1 /* Language-independent node constructors for parse phase of GNU compiler.
2 Copyright (C) 1987-2015 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 /* This file contains the low level primitives for operating on tree nodes,
21 including allocation, list operations, interning of identifiers,
22 construction of data type nodes and statement nodes,
23 and construction of type conversion nodes. It also contains
24 tables index by tree code that describe how to take apart
27 It is intended to be language-independent but can occasionally
28 calls language-dependent routines. */
32 #include "coretypes.h"
37 #include "tree-pass.h"
40 #include "diagnostic.h"
43 #include "fold-const.h"
44 #include "stor-layout.h"
47 #include "toplev.h" /* get_random_seed */
49 #include "common/common-target.h"
50 #include "langhooks.h"
51 #include "tree-inline.h"
52 #include "tree-iterator.h"
53 #include "internal-fn.h"
54 #include "gimple-iterator.h"
58 #include "langhooks-def.h"
59 #include "tree-diagnostic.h"
62 #include "print-tree.h"
63 #include "ipa-utils.h"
65 /* Tree code classes. */
67 #define DEFTREECODE(SYM, NAME, TYPE, LENGTH) TYPE,
68 #define END_OF_BASE_TREE_CODES tcc_exceptional,
70 const enum tree_code_class tree_code_type
[] = {
71 #include "all-tree.def"
75 #undef END_OF_BASE_TREE_CODES
77 /* Table indexed by tree code giving number of expression
78 operands beyond the fixed part of the node structure.
79 Not used for types or decls. */
81 #define DEFTREECODE(SYM, NAME, TYPE, LENGTH) LENGTH,
82 #define END_OF_BASE_TREE_CODES 0,
84 const unsigned char tree_code_length
[] = {
85 #include "all-tree.def"
89 #undef END_OF_BASE_TREE_CODES
91 /* Names of tree components.
92 Used for printing out the tree and error messages. */
93 #define DEFTREECODE(SYM, NAME, TYPE, LEN) NAME,
94 #define END_OF_BASE_TREE_CODES "@dummy",
96 static const char *const tree_code_name
[] = {
97 #include "all-tree.def"
101 #undef END_OF_BASE_TREE_CODES
103 /* Each tree code class has an associated string representation.
104 These must correspond to the tree_code_class entries. */
106 const char *const tree_code_class_strings
[] =
121 /* obstack.[ch] explicitly declined to prototype this. */
122 extern int _obstack_allocated_p (struct obstack
*h
, void *obj
);
124 /* Statistics-gathering stuff. */
126 static int tree_code_counts
[MAX_TREE_CODES
];
127 int tree_node_counts
[(int) all_kinds
];
128 int tree_node_sizes
[(int) all_kinds
];
130 /* Keep in sync with tree.h:enum tree_node_kind. */
131 static const char * const tree_node_kind_names
[] = {
150 /* Unique id for next decl created. */
151 static GTY(()) int next_decl_uid
;
152 /* Unique id for next type created. */
153 static GTY(()) int next_type_uid
= 1;
154 /* Unique id for next debug decl created. Use negative numbers,
155 to catch erroneous uses. */
156 static GTY(()) int next_debug_decl_uid
;
158 /* Since we cannot rehash a type after it is in the table, we have to
159 keep the hash code. */
161 struct GTY((for_user
)) type_hash
{
166 /* Initial size of the hash table (rounded to next prime). */
167 #define TYPE_HASH_INITIAL_SIZE 1000
169 struct type_cache_hasher
: ggc_cache_ptr_hash
<type_hash
>
171 static hashval_t
hash (type_hash
*t
) { return t
->hash
; }
172 static bool equal (type_hash
*a
, type_hash
*b
);
175 keep_cache_entry (type_hash
*&t
)
177 return ggc_marked_p (t
->type
);
181 /* Now here is the hash table. When recording a type, it is added to
182 the slot whose index is the hash code. Note that the hash table is
183 used for several kinds of types (function types, array types and
184 array index range types, for now). While all these live in the
185 same table, they are completely independent, and the hash code is
186 computed differently for each of these. */
188 static GTY ((cache
)) hash_table
<type_cache_hasher
> *type_hash_table
;
190 /* Hash table and temporary node for larger integer const values. */
191 static GTY (()) tree int_cst_node
;
193 struct int_cst_hasher
: ggc_cache_ptr_hash
<tree_node
>
195 static hashval_t
hash (tree t
);
196 static bool equal (tree x
, tree y
);
199 static GTY ((cache
)) hash_table
<int_cst_hasher
> *int_cst_hash_table
;
201 /* Hash table for optimization flags and target option flags. Use the same
202 hash table for both sets of options. Nodes for building the current
203 optimization and target option nodes. The assumption is most of the time
204 the options created will already be in the hash table, so we avoid
205 allocating and freeing up a node repeatably. */
206 static GTY (()) tree cl_optimization_node
;
207 static GTY (()) tree cl_target_option_node
;
209 struct cl_option_hasher
: ggc_cache_ptr_hash
<tree_node
>
211 static hashval_t
hash (tree t
);
212 static bool equal (tree x
, tree y
);
215 static GTY ((cache
)) hash_table
<cl_option_hasher
> *cl_option_hash_table
;
217 /* General tree->tree mapping structure for use in hash tables. */
221 hash_table
<tree_decl_map_cache_hasher
> *debug_expr_for_decl
;
224 hash_table
<tree_decl_map_cache_hasher
> *value_expr_for_decl
;
226 struct tree_vec_map_cache_hasher
: ggc_cache_ptr_hash
<tree_vec_map
>
228 static hashval_t
hash (tree_vec_map
*m
) { return DECL_UID (m
->base
.from
); }
231 equal (tree_vec_map
*a
, tree_vec_map
*b
)
233 return a
->base
.from
== b
->base
.from
;
237 keep_cache_entry (tree_vec_map
*&m
)
239 return ggc_marked_p (m
->base
.from
);
244 hash_table
<tree_vec_map_cache_hasher
> *debug_args_for_decl
;
246 static void set_type_quals (tree
, int);
247 static void print_type_hash_statistics (void);
248 static void print_debug_expr_statistics (void);
249 static void print_value_expr_statistics (void);
250 static void type_hash_list (const_tree
, inchash::hash
&);
251 static void attribute_hash_list (const_tree
, inchash::hash
&);
253 tree global_trees
[TI_MAX
];
254 tree integer_types
[itk_none
];
256 bool int_n_enabled_p
[NUM_INT_N_ENTS
];
257 struct int_n_trees_t int_n_trees
[NUM_INT_N_ENTS
];
259 unsigned char tree_contains_struct
[MAX_TREE_CODES
][64];
261 /* Number of operands for each OpenMP clause. */
262 unsigned const char omp_clause_num_ops
[] =
264 0, /* OMP_CLAUSE_ERROR */
265 1, /* OMP_CLAUSE_PRIVATE */
266 1, /* OMP_CLAUSE_SHARED */
267 1, /* OMP_CLAUSE_FIRSTPRIVATE */
268 2, /* OMP_CLAUSE_LASTPRIVATE */
269 5, /* OMP_CLAUSE_REDUCTION */
270 1, /* OMP_CLAUSE_COPYIN */
271 1, /* OMP_CLAUSE_COPYPRIVATE */
272 3, /* OMP_CLAUSE_LINEAR */
273 2, /* OMP_CLAUSE_ALIGNED */
274 1, /* OMP_CLAUSE_DEPEND */
275 1, /* OMP_CLAUSE_UNIFORM */
276 1, /* OMP_CLAUSE_TO_DECLARE */
277 1, /* OMP_CLAUSE_LINK */
278 2, /* OMP_CLAUSE_FROM */
279 2, /* OMP_CLAUSE_TO */
280 2, /* OMP_CLAUSE_MAP */
281 1, /* OMP_CLAUSE_USE_DEVICE_PTR */
282 1, /* OMP_CLAUSE_IS_DEVICE_PTR */
283 2, /* OMP_CLAUSE__CACHE_ */
284 1, /* OMP_CLAUSE_DEVICE_RESIDENT */
285 1, /* OMP_CLAUSE_USE_DEVICE */
286 2, /* OMP_CLAUSE_GANG */
287 1, /* OMP_CLAUSE_ASYNC */
288 1, /* OMP_CLAUSE_WAIT */
289 0, /* OMP_CLAUSE_AUTO */
290 0, /* OMP_CLAUSE_SEQ */
291 1, /* OMP_CLAUSE__LOOPTEMP_ */
292 1, /* OMP_CLAUSE_IF */
293 1, /* OMP_CLAUSE_NUM_THREADS */
294 1, /* OMP_CLAUSE_SCHEDULE */
295 0, /* OMP_CLAUSE_NOWAIT */
296 1, /* OMP_CLAUSE_ORDERED */
297 0, /* OMP_CLAUSE_DEFAULT */
298 3, /* OMP_CLAUSE_COLLAPSE */
299 0, /* OMP_CLAUSE_UNTIED */
300 1, /* OMP_CLAUSE_FINAL */
301 0, /* OMP_CLAUSE_MERGEABLE */
302 1, /* OMP_CLAUSE_DEVICE */
303 1, /* OMP_CLAUSE_DIST_SCHEDULE */
304 0, /* OMP_CLAUSE_INBRANCH */
305 0, /* OMP_CLAUSE_NOTINBRANCH */
306 1, /* OMP_CLAUSE_NUM_TEAMS */
307 1, /* OMP_CLAUSE_THREAD_LIMIT */
308 0, /* OMP_CLAUSE_PROC_BIND */
309 1, /* OMP_CLAUSE_SAFELEN */
310 1, /* OMP_CLAUSE_SIMDLEN */
311 0, /* OMP_CLAUSE_FOR */
312 0, /* OMP_CLAUSE_PARALLEL */
313 0, /* OMP_CLAUSE_SECTIONS */
314 0, /* OMP_CLAUSE_TASKGROUP */
315 1, /* OMP_CLAUSE_PRIORITY */
316 1, /* OMP_CLAUSE_GRAINSIZE */
317 1, /* OMP_CLAUSE_NUM_TASKS */
318 0, /* OMP_CLAUSE_NOGROUP */
319 0, /* OMP_CLAUSE_THREADS */
320 0, /* OMP_CLAUSE_SIMD */
321 1, /* OMP_CLAUSE_HINT */
322 0, /* OMP_CLAUSE_DEFALTMAP */
323 1, /* OMP_CLAUSE__SIMDUID_ */
324 1, /* OMP_CLAUSE__CILK_FOR_COUNT_ */
325 0, /* OMP_CLAUSE_INDEPENDENT */
326 1, /* OMP_CLAUSE_WORKER */
327 1, /* OMP_CLAUSE_VECTOR */
328 1, /* OMP_CLAUSE_NUM_GANGS */
329 1, /* OMP_CLAUSE_NUM_WORKERS */
330 1, /* OMP_CLAUSE_VECTOR_LENGTH */
331 1, /* OMP_CLAUSE_TILE */
334 const char * const omp_clause_code_name
[] =
407 /* Return the tree node structure used by tree code CODE. */
409 static inline enum tree_node_structure_enum
410 tree_node_structure_for_code (enum tree_code code
)
412 switch (TREE_CODE_CLASS (code
))
414 case tcc_declaration
:
419 return TS_FIELD_DECL
;
425 return TS_LABEL_DECL
;
427 return TS_RESULT_DECL
;
428 case DEBUG_EXPR_DECL
:
431 return TS_CONST_DECL
;
435 return TS_FUNCTION_DECL
;
436 case TRANSLATION_UNIT_DECL
:
437 return TS_TRANSLATION_UNIT_DECL
;
439 return TS_DECL_NON_COMMON
;
443 return TS_TYPE_NON_COMMON
;
452 default: /* tcc_constant and tcc_exceptional */
457 /* tcc_constant cases. */
458 case VOID_CST
: return TS_TYPED
;
459 case INTEGER_CST
: return TS_INT_CST
;
460 case REAL_CST
: return TS_REAL_CST
;
461 case FIXED_CST
: return TS_FIXED_CST
;
462 case COMPLEX_CST
: return TS_COMPLEX
;
463 case VECTOR_CST
: return TS_VECTOR
;
464 case STRING_CST
: return TS_STRING
;
465 /* tcc_exceptional cases. */
466 case ERROR_MARK
: return TS_COMMON
;
467 case IDENTIFIER_NODE
: return TS_IDENTIFIER
;
468 case TREE_LIST
: return TS_LIST
;
469 case TREE_VEC
: return TS_VEC
;
470 case SSA_NAME
: return TS_SSA_NAME
;
471 case PLACEHOLDER_EXPR
: return TS_COMMON
;
472 case STATEMENT_LIST
: return TS_STATEMENT_LIST
;
473 case BLOCK
: return TS_BLOCK
;
474 case CONSTRUCTOR
: return TS_CONSTRUCTOR
;
475 case TREE_BINFO
: return TS_BINFO
;
476 case OMP_CLAUSE
: return TS_OMP_CLAUSE
;
477 case OPTIMIZATION_NODE
: return TS_OPTIMIZATION
;
478 case TARGET_OPTION_NODE
: return TS_TARGET_OPTION
;
486 /* Initialize tree_contains_struct to describe the hierarchy of tree
490 initialize_tree_contains_struct (void)
494 for (i
= ERROR_MARK
; i
< LAST_AND_UNUSED_TREE_CODE
; i
++)
497 enum tree_node_structure_enum ts_code
;
499 code
= (enum tree_code
) i
;
500 ts_code
= tree_node_structure_for_code (code
);
502 /* Mark the TS structure itself. */
503 tree_contains_struct
[code
][ts_code
] = 1;
505 /* Mark all the structures that TS is derived from. */
523 case TS_STATEMENT_LIST
:
524 MARK_TS_TYPED (code
);
528 case TS_DECL_MINIMAL
:
534 case TS_OPTIMIZATION
:
535 case TS_TARGET_OPTION
:
536 MARK_TS_COMMON (code
);
539 case TS_TYPE_WITH_LANG_SPECIFIC
:
