode
= BIT_IOR_EXPR
;
26005 opcode
= BIT_XOR_EXPR
;
26008 cp_parser_error (parser
,
26009 "invalid operator for %<#pragma omp atomic%>");
26012 oprec
= TOKEN_PRECEDENCE (token
);
26013 gcc_assert (oprec
!= PREC_NOT_OPERATOR
);
26014 if (commutative_tree_code (opcode
))
26015 oprec
= (enum cp_parser_prec
) (oprec
- 1);
26016 cp_lexer_consume_token (parser
->lexer
);
26017 rhs
= cp_parser_binary_expression (parser
, false, false,
26019 if (rhs
== error_mark_node
)
26025 cp_parser_error (parser
,
26026 "invalid operator for %<#pragma omp atomic%>");
26029 cp_lexer_consume_token (parser
->lexer
);
26031 rhs
= cp_parser_expression (parser
, false, NULL
);
26032 if (rhs
== error_mark_node
)
26037 if (structured_block
&& code
== OMP_ATOMIC_CAPTURE_NEW
)
26039 if (!cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
))
26041 v
= cp_parser_unary_expression (parser
, /*address_p=*/false,
26042 /*cast_p=*/false, NULL
);
26043 if (v
== error_mark_node
)
26045 if (!cp_parser_require (parser
, CPP_EQ
, RT_EQ
))
26047 lhs1
= cp_parser_unary_expression (parser
, /*address_p=*/false,
26048 /*cast_p=*/false, NULL
);
26049 if (lhs1
== error_mark_node
)
26052 if (structured_block
)
26054 cp_parser_consume_semicolon_at_end_of_statement (parser
);
26055 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
26058 finish_omp_atomic (code
, opcode
, lhs
, rhs
, v
, lhs1
, rhs1
);
26059 if (!structured_block
)
26060 cp_parser_consume_semicolon_at_end_of_statement (parser
);
26064 cp_parser_skip_to_end_of_block_or_statement (parser
);
26065 if (structured_block
)
26067 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_BRACE
))
26068 cp_lexer_consume_token (parser
->lexer
);
26069 else if (code
== OMP_ATOMIC_CAPTURE_NEW
)
26071 cp_parser_skip_to_end_of_block_or_statement (parser
);
26072 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_BRACE
))
26073 cp_lexer_consume_token (parser
->lexer
);
26080 # pragma omp barrier new-line */
26083 cp_parser_omp_barrier (cp_parser
*parser
, cp_token
*pragma_tok
)
26085 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26086 finish_omp_barrier ();
26090 # pragma omp critical [(name)] new-line
26091 structured-block */
26094 cp_parser_omp_critical (cp_parser
*parser
, cp_token
*pragma_tok
)
26096 tree stmt
, name
= NULL
;
26098 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
26100 cp_lexer_consume_token (parser
->lexer
);
26102 name
= cp_parser_identifier (parser
);
26104 if (name
== error_mark_node
26105 || !cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
26106 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
26107 /*or_comma=*/false,
26108 /*consume_paren=*/true);
26109 if (name
== error_mark_node
)
26112 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26114 stmt
= cp_parser_omp_structured_block (parser
);
26115 return c_finish_omp_critical (input_location
, stmt
, name
);
26119 # pragma omp flush flush-vars[opt] new-line
26122 ( variable-list ) */
26125 cp_parser_omp_flush (cp_parser
*parser
, cp_token
*pragma_tok
)
26127 if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_PAREN
))
26128 (void) cp_parser_omp_var_list (parser
, OMP_CLAUSE_ERROR
, NULL
);
26129 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26131 finish_omp_flush ();
26134 /* Helper function, to parse omp for increment expression. */
26137 cp_parser_omp_for_cond (cp_parser
*parser
, tree decl
)
26139 tree cond
= cp_parser_binary_expression (parser
, false, true,
26140 PREC_NOT_OPERATOR
, NULL
);
26141 if (cond
== error_mark_node
26142 || cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
26144 cp_parser_skip_to_end_of_statement (parser
);
26145 return error_mark_node
;
26148 switch (TREE_CODE (cond
))
26156 return error_mark_node
;
26159 /* If decl is an iterator, preserve LHS and RHS of the relational
26160 expr until finish_omp_for. */
26162 && (type_dependent_expression_p (decl
)
26163 || CLASS_TYPE_P (TREE_TYPE (decl
))))
26166 return build_x_binary_op (input_location
, TREE_CODE (cond
),
26167 TREE_OPERAND (cond
, 0), ERROR_MARK
,
26168 TREE_OPERAND (cond
, 1), ERROR_MARK
,
26169 /*overload=*/NULL
, tf_warning_or_error
);
26172 /* Helper function, to parse omp for increment expression. */
26175 cp_parser_omp_for_incr (cp_parser
*parser
, tree decl
)
26177 cp_token
*token
= cp_lexer_peek_token (parser
->lexer
);
26183 if (token
->type
== CPP_PLUS_PLUS
|| token
->type
== CPP_MINUS_MINUS
)
26185 op
= (token
->type
== CPP_PLUS_PLUS
26186 ? PREINCREMENT_EXPR
: PREDECREMENT_EXPR
);
26187 cp_lexer_consume_token (parser
->lexer
);
26188 lhs
= cp_parser_cast_expression (parser
, false, false, NULL
);
26190 return error_mark_node
;
26191 return build2 (op
, TREE_TYPE (decl
), decl
, NULL_TREE
);
26194 lhs
= cp_parser_primary_expression (parser
, false, false, false, &idk
);
26196 return error_mark_node
;
26198 token
= cp_lexer_peek_token (parser
->lexer
);
26199 if (token
->type
== CPP_PLUS_PLUS
|| token
->type
== CPP_MINUS_MINUS
)
26201 op
= (token
->type
== CPP_PLUS_PLUS
26202 ? POSTINCREMENT_EXPR
: POSTDECREMENT_EXPR
);