540 MARK_TS_TYPE_COMMON (code
);
543 case TS_TYPE_NON_COMMON
:
544 MARK_TS_TYPE_WITH_LANG_SPECIFIC (code
);
548 MARK_TS_DECL_MINIMAL (code
);
553 MARK_TS_DECL_COMMON (code
);
556 case TS_DECL_NON_COMMON
:
557 MARK_TS_DECL_WITH_VIS (code
);
560 case TS_DECL_WITH_VIS
:
564 MARK_TS_DECL_WRTL (code
);
568 MARK_TS_DECL_COMMON (code
);
572 MARK_TS_DECL_WITH_VIS (code
);
576 case TS_FUNCTION_DECL
:
577 MARK_TS_DECL_NON_COMMON (code
);
580 case TS_TRANSLATION_UNIT_DECL
:
581 MARK_TS_DECL_COMMON (code
);
589 /* Basic consistency checks for attributes used in fold. */
590 gcc_assert (tree_contains_struct
[FUNCTION_DECL
][TS_DECL_NON_COMMON
]);
591 gcc_assert (tree_contains_struct
[TYPE_DECL
][TS_DECL_NON_COMMON
]);
592 gcc_assert (tree_contains_struct
[CONST_DECL
][TS_DECL_COMMON
]);
593 gcc_assert (tree_contains_struct
[VAR_DECL
][TS_DECL_COMMON
]);
594 gcc_assert (tree_contains_struct
[PARM_DECL
][TS_DECL_COMMON
]);
595 gcc_assert (tree_contains_struct
[RESULT_DECL
][TS_DECL_COMMON
]);
596 gcc_assert (tree_contains_struct
[FUNCTION_DECL
][TS_DECL_COMMON
]);
597 gcc_assert (tree_contains_struct
[TYPE_DECL
][TS_DECL_COMMON
]);
598 gcc_assert (tree_contains_struct
[TRANSLATION_UNIT_DECL
][TS_DECL_COMMON
]);
599 gcc_assert (tree_contains_struct
[LABEL_DECL
][TS_DECL_COMMON
]);
600 gcc_assert (tree_contains_struct
[FIELD_DECL
][TS_DECL_COMMON
]);
601 gcc_assert (tree_contains_struct
[VAR_DECL
][TS_DECL_WRTL
]);
602 gcc_assert (tree_contains_struct
[PARM_DECL
][TS_DECL_WRTL
]);
603 gcc_assert (tree_contains_struct
[RESULT_DECL
][TS_DECL_WRTL
]);
604 gcc_assert (tree_contains_struct
[FUNCTION_DECL
][TS_DECL_WRTL
]);
605 gcc_assert (tree_contains_struct
[LABEL_DECL
][TS_DECL_WRTL
]);
606 gcc_assert (tree_contains_struct
[CONST_DECL
][TS_DECL_MINIMAL
]);
607 gcc_assert (tree_contains_struct
[VAR_DECL
][TS_DECL_MINIMAL
]);
608 gcc_assert (tree_contains_struct
[PARM_DECL
][TS_DECL_MINIMAL
]);
609 gcc_assert (tree_contains_struct
[RESULT_DECL
][TS_DECL_MINIMAL
]);
610 gcc_assert (tree_contains_struct
[FUNCTION_DECL
][TS_DECL_MINIMAL
]);
611 gcc_assert (tree_contains_struct
[TYPE_DECL
][TS_DECL_MINIMAL
]);
612 gcc_assert (tree_contains_struct
[TRANSLATION_UNIT_DECL
][TS_DECL_MINIMAL
]);
613 gcc_assert (tree_contains_struct
[LABEL_DECL
][TS_DECL_MINIMAL
]);
614 gcc_assert (tree_contains_struct
[FIELD_DECL
][TS_DECL_MINIMAL
]);
615 gcc_assert (tree_contains_struct
[VAR_DECL
][TS_DECL_WITH_VIS
]);
616 gcc_assert (tree_contains_struct
[FUNCTION_DECL
][TS_DECL_WITH_VIS
]);
617 gcc_assert (tree_contains_struct
[TYPE_DECL
][TS_DECL_WITH_VIS
]);
618 gcc_assert (tree_contains_struct
[VAR_DECL
][TS_VAR_DECL
]);
619 gcc_assert (tree_contains_struct
[FIELD_DECL
][TS_FIELD_DECL
]);
620 gcc_assert (tree_contains_struct
[PARM_DECL
][TS_PARM_DECL
]);
621 gcc_assert (tree_contains_struct
[LABEL_DECL
][TS_LABEL_DECL
]);
622 gcc_assert (tree_contains_struct
[RESULT_DECL
][TS_RESULT_DECL
]);
623 gcc_assert (tree_contains_struct
[CONST_DECL
][TS_CONST_DECL
]);
624 gcc_assert (tree_contains_struct
[TYPE_DECL
][TS_TYPE_DECL
]);
625 gcc_assert (tree_contains_struct
[FUNCTION_DECL
][TS_FUNCTION_DECL
]);
626 gcc_assert (tree_contains_struct
[IMPORTED_DECL
][TS_DECL_MINIMAL
]);
627 gcc_assert (tree_contains_struct
[IMPORTED_DECL
][TS_DECL_COMMON
]);
628 gcc_assert (tree_contains_struct
[NAMELIST_DECL
][TS_DECL_MINIMAL
]);
629 gcc_assert (tree_contains_struct
[NAMELIST_DECL
][TS_DECL_COMMON
]);
638 /* Initialize the hash table of types. */
640 = hash_table
<type_cache_hasher
>::create_ggc (TYPE_HASH_INITIAL_SIZE
);
643 = hash_table
<tree_decl_map_cache_hasher
>::create_ggc (512);
646 = hash_table
<tree_decl_map_cache_hasher
>::create_ggc (512);
648 int_cst_hash_table
= hash_table
<int_cst_hasher
>::create_ggc (1024);
650 int_cst_node
= make_int_cst (1, 1);
652 cl_option_hash_table
= hash_table
<cl_option_hasher
>::create_ggc (64);
654 cl_optimization_node
= make_node (OPTIMIZATION_NODE
);
655 cl_target_option_node
= make_node (TARGET_OPTION_NODE
);
657 /* Initialize the tree_contains_struct array. */
658 initialize_tree_contains_struct ();
659 lang_hooks
.init_ts ();
663 /* The name of the object as the assembler will see it (but before any
664 translations made by ASM_OUTPUT_LABELREF). Often this is the same
665 as DECL_NAME. It is an IDENTIFIER_NODE. */
667 decl_assembler_name (tree decl
)
669 if (!DECL_ASSEMBLER_NAME_SET_P (decl
))
670 lang_hooks
.set_decl_assembler_name (decl
);
671 return DECL_WITH_VIS_CHECK (decl
)->decl_with_vis
.assembler_name
;
674 /* When the target supports COMDAT groups, this indicates which group the
675 DECL is associated with. This can be either an IDENTIFIER_NODE or a
676 decl, in which case its DECL_ASSEMBLER_NAME identifies the group. */
678 decl_comdat_group (const_tree node
)
680 struct symtab_node
*snode
= symtab_node::get (node
);
683 return snode
->get_comdat_group ();
686 /* Likewise, but make sure it's been reduced to an IDENTIFIER_NODE. */
688 decl_comdat_group_id (const_tree node
)
690 struct symtab_node
*snode
= symtab_node::get (node
);
693 return snode
->get_comdat_group_id ();
696 /* When the target supports named section, return its name as IDENTIFIER_NODE
697 or NULL if it is in no section. */
699 decl_section_name (const_tree node
)
701 struct symtab_node
*snode
= symtab_node::get (node
);
704 return snode
->get_section ();
707 /* Set section name of NODE to VALUE (that is expected to be
710 set_decl_section_name (tree node
, const char *value
)
712 struct symtab_node
*snode
;
716 snode
= symtab_node::get (node
);
720 else if (TREE_CODE (node
) == VAR_DECL
)
721 snode
= varpool_node::get_create (node
);
723 snode
= cgraph_node::get_create (node
);
724 snode
->set_section (value
);
727 /* Return TLS model of a variable NODE. */
729 decl_tls_model (const_tree node
)
731 struct varpool_node
*snode
= varpool_node::get (node
);
733 return TLS_MODEL_NONE
;
734 return snode
->tls_model
;
737 /* Set TLS model of variable NODE to MODEL. */
739 set_decl_tls_model (tree node
, enum tls_model model
)
741 struct varpool_node
*vnode
;
743 if (model
== TLS_MODEL_NONE
)
745 vnode
= varpool_node::get (node
);
750 vnode
= varpool_node::get_create (node
);
751 vnode
->tls_model
= model
;
754 /* Compute the number of bytes occupied by a tree with code CODE.
755 This function cannot be used for nodes that have variable sizes,
756 including TREE_VEC, INTEGER_CST, STRING_CST, and CALL_EXPR. */
758 tree_code_size (enum tree_code code
)
760 switch (TREE_CODE_CLASS (code
))
762 case tcc_declaration
: /* A decl node */
767 return sizeof (struct tree_field_decl
);
769 return sizeof (struct tree_parm_decl
);
771 return sizeof (struct tree_var_decl
);
773 return sizeof (struct tree_label_decl
);
775 return sizeof (struct tree_result_decl
);
777 return sizeof (struct tree_const_decl
);
779 return sizeof (struct tree_type_decl
);
781 return sizeof (struct tree_function_decl
);
782 case DEBUG_EXPR_DECL
:
783 return sizeof (struct tree_decl_with_rtl
);
784 case TRANSLATION_UNIT_DECL
:
785 return sizeof (struct tree_translation_unit_decl
);
789 return sizeof (struct tree_decl_non_common
);
791 return lang_hooks
.tree_size (code
);
795 case tcc_type
: /* a type node */
796 return sizeof (struct tree_type_non_common
);
798 case tcc_reference
: /* a reference */
799 case tcc_expression
: /* an expression */
800 case tcc_statement
: /* an expression with side effects */
801 case tcc_comparison
: /* a comparison expression */
802 case tcc_unary
: /* a unary arithmetic expression */
803 case tcc_binary
: /* a binary arithmetic expression */
804 return (sizeof (struct tree_exp
)
805 + (TREE_CODE_LENGTH (code
) - 1) * sizeof (tree
));
807 case tcc_constant
: /* a constant */
810 case VOID_CST
: return sizeof (struct tree_typed
);
811 case INTEGER_CST
: gcc_unreachable ();
812 case REAL_CST
: return sizeof (struct tree_real_cst
);
813 case FIXED_CST
: return sizeof (struct tree_fixed_cst
);
814 case COMPLEX_CST
: return sizeof (struct tree_complex
);
815 case VECTOR_CST
: return sizeof (struct tree_vector
);
816 case STRING_CST
: gcc_unreachable ();
818 return lang_hooks
.tree_size (code
);
821 case tcc_exceptional
: /* something random, like an identifier. */
824 case IDENTIFIER_NODE
: return lang_hooks
.identifier_size
;
825 case TREE_LIST
: return sizeof (struct tree_list
);
828 case PLACEHOLDER_EXPR
: return sizeof (struct tree_common
);
831 case OMP_CLAUSE
: gcc_unreachable ();
833 case SSA_NAME
: return sizeof (struct tree_ssa_name
);
835 case STATEMENT_LIST
: return sizeof (struct tree_statement_list
);
836 case BLOCK
: return sizeof (struct tree_block
);
837 case CONSTRUCTOR
: return sizeof (struct tree_constructor
);
838 case OPTIMIZATION_NODE
: return sizeof (struct tree_optimization_option
);
839 case TARGET_OPTION_NODE
: return sizeof (struct tree_target_option
);
842 return lang_hooks
.tree_size (code
);
850 /* Compute the number of bytes occupied by NODE. This routine only
851 looks at TREE_CODE, except for those nodes that have variable sizes. */
853 tree_size (const_tree node
)
855 const enum tree_code code
= TREE_CODE (node
);
859 return (sizeof (struct tree_int_cst
)
860 + (TREE_INT_CST_EXT_NUNITS (node
) - 1) * sizeof (HOST_WIDE_INT
));
863 return (offsetof (struct tree_binfo
, base_binfos
)
865 ::embedded_size (BINFO_N_BASE_BINFOS (node
)));
868 return (sizeof (struct tree_vec
)
869 + (TREE_VEC_LENGTH (node
) - 1) * sizeof (tree
));
872 return (sizeof (struct tree_vector
)
873 + (TYPE_VECTOR_SUBPARTS (TREE_TYPE (node
)) - 1) * sizeof (tree
));
876 return TREE_STRING_LENGTH (node
) + offsetof (struct tree_string
, str
) + 1;
879 return (sizeof (struct tree_omp_clause
)
880 + (omp_clause_num_ops
[OMP_CLAUSE_CODE (node
)] - 1)
884 if (TREE_CODE_CLASS (code
) == tcc_vl_exp
)
885 return (sizeof (struct tree_exp
)
886 + (VL_EXP_OPERAND_LENGTH (node
) - 1) * sizeof (tree
));
888 return tree_code_size (code
);
892 /* Record interesting allocation statistics for a tree node with CODE
896 record_node_allocation_statistics (enum tree_code code ATTRIBUTE_UNUSED
,
897 size_t length ATTRIBUTE_UNUSED
)
899 enum tree_code_class type
= TREE_CODE_CLASS (code
);
902 if (!GATHER_STATISTICS
)
907 case tcc_declaration
: /* A decl node */
911 case tcc_type
: /* a type node */
915 case tcc_statement
: /* an expression with side effects */
919 case tcc_reference
: /* a reference */
923 case tcc_expression
: /* an expression */
924 case tcc_comparison
: /* a comparison expression */
925 case tcc_unary
: /* a unary arithmetic expression */
926 case tcc_binary
: /* a binary arithmetic expression */
930 case tcc_constant
: /* a constant */
934 case tcc_exceptional
: /* something random, like an identifier. */
937 case IDENTIFIER_NODE
:
950 kind
= ssa_name_kind
;
962 kind
= omp_clause_kind
;
979 tree_code_counts
[(int) code
]++;
980 tree_node_counts
[(int) kind
]++;
981 tree_node_sizes
[(int) kind
] += length
;
984 /* Allocate and return a new UID from the DECL_UID namespace. */
987 allocate_decl_uid (void)
989 return next_decl_uid
++;
992 /* Return a newly allocated node of code CODE. For decl and type
993 nodes, some other fields are initialized. The rest of the node is
994 initialized to zero. This function cannot be used for TREE_VEC,
995 INTEGER_CST or OMP_CLAUSE nodes, which is enforced by asserts in
998 Achoo! I got a code in the node. */
1001 make_node_stat (enum tree_code code MEM_STAT_DECL
)
1004 enum tree_code_class type
= TREE_CODE_CLASS (code
);
1005 size_t length
= tree_code_size (code
);
1007 record_node_allocation_statistics (code
, length
);
1009 t
= ggc_alloc_cleared_tree_node_stat (length PASS_MEM_STAT
);
1010 TREE_SET_CODE (t
, code
);
1015 TREE_SIDE_EFFECTS (t
) = 1;
1018 case tcc_declaration
:
1019 if (CODE_CONTAINS_STRUCT (code
, TS_DECL_COMMON
))
1021 if (code
== FUNCTION_DECL
)
1023 DECL_ALIGN (t
) = FUNCTION_BOUNDARY
;
1024 DECL_MODE (t
) = FUNCTION_MODE
;
1029 DECL_SOURCE_LOCATION (t
) = input_location
;
1030 if (TREE_CODE (t
) == DEBUG_EXPR_DECL
)
1031 DECL_UID (t
) = --next_debug_decl_uid
;
1034 DECL_UID (t
) = allocate_decl_uid ();
1035 SET_DECL_PT_UID (t
, -1);
1037 if (TREE_CODE (t
) == LABEL_DECL
)
1038 LABEL_DECL_UID (t
) = -1;
1043 TYPE_UID (t
) = next_type_uid
++;
1044 TYPE_ALIGN (t
) = BITS_PER_UNIT
;
1045 TYPE_USER_ALIGN (t
) = 0;
1046 TYPE_MAIN_VARIANT (t
) = t
;
1047 TYPE_CANONICAL (t
) = t
;
1049 /* Default to no attributes for type, but let target change that. */
1050 TYPE_ATTRIBUTES (t
) = NULL_TREE
;
1051 targetm
.set_default_type_attributes (t
);
1053 /* We have not yet computed the alias set for this type. */
1054 TYPE_ALIAS_SET (t
) = -1;
1058 TREE_CONSTANT (t
) = 1;
1061 case tcc_expression
:
1067 case PREDECREMENT_EXPR
:
1068 case PREINCREMENT_EXPR
:
1069 case POSTDECREMENT_EXPR
:
1070 case POSTINCREMENT_EXPR
:
1071 /* All of these have side-effects, no matter what their
1073 TREE_SIDE_EFFECTS (t
) = 1;
1081 case tcc_exceptional
:
1084 case TARGET_OPTION_NODE
:
1085 TREE_TARGET_OPTION(t
)
1086 = ggc_cleared_alloc
<struct cl_target_option
> ();
1089 case OPTIMIZATION_NODE
:
1090 TREE_OPTIMIZATION (t
)
1091 = ggc_cleared_alloc
<struct cl_optimization
> ();
1100 /* Other classes need no special treatment. */
1107 /* Free tree node. */
1110 free_node (tree node
)
1112 enum tree_code code
= TREE_CODE (node
);
1113 if (GATHER_STATISTICS
)
1115 tree_code_counts
[(int) TREE_CODE (node
)]--;
1116 tree_node_counts
[(int) t_kind
]--;
1117 tree_node_sizes
[(int) t_kind
] -= tree_code_size (TREE_CODE (node
));
1119 if (CODE_CONTAINS_STRUCT (code
, TS_CONSTRUCTOR
))
1120 vec_free (CONSTRUCTOR_ELTS (node
));
1121 else if (code
== BLOCK
)
1122 vec_free (BLOCK_NONLOCALIZED_VARS (node
));
1123 else if (code
== TREE_BINFO
)
1124 vec_free (BINFO_BASE_ACCESSES (node
));
1128 /* Return a new node with the same contents as NODE except that its
1129 TREE_CHAIN, if it has one, is zero and it has a fresh uid. */
1132 copy_node_stat (tree node MEM_STAT_DECL
)
1135 enum tree_code code
= TREE_CODE (node
);
1138 gcc_assert (code
!= STATEMENT_LIST
);
1140 length
= tree_size (node
);
1141 record_node_allocation_statistics (code
, length
);
1142 t
= ggc_alloc_tree_node_stat (length PASS_MEM_STAT
);
1143 memcpy (t
, node
, length
);
1145 if (CODE_CONTAINS_STRUCT (code
, TS_COMMON
))
1147 TREE_ASM_WRITTEN (t
) = 0;
1148 TREE_VISITED (t
) = 0;
1150 if (TREE_CODE_CLASS (code
) == tcc_declaration
)
1152 if (code
== DEBUG_EXPR_DECL
)
1153 DECL_UID (t
) = --next_debug_decl_uid
;
1156 DECL_UID (t
) = allocate_decl_uid ();
1157 if (DECL_PT_UID_SET_P (node
))
1158 SET_DECL_PT_UID (t
, DECL_PT_UID (node
));
1160 if ((TREE_CODE (node
) == PARM_DECL
|| TREE_CODE (node
) == VAR_DECL
)
1161 && DECL_HAS_VALUE_EXPR_P (node
))
1163 SET_DECL_VALUE_EXPR (t
, DECL_VALUE_EXPR (node
));
1164 DECL_HAS_VALUE_EXPR_P (t
) = 1;
1166 /* DECL_DEBUG_EXPR is copied explicitely by callers. */
1167 if (TREE_CODE (node
) == VAR_DECL
)
1169 DECL_HAS_DEBUG_EXPR_P (t
) = 0;
1170 t
->decl_with_vis
.symtab_node
= NULL
;
1172 if (TREE_CODE (node
) == VAR_DECL
&& DECL_HAS_INIT_PRIORITY_P (node
))
1174 SET_DECL_INIT_PRIORITY (t
, DECL_INIT_PRIORITY (node
));
1175 DECL_HAS_INIT_PRIORITY_P (t
) = 1;
1177 if (TREE_CODE (node
) == FUNCTION_DECL
)
1179 DECL_STRUCT_FUNCTION (t
) = NULL
;
1180 t
->decl_with_vis
.symtab_node
= NULL
;
1183 else if (TREE_CODE_CLASS (code
) == tcc_type
)
1185 TYPE_UID (t
) = next_type_uid
++;
1186 /* The following is so that the debug code for
1187 the copy is different from the original type.
1188 The two statements usually duplicate each other
1189 (because they clear fields of the same union),
1190 but the optimizer should catch that. */
1191 TYPE_SYMTAB_POINTER (t
) = 0;
1192 TYPE_SYMTAB_ADDRESS (t
) = 0;
1194 /* Do not copy the values cache. */
1195 if (TYPE_CACHED_VALUES_P (t
))
1197 TYPE_CACHED_VALUES_P (t
) = 0;
1198 TYPE_CACHED_VALUES (t
) = NULL_TREE
;
1201 else if (code
== TARGET_OPTION_NODE
)
1203 TREE_TARGET_OPTION (t
) = ggc_alloc
<struct cl_target_option
>();
1204 memcpy (TREE_TARGET_OPTION (t
), TREE_TARGET_OPTION (node
),
1205 sizeof (struct cl_target_option
));
1207 else if (code
== OPTIMIZATION_NODE
)
1209 TREE_OPTIMIZATION (t
) = ggc_alloc
<struct cl_optimization
>();
1210 memcpy (TREE_OPTIMIZATION (t
), TREE_OPTIMIZATION (node
),
1211 sizeof (struct cl_optimization
));
1217 /* Return a copy of a chain of nodes, chained through the TREE_CHAIN field.
1218 For example, this can copy a list made of TREE_LIST nodes. */
1221 copy_list (tree list
)
1229 head
= prev
= copy_node (list
);
1230 next
= TREE_CHAIN (list
);
1233 TREE_CHAIN (prev
) = copy_node (next
);
1234 prev
= TREE_CHAIN (prev
);
1235 next
= TREE_CHAIN (next
);
1241 /* Return the value that TREE_INT_CST_EXT_NUNITS should have for an
1242 INTEGER_CST with value CST and type TYPE. */
1245 get_int_cst_ext_nunits (tree type
, const wide_int
&cst
)
1247 gcc_checking_assert (cst
.get_precision () == TYPE_PRECISION (type
));
1248 /* We need extra HWIs if CST is an unsigned integer with its
1250 if (TYPE_UNSIGNED (type
) && wi::neg_p (cst
))
1251 return cst
.get_precision () / HOST_BITS_PER_WIDE_INT
+ 1;
1252 return cst
.get_len ();
1255 /* Return a new INTEGER_CST with value CST and type TYPE. */
1258 build_new_int_cst (tree type
, const wide_int
&cst
)
1260 unsigned int len
= cst
.get_len ();
1261 unsigned int ext_len
= get_int_cst_ext_nunits (type
, cst
);
1262 tree nt
= make_int_cst (len
, ext_len
);
1267 TREE_INT_CST_ELT (nt
, ext_len
)
1268 = zext_hwi (-1, cst
.get_precision () % HOST_BITS_PER_WIDE_INT
);
1269 for (unsigned int i
= len
; i
< ext_len
; ++i
)
1270 TREE_INT_CST_ELT (nt
, i
) = -1;
1272 else if (TYPE_UNSIGNED (type
)
1273 && cst
.get_precision () < len
* HOST_BITS_PER_WIDE_INT
)
1276 TREE_INT_CST_ELT (nt
, len
)
1277 = zext_hwi (cst
.elt (len
),
1278 cst
.get_precision () % HOST_BITS_PER_WIDE_INT
);
1281 for (unsigned int i
= 0; i
< len
; i
++)
1282 TREE_INT_CST_ELT (nt
, i
) = cst
.elt (i
);
1283 TREE_TYPE (nt
) = type
;
1287 /* Create an INT_CST node with a LOW value sign extended to TYPE. */
1290 build_int_cst (tree type
, HOST_WIDE_INT low
)
1292 /* Support legacy code. */
1294 type
= integer_type_node
;
1296 return wide_int_to_tree (type
, wi::shwi (low
, TYPE_PRECISION (type
)));
1300 build_int_cstu (tree type
, unsigned HOST_WIDE_INT cst
)
1302 return wide_int_to_tree (type
, wi::uhwi (cst
, TYPE_PRECISION (type
)));
1305 /* Create an INT_CST node with a LOW value sign extended to TYPE. */
1308 build_int_cst_type (tree type
, HOST_WIDE_INT low
)
1311 return wide_int_to_tree (type
, wi::shwi (low
, TYPE_PRECISION (type
)));
1314 /* Constructs tree in type TYPE from with value given by CST. Signedness
1315 of CST is assumed to be the same as the signedness of TYPE. */
1318 double_int_to_tree (tree type
, double_int cst
)
1320 return wide_int_to_tree (type
, widest_int::from (cst
, TYPE_SIGN (type
)));
1323 /* We force the wide_int CST to the range of the type TYPE by sign or
1324 zero extending it. OVERFLOWABLE indicates if we are interested in
1325 overflow of the value, when >0 we are only interested in signed
1326 overflow, for <0 we are interested in any overflow. OVERFLOWED
1327 indicates whether overflow has already occurred. CONST_OVERFLOWED
1328 indicates whether constant overflow has already occurred. We force
1329 T's value to be within range of T's type (by setting to 0 or 1 all
1330 the bits outside the type's range). We set TREE_OVERFLOWED if,
1331 OVERFLOWED is nonzero,
1332 or OVERFLOWABLE is >0 and signed overflow occurs
1333 or OVERFLOWABLE is <0 and any overflow occurs
1334 We return a new tree node for the extended wide_int. The node
1335 is shared if no overflow flags are set. */
1339 force_fit_type (tree type
, const wide_int_ref
&cst
,
1340 int overflowable
, bool overflowed
)
1342 signop sign
= TYPE_SIGN (type
);
1344 /* If we need to set overflow flags, return a new unshared node. */
1345 if (overflowed
|| !wi::fits_to_tree_p (cst
, type
))
1349 || (overflowable
> 0 && sign
== SIGNED
))
1351 wide_int tmp
= wide_int::from (cst
, TYPE_PRECISION (type
), sign
);
1352 tree t
= build_new_int_cst (type
, tmp
);
1353 TREE_OVERFLOW (t
) = 1;
1358 /* Else build a shared node. */
1359 return wide_int_to_tree (type
, cst
);
1362 /* These are the hash table functions for the hash table of INTEGER_CST
1363 nodes of a sizetype. */
1365 /* Return the hash code X, an INTEGER_CST. */
1368 int_cst_hasher::hash (tree x
)
1370 const_tree
const t
= x
;
1371 hashval_t code
= TYPE_UID (TREE_TYPE (t
));
1374 for (i
= 0; i
< TREE_INT_CST_NUNITS (t
); i
++)
1375 code
= iterative_hash_host_wide_int (TREE_INT_CST_ELT(t
, i
), code
);
1380 /* Return nonzero if the value represented by *X (an INTEGER_CST tree node)
1381 is the same as that given by *Y, which is the same. */
1384 int_cst_hasher::equal (tree x
, tree y
)
1386 const_tree
const xt
= x
;
1387 const_tree
const yt
= y
;
1389 if (TREE_TYPE (xt
) != TREE_TYPE (yt
)
1390 || TREE_INT_CST_NUNITS (xt
) != TREE_INT_CST_NUNITS (yt
)
1391 || TREE_INT_CST_EXT_NUNITS (xt
) != TREE_INT_CST_EXT_NUNITS (yt
))
1394 for (int i
= 0; i
< TREE_INT_CST_NUNITS (xt
); i
++)
1395 if (TREE_INT_CST_ELT (xt
, i
) != TREE_INT_CST_ELT (yt
, i
))
1401 /* Create an INT_CST node of TYPE and value CST.