26203 cp_lexer_consume_token (parser
->lexer
);
26204 return build2 (op
, TREE_TYPE (decl
), decl
, NULL_TREE
);
26207 op
= cp_parser_assignment_operator_opt (parser
);
26208 if (op
== ERROR_MARK
)
26209 return error_mark_node
;
26211 if (op
!= NOP_EXPR
)
26213 rhs
= cp_parser_assignment_expression (parser
, false, NULL
);
26214 rhs
= build2 (op
, TREE_TYPE (decl
), decl
, rhs
);
26215 return build2 (MODIFY_EXPR
, TREE_TYPE (decl
), decl
, rhs
);
26218 lhs
= cp_parser_binary_expression (parser
, false, false,
26219 PREC_ADDITIVE_EXPRESSION
, NULL
);
26220 token
= cp_lexer_peek_token (parser
->lexer
);
26221 decl_first
= lhs
== decl
;
26224 if (token
->type
!= CPP_PLUS
26225 && token
->type
!= CPP_MINUS
)
26226 return error_mark_node
;
26230 op
= token
->type
== CPP_PLUS
? PLUS_EXPR
: MINUS_EXPR
;
26231 cp_lexer_consume_token (parser
->lexer
);
26232 rhs
= cp_parser_binary_expression (parser
, false, false,
26233 PREC_ADDITIVE_EXPRESSION
, NULL
);
26234 token
= cp_lexer_peek_token (parser
->lexer
);
26235 if (token
->type
== CPP_PLUS
|| token
->type
== CPP_MINUS
|| decl_first
)
26237 if (lhs
== NULL_TREE
)
26239 if (op
== PLUS_EXPR
)
26242 lhs
= build_x_unary_op (input_location
, NEGATE_EXPR
, rhs
,
26243 tf_warning_or_error
);
26246 lhs
= build_x_binary_op (input_location
, op
, lhs
, ERROR_MARK
, rhs
,
26247 ERROR_MARK
, NULL
, tf_warning_or_error
);
26250 while (token
->type
== CPP_PLUS
|| token
->type
== CPP_MINUS
);
26254 if (rhs
!= decl
|| op
== MINUS_EXPR
)
26255 return error_mark_node
;
26256 rhs
= build2 (op
, TREE_TYPE (decl
), lhs
, decl
);
26259 rhs
= build2 (PLUS_EXPR
, TREE_TYPE (decl
), decl
, lhs
);
26261 return build2 (MODIFY_EXPR
, TREE_TYPE (decl
), decl
, rhs
);
26264 /* Parse the restricted form of the for statement allowed by OpenMP. */
26267 cp_parser_omp_for_loop (cp_parser
*parser
, tree clauses
, tree
*par_clauses
)
26269 tree init
, cond
, incr
, body
, decl
, pre_body
= NULL_TREE
, ret
;
26270 tree real_decl
, initv
, condv
, incrv
, declv
;
26271 tree this_pre_body
, cl
;
26272 location_t loc_first
;
26273 bool collapse_err
= false;
26274 int i
, collapse
= 1, nbraces
= 0;
26275 VEC(tree
,gc
) *for_block
= make_tree_vector ();
26277 for (cl
= clauses
; cl
; cl
= OMP_CLAUSE_CHAIN (cl
))
26278 if (OMP_CLAUSE_CODE (cl
) == OMP_CLAUSE_COLLAPSE
)
26279 collapse
= tree_low_cst (OMP_CLAUSE_COLLAPSE_EXPR (cl
), 0);
26281 gcc_assert (collapse
>= 1);
26283 declv
= make_tree_vec (collapse
);
26284 initv
= make_tree_vec (collapse
);
26285 condv
= make_tree_vec (collapse
);
26286 incrv
= make_tree_vec (collapse
);
26288 loc_first
= cp_lexer_peek_token (parser
->lexer
)->location
;
26290 for (i
= 0; i
< collapse
; i
++)
26292 int bracecount
= 0;
26293 bool add_private_clause
= false;
26296 if (!cp_lexer_next_token_is_keyword (parser
->lexer
, RID_FOR
))
26298 cp_parser_error (parser
, "for statement expected");
26301 loc
= cp_lexer_consume_token (parser
->lexer
)->location
;
26303 if (!cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
))
26306 init
= decl
= real_decl
= NULL
;
26307 this_pre_body
= push_stmt_list ();
26308 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
26310 /* See 2.5.1 (in OpenMP 3.0, similar wording is in 2.5 standard too):
26314 integer-type var = lb
26315 random-access-iterator-type var = lb
26316 pointer-type var = lb
26318 cp_decl_specifier_seq type_specifiers
;
26320 /* First, try to parse as an initialized declaration. See
26321 cp_parser_condition, from whence the bulk of this is copied. */
26323 cp_parser_parse_tentatively (parser
);
26324 cp_parser_type_specifier_seq (parser
, /*is_declaration=*/true,
26325 /*is_trailing_return=*/false,
26327 if (cp_parser_parse_definitely (parser
))
26329 /* If parsing a type specifier seq succeeded, then this
26330 MUST be a initialized declaration. */
26331 tree asm_specification
, attributes
;
26332 cp_declarator
*declarator
;
26334 declarator
= cp_parser_declarator (parser
,
26335 CP_PARSER_DECLARATOR_NAMED
,
26336 /*ctor_dtor_or_conv_p=*/NULL
,
26337 /*parenthesized_p=*/NULL
,
26338 /*member_p=*/false);
26339 attributes
= cp_parser_attributes_opt (parser
);
26340 asm_specification
= cp_parser_asm_specification_opt (parser
);
26342 if (declarator
== cp_error_declarator
)
26343 cp_parser_skip_to_end_of_statement (parser
);
26347 tree pushed_scope
, auto_node
;
26349 decl
= start_decl (declarator
, &type_specifiers
,
26350 SD_INITIALIZED
, attributes
,
26351 /*prefix_attributes=*/NULL_TREE
,
26354 auto_node
= type_uses_auto (TREE_TYPE (decl
));
26355 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_EQ
))
26357 if (cp_lexer_next_token_is (parser
->lexer
,
26359 error ("parenthesized initialization is not allowed in "
26360 "OpenMP %<for%> loop");
26362 /* Trigger an error. */
26363 cp_parser_require (parser
, CPP_EQ
, RT_EQ
);
26365 init
= error_mark_node
;
26366 cp_parser_skip_to_end_of_statement (parser
);
26368 else if (CLASS_TYPE_P (TREE_TYPE (decl
))
26369 || type_dependent_expression_p (decl
)
26372 bool is_direct_init
, is_non_constant_init
;
26374 init