1402 The returned node is always shared. For small integers we use a
1403 per-type vector cache, for larger ones we use a single hash table.
1404 The value is extended from its precision according to the sign of
1405 the type to be a multiple of HOST_BITS_PER_WIDE_INT. This defines
1406 the upper bits and ensures that hashing and value equality based
1407 upon the underlying HOST_WIDE_INTs works without masking. */
1410 wide_int_to_tree (tree type
, const wide_int_ref
&pcst
)
1417 unsigned int prec
= TYPE_PRECISION (type
);
1418 signop sgn
= TYPE_SIGN (type
);
1420 /* Verify that everything is canonical. */
1421 int l
= pcst
.get_len ();
1424 if (pcst
.elt (l
- 1) == 0)
1425 gcc_checking_assert (pcst
.elt (l
- 2) < 0);
1426 if (pcst
.elt (l
- 1) == (HOST_WIDE_INT
) -1)
1427 gcc_checking_assert (pcst
.elt (l
- 2) >= 0);
1430 wide_int cst
= wide_int::from (pcst
, prec
, sgn
);
1431 unsigned int ext_len
= get_int_cst_ext_nunits (type
, cst
);
1435 /* We just need to store a single HOST_WIDE_INT. */
1437 if (TYPE_UNSIGNED (type
))
1438 hwi
= cst
.to_uhwi ();
1440 hwi
= cst
.to_shwi ();
1442 switch (TREE_CODE (type
))
1445 gcc_assert (hwi
== 0);
1449 case REFERENCE_TYPE
:
1450 case POINTER_BOUNDS_TYPE
:
1451 /* Cache NULL pointer and zero bounds. */
1460 /* Cache false or true. */
1462 if (IN_RANGE (hwi
, 0, 1))
1468 if (TYPE_SIGN (type
) == UNSIGNED
)
1471 limit
= INTEGER_SHARE_LIMIT
;
1472 if (IN_RANGE (hwi
, 0, INTEGER_SHARE_LIMIT
- 1))
1477 /* Cache [-1, N). */
1478 limit
= INTEGER_SHARE_LIMIT
+ 1;
1479 if (IN_RANGE (hwi
, -1, INTEGER_SHARE_LIMIT
- 1))
1493 /* Look for it in the type's vector of small shared ints. */
1494 if (!TYPE_CACHED_VALUES_P (type
))
1496 TYPE_CACHED_VALUES_P (type
) = 1;
1497 TYPE_CACHED_VALUES (type
) = make_tree_vec (limit
);
1500 t
= TREE_VEC_ELT (TYPE_CACHED_VALUES (type
), ix
);
1502 /* Make sure no one is clobbering the shared constant. */
1503 gcc_checking_assert (TREE_TYPE (t
) == type
1504 && TREE_INT_CST_NUNITS (t
) == 1
1505 && TREE_INT_CST_OFFSET_NUNITS (t
) == 1
1506 && TREE_INT_CST_EXT_NUNITS (t
) == 1
1507 && TREE_INT_CST_ELT (t
, 0) == hwi
);
1510 /* Create a new shared int. */
1511 t
= build_new_int_cst (type
, cst
);
1512 TREE_VEC_ELT (TYPE_CACHED_VALUES (type
), ix
) = t
;
1517 /* Use the cache of larger shared ints, using int_cst_node as
1520 TREE_INT_CST_ELT (int_cst_node
, 0) = hwi
;
1521 TREE_TYPE (int_cst_node
) = type
;
1523 tree
*slot
= int_cst_hash_table
->find_slot (int_cst_node
, INSERT
);
1527 /* Insert this one into the hash table. */
1530 /* Make a new node for next time round. */
1531 int_cst_node
= make_int_cst (1, 1);
1537 /* The value either hashes properly or we drop it on the floor
1538 for the gc to take care of. There will not be enough of them
1541 tree nt
= build_new_int_cst (type
, cst
);
1542 tree
*slot
= int_cst_hash_table
->find_slot (nt
, INSERT
);
1546 /* Insert this one into the hash table. */
1556 cache_integer_cst (tree t
)
1558 tree type
= TREE_TYPE (t
);
1561 int prec
= TYPE_PRECISION (type
);
1563 gcc_assert (!TREE_OVERFLOW (t
));
1565 switch (TREE_CODE (type
))
1568 gcc_assert (integer_zerop (t
));
1572 case REFERENCE_TYPE
:
1573 /* Cache NULL pointer. */
1574 if (integer_zerop (t
))
1582 /* Cache false or true. */
1584 if (wi::ltu_p (t
, 2))
1585 ix
= TREE_INT_CST_ELT (t
, 0);
1590 if (TYPE_UNSIGNED (type
))
1593 limit
= INTEGER_SHARE_LIMIT
;
1595 /* This is a little hokie, but if the prec is smaller than
1596 what is necessary to hold INTEGER_SHARE_LIMIT, then the
1597 obvious test will not get the correct answer. */
1598 if (prec
< HOST_BITS_PER_WIDE_INT
)
1600 if (tree_to_uhwi (t
) < (unsigned HOST_WIDE_INT
) INTEGER_SHARE_LIMIT
)
1601 ix
= tree_to_uhwi (t
);
1603 else if (wi::ltu_p (t
, INTEGER_SHARE_LIMIT
))
1604 ix
= tree_to_uhwi (t
);
1609 limit
= INTEGER_SHARE_LIMIT
+ 1;
1611 if (integer_minus_onep (t
))
1613 else if (!wi::neg_p (t
))
1615 if (prec
< HOST_BITS_PER_WIDE_INT
)
1617 if (tree_to_shwi (t
) < INTEGER_SHARE_LIMIT
)
1618 ix
= tree_to_shwi (t
) + 1;
1620 else if (wi::ltu_p (t
, INTEGER_SHARE_LIMIT
))
1621 ix
= tree_to_shwi (t
) + 1;
1635 /* Look for it in the type's vector of small shared ints. */
1636 if (!TYPE_CACHED_VALUES_P (type
))
1638 TYPE_CACHED_VALUES_P (type
) = 1;
1639 TYPE_CACHED_VALUES (type
) = make_tree_vec (limit
);
1642 gcc_assert (TREE_VEC_ELT (TYPE_CACHED_VALUES (type
), ix
) == NULL_TREE
);
1643 TREE_VEC_ELT (TYPE_CACHED_VALUES (type
), ix
) = t
;
1647 /* Use the cache of larger shared ints. */
1648 tree
*slot
= int_cst_hash_table
->find_slot (t
, INSERT
);
1649 /* If there is already an entry for the number verify it's the
1652 gcc_assert (wi::eq_p (tree (*slot
), t
));
1654 /* Otherwise insert this one into the hash table. */
1660 /* Builds an integer constant in TYPE such that lowest BITS bits are ones
1661 and the rest are zeros. */
1664 build_low_bits_mask (tree type
, unsigned bits
)
1666 gcc_assert (bits
<= TYPE_PRECISION (type
));
1668 return wide_int_to_tree (type
, wi::mask (bits
, false,
1669 TYPE_PRECISION (type
)));
1672 /* Checks that X is integer constant that can be expressed in (unsigned)
1673 HOST_WIDE_INT without loss of precision. */
1676 cst_and_fits_in_hwi (const_tree x
)
1678 if (TREE_CODE (x
) != INTEGER_CST
)
1681 if (TYPE_PRECISION (TREE_TYPE (x
)) > HOST_BITS_PER_WIDE_INT
)
1684 return TREE_INT_CST_NUNITS (x
) == 1;
1687 /* Build a newly constructed VECTOR_CST node of length LEN. */
1690 make_vector_stat (unsigned len MEM_STAT_DECL
)
1693 unsigned length
= (len
- 1) * sizeof (tree
) + sizeof (struct tree_vector
);
1695 record_node_allocation_statistics (VECTOR_CST
, length
);
1697 t
= ggc_alloc_cleared_tree_node_stat (length PASS_MEM_STAT
);
1699 TREE_SET_CODE (t
, VECTOR_CST
);
1700 TREE_CONSTANT (t
) = 1;
1705 /* Return a new VECTOR_CST node whose type is TYPE and whose values
1706 are in a list pointed to by VALS. */
1709 build_vector_stat (tree type
, tree
*vals MEM_STAT_DECL
)
1713 tree v
= make_vector (TYPE_VECTOR_SUBPARTS (type
));
1714 TREE_TYPE (v
) = type
;
1716 /* Iterate through elements and check for overflow. */
1717 for (cnt
= 0; cnt
< TYPE_VECTOR_SUBPARTS (type
); ++cnt
)
1719 tree value
= vals
[cnt
];
1721 VECTOR_CST_ELT (v
, cnt
) = value
;
1723 /* Don't crash if we get an address constant. */
1724 if (!CONSTANT_CLASS_P (value
))
1727 over
|= TREE_OVERFLOW (value
);
1730 TREE_OVERFLOW (v
) = over
;
1734 /* Return a new VECTOR_CST node whose type is TYPE and whose values
1735 are extracted from V, a vector of CONSTRUCTOR_ELT. */
1738 build_vector_from_ctor (tree type
, vec
<constructor_elt
, va_gc
> *v
)
1740 tree
*vec
= XALLOCAVEC (tree
, TYPE_VECTOR_SUBPARTS (type
));
1741 unsigned HOST_WIDE_INT idx
, pos
= 0;
1744 FOR_EACH_CONSTRUCTOR_VALUE (v
, idx
, value
)
1746 if (TREE_CODE (value
) == VECTOR_CST
)
1747 for (unsigned i
= 0; i
< VECTOR_CST_NELTS (value
); ++i
)
1748 vec
[pos
++] = VECTOR_CST_ELT (value
, i
);
1752 for (; idx
< TYPE_VECTOR_SUBPARTS (type
); ++idx
)
1753 vec
[pos
++] = build_zero_cst (TREE_TYPE (type
));
1755 return build_vector (type
, vec
);
1758 /* Build a vector of type VECTYPE where all the elements are SCs. */
1760 build_vector_from_val (tree vectype
, tree sc
)
1762 int i
, nunits
= TYPE_VECTOR_SUBPARTS (vectype
);
1764 if (sc
== error_mark_node
)
1767 /* Verify that the vector type is suitable for SC. Note that there
1768 is some inconsistency in the type-system with respect to restrict
1769 qualifications of pointers. Vector types always have a main-variant
1770 element type and the qualification is applied to the vector-type.
1771 So TREE_TYPE (vector-type) does not return a properly qualified
1772 vector element-type. */
1773 gcc_checking_assert (types_compatible_p (TYPE_MAIN_VARIANT (TREE_TYPE (sc
)),
1774 TREE_TYPE (vectype
)));
1776 if (CONSTANT_CLASS_P (sc
))
1778 tree
*v
= XALLOCAVEC (tree
, nunits
);
1779 for (i
= 0; i
< nunits
; ++i
)
1781 return build_vector (vectype
, v
);
1785 vec
<constructor_elt
, va_gc
> *v
;
1786 vec_alloc (v
, nunits
);
1787 for (i
= 0; i
< nunits
; ++i
)
1788 CONSTRUCTOR_APPEND_ELT (v
, NULL_TREE
, sc
);
1789 return build_constructor (vectype
, v
);
1793 /* Return a new CONSTRUCTOR node whose type is TYPE and whose values
1794 are in the vec pointed to by VALS. */
1796 build_constructor (tree type
, vec
<constructor_elt
, va_gc
> *vals
)
1798 tree c
= make_node (CONSTRUCTOR
);
1800 constructor_elt
*elt
;
1801 bool constant_p
= true;
1802 bool side_effects_p
= false;
1804 TREE_TYPE (c
) = type
;
1805 CONSTRUCTOR_ELTS (c
) = vals
;
1807 FOR_EACH_VEC_SAFE_ELT (vals
, i
, elt
)
1809 /* Mostly ctors will have elts that don't have side-effects, so
1810 the usual case is to scan all the elements. Hence a single
1811 loop for both const and side effects, rather than one loop
1812 each (with early outs). */
1813 if (!TREE_CONSTANT (elt
->value
))
1815 if (TREE_SIDE_EFFECTS (elt
->value
))
1816 side_effects_p
= true;
1819 TREE_SIDE_EFFECTS (c
) = side_effects_p
;
1820 TREE_CONSTANT (c
) = constant_p
;
1825 /* Build a CONSTRUCTOR node made of a single initializer, with the specified
1828 build_constructor_single (tree type
, tree index
, tree value
)
1830 vec
<constructor_elt
, va_gc
> *v
;
1831 constructor_elt elt
= {index
, value
};
1834 v
->quick_push (elt
);
1836 return build_constructor (type
, v
);
1840 /* Return a new CONSTRUCTOR node whose type is TYPE and whose values
1841 are in a list pointed to by VALS. */
1843 build_constructor_from_list (tree type
, tree vals
)
1846 vec
<constructor_elt
, va_gc
> *v
= NULL
;
1850 vec_alloc (v
, list_length (vals
));
1851 for (t
= vals
; t
; t
= TREE_CHAIN (t
))
1852 CONSTRUCTOR_APPEND_ELT (v
, TREE_PURPOSE (t
), TREE_VALUE (t
));
1855 return build_constructor (type
, v
);
1858 /* Return a new CONSTRUCTOR node whose type is TYPE. NELTS is the number
1859 of elements, provided as index/value pairs. */
1862 build_constructor_va (tree type
, int nelts
, ...)