= cp_parser_initializer (parser
,
26376 &is_non_constant_init
);
26381 = do_auto_deduction (TREE_TYPE (decl
), init
,
26384 if (!CLASS_TYPE_P (TREE_TYPE (decl
))
26385 && !type_dependent_expression_p (decl
))
26389 cp_finish_decl (decl
, init
, !is_non_constant_init
,
26391 LOOKUP_ONLYCONVERTING
);
26392 if (CLASS_TYPE_P (TREE_TYPE (decl
)))
26394 VEC_safe_push (tree
, gc
, for_block
, this_pre_body
);
26398 init
= pop_stmt_list (this_pre_body
);
26399 this_pre_body
= NULL_TREE
;
26404 cp_lexer_consume_token (parser
->lexer
);
26405 init
= cp_parser_assignment_expression (parser
, false, NULL
);
26408 if (TREE_CODE (TREE_TYPE (decl
)) == REFERENCE_TYPE
)
26409 init
= error_mark_node
;
26411 cp_finish_decl (decl
, NULL_TREE
,
26412 /*init_const_expr_p=*/false,
26414 LOOKUP_ONLYCONVERTING
);
26418 pop_scope (pushed_scope
);
26424 /* If parsing a type specifier sequence failed, then
26425 this MUST be a simple expression. */
26426 cp_parser_parse_tentatively (parser
);
26427 decl
= cp_parser_primary_expression (parser
, false, false,
26429 if (!cp_parser_error_occurred (parser
)
26432 && CLASS_TYPE_P (TREE_TYPE (decl
)))
26436 cp_parser_parse_definitely (parser
);
26437 cp_parser_require (parser
, CPP_EQ
, RT_EQ
);
26438 rhs
= cp_parser_assignment_expression (parser
, false, NULL
);
26439 finish_expr_stmt (build_x_modify_expr (EXPR_LOCATION (rhs
),
26442 tf_warning_or_error
));
26443 add_private_clause
= true;
26448 cp_parser_abort_tentative_parse (parser
);
26449 init
= cp_parser_expression (parser
, false, NULL
);
26452 if (TREE_CODE (init
) == MODIFY_EXPR
26453 || TREE_CODE (init
) == MODOP_EXPR
)
26454 real_decl
= TREE_OPERAND (init
, 0);
26459 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
26462 this_pre_body
= pop_stmt_list (this_pre_body
);
26466 pre_body
= push_stmt_list ();
26468 add_stmt (this_pre_body
);
26469 pre_body
= pop_stmt_list (pre_body
);
26472 pre_body
= this_pre_body
;
26477 if (par_clauses
!= NULL
&& real_decl
!= NULL_TREE
)
26480 for (c
= par_clauses
; *c
; )
26481 if (OMP_CLAUSE_CODE (*c
) == OMP_CLAUSE_FIRSTPRIVATE
26482 && OMP_CLAUSE_DECL (*c
) == real_decl
)
26484 error_at (loc
, "iteration variable %qD"
26485 " should not be firstprivate", real_decl
);
26486 *c
= OMP_CLAUSE_CHAIN (*c
);
26488 else if (OMP_CLAUSE_CODE (*c
) == OMP_CLAUSE_LASTPRIVATE
26489 && OMP_CLAUSE_DECL (*c
) == real_decl
)
26491 /* Add lastprivate (decl) clause to OMP_FOR_CLAUSES,
26492 change it to shared (decl) in OMP_PARALLEL_CLAUSES. */
26493 tree l
= build_omp_clause (loc
, OMP_CLAUSE_LASTPRIVATE
);
26494 OMP_CLAUSE_DECL (l
) = real_decl
;
26495 OMP_CLAUSE_CHAIN (l
) = clauses
;
26496 CP_OMP_CLAUSE_INFO (l
) = CP_OMP_CLAUSE_INFO (*c
);
26498 OMP_CLAUSE_SET_CODE (*c
, OMP_CLAUSE_SHARED
);
26499 CP_OMP_CLAUSE_INFO (*c
) = NULL
;
26500 add_private_clause
= false;
26504 if (OMP_CLAUSE_CODE (*c
) == OMP_CLAUSE_PRIVATE
26505 && OMP_CLAUSE_DECL (*c
) == real_decl
)
26506 add_private_clause
= false;
26507 c
= &OMP_CLAUSE_CHAIN (*c
);
26511 if (add_private_clause
)
26514 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
26516 if ((OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_PRIVATE
26517 || OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_LASTPRIVATE
)
26518 && OMP_CLAUSE_DECL (c
) == decl
)
26520 else if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_FIRSTPRIVATE
26521 && OMP_CLAUSE_DECL (c
) == decl
)
26522 error_at (loc
, "iteration variable %qD "
26523 "should not be firstprivate",
26525 else if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_REDUCTION
26526 && OMP_CLAUSE_DECL (c
) == decl
)
26527 error_at (loc
, "iteration variable %qD should not be reduction",
26532 c
= build_omp_clause (loc
, OMP_CLAUSE_PRIVATE
);
26533 OMP_CLAUSE_DECL (c
) = decl
;
26534 c
= finish_omp_clauses (c
);
26537 OMP_CLAUSE_CHAIN (c
) = clauses
;
26544 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_SEMICOLON
))
26545 cond
= cp_parser_omp_for_cond (parser
, decl
);
26546 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
26549 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_CLOSE_PAREN
))
26551 /* If decl is an iterator, preserve the operator on decl
26552 until finish_omp_for. */
26554 && ((processing_template_decl
26555 && !POINTER_TYPE_P (TREE_TYPE (real_decl
)))
26556 || CLASS_TYPE_P (TREE_TYPE (real_decl
))))
26557 incr
= cp_parser_omp_for_incr (parser
, real_decl
);
26559 incr
= cp_parser_expression (parser
, false, NULL
);
26562 if (!cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
))
26563 cp_parser_skip_to_closing_parenthesis (parser
, /*recovering=*/true,
26564 /*or_comma=*/false,
26565 /*consume_paren=*/true);
26567 TREE_VEC_ELT (declv
, i
) = decl
;
26568 TREE_VEC_ELT (initv
, i
) = init
;
26569 TREE_VEC_ELT (condv
, i
) = cond
;
26570 TREE_VEC_ELT (incrv
, i
) = incr
;
26572 if (i
== collapse
- 1)
26575 /* FIXME: OpenMP 3.0 draft isn't very clear on what exactly is allowed
26576 in between the collapsed for loops to be still considered perfectly
26577 nested. Hopefully the final version clarifies this.
26578 For now handle (multiple) {'s and empty statements. */
26579 cp_parser_parse_tentatively (parser
);
26582 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_FOR
))
26584 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_OPEN_BRACE
))
26586 cp_lexer_consume_token (parser
->lexer
);
26589 else if (bracecount
26590 && cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
26591 cp_lexer_consume_token (parser
->lexer
);
26594 loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
26595 error_at (loc
, "not enough collapsed for loops");
26596 collapse_err
= true;
26597 cp_parser_abort_tentative_parse (parser
);
26606 cp_parser_parse_definitely (parser
);
26607 nbraces
+= bracecount
;
26611 /* Note that we saved the original contents of this flag when we entered
26612 the structured block, and so we don't need to re-save it here. */
26613 parser
->in_statement
= IN_OMP_FOR
;
26615 /* Note that the grammar doesn't call for a structured block here,
26616 though the loop as a whole is a structured block. */
26617 body
= push_stmt_list ();
26618 cp_parser_statement (parser
, NULL_TREE
, false, NULL
);
26619 body
= pop_stmt_list (body
);
26621 if (declv
== NULL_TREE
)
26624 ret
= finish_omp_for (loc_first
, declv
, initv
, condv
, incrv
, body
,
26625 pre_body
, clauses
);
26629 if (cp_lexer_next_token_is (parser
->lexer
, CPP_CLOSE_BRACE
))
26631 cp_lexer_consume_token (parser
->lexer
);
26634 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_SEMICOLON
))
26635 cp_lexer_consume_token (parser
->lexer
);
26640 error_at (cp_lexer_peek_token (parser
->lexer
)->location
,
26641 "collapsed loops not perfectly nested");
26643 collapse_err
= true;
26644 cp_parser_statement_seq_opt (parser
, NULL
);
26645 if (cp_lexer_next_token_is (parser
->lexer
, CPP_EOF
))
26650 while (!VEC_empty (tree
, for_block
))
26651 add_stmt (pop_stmt_list (VEC_pop (tree
, for_block
)));
26652 release_tree_vector (for_block
);
26658 #pragma omp for for-clause[optseq] new-line
26661 #define OMP_FOR_CLAUSE_MASK \
26662 ( (1u << PRAGMA_OMP_CLAUSE_PRIVATE) \
26663 | (1u << PRAGMA_OMP_CLAUSE_FIRSTPRIVATE) \
26664 | (1u << PRAGMA_OMP_CLAUSE_LASTPRIVATE) \
26665 | (1u << PRAGMA_OMP_CLAUSE_REDUCTION) \
26666 | (1u << PRAGMA_OMP_CLAUSE_ORDERED) \
26667 | (1u << PRAGMA_OMP_CLAUSE_SCHEDULE) \
26668 | (1u << PRAGMA_OMP_CLAUSE_NOWAIT) \
26669 | (1u << PRAGMA_OMP_CLAUSE_COLLAPSE))
26672 cp_parser_omp_for (cp_parser
*parser
, cp_token
*pragma_tok
)
26674 tree clauses
, sb
, ret
;
26677 clauses
= cp_parser_omp_all_clauses (parser
, OMP_FOR_CLAUSE_MASK
,
26678 "#pragma omp for", pragma_tok
);
26680 sb
= begin_omp_structured_block ();
26681 save
= cp_parser_begin_omp_structured_block (parser
);
26683 ret
= cp_parser_omp_for_loop (parser
, clauses
, NULL
);
26685 cp_parser_end_omp_structured_block (parser
, save
);
26686 add_stmt (finish_omp_structured_block (sb
));
26692 # pragma omp master new-line
26693 structured-block */
26696 cp_parser_omp_master (cp_parser
*parser
, cp_token
*pragma_tok
)
26698 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26699 return c_finish_omp_master (input_location
,
26700 cp_parser_omp_structured_block (parser
));
26704 # pragma omp ordered new-line
26705 structured-block */
26708 cp_parser_omp_ordered (cp_parser
*parser
, cp_token
*pragma_tok
)
26710 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
26711 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26712 return c_finish_omp_ordered (loc
, cp_parser_omp_structured_block (parser
));
26718 { section-sequence }
26721 section-directive[opt] structured-block
26722 section-sequence section-directive structured-block */
26725 cp_parser_omp_sections_scope (cp_parser
*parser
)
26727 tree stmt
, substmt
;
26728 bool error_suppress
= false;
26731 if (!cp_parser_require (parser
, CPP_OPEN_BRACE
, RT_OPEN_BRACE
))
26734 stmt
= push_stmt_list ();
26736 if (cp_lexer_peek_token (parser
->lexer
)->pragma_kind
!= PRAGMA_OMP_SECTION
)
26740 substmt
= begin_omp_structured_block ();
26741 save
= cp_parser_begin_omp_structured_block (parser
);
26745 cp_parser_statement (parser
, NULL_TREE
, false, NULL
);
26747 tok
= cp_lexer_peek_token (parser
->lexer
);
26748 if (tok
->pragma_kind
== PRAGMA_OMP_SECTION
)
26750 if (tok
->type
== CPP_CLOSE_BRACE
)
26752 if (tok
->type
== CPP_EOF
)
26756 cp_parser_end_omp_structured_block (parser
, save
);
26757 substmt
= finish_omp_structured_block (substmt
);
26758 substmt
= build1 (OMP_SECTION
, void_type_node
, substmt
);
26759 add_stmt (substmt
);
26764 tok
= cp_lexer_peek_token (parser
->lexer
);
26765 if (tok
->type
== CPP_CLOSE_BRACE
)
26767 if (tok
->type
== CPP_EOF
)
26770 if (tok
->pragma_kind
== PRAGMA_OMP_SECTION
)
26772 cp_lexer_consume_token (parser
->lexer
);
26773 cp_parser_require_pragma_eol (parser
, tok
);
26774 error_suppress
= false;
26776 else if (!error_suppress
)
26778 cp_parser_error (parser
, "expected %<#pragma omp section%> or %<}%>");