1864 vec
<constructor_elt
, va_gc
> *v
= NULL
;
1867 va_start (p
, nelts
);
1868 vec_alloc (v
, nelts
);
1871 tree index
= va_arg (p
, tree
);
1872 tree value
= va_arg (p
, tree
);
1873 CONSTRUCTOR_APPEND_ELT (v
, index
, value
);
1876 return build_constructor (type
, v
);
1879 /* Return a new FIXED_CST node whose type is TYPE and value is F. */
1882 build_fixed (tree type
, FIXED_VALUE_TYPE f
)
1885 FIXED_VALUE_TYPE
*fp
;
1887 v
= make_node (FIXED_CST
);
1888 fp
= ggc_alloc
<fixed_value
> ();
1889 memcpy (fp
, &f
, sizeof (FIXED_VALUE_TYPE
));
1891 TREE_TYPE (v
) = type
;
1892 TREE_FIXED_CST_PTR (v
) = fp
;
1896 /* Return a new REAL_CST node whose type is TYPE and value is D. */
1899 build_real (tree type
, REAL_VALUE_TYPE d
)
1902 REAL_VALUE_TYPE
*dp
;
1905 /* ??? Used to check for overflow here via CHECK_FLOAT_TYPE.
1906 Consider doing it via real_convert now. */
1908 v
= make_node (REAL_CST
);
1909 dp
= ggc_alloc
<real_value
> ();
1910 memcpy (dp
, &d
, sizeof (REAL_VALUE_TYPE
));
1912 TREE_TYPE (v
) = type
;
1913 TREE_REAL_CST_PTR (v
) = dp
;
1914 TREE_OVERFLOW (v
) = overflow
;
1918 /* Like build_real, but first truncate D to the type. */
1921 build_real_truncate (tree type
, REAL_VALUE_TYPE d
)
1923 return build_real (type
, real_value_truncate (TYPE_MODE (type
), d
));
1926 /* Return a new REAL_CST node whose type is TYPE
1927 and whose value is the integer value of the INTEGER_CST node I. */
1930 real_value_from_int_cst (const_tree type
, const_tree i
)
1934 /* Clear all bits of the real value type so that we can later do
1935 bitwise comparisons to see if two values are the same. */
1936 memset (&d
, 0, sizeof d
);
1938 real_from_integer (&d
, type
? TYPE_MODE (type
) : VOIDmode
, i
,
1939 TYPE_SIGN (TREE_TYPE (i
)));
1943 /* Given a tree representing an integer constant I, return a tree
1944 representing the same value as a floating-point constant of type TYPE. */
1947 build_real_from_int_cst (tree type
, const_tree i
)
1950 int overflow
= TREE_OVERFLOW (i
);
1952 v
= build_real (type
, real_value_from_int_cst (type
, i
));
1954 TREE_OVERFLOW (v
) |= overflow
;
1958 /* Return a newly constructed STRING_CST node whose value is
1959 the LEN characters at STR.
1960 Note that for a C string literal, LEN should include the trailing NUL.
1961 The TREE_TYPE is not initialized. */
1964 build_string (int len
, const char *str
)
1969 /* Do not waste bytes provided by padding of struct tree_string. */
1970 length
= len
+ offsetof (struct tree_string
, str
) + 1;
1972 record_node_allocation_statistics (STRING_CST
, length
);
1974 s
= (tree
) ggc_internal_alloc (length
);
1976 memset (s
, 0, sizeof (struct tree_typed
));
1977 TREE_SET_CODE (s
, STRING_CST
);
1978 TREE_CONSTANT (s
) = 1;
1979 TREE_STRING_LENGTH (s
) = len
;
1980 memcpy (s
->string
.str
, str
, len
);
1981 s
->string
.str
[len
] = '\0';
1986 /* Return a newly constructed COMPLEX_CST node whose value is
1987 specified by the real and imaginary parts REAL and IMAG.
1988 Both REAL and IMAG should be constant nodes. TYPE, if specified,
1989 will be the type of the COMPLEX_CST; otherwise a new type will be made. */
1992 build_complex (tree type
, tree real
, tree imag
)
1994 tree t
= make_node (COMPLEX_CST
);
1996 TREE_REALPART (t
) = real
;
1997 TREE_IMAGPART (t
) = imag
;
1998 TREE_TYPE (t
) = type
? type
: build_complex_type (TREE_TYPE (real
));
1999 TREE_OVERFLOW (t
) = TREE_OVERFLOW (real
) | TREE_OVERFLOW (imag
);
2003 /* Build a complex (inf +- 0i), such as for the result of cproj.
2004 TYPE is the complex tree type of the result. If NEG is true, the
2005 imaginary zero is negative. */
2008 build_complex_inf (tree type
, bool neg
)
2010 REAL_VALUE_TYPE rinf
, rzero
= dconst0
;
2014 return build_complex (type
, build_real (TREE_TYPE (type
), rinf
),
2015 build_real (TREE_TYPE (type
), rzero
));
2018 /* Return the constant 1 in type TYPE. If TYPE has several elements, each
2019 element is set to 1. In particular, this is 1 + i for complex types. */
2022 build_each_one_cst (tree type
)
2024 if (TREE_CODE (type
) == COMPLEX_TYPE
)
2026 tree scalar
= build_one_cst (TREE_TYPE (type
));
2027 return build_complex (type
, scalar
, scalar
);
2030 return build_one_cst (type
);
2033 /* Return a constant of arithmetic type TYPE which is the
2034 multiplicative identity of the set TYPE. */
2037 build_one_cst (tree type
)
2039 switch (TREE_CODE (type
))
2041 case INTEGER_TYPE
: case ENUMERAL_TYPE
: case BOOLEAN_TYPE
:
2042 case POINTER_TYPE
: case REFERENCE_TYPE
:
2044 return build_int_cst (type
, 1);
2047 return build_real (type
, dconst1
);
2049 case FIXED_POINT_TYPE
:
2050 /* We can only generate 1 for accum types. */
2051 gcc_assert (ALL_SCALAR_ACCUM_MODE_P (TYPE_MODE (type
)));
2052 return build_fixed (type
, FCONST1 (TYPE_MODE (type
)));
2056 tree scalar
= build_one_cst (TREE_TYPE (type
));
2058 return build_vector_from_val (type
, scalar
);
2062 return build_complex (type
,
2063 build_one_cst (TREE_TYPE (type
)),
2064 build_zero_cst (TREE_TYPE (type
)));
2071 /* Return an integer of type TYPE containing all 1's in as much precision as
2072 it contains, or a complex or vector whose subparts are such integers. */
2075 build_all_ones_cst (tree type
)
2077 if (TREE_CODE (type
) == COMPLEX_TYPE
)
2079 tree scalar
= build_all_ones_cst (TREE_TYPE (type
));
2080 return build_complex (type
, scalar
, scalar
);
2083 return build_minus_one_cst (type
);
2086 /* Return a constant of arithmetic type TYPE which is the
2087 opposite of the multiplicative identity of the set TYPE. */
2090 build_minus_one_cst (tree type
)
2092 switch (TREE_CODE (type
))
2094 case INTEGER_TYPE
: case ENUMERAL_TYPE
: case BOOLEAN_TYPE
:
2095 case POINTER_TYPE
: case REFERENCE_TYPE
:
2097 return build_int_cst (type
, -1);
2100 return build_real (type
, dconstm1
);
2102 case FIXED_POINT_TYPE
:
2103 /* We can only generate 1 for accum types. */
2104 gcc_assert (ALL_SCALAR_ACCUM_MODE_P (TYPE_MODE (type
)));
2105 return build_fixed (type
, fixed_from_double_int (double_int_minus_one
,
2110 tree scalar
= build_minus_one_cst (TREE_TYPE (type
));
2112 return build_vector_from_val (type
, scalar
);
2116 return build_complex (type
,
2117 build_minus_one_cst (TREE_TYPE (type
)),
2118 build_zero_cst (TREE_TYPE (type
)));
2125 /* Build 0 constant of type TYPE. This is used by constructor folding
2126 and thus the constant should be represented in memory by
2130 build_zero_cst (tree type
)
2132 switch (TREE_CODE (type
))
2134 case INTEGER_TYPE
: case ENUMERAL_TYPE
: case BOOLEAN_TYPE
:
2135 case POINTER_TYPE
: case REFERENCE_TYPE
:
2136 case OFFSET_TYPE
: case NULLPTR_TYPE
:
2137 return build_int_cst (type
, 0);
2140 return build_real (type
, dconst0
);
2142 case FIXED_POINT_TYPE
:
2143 return build_fixed (type
, FCONST0 (TYPE_MODE (type
)));
2147 tree scalar
= build_zero_cst (TREE_TYPE (type
));
2149 return build_vector_from_val (type
, scalar
);
2154 tree zero
= build_zero_cst (TREE_TYPE (type
));
2156 return build_complex (type
, zero
, zero
);
2160 if (!AGGREGATE_TYPE_P (type
))
2161 return fold_convert (type
, integer_zero_node
);
2162 return build_constructor (type
, NULL
);
2167 /* Build a BINFO with LEN language slots. */
2170 make_tree_binfo_stat (unsigned base_binfos MEM_STAT_DECL
)
2173 size_t length
= (offsetof (struct tree_binfo
, base_binfos
)
2174 + vec
<tree
, va_gc
>::embedded_size (base_binfos
));
2176 record_node_allocation_statistics (TREE_BINFO
, length
);
2178 t
= ggc_alloc_tree_node_stat (length PASS_MEM_STAT
);
2180 memset (t
, 0, offsetof (struct tree_binfo
, base_binfos
));
2182 TREE_SET_CODE (t
, TREE_BINFO
);
2184 BINFO_BASE_BINFOS (t
)->embedded_init (base_binfos
);
2189 /* Create a CASE_LABEL_EXPR tree node and return it. */
2192 build_case_label (tree low_value
, tree high_value
, tree label_decl
)
2194 tree t
= make_node (CASE_LABEL_EXPR
);
2196 TREE_TYPE (t
) = void_type_node
;
2197 SET_EXPR_LOCATION (t
, DECL_SOURCE_LOCATION (label_decl
));
2199 CASE_LOW (t
) = low_value
;
2200 CASE_HIGH (t
) = high_value
;
2201 CASE_LABEL (t
) = label_decl
;
2202 CASE_CHAIN (t
) = NULL_TREE
;
2207 /* Build a newly constructed INTEGER_CST node. LEN and EXT_LEN are the
2208 values of TREE_INT_CST_NUNITS and TREE_INT_CST_EXT_NUNITS respectively.
2209 The latter determines the length of the HOST_WIDE_INT vector. */
2212 make_int_cst_stat (int len
, int ext_len MEM_STAT_DECL
)
2215 int length
= ((ext_len
- 1) * sizeof (HOST_WIDE_INT
)
2216 + sizeof (struct tree_int_cst
));
2219 record_node_allocation_statistics (INTEGER_CST
, length
);
2221 t
= ggc_alloc_cleared_tree_node_stat (length PASS_MEM_STAT
);
2223 TREE_SET_CODE (t
, INTEGER_CST
);
2224 TREE_INT_CST_NUNITS (t
) = len
;
2225 TREE_INT_CST_EXT_NUNITS (t
) = ext_len
;
2226 /* to_offset can only be applied to trees that are offset_int-sized
2227 or smaller. EXT_LEN is correct if it fits, otherwise the constant
2228 must be exactly the precision of offset_int and so LEN is correct. */
2229 if (ext_len
<= OFFSET_INT_ELTS
)
2230 TREE_INT_CST_OFFSET_NUNITS (t
) = ext_len
;
2232 TREE_INT_CST_OFFSET_NUNITS (t
) = len
;
2234 TREE_CONSTANT (t
) = 1;
2239 /* Build a newly constructed TREE_VEC node of length LEN. */
2242 make_tree_vec_stat (int len MEM_STAT_DECL
)
2245 int length
= (len
- 1) * sizeof (tree
) + sizeof (struct tree_vec
);
2247 record_node_allocation_statistics (TREE_VEC
, length
);
2249 t
= ggc_alloc_cleared_tree_node_stat (length PASS_MEM_STAT
);
2251 TREE_SET_CODE (t
, TREE_VEC
);
2252 TREE_VEC_LENGTH (t
) = len
;
2257 /* Grow a TREE_VEC node to new length LEN. */
2260 grow_tree_vec_stat (tree v
, int len MEM_STAT_DECL
)
2262 gcc_assert (TREE_CODE (v
) == TREE_VEC
);
2264 int oldlen
= TREE_VEC_LENGTH (v
);
2265 gcc_assert (len
> oldlen
);
2267 int oldlength
= (oldlen
- 1) * sizeof (tree
) + sizeof (struct tree_vec
);
2268 int length
= (len
- 1) * sizeof (tree
) + sizeof (struct tree_vec
);
2270 record_node_allocation_statistics (TREE_VEC
, length
- oldlength
);
2272 v
= (tree
) ggc_realloc (v
, length PASS_MEM_STAT
);
2274 TREE_VEC_LENGTH (v
) = len
;
2279 /* Return 1 if EXPR is the constant zero, whether it is integral, float or
2280 fixed, and scalar, complex or vector. */
2283 zerop (const_tree expr
)
2285 return (integer_zerop (expr
)
2286 || real_zerop (expr
)
2287 || fixed_zerop (expr
));
2290 /* Return 1 if EXPR is the integer constant zero or a complex constant
2294 integer_zerop (const_tree expr
)
2296 switch (TREE_CODE (expr
))
2299 return wi::eq_p (expr
, 0);
2301 return (integer_zerop (TREE_REALPART (expr
))
2302 && integer_zerop (TREE_IMAGPART (expr
)));
2306 for (i
= 0; i
< VECTOR_CST_NELTS (expr
); ++i
)
2307 if (!integer_zerop (VECTOR_CST_ELT (expr
, i
)))
2316 /* Return 1 if EXPR is the integer constant one or the corresponding
2317 complex constant. */
2320 integer_onep (const_tree expr
)
2322 switch (TREE_CODE (expr
))
2325 return wi::eq_p (wi::to_widest (expr
), 1);
2327 return (integer_onep (TREE_REALPART (expr
))
2328 && integer_zerop (TREE_IMAGPART (expr
)));
2332 for (i
= 0; i
< VECTOR_CST_NELTS (expr
); ++i
)
2333 if (!integer_onep (VECTOR_CST_ELT (expr
, i
)))
2342 /* Return 1 if EXPR is the integer constant one. For complex and vector,
2343 return 1 if every piece is the integer constant one. */
2346 integer_each_onep (const_tree expr
)
2348 if (TREE_CODE (expr
) == COMPLEX_CST
)
2349 return (integer_onep (TREE_REALPART (expr
))
2350 && integer_onep (TREE_IMAGPART (expr
)));
2352 return integer_onep (expr
);
2355 /* Return 1 if EXPR is an integer containing all 1's in as much precision as
2356 it contains, or a complex or vector whose subparts are such integers. */
2359 integer_all_onesp (const_tree expr
)
2361 if (TREE_CODE (expr
) == COMPLEX_CST
2362 && integer_all_onesp (TREE_REALPART (expr
))
2363 && integer_all_onesp (TREE_IMAGPART (expr
)))
2366 else if (TREE_CODE (expr
) == VECTOR_CST
)
2369 for (i
= 0; i
< VECTOR_CST_NELTS (expr
); ++i
)
2370 if (!integer_all_onesp (VECTOR_CST_ELT (expr
, i
)))
2375 else if (TREE_CODE (expr
) != INTEGER_CST
)
2378 return wi::max_value (TYPE_PRECISION (TREE_TYPE (expr
)), UNSIGNED
) == expr
;
2381 /* Return 1 if EXPR is the integer constant minus one. */
2384 integer_minus_onep (const_tree expr
)
2386 if (TREE_CODE (expr
) == COMPLEX_CST
)
2387 return (integer_all_onesp (TREE_REALPART (expr
))
2388 && integer_zerop (TREE_IMAGPART (expr
)));
2390 return integer_all_onesp (expr
);
2393 /* Return 1 if EXPR is an integer constant that is a power of 2 (i.e., has only
2397 integer_pow2p (const_tree expr
)
2399 if (TREE_CODE (expr
) == COMPLEX_CST
2400 && integer_pow2p (TREE_REALPART (expr
))
2401 && integer_zerop (TREE_IMAGPART (expr
)))
2404 if (TREE_CODE (expr
) != INTEGER_CST
)
2407 return wi::popcount (expr
) == 1;
2410 /* Return 1 if EXPR is an integer constant other than zero or a
2411 complex constant other than zero. */
2414 integer_nonzerop (const_tree expr
)
2416 return ((TREE_CODE (expr
) == INTEGER_CST
2417 && !wi::eq_p (expr
, 0))
2418 || (TREE_CODE (expr
) == COMPLEX_CST
2419 && (integer_nonzerop (TREE_REALPART (expr
))
2420 || integer_nonzerop (TREE_IMAGPART (expr
)))));
2423 /* Return 1 if EXPR is the integer constant one. For vector,
2424 return 1 if every piece is the integer constant minus one
2425 (representing the value TRUE). */
2428 integer_truep (const_tree expr
)
2430 if (TREE_CODE (expr
) == VECTOR_CST
)
2431 return integer_all_onesp (expr
);
2432 return integer_onep (expr
);
2435 /* Return 1 if EXPR is the fixed-point constant zero. */
2438 fixed_zerop (const_tree expr
)
2440 return (TREE_CODE (expr
) == FIXED_CST
2441 && TREE_FIXED_CST (expr
).data
.is_zero ());
2444 /* Return the power of two represented by a tree node known to be a
2448 tree_log2 (const_tree expr
)
2450 if (TREE_CODE (expr
) == COMPLEX_CST
)
2451 return tree_log2 (TREE_REALPART (expr
));
2453 return wi::exact_log2 (expr
);
2456 /* Similar, but return the largest integer Y such that 2 ** Y is less
2457 than or equal to EXPR. */
2460 tree_floor_log2 (const_tree expr
)
2462 if (TREE_CODE (expr
) == COMPLEX_CST
)
2463 return tree_log2 (TREE_REALPART (expr
));
2465 return wi::floor_log2 (expr
);
2468 /* Return number of known trailing zero bits in EXPR, or, if the value of
2469 EXPR is known to be zero, the precision of it's type. */
2472 tree_ctz (const_tree expr
)
2474 if (!INTEGRAL_TYPE_P (TREE_TYPE (expr
))
2475 && !POINTER_TYPE_P (TREE_TYPE (expr
)))
2478 unsigned int ret1
, ret2
, prec
= TYPE_PRECISION (TREE_TYPE (expr
));
2479 switch (TREE_CODE (expr
))
2482 ret1
= wi::ctz (expr
);
2483 return MIN (ret1
, prec
);
2485 ret1
= wi::ctz (get_nonzero_bits (expr
));
2486 return MIN (ret1
, prec
);
2493 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2496 ret2
= tree_ctz (TREE_OPERAND (expr
, 1));
2497 return MIN (ret1
, ret2
);
2498 case POINTER_PLUS_EXPR
:
2499 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2500 ret2
= tree_ctz (TREE_OPERAND (expr
, 1));
2501 /* Second operand is sizetype, which could be in theory
2502 wider than pointer's precision. Make sure we never
2503 return more than prec. */
2504 ret2
= MIN (ret2
, prec
);
2505 return MIN (ret1
, ret2
);
2507 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2508 ret2
= tree_ctz (TREE_OPERAND (expr
, 1));
2509 return MAX (ret1
, ret2
);
2511 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2512 ret2
= tree_ctz (TREE_OPERAND (expr
, 1));
2513 return MIN (ret1
+ ret2
, prec
);
2515 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2516 if (tree_fits_uhwi_p (TREE_OPERAND (expr
, 1))
2517 && (tree_to_uhwi (TREE_OPERAND (expr
, 1)) < prec
))
2519 ret2
= tree_to_uhwi (TREE_OPERAND (expr
, 1));
2520 return MIN (ret1
+ ret2
, prec
);
2524 if (tree_fits_uhwi_p (TREE_OPERAND (expr
, 1))
2525 && (tree_to_uhwi (TREE_OPERAND (expr
, 1)) < prec
))
2527 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2528 ret2
= tree_to_uhwi (TREE_OPERAND (expr
, 1));
2533 case TRUNC_DIV_EXPR
:
2535 case FLOOR_DIV_EXPR
:
2536 case ROUND_DIV_EXPR
:
2537 case EXACT_DIV_EXPR
:
2538 if (TREE_CODE (TREE_OPERAND (expr
, 1)) == INTEGER_CST
2539 && tree_int_cst_sgn (TREE_OPERAND (expr
, 1)) == 1)
2541 int l
= tree_log2 (TREE_OPERAND (expr
, 1));
2544 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2552 ret1
= tree_ctz (TREE_OPERAND (expr
, 0));
2553 if (ret1
&& ret1
== TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (expr
, 0))))
2555 return MIN (ret1
, prec
);
2557 return tree_ctz (TREE_OPERAND (expr
, 0));
2559 ret1
= tree_ctz (TREE_OPERAND (expr
, 1));
2562 ret2
= tree_ctz (TREE_OPERAND (expr
, 2));
2563 return MIN (ret1
, ret2
);
2565 return tree_ctz (TREE_OPERAND (expr
, 1));
2567 ret1
= get_pointer_alignment (CONST_CAST_TREE (expr
));
2568 if (ret1
> BITS_PER_UNIT
)
2570 ret1
= ctz_hwi (ret1
/ BITS_PER_UNIT
);
2571 return MIN (ret1
, prec
);
2579 /* Return 1 if EXPR is the real constant zero. Trailing zeroes matter for
2580 decimal float constants, so don't return 1 for them. */
2583 real_zerop (const_tree expr
)
2585 switch (TREE_CODE (expr
))
2588 return real_equal (&TREE_REAL_CST (expr
), &dconst0
)
2589 && !(DECIMAL_FLOAT_MODE_P (TYPE_MODE (TREE_TYPE (expr
))));
2591 return real_zerop (TREE_REALPART (expr
))
2592 && real_zerop (TREE_IMAGPART (expr
));
2596 for (i
= 0; i
< VECTOR_CST_NELTS (expr
); ++i
)
2597 if (!real_zerop (VECTOR_CST_ELT (expr
, i
)))
2606 /* Return 1 if EXPR is the real constant one in real or complex form.
2607 Trailing zeroes matter for decimal float constants, so don't return
2611 real_onep (const_tree expr
)
2613 switch (TREE_CODE (expr
))
2616 return real_equal (&TREE_REAL_CST (expr
), &dconst1
)
2617 && !(DECIMAL_FLOAT_MODE_P (TYPE_MODE (TREE_TYPE (expr
))));
2619 return real_onep (TREE_REALPART (expr
))
2620 && real_zerop (TREE_IMAGPART (expr
));
2624 for (i
= 0; i
< VECTOR_CST_NELTS (expr
); ++i
)
2625 if (!real_onep (VECTOR_CST_ELT (expr
, i
)))
2634 /* Return 1 if EXPR is the real constant minus one. Trailing zeroes
2635 matter for decimal float constants, so don't return 1 for them. */
2638 real_minus_onep (const_tree expr
)
2640 switch (TREE_CODE (expr
))
2643 return real_equal (&TREE_REAL_CST (expr
), &dconstm1
)
2644 && !(DECIMAL_FLOAT_MODE_P (TYPE_MODE (TREE_TYPE (expr
))));
2646 return real_minus_onep (TREE_REALPART (expr
))
2647 && real_zerop (TREE_IMAGPART (expr
));
2651 for (i
= 0; i
< VECTOR_CST_NELTS (expr
); ++i
)
2652 if (!real_minus_onep (VECTOR_CST_ELT (expr
, i
)))
2661 /* Nonzero if EXP is a constant or a cast of a constant. */
2664 really_constant_p (const_tree exp
)
2666 /* This is not quite the same as STRIP_NOPS. It does more. */
2667 while (CONVERT_EXPR_P (exp
)
2668 || TREE_CODE (exp
) == NON_LVALUE_EXPR
)
2669 exp
= TREE_OPERAND (exp
, 0);
2670 return TREE_CONSTANT (exp
);
2673 /* Return first list element whose TREE_VALUE is ELEM.
2674 Return 0 if ELEM is not in LIST. */
2677 value_member (tree elem
, tree list
)
2681 if (elem
== TREE_VALUE (list
))
2683 list
= TREE_CHAIN (list
);
2688 /* Return first list element whose TREE_PURPOSE is ELEM.
2689 Return 0 if ELEM is not in LIST. */
2692 purpose_member (const_tree elem
, tree list
)
2696 if (elem
== TREE_PURPOSE (list
))
2698 list
= TREE_CHAIN (list
);
2703 /* Return true if ELEM is in V. */
2706 vec_member (const_tree elem
, vec
<tree
, va_gc
> *v
)
2710 FOR_EACH_VEC_SAFE_ELT (v
, ix
, t
)
2716 /* Returns element number IDX (zero-origin) of chain CHAIN, or
2720 chain_index (int idx
, tree chain
)
2722 for (; chain
&& idx
> 0; --idx
)
2723 chain
= TREE_CHAIN (chain
);
2727 /* Return nonzero if ELEM is part of the chain CHAIN. */
2730 chain_member (const_tree elem
, const_tree chain
)
2736 chain
= DECL_CHAIN (chain
);
2742 /* Return the length of a chain of nodes chained through TREE_CHAIN.
2743 We expect a null pointer to mark the end of the chain.
2744 This is the Lisp primitive `length'. */
2747 list_length (const_tree t
)
2750 #ifdef ENABLE_TREE_CHECKING
2758 #ifdef ENABLE_TREE_CHECKING
2761 gcc_assert (p
!= q
);
2769 /* Returns the first FIELD_DECL in the TYPE_FIELDS of the RECORD_TYPE or
2770 UNION_TYPE TYPE, or NULL_TREE if none. */
2773 first_field (const_tree type
)
2775 tree t
= TYPE_FIELDS (type
);
2776 while (t
&& TREE_CODE (t
) != FIELD_DECL
)
2781 /* Concatenate two chains of nodes (chained through TREE_CHAIN)
2782 by modifying the last node in chain 1 to point to chain 2.