26779 error_suppress
= true;
26782 substmt
= cp_parser_omp_structured_block (parser
);
26783 substmt
= build1 (OMP_SECTION
, void_type_node
, substmt
);
26784 add_stmt (substmt
);
26786 cp_parser_require (parser
, CPP_CLOSE_BRACE
, RT_CLOSE_BRACE
);
26788 substmt
= pop_stmt_list (stmt
);
26790 stmt
= make_node (OMP_SECTIONS
);
26791 TREE_TYPE (stmt
) = void_type_node
;
26792 OMP_SECTIONS_BODY (stmt
) = substmt
;
26799 # pragma omp sections sections-clause[optseq] newline
26802 #define OMP_SECTIONS_CLAUSE_MASK \
26803 ( (1u << PRAGMA_OMP_CLAUSE_PRIVATE) \
26804 | (1u << PRAGMA_OMP_CLAUSE_FIRSTPRIVATE) \
26805 | (1u << PRAGMA_OMP_CLAUSE_LASTPRIVATE) \
26806 | (1u << PRAGMA_OMP_CLAUSE_REDUCTION) \
26807 | (1u << PRAGMA_OMP_CLAUSE_NOWAIT))
26810 cp_parser_omp_sections (cp_parser
*parser
, cp_token
*pragma_tok
)
26814 clauses
= cp_parser_omp_all_clauses (parser
, OMP_SECTIONS_CLAUSE_MASK
,
26815 "#pragma omp sections", pragma_tok
);
26817 ret
= cp_parser_omp_sections_scope (parser
);
26819 OMP_SECTIONS_CLAUSES (ret
) = clauses
;
26825 # pragma parallel parallel-clause new-line
26826 # pragma parallel for parallel-for-clause new-line
26827 # pragma parallel sections parallel-sections-clause new-line */
26829 #define OMP_PARALLEL_CLAUSE_MASK \
26830 ( (1u << PRAGMA_OMP_CLAUSE_IF) \
26831 | (1u << PRAGMA_OMP_CLAUSE_PRIVATE) \
26832 | (1u << PRAGMA_OMP_CLAUSE_FIRSTPRIVATE) \
26833 | (1u << PRAGMA_OMP_CLAUSE_DEFAULT) \
26834 | (1u << PRAGMA_OMP_CLAUSE_SHARED) \
26835 | (1u << PRAGMA_OMP_CLAUSE_COPYIN) \
26836 | (1u << PRAGMA_OMP_CLAUSE_REDUCTION) \
26837 | (1u << PRAGMA_OMP_CLAUSE_NUM_THREADS))
26840 cp_parser_omp_parallel (cp_parser
*parser
, cp_token
*pragma_tok
)
26842 enum pragma_kind p_kind
= PRAGMA_OMP_PARALLEL
;
26843 const char *p_name
= "#pragma omp parallel";
26844 tree stmt
, clauses
, par_clause
, ws_clause
, block
;
26845 unsigned int mask
= OMP_PARALLEL_CLAUSE_MASK
;
26847 location_t loc
= cp_lexer_peek_token (parser
->lexer
)->location
;
26849 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_FOR
))
26851 cp_lexer_consume_token (parser
->lexer
);
26852 p_kind
= PRAGMA_OMP_PARALLEL_FOR
;
26853 p_name
= "#pragma omp parallel for";
26854 mask
|= OMP_FOR_CLAUSE_MASK
;
26855 mask
&= ~(1u << PRAGMA_OMP_CLAUSE_NOWAIT
);
26857 else if (cp_lexer_next_token_is (parser
->lexer
, CPP_NAME
))
26859 tree id
= cp_lexer_peek_token (parser
->lexer
)->u
.value
;
26860 const char *p
= IDENTIFIER_POINTER (id
);
26861 if (strcmp (p
, "sections") == 0)
26863 cp_lexer_consume_token (parser
->lexer
);
26864 p_kind
= PRAGMA_OMP_PARALLEL_SECTIONS
;
26865 p_name
= "#pragma omp parallel sections";
26866 mask
|= OMP_SECTIONS_CLAUSE_MASK
;
26867 mask
&= ~(1u << PRAGMA_OMP_CLAUSE_NOWAIT
);
26871 clauses
= cp_parser_omp_all_clauses (parser
, mask
, p_name
, pragma_tok
);
26872 block
= begin_omp_parallel ();
26873 save
= cp_parser_begin_omp_structured_block (parser
);
26877 case PRAGMA_OMP_PARALLEL
:
26878 cp_parser_statement (parser
, NULL_TREE
, false, NULL
);
26879 par_clause
= clauses
;
26882 case PRAGMA_OMP_PARALLEL_FOR
:
26883 c_split_parallel_clauses (loc
, clauses
, &par_clause
, &ws_clause
);
26884 cp_parser_omp_for_loop (parser
, ws_clause
, &par_clause
);
26887 case PRAGMA_OMP_PARALLEL_SECTIONS
:
26888 c_split_parallel_clauses (loc
, clauses
, &par_clause
, &ws_clause
);
26889 stmt
= cp_parser_omp_sections_scope (parser
);
26891 OMP_SECTIONS_CLAUSES (stmt
) = ws_clause
;
26895 gcc_unreachable ();
26898 cp_parser_end_omp_structured_block (parser
, save
);
26899 stmt
= finish_omp_parallel (par_clause
, block
);
26900 if (p_kind
!= PRAGMA_OMP_PARALLEL
)
26901 OMP_PARALLEL_COMBINED (stmt
) = 1;
26906 # pragma omp single single-clause[optseq] new-line
26907 structured-block */
26909 #define OMP_SINGLE_CLAUSE_MASK \
26910 ( (1u << PRAGMA_OMP_CLAUSE_PRIVATE) \
26911 | (1u << PRAGMA_OMP_CLAUSE_FIRSTPRIVATE) \
26912 | (1u << PRAGMA_OMP_CLAUSE_COPYPRIVATE) \
26913 | (1u << PRAGMA_OMP_CLAUSE_NOWAIT))
26916 cp_parser_omp_single (cp_parser
*parser
, cp_token
*pragma_tok
)
26918 tree stmt
= make_node (OMP_SINGLE
);
26919 TREE_TYPE (stmt
) = void_type_node
;
26921 OMP_SINGLE_CLAUSES (stmt
)
26922 = cp_parser_omp_all_clauses (parser
, OMP_SINGLE_CLAUSE_MASK
,
26923 "#pragma omp single", pragma_tok
);
26924 OMP_SINGLE_BODY (stmt
) = cp_parser_omp_structured_block (parser
);
26926 return add_stmt (stmt
);
26930 # pragma omp task task-clause[optseq] new-line
26931 structured-block */
26933 #define OMP_TASK_CLAUSE_MASK \
26934 ( (1u << PRAGMA_OMP_CLAUSE_IF) \
26935 | (1u << PRAGMA_OMP_CLAUSE_UNTIED) \
26936 | (1u << PRAGMA_OMP_CLAUSE_DEFAULT) \
26937 | (1u << PRAGMA_OMP_CLAUSE_PRIVATE) \
26938 | (1u << PRAGMA_OMP_CLAUSE_FIRSTPRIVATE) \
26939 | (1u << PRAGMA_OMP_CLAUSE_SHARED) \
26940 | (1u << PRAGMA_OMP_CLAUSE_FINAL) \
26941 | (1u << PRAGMA_OMP_CLAUSE_MERGEABLE))
26944 cp_parser_omp_task (cp_parser
*parser
, cp_token
*pragma_tok
)
26946 tree clauses
, block
;
26949 clauses
= cp_parser_omp_all_clauses (parser
, OMP_TASK_CLAUSE_MASK
,
26950 "#pragma omp task", pragma_tok
);
26951 block
= begin_omp_task ();
26952 save
= cp_parser_begin_omp_structured_block (parser
);
26953 cp_parser_statement (parser
, NULL_TREE
, false, NULL
);
26954 cp_parser_end_omp_structured_block (parser
, save
);
26955 return finish_omp_task (clauses
, block
);
26959 # pragma omp taskwait new-line */
26962 cp_parser_omp_taskwait (cp_parser
*parser
, cp_token
*pragma_tok
)
26964 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26965 finish_omp_taskwait ();
26969 # pragma omp taskyield new-line */
26972 cp_parser_omp_taskyield (cp_parser
*parser
, cp_token
*pragma_tok
)
26974 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26975 finish_omp_taskyield ();
26979 # pragma omp threadprivate (variable-list) */
26982 cp_parser_omp_threadprivate (cp_parser
*parser
, cp_token
*pragma_tok
)
26986 vars
= cp_parser_omp_var_list (parser
, OMP_CLAUSE_ERROR
, NULL
);
26987 cp_parser_require_pragma_eol (parser
, pragma_tok
);
26989 finish_omp_threadprivate (vars
);
26992 /* Main entry point to OpenMP statement pragmas. */
26995 cp_parser_omp_construct (cp_parser
*parser
, cp_token
*pragma_tok
)
26999 switch (pragma_tok
->pragma_kind
)
27001 case PRAGMA_OMP_ATOMIC
:
27002 cp_parser_omp_atomic (parser
, pragma_tok
);
27004 case PRAGMA_OMP_CRITICAL
:
27005 stmt
= cp_parser_omp_critical (parser
, pragma_tok
);
27007 case PRAGMA_OMP_FOR
:
27008 stmt
= cp_parser_omp_for (parser
, pragma_tok
);
27010 case PRAGMA_OMP_MASTER
:
27011 stmt
= cp_parser_omp_master (parser
, pragma_tok
);
27013 case PRAGMA_OMP_ORDERED
:
27014 stmt
= cp_parser_omp_ordered (parser
, pragma_tok
);
27016 case PRAGMA_OMP_PARALLEL
:
27017 stmt
= cp_parser_omp_parallel (parser
, pragma_tok
);
27019 case PRAGMA_OMP_SECTIONS
:
27020 stmt
= cp_parser_omp_sections (parser
, pragma_tok
);
27022 case PRAGMA_OMP_SINGLE
:
27023 stmt
= cp_parser_omp_single (parser
, pragma_tok
);
27025 case PRAGMA_OMP_TASK
:
27026 stmt
= cp_parser_omp_task (parser
, pragma_tok
);
27029 gcc_unreachable ();
27033 SET_EXPR_LOCATION (stmt
, pragma_tok
->location
);
27036 /* Transactional Memory parsing routines. */
27038 /* Parse a transaction attribute.
27044 ??? Simplify this when C++0x bracket attributes are
27045 implemented properly. */
27048 cp_parser_txn_attribute_opt (cp_parser
*parser
)
27051 tree attr_name
, attr
= NULL
;
27053 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_ATTRIBUTE
))
27054 return cp_parser_attributes_opt (parser
);
27056 if (cp_lexer_next_token_is_not (parser
->lexer
, CPP_OPEN_SQUARE
))
27058 cp_lexer_consume_token (parser
->lexer
);
27059 if (!cp_parser_require (parser
, CPP_OPEN_SQUARE
, RT_OPEN_SQUARE
))
27062 token
= cp_lexer_peek_token (parser
->lexer
);
27063 if (token
->type
== CPP_NAME
|| token
->type
== CPP_KEYWORD
)
27065 token
= cp_lexer_consume_token (parser
->lexer
);
27067 attr_name
= (token
->type
== CPP_KEYWORD
27068 /* For keywords, use the canonical spelling,
27069 not the parsed identifier. */
27070 ? ridpointers
[(int) token
->keyword
]
27072 attr
= build_tree_list (attr_name
, NULL_TREE
);
27075 cp_parser_error (parser
, "expected identifier");
27077 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
27079 cp_parser_require (parser
, CPP_CLOSE_SQUARE
, RT_CLOSE_SQUARE
);
27083 /* Parse a __transaction_atomic or __transaction_relaxed statement.
27085 transaction-statement:
27086 __transaction_atomic txn-attribute[opt] txn-noexcept-spec[opt]
27088 __transaction_relaxed txn-noexcept-spec[opt] compound-statement
27092 cp_parser_transaction (cp_parser
*parser
, enum rid keyword
)
27094 unsigned char old_in
= parser
->in_transaction
;
27095 unsigned char this_in
= 1, new_in
;
27097 tree stmt
, attrs
, noex
;
27099 gcc_assert (keyword
== RID_TRANSACTION_ATOMIC
27100 || keyword
== RID_TRANSACTION_RELAXED
);
27101 token
= cp_parser_require_keyword (parser
, keyword
,
27102 (keyword
== RID_TRANSACTION_ATOMIC
? RT_TRANSACTION_ATOMIC
27103 : RT_TRANSACTION_RELAXED
));
27104 gcc_assert (token
!= NULL
);
27106 if (keyword
== RID_TRANSACTION_RELAXED
)
27107 this_in
|= TM_STMT_ATTR_RELAXED
;
27110 attrs
= cp_parser_txn_attribute_opt (parser
);
27112 this_in
|= parse_tm_stmt_attr (attrs
, TM_STMT_ATTR_OUTER
);
27115 /* Parse a noexcept specification. */
27116 noex
= cp_parser_noexcept_specification_opt (parser
, true, NULL
, true);
27118 /* Keep track if we're in the lexical scope of an outer transaction. */
27119 new_in
= this_in
| (old_in
& TM_STMT_ATTR_OUTER
);
27121 stmt
= begin_transaction_stmt (token
->location
, NULL
, this_in
);
27123 parser
->in_transaction
= new_in
;
27124 cp_parser_compound_statement (parser
, NULL
, false, false);
27125 parser
->in_transaction
= old_in
;
27127 finish_transaction_stmt (stmt
, NULL
, this_in
, noex
);
27132 /* Parse a __transaction_atomic or __transaction_relaxed expression.