2783 This is the Lisp primitive `nconc'. */
2786 chainon (tree op1
, tree op2
)
2795 for (t1
= op1
; TREE_CHAIN (t1
); t1
= TREE_CHAIN (t1
))
2797 TREE_CHAIN (t1
) = op2
;
2799 #ifdef ENABLE_TREE_CHECKING
2802 for (t2
= op2
; t2
; t2
= TREE_CHAIN (t2
))
2803 gcc_assert (t2
!= t1
);
2810 /* Return the last node in a chain of nodes (chained through TREE_CHAIN). */
2813 tree_last (tree chain
)
2817 while ((next
= TREE_CHAIN (chain
)))
2822 /* Reverse the order of elements in the chain T,
2823 and return the new head of the chain (old last element). */
2828 tree prev
= 0, decl
, next
;
2829 for (decl
= t
; decl
; decl
= next
)
2831 /* We shouldn't be using this function to reverse BLOCK chains; we
2832 have blocks_nreverse for that. */
2833 gcc_checking_assert (TREE_CODE (decl
) != BLOCK
);
2834 next
= TREE_CHAIN (decl
);
2835 TREE_CHAIN (decl
) = prev
;
2841 /* Return a newly created TREE_LIST node whose
2842 purpose and value fields are PARM and VALUE. */
2845 build_tree_list_stat (tree parm
, tree value MEM_STAT_DECL
)
2847 tree t
= make_node_stat (TREE_LIST PASS_MEM_STAT
);
2848 TREE_PURPOSE (t
) = parm
;
2849 TREE_VALUE (t
) = value
;
2853 /* Build a chain of TREE_LIST nodes from a vector. */
2856 build_tree_list_vec_stat (const vec
<tree
, va_gc
> *vec MEM_STAT_DECL
)
2858 tree ret
= NULL_TREE
;
2862 FOR_EACH_VEC_SAFE_ELT (vec
, i
, t
)
2864 *pp
= build_tree_list_stat (NULL
, t PASS_MEM_STAT
);
2865 pp
= &TREE_CHAIN (*pp
);
2870 /* Return a newly created TREE_LIST node whose
2871 purpose and value fields are PURPOSE and VALUE
2872 and whose TREE_CHAIN is CHAIN. */
2875 tree_cons_stat (tree purpose
, tree value
, tree chain MEM_STAT_DECL
)
2879 node
= ggc_alloc_tree_node_stat (sizeof (struct tree_list
) PASS_MEM_STAT
);
2880 memset (node
, 0, sizeof (struct tree_common
));
2882 record_node_allocation_statistics (TREE_LIST
, sizeof (struct tree_list
));
2884 TREE_SET_CODE (node
, TREE_LIST
);
2885 TREE_CHAIN (node
) = chain
;
2886 TREE_PURPOSE (node
) = purpose
;
2887 TREE_VALUE (node
) = value
;
2891 /* Return the values of the elements of a CONSTRUCTOR as a vector of
2895 ctor_to_vec (tree ctor
)
2897 vec
<tree
, va_gc
> *vec
;
2898 vec_alloc (vec
, CONSTRUCTOR_NELTS (ctor
));
2902 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (ctor
), ix
, val
)
2903 vec
->quick_push (val
);
2908 /* Return the size nominally occupied by an object of type TYPE
2909 when it resides in memory. The value is measured in units of bytes,
2910 and its data type is that normally used for type sizes
2911 (which is the first type created by make_signed_type or
2912 make_unsigned_type). */
2915 size_in_bytes (const_tree type
)
2919 if (type
== error_mark_node
)
2920 return integer_zero_node
;
2922 type
= TYPE_MAIN_VARIANT (type
);
2923 t
= TYPE_SIZE_UNIT (type
);
2927 lang_hooks
.types
.incomplete_type_error (NULL_TREE
, type
);
2928 return size_zero_node
;
2934 /* Return the size of TYPE (in bytes) as a wide integer
2935 or return -1 if the size can vary or is larger than an integer. */
2938 int_size_in_bytes (const_tree type
)
2942 if (type
== error_mark_node
)
2945 type
= TYPE_MAIN_VARIANT (type
);
2946 t
= TYPE_SIZE_UNIT (type
);
2948 if (t
&& tree_fits_uhwi_p (t
))
2949 return TREE_INT_CST_LOW (t
);
2954 /* Return the maximum size of TYPE (in bytes) as a wide integer
2955 or return -1 if the size can vary or is larger than an integer. */
2958 max_int_size_in_bytes (const_tree type
)
2960 HOST_WIDE_INT size
= -1;
2963 /* If this is an array type, check for a possible MAX_SIZE attached. */
2965 if (TREE_CODE (type
) == ARRAY_TYPE
)
2967 size_tree
= TYPE_ARRAY_MAX_SIZE (type
);
2969 if (size_tree
&& tree_fits_uhwi_p (size_tree
))
2970 size
= tree_to_uhwi (size_tree
);
2973 /* If we still haven't been able to get a size, see if the language
2974 can compute a maximum size. */
2978 size_tree
= lang_hooks
.types
.max_size (type
);
2980 if (size_tree
&& tree_fits_uhwi_p (size_tree
))
2981 size
= tree_to_uhwi (size_tree
);
2987 /* Return the bit position of FIELD, in bits from the start of the record.
2988 This is a tree of type bitsizetype. */
2991 bit_position (const_tree field
)
2993 return bit_from_pos (DECL_FIELD_OFFSET (field
),
2994 DECL_FIELD_BIT_OFFSET (field
));
2997 /* Return the byte position of FIELD, in bytes from the start of the record.
2998 This is a tree of type sizetype. */
3001 byte_position (const_tree field
)
3003 return byte_from_pos (DECL_FIELD_OFFSET (field
),
3004 DECL_FIELD_BIT_OFFSET (field
));
3007 /* Likewise, but return as an integer. It must be representable in
3008 that way (since it could be a signed value, we don't have the
3009 option of returning -1 like int_size_in_byte can. */
3012 int_byte_position (const_tree field
)
3014 return tree_to_shwi (byte_position (field
));
3017 /* Return the strictest alignment, in bits, that T is known to have. */
3020 expr_align (const_tree t
)
3022 unsigned int align0
, align1
;
3024 switch (TREE_CODE (t
))
3026 CASE_CONVERT
: case NON_LVALUE_EXPR
:
3027 /* If we have conversions, we know that the alignment of the
3028 object must meet each of the alignments of the types. */
3029 align0
= expr_align (TREE_OPERAND (t
, 0));
3030 align1
= TYPE_ALIGN (TREE_TYPE (t
));
3031 return MAX (align0
, align1
);
3033 case SAVE_EXPR
: case COMPOUND_EXPR
: case MODIFY_EXPR
:
3034 case INIT_EXPR
: case TARGET_EXPR
: case WITH_CLEANUP_EXPR
:
3035 case CLEANUP_POINT_EXPR
:
3036 /* These don't change the alignment of an object. */
3037 return expr_align (TREE_OPERAND (t
, 0));
3040 /* The best we can do is say that the alignment is the least aligned
3042 align0
= expr_align (TREE_OPERAND (t
, 1));
3043 align1
= expr_align (TREE_OPERAND (t
, 2));
3044 return MIN (align0
, align1
);
3046 /* FIXME: LABEL_DECL and CONST_DECL never have DECL_ALIGN set
3047 meaningfully, it's always 1. */
3048 case LABEL_DECL
: case CONST_DECL
:
3049 case VAR_DECL
: case PARM_DECL
: case RESULT_DECL
:
3051 gcc_assert (DECL_ALIGN (t
) != 0);
3052 return DECL_ALIGN (t
);
3058 /* Otherwise take the alignment from that of the type. */
3059 return TYPE_ALIGN (TREE_TYPE (t
));
3062 /* Return, as a tree node, the number of elements for TYPE (which is an
3063 ARRAY_TYPE) minus one. This counts only elements of the top array. */
3066 array_type_nelts (const_tree type
)
3068 tree index_type
, min
, max
;
3070 /* If they did it with unspecified bounds, then we should have already
3071 given an error about it before we got here. */
3072 if (! TYPE_DOMAIN (type
))
3073 return error_mark_node
;
3075 index_type
= TYPE_DOMAIN (type
);
3076 min
= TYPE_MIN_VALUE (index_type
);
3077 max
= TYPE_MAX_VALUE (index_type
);
3079 /* TYPE_MAX_VALUE may not be set if the array has unknown length. */
3081 return error_mark_node
;
3083 return (integer_zerop (min
)
3085 : fold_build2 (MINUS_EXPR
, TREE_TYPE (max
), max
, min
));
3088 /* If arg is static -- a reference to an object in static storage -- then
3089 return the object. This is not the same as the C meaning of `static'.
3090 If arg isn't static, return NULL. */
3095 switch (TREE_CODE (arg
))
3098 /* Nested functions are static, even though taking their address will
3099 involve a trampoline as we unnest the nested function and create
3100 the trampoline on the tree level. */
3104 return ((TREE_STATIC (arg
) || DECL_EXTERNAL (arg
))
3105 && ! DECL_THREAD_LOCAL_P (arg
)
3106 && ! DECL_DLLIMPORT_P (arg
)
3110 return ((TREE_STATIC (arg
) || DECL_EXTERNAL (arg
))
3114 return TREE_STATIC (arg
) ? arg
: NULL
;
3121 /* If the thing being referenced is not a field, then it is
3122 something language specific. */
3123 gcc_assert (TREE_CODE (TREE_OPERAND (arg
, 1)) == FIELD_DECL
);
3125 /* If we are referencing a bitfield, we can't evaluate an
3126 ADDR_EXPR at compile time and so it isn't a constant. */
3127 if (DECL_BIT_FIELD (TREE_OPERAND (arg
, 1)))
3130 return staticp (TREE_OPERAND (arg
, 0));
3136 return TREE_CONSTANT (TREE_OPERAND (arg
, 0)) ? arg
: NULL
;
3139 case ARRAY_RANGE_REF
:
3140 if (TREE_CODE (TYPE_SIZE (TREE_TYPE (arg
))) == INTEGER_CST
3141 && TREE_CODE (TREE_OPERAND (arg
, 1)) == INTEGER_CST
)
3142 return staticp (TREE_OPERAND (arg
, 0));
3146 case COMPOUND_LITERAL_EXPR
:
3147 return TREE_STATIC (COMPOUND_LITERAL_EXPR_DECL (arg
)) ? arg
: NULL
;
3157 /* Return whether OP is a DECL whose address is function-invariant. */
3160 decl_address_invariant_p (const_tree op
)
3162 /* The conditions below are slightly less strict than the one in
3165 switch (TREE_CODE (op
))
3174 if ((TREE_STATIC (op
) || DECL_EXTERNAL (op
))
3175 || DECL_THREAD_LOCAL_P (op
)
3176 || DECL_CONTEXT (op
) == current_function_decl
3177 || decl_function_context (op
) == current_function_decl
)
3182 if ((TREE_STATIC (op
) || DECL_EXTERNAL (op
))
3183 || decl_function_context (op
) == current_function_decl
)
3194 /* Return whether OP is a DECL whose address is interprocedural-invariant. */
3197 decl_address_ip_invariant_p (const_tree op
)
3199 /* The conditions below are slightly less strict than the one in
3202 switch (TREE_CODE (op
))
3210 if (((TREE_STATIC (op
) || DECL_EXTERNAL (op
))
3211 && !DECL_DLLIMPORT_P (op
))
3212 || DECL_THREAD_LOCAL_P (op
))
3217 if ((TREE_STATIC (op
) || DECL_EXTERNAL (op
)))
3229 /* Return true if T is function-invariant (internal function, does
3230 not handle arithmetic; that's handled in skip_simple_arithmetic and
3231 tree_invariant_p). */
3234 tree_invariant_p_1 (tree t
)
3238 if (TREE_CONSTANT (t
)
3239 || (TREE_READONLY (t
) && !TREE_SIDE_EFFECTS (t
)))
3242 switch (TREE_CODE (t
))
3248 op
= TREE_OPERAND (t
, 0);
3249 while (handled_component_p (op
))
3251 switch (TREE_CODE (op
))
3254 case ARRAY_RANGE_REF
:
3255 if (!tree_invariant_p (TREE_OPERAND (op
, 1))
3256 || TREE_OPERAND (op
, 2) != NULL_TREE
3257 || TREE_OPERAND (op
, 3) != NULL_TREE
)
3262 if (TREE_OPERAND (op
, 2) != NULL_TREE
)
3268 op
= TREE_OPERAND (op
, 0);
3271 return CONSTANT_CLASS_P (op
) || decl_address_invariant_p (op
);
3280 /* Return true if T is function-invariant. */
3283 tree_invariant_p (tree t
)
3285 tree inner
= skip_simple_arithmetic (t
);
3286 return tree_invariant_p_1 (inner
);
3289 /* Wrap a SAVE_EXPR around EXPR, if appropriate.
3290 Do this to any expression which may be used in more than one place,
3291 but must be evaluated only once.
3293 Normally, expand_expr would reevaluate the expression each time.
3294 Calling save_expr produces something that is evaluated and recorded
3295 the first time expand_expr is called on it. Subsequent calls to
3296 expand_expr just reuse the recorded value.
3298 The call to expand_expr that generates code that actually computes
3299 the value is the first call *at compile time*. Subsequent calls
3300 *at compile time* generate code to use the saved value.
3301 This produces correct result provided that *at run time* control
3302 always flows through the insns made by the first expand_expr
3303 before reaching the other places where the save_expr was evaluated.
3304 You, the caller of save_expr, must make sure this is so.
3306 Constants, and certain read-only nodes, are returned with no
3307 SAVE_EXPR because that is safe. Expressions containing placeholders
3308 are not touched; see tree.def for an explanation of what these
3312 save_expr (tree expr
)
3314 tree t
= fold (expr
);
3317 /* If the tree evaluates to a constant, then we don't want to hide that
3318 fact (i.e. this allows further folding, and direct checks for constants).