27134 transaction-expression:
27135 __transaction_atomic txn-noexcept-spec[opt] ( expression )
27136 __transaction_relaxed txn-noexcept-spec[opt] ( expression )
27140 cp_parser_transaction_expression (cp_parser
*parser
, enum rid keyword
)
27142 unsigned char old_in
= parser
->in_transaction
;
27143 unsigned char this_in
= 1;
27148 gcc_assert (keyword
== RID_TRANSACTION_ATOMIC
27149 || keyword
== RID_TRANSACTION_RELAXED
);
27152 error (keyword
== RID_TRANSACTION_RELAXED
27153 ? G_("%<__transaction_relaxed%> without transactional memory "
27155 : G_("%<__transaction_atomic%> without transactional memory "
27156 "support enabled"));
27158 token
= cp_parser_require_keyword (parser
, keyword
,
27159 (keyword
== RID_TRANSACTION_ATOMIC
? RT_TRANSACTION_ATOMIC
27160 : RT_TRANSACTION_RELAXED
));
27161 gcc_assert (token
!= NULL
);
27163 if (keyword
== RID_TRANSACTION_RELAXED
)
27164 this_in
|= TM_STMT_ATTR_RELAXED
;
27166 /* Set this early. This might mean that we allow transaction_cancel in
27167 an expression that we find out later actually has to be a constexpr.
27168 However, we expect that cxx_constant_value will be able to deal with
27169 this; also, if the noexcept has no constexpr, then what we parse next
27170 really is a transaction's body. */
27171 parser
->in_transaction
= this_in
;
27173 /* Parse a noexcept specification. */
27174 noex
= cp_parser_noexcept_specification_opt (parser
, false, &noex_expr
,
27177 if (!noex
|| !noex_expr
27178 || cp_lexer_peek_token (parser
->lexer
)->type
== CPP_OPEN_PAREN
)
27180 cp_parser_require (parser
, CPP_OPEN_PAREN
, RT_OPEN_PAREN
);
27182 expr
= cp_parser_expression (parser
, /*cast_p=*/false, NULL
);
27183 finish_parenthesized_expr (expr
);
27185 cp_parser_require (parser
, CPP_CLOSE_PAREN
, RT_CLOSE_PAREN
);
27189 /* The only expression that is available got parsed for the noexcept
27190 already. noexcept is true then. */
27192 noex
= boolean_true_node
;
27195 expr
= build_transaction_expr (token
->location
, expr
, this_in
, noex
);
27196 parser
->in_transaction
= old_in
;
27198 if (cp_parser_non_integral_constant_expression (parser
, NIC_TRANSACTION
))
27199 return error_mark_node
;
27201 return (flag_tm
? expr
: error_mark_node
);
27204 /* Parse a function-transaction-block.
27206 function-transaction-block:
27207 __transaction_atomic txn-attribute[opt] ctor-initializer[opt]
27209 __transaction_atomic txn-attribute[opt] function-try-block
27210 __transaction_relaxed ctor-initializer[opt] function-body
27211 __transaction_relaxed function-try-block
27215 cp_parser_function_transaction (cp_parser
*parser
, enum rid keyword
)
27217 unsigned char old_in
= parser
->in_transaction
;
27218 unsigned char new_in
= 1;
27219 tree compound_stmt
, stmt
, attrs
;
27220 bool ctor_initializer_p
;
27223 gcc_assert (keyword
== RID_TRANSACTION_ATOMIC
27224 || keyword
== RID_TRANSACTION_RELAXED
);
27225 token
= cp_parser_require_keyword (parser
, keyword
,
27226 (keyword
== RID_TRANSACTION_ATOMIC
? RT_TRANSACTION_ATOMIC
27227 : RT_TRANSACTION_RELAXED
));
27228 gcc_assert (token
!= NULL
);
27230 if (keyword
== RID_TRANSACTION_RELAXED
)
27231 new_in
|= TM_STMT_ATTR_RELAXED
;
27234 attrs
= cp_parser_txn_attribute_opt (parser
);
27236 new_in
|= parse_tm_stmt_attr (attrs
, TM_STMT_ATTR_OUTER
);
27239 stmt
= begin_transaction_stmt (token
->location
, &compound_stmt
, new_in
);
27241 parser
->in_transaction
= new_in
;
27243 if (cp_lexer_next_token_is_keyword (parser
->lexer
, RID_TRY
))
27244 ctor_initializer_p
= cp_parser_function_try_block (parser
);
27246 ctor_initializer_p
= cp_parser_ctor_initializer_opt_and_function_body
27247 (parser
, /*in_function_try_block=*/false);
27249 parser
->in_transaction
= old_in
;
27251 finish_transaction_stmt (stmt
, compound_stmt
, new_in
, NULL_TREE
);
27253 return ctor_initializer_p
;
27256 /* Parse a __transaction_cancel statement.
27259 __transaction_cancel txn-attribute[opt] ;
27260 __transaction_cancel txn-attribute[opt] throw-expression ;
27262 ??? Cancel and throw is not yet implemented. */
27265 cp_parser_transaction_cancel (cp_parser
*parser
)
27268 bool is_outer
= false;
27271 token
= cp_parser_require_keyword (parser
, RID_TRANSACTION_CANCEL
,
27272 RT_TRANSACTION_CANCEL
);
27273 gcc_assert (token
!= NULL
);
27275 attrs
= cp_parser_txn_attribute_opt (parser
);
27277 is_outer
= (parse_tm_stmt_attr (attrs
, TM_STMT_ATTR_OUTER
) != 0);
27279 /* ??? Parse cancel-and-throw here. */
27281 cp_parser_require (parser
, CPP_SEMICOLON
, RT_SEMICOLON
);
27285 error_at (token
->location
, "%<__transaction_cancel%> without "
27286 "transactional memory support enabled");
27287 return error_mark_node
;
27289 else if (parser
->in_transaction
& TM_STMT_ATTR_RELAXED
)
27291 error_at (token
->location
, "%<__transaction_cancel%> within a "
27292 "%<__transaction_relaxed%>");
27293 return error_mark_node
;
27297 if ((parser
->in_transaction
& TM_STMT_ATTR_OUTER
) == 0
27298 && !is_tm_may_cancel_outer (current_function_decl
))
27300 error_at (token
->location
, "outer %<__transaction_cancel%> not "
27301 "within outer %<__transaction_atomic%>");
27302 error_at (token
->location
,
27303 " or a %<transaction_may_cancel_outer%> function");
27304 return error_mark_node
;
27307 else if (parser
->in_transaction
== 0)
27309 error_at (token
->location
, "%<__transaction_cancel%> not within "
27310 "%<__transaction_atomic%>");
27311 return error_mark_node
;
27314 stmt
= build_tm_abort_call (token
->location
, is_outer
);
27323 static GTY (()) cp_parser
*the_parser
;
27326 /* Special handling for the first token or line in the file. The first
27327 thing in the file might be #pragma GCC pch_preprocess, which loads a
27328 PCH file, which is a GC collection point. So we need to handle this
27329 first pragma without benefit of an existing lexer structure.
27331 Always returns one token to the caller in *FIRST_TOKEN. This is
27332 either the true first token of the file, or the first token after
27333 the initial pragma. */
27336 cp_parser_initial_pragma (cp_token
*first_token
)
27340 cp_lexer_get_preprocessor_token (NULL
, first_token
);
27341 if (first_token
->pragma_kind
!= PRAGMA_GCC_PCH_PREPROCESS
)
27344 cp_lexer_get_preprocessor_token (NULL
, first_token
);
27345 if (first_token
->type
== CPP_STRING
)
27347 name
= first_token
->u
.value
;
27349 cp_lexer_get_preprocessor_token (NULL
, first_token
);
27350 if (first_token
->type
!= CPP_PRAGMA_EOL
)
27351 error_at (first_token
->location
,
27352 "junk at end of %<#pragma GCC pch_preprocess%>");
27355 error_at (first_token
->location
, "expected string literal");
27357 /* Skip to the end of the pragma. */
27358 while (first_token
->type
!= CPP_PRAGMA_EOL
&& first_token
->type
!= CPP_EOF
)
27359 cp_lexer_get_preprocessor_token (NULL
, first_token
);
27361 /* Now actually load the PCH file. */
27363 c_common_pch_pragma (parse_in
, TREE_STRING_POINTER (name
));
27365 /* Read one more token to return to our caller. We have to do this
27366 after reading the PCH file in, since its pointers have to be
27368 cp_lexer_get_preprocessor_token (NULL
, first_token
);
27371 /* Normal parsing of a pragma token. Here we can (and must) use the
27375 cp_parser_pragma (cp_parser
*parser
, enum pragma_context context
)
27377 cp_token
*pragma_tok
;
27380 pragma_tok
= cp_lexer_consume_token (parser
->lexer
);
27381 gcc_assert (pragma_tok
->type
== CPP_PRAGMA
);
27382 parser
->lexer
->in_pragma
= true;
27384 id
= pragma_tok
->pragma_kind
;
27387 case PRAGMA_GCC_PCH_PREPROCESS
:
27388 error_at (pragma_tok
->location
,
27389 "%<#pragma GCC pch_preprocess%> must be first");
27392 case PRAGMA_OMP_BARRIER
:
27395 case pragma_compound
:
27396 cp_parser_omp_barrier (parser
, pragma_tok
);
27399 error_at (pragma_tok
->location
, "%<#pragma omp barrier%> may only be "
27400 "used in compound statements");
27407 case PRAGMA_OMP_FLUSH
:
27410 case pragma_compound
:
27411 cp_parser_omp_flush (parser
, pragma_tok
);
27414 error_at (pragma_tok
->location
, "%<#pragma omp flush%> may only be "
27415 "used in compound statements");
27422 case PRAGMA_OMP_TASKWAIT
:
27425 case pragma_compound
:
27426 cp_parser_omp_taskwait (parser
, pragma_tok
);
27429 error_at (pragma_tok
->location
,
27430 "%<#pragma omp taskwait%> may only be "
27431 "used in compound statements");
27438 case PRAGMA_OMP_TASKYIELD
:
27441 case pragma_compound
:
27442 cp_parser_omp_taskyield (parser
, pragma_tok
);
27445 error_at (pragma_tok
->location
,
27446 "%<#pragma omp taskyield%> may only be "
27447 "used in compound statements");
27454 case PRAGMA_OMP_THREADPRIVATE
:
27455 cp_parser_omp_threadprivate (parser
, pragma_tok
);
27458 case PRAGMA_OMP_ATOMIC
:
27459 case PRAGMA_OMP_CRITICAL
:
27460 case PRAGMA_OMP_FOR
:
27461 case PRAGMA_OMP_MASTER
:
27462 case PRAGMA_OMP_ORDERED
:
27463 case PRAGMA_OMP_PARALLEL
:
27464 case PRAGMA_OMP_SECTIONS
:
27465 case PRAGMA_OMP_SINGLE
:
27466 case PRAGMA_OMP_TASK
:
27467 if (context
== pragma_external
)
27469 cp_parser_omp_construct (parser
, pragma_tok
);
27472 case PRAGMA_OMP_SECTION
:
27473 error_at (pragma_tok
->location
,
27474 "%<#pragma omp section%> may only be used in "
27475 "%<#pragma omp sections%> construct");
27479 gcc_assert (id
>= PRAGMA_FIRST_EXTERNAL
);
27480 c_invoke_pragma_handler (id
);
27484 cp_parser_error (parser
, "expected declaration specifiers");
27488 cp_parser_skip_to_pragma_eol (parser
, pragma_tok
);
27492 /* The interface the pragma parsers have to the lexer. */
27495 pragma_lex (tree
*value
)
27498 enum cpp_ttype ret
;
27500 tok
= cp_lexer_peek_token (the_parser
->lexer
);
27503 *value
= tok
->u
.value
;
27505 if (ret
== CPP_PRAGMA_EOL
|| ret
== CPP_EOF
)
27507 else if (ret
== CPP_STRING
)
27508 *value
= cp_parser_string_literal (the_parser
, false, false);
27511 cp_lexer_consume_token (the_parser
->lexer
);
27512 if (ret
== CPP_KEYWORD
)
27520 /* External interface. */
27522 /* Parse one entire translation unit. */
27525 c_parse_file (void)
27527 static bool already_called
= false;
27529 if (already_called
)
27531 sorry ("inter-module optimizations not implemented for C++");
27534 already_called
= true;
27536 the_parser
= cp_parser_new ();
27537 push_deferring_access_checks (flag_access_control
27538 ? dk_no_deferred
: dk_no_check
);
27539 cp_parser_translation_unit (the_parser
);
27543 #include "gt-cp-parser.h"