3319 However, a read-only object that has side effects cannot be bypassed.
3320 Since it is no problem to reevaluate literals, we just return the
3322 inner
= skip_simple_arithmetic (t
);
3323 if (TREE_CODE (inner
) == ERROR_MARK
)
3326 if (tree_invariant_p_1 (inner
))
3329 /* If INNER contains a PLACEHOLDER_EXPR, we must evaluate it each time, since
3330 it means that the size or offset of some field of an object depends on
3331 the value within another field.
3333 Note that it must not be the case that T contains both a PLACEHOLDER_EXPR
3334 and some variable since it would then need to be both evaluated once and
3335 evaluated more than once. Front-ends must assure this case cannot
3336 happen by surrounding any such subexpressions in their own SAVE_EXPR
3337 and forcing evaluation at the proper time. */
3338 if (contains_placeholder_p (inner
))
3341 t
= build1 (SAVE_EXPR
, TREE_TYPE (expr
), t
);
3342 SET_EXPR_LOCATION (t
, EXPR_LOCATION (expr
));
3344 /* This expression might be placed ahead of a jump to ensure that the
3345 value was computed on both sides of the jump. So make sure it isn't
3346 eliminated as dead. */
3347 TREE_SIDE_EFFECTS (t
) = 1;
3351 /* Look inside EXPR into any simple arithmetic operations. Return the
3352 outermost non-arithmetic or non-invariant node. */
3355 skip_simple_arithmetic (tree expr
)
3357 /* We don't care about whether this can be used as an lvalue in this
3359 while (TREE_CODE (expr
) == NON_LVALUE_EXPR
)
3360 expr
= TREE_OPERAND (expr
, 0);
3362 /* If we have simple operations applied to a SAVE_EXPR or to a SAVE_EXPR and
3363 a constant, it will be more efficient to not make another SAVE_EXPR since
3364 it will allow better simplification and GCSE will be able to merge the
3365 computations if they actually occur. */
3368 if (UNARY_CLASS_P (expr
))
3369 expr
= TREE_OPERAND (expr
, 0);
3370 else if (BINARY_CLASS_P (expr
))
3372 if (tree_invariant_p (TREE_OPERAND (expr
, 1)))
3373 expr
= TREE_OPERAND (expr
, 0);
3374 else if (tree_invariant_p (TREE_OPERAND (expr
, 0)))
3375 expr
= TREE_OPERAND (expr
, 1);
3386 /* Look inside EXPR into simple arithmetic operations involving constants.
3387 Return the outermost non-arithmetic or non-constant node. */
3390 skip_simple_constant_arithmetic (tree expr
)
3392 while (TREE_CODE (expr
) == NON_LVALUE_EXPR
)
3393 expr
= TREE_OPERAND (expr
, 0);
3397 if (UNARY_CLASS_P (expr
))
3398 expr
= TREE_OPERAND (expr
, 0);
3399 else if (BINARY_CLASS_P (expr
))
3401 if (TREE_CONSTANT (TREE_OPERAND (expr
, 1)))
3402 expr
= TREE_OPERAND (expr
, 0);
3403 else if (TREE_CONSTANT (TREE_OPERAND (expr
, 0)))
3404 expr
= TREE_OPERAND (expr
, 1);
3415 /* Return which tree structure is used by T. */
3417 enum tree_node_structure_enum
3418 tree_node_structure (const_tree t
)
3420 const enum tree_code code
= TREE_CODE (t
);
3421 return tree_node_structure_for_code (code
);
3424 /* Set various status flags when building a CALL_EXPR object T. */
3427 process_call_operands (tree t
)
3429 bool side_effects
= TREE_SIDE_EFFECTS (t
);
3430 bool read_only
= false;
3431 int i
= call_expr_flags (t
);
3433 /* Calls have side-effects, except those to const or pure functions. */
3434 if ((i
& ECF_LOOPING_CONST_OR_PURE
) || !(i
& (ECF_CONST
| ECF_PURE
)))
3435 side_effects
= true;
3436 /* Propagate TREE_READONLY of arguments for const functions. */
3440 if (!side_effects
|| read_only
)
3441 for (i
= 1; i
< TREE_OPERAND_LENGTH (t
); i
++)
3443 tree op
= TREE_OPERAND (t
, i
);
3444 if (op
&& TREE_SIDE_EFFECTS (op
))
3445 side_effects
= true;
3446 if (op
&& !TREE_READONLY (op
) && !CONSTANT_CLASS_P (op
))
3450 TREE_SIDE_EFFECTS (t
) = side_effects
;
3451 TREE_READONLY (t
) = read_only
;
3454 /* Return true if EXP contains a PLACEHOLDER_EXPR, i.e. if it represents a
3455 size or offset that depends on a field within a record. */
3458 contains_placeholder_p (const_tree exp
)
3460 enum tree_code code
;
3465 code
= TREE_CODE (exp
);
3466 if (code
== PLACEHOLDER_EXPR
)
3469 switch (TREE_CODE_CLASS (code
))
3472 /* Don't look at any PLACEHOLDER_EXPRs that might be in index or bit
3473 position computations since they will be converted into a
3474 WITH_RECORD_EXPR involving the reference, which will assume
3475 here will be valid. */
3476 return CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 0));
3478 case tcc_exceptional
:
3479 if (code
== TREE_LIST
)
3480 return (CONTAINS_PLACEHOLDER_P (TREE_VALUE (exp
))
3481 || CONTAINS_PLACEHOLDER_P (TREE_CHAIN (exp
)));
3486 case tcc_comparison
:
3487 case tcc_expression
:
3491 /* Ignoring the first operand isn't quite right, but works best. */
3492 return CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 1));
3495 return (CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 0))
3496 || CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 1))
3497 || CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 2)));
3500 /* The save_expr function never wraps anything containing
3501 a PLACEHOLDER_EXPR. */
3508 switch (TREE_CODE_LENGTH (code
))
3511 return CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 0));
3513 return (CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 0))
3514 || CONTAINS_PLACEHOLDER_P (TREE_OPERAND (exp
, 1)));
3525 const_call_expr_arg_iterator iter
;
3526 FOR_EACH_CONST_CALL_EXPR_ARG (arg
, iter
, exp
)
3527 if (CONTAINS_PLACEHOLDER_P (arg
))
3541 /* Return true if any part of the structure of TYPE involves a PLACEHOLDER_EXPR
3542 directly. This includes size, bounds, qualifiers (for QUAL_UNION_TYPE) and
3546 type_contains_placeholder_1 (const_tree type
)
3548 /* If the size contains a placeholder or the parent type (component type in
3549 the case of arrays) type involves a placeholder, this type does. */
3550 if (CONTAINS_PLACEHOLDER_P (TYPE_SIZE (type
))
3551 || CONTAINS_PLACEHOLDER_P (TYPE_SIZE_UNIT (type
))
3552 || (!POINTER_TYPE_P (type
)
3554 && type_contains_placeholder_p (TREE_TYPE (type
))))
3557 /* Now do type-specific checks. Note that the last part of the check above
3558 greatly limits what we have to do below. */
3559 switch (TREE_CODE (type
))
3562 case POINTER_BOUNDS_TYPE
:
3568 case REFERENCE_TYPE
:
3577 case FIXED_POINT_TYPE
:
3578 /* Here we just check the bounds. */
3579 return (CONTAINS_PLACEHOLDER_P (TYPE_MIN_VALUE (type
))
3580 || CONTAINS_PLACEHOLDER_P (TYPE_MAX_VALUE (type
)));
3583 /* We have already checked the component type above, so just check
3584 the domain type. Flexible array members have a null domain. */
3585 return TYPE_DOMAIN (type
) ?
3586 type_contains_placeholder_p (TYPE_DOMAIN (type
)) : false;
3590 case QUAL_UNION_TYPE
:
3594 for (field
= TYPE_FIELDS (type
); field
; field
= DECL_CHAIN (field
))
3595 if (TREE_CODE (field
) == FIELD_DECL
3596 && (CONTAINS_PLACEHOLDER_P (DECL_FIELD_OFFSET (field
))
3597 || (TREE_CODE (type
) == QUAL_UNION_TYPE
3598 && CONTAINS_PLACEHOLDER_P (DECL_QUALIFIER (field
)))
3599 || type_contains_placeholder_p (TREE_TYPE (field
))))
3610 /* Wrapper around above function used to cache its result. */
3613 type_contains_placeholder_p (tree type
)
3617 /* If the contains_placeholder_bits field has been initialized,
3618 then we know the answer. */
3619 if (TYPE_CONTAINS_PLACEHOLDER_INTERNAL (type
) > 0)
3620 return TYPE_CONTAINS_PLACEHOLDER_INTERNAL (type
) - 1;
3622 /* Indicate that we've seen this type node, and the answer is false.
3623 This is what we want to return if we run into recursion via fields. */
3624 TYPE_CONTAINS_PLACEHOLDER_INTERNAL (type
) = 1;
3626 /* Compute the real value. */
3627 result
= type_contains_placeholder_1 (type
);
3629 /* Store the real value. */
3630 TYPE_CONTAINS_PLACEHOLDER_INTERNAL (type
) = result
+ 1;
3635 /* Push tree EXP onto vector QUEUE if it is not already present. */
3638 push_without_duplicates (tree exp
, vec
<tree
> *queue
)
3643 FOR_EACH_VEC_ELT (*queue
, i
, iter
)
3644 if (simple_cst_equal (iter
, exp
) == 1)
3648 queue
->safe_push (exp
);
3651 /* Given a tree EXP, find all occurrences of references to fields
3652 in a PLACEHOLDER_EXPR and place them in vector REFS without
3653 duplicates. Also record VAR_DECLs and CONST_DECLs. Note that
3654 we assume here that EXP contains only arithmetic expressions
3655 or CALL_EXPRs with PLACEHOLDER_EXPRs occurring only in their
3659 find_placeholder_in_expr (tree exp
, vec
<tree
> *refs
)
3661 enum tree_code code
= TREE_CODE (exp
);
3665 /* We handle TREE_LIST and COMPONENT_REF separately. */
3666 if (code
== TREE_LIST
)
3668 FIND_PLACEHOLDER_IN_EXPR (TREE_CHAIN (exp
), refs
);
3669 FIND_PLACEHOLDER_IN_EXPR (TREE_VALUE (exp
), refs
);
3671 else if (code
== COMPONENT_REF
)
3673 for (inner
= TREE_OPERAND (exp
, 0);
3674 REFERENCE_CLASS_P (inner
);
3675 inner
= TREE_OPERAND (inner
, 0))
3678 if (TREE_CODE (inner
) == PLACEHOLDER_EXPR
)
3679 push_without_duplicates (exp
, refs
);
3681 FIND_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 0), refs
);
3684 switch (TREE_CODE_CLASS (code
))
3689 case tcc_declaration
:
3690 /* Variables allocated to static storage can stay. */
3691 if (!TREE_STATIC (exp
))
3692 push_without_duplicates (exp
, refs
);
3695 case tcc_expression
:
3696 /* This is the pattern built in ada/make_aligning_type. */
3697 if (code
== ADDR_EXPR
3698 && TREE_CODE (TREE_OPERAND (exp
, 0)) == PLACEHOLDER_EXPR
)
3700 push_without_duplicates (exp
, refs
);
3704 /* Fall through... */
3706 case tcc_exceptional
:
3709 case tcc_comparison
:
3711 for (i
= 0; i
< TREE_CODE_LENGTH (code
); i
++)
3712 FIND_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, i
), refs
);
3716 for (i
= 1; i
< TREE_OPERAND_LENGTH (exp
); i
++)
3717 FIND_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, i
), refs
);
3725 /* Given a tree EXP, a FIELD_DECL F, and a replacement value R,
3726 return a tree with all occurrences of references to F in a
3727 PLACEHOLDER_EXPR replaced by R. Also handle VAR_DECLs and
3728 CONST_DECLs. Note that we assume here that EXP contains only
3729 arithmetic expressions or CALL_EXPRs with PLACEHOLDER_EXPRs
3730 occurring only in their argument list. */
3733 substitute_in_expr (tree exp
, tree f
, tree r
)
3735 enum tree_code code
= TREE_CODE (exp
);
3736 tree op0
, op1
, op2
, op3
;
3739 /* We handle TREE_LIST and COMPONENT_REF separately. */
3740 if (code
== TREE_LIST
)
3742 op0
= SUBSTITUTE_IN_EXPR (TREE_CHAIN (exp
), f
, r
);
3743 op1
= SUBSTITUTE_IN_EXPR (TREE_VALUE (exp
), f
, r
);
3744 if (op0
== TREE_CHAIN (exp
) && op1
== TREE_VALUE (exp
))
3747 return tree_cons (TREE_PURPOSE (exp
), op1
, op0
);
3749 else if (code
== COMPONENT_REF
)
3753 /* If this expression is getting a value from a PLACEHOLDER_EXPR
3754 and it is the right field, replace it with R. */
3755 for (inner
= TREE_OPERAND (exp
, 0);
3756 REFERENCE_CLASS_P (inner
);
3757 inner
= TREE_OPERAND (inner
, 0))
3761 op1
= TREE_OPERAND (exp
, 1);
3763 if (TREE_CODE (inner
) == PLACEHOLDER_EXPR
&& op1
== f
)
3766 /* If this expression hasn't been completed let, leave it alone. */
3767 if (TREE_CODE (inner
) == PLACEHOLDER_EXPR
&& !TREE_TYPE (inner
))
3770 op0
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 0), f
, r
);
3771 if (op0
== TREE_OPERAND (exp
, 0))
3775 = fold_build3 (COMPONENT_REF
, TREE_TYPE (exp
), op0
, op1
, NULL_TREE
);
3778 switch (TREE_CODE_CLASS (code
))
3783 case tcc_declaration
:
3789 case tcc_expression
:
3793 /* Fall through... */
3795 case tcc_exceptional
:
3798 case tcc_comparison
:
3800 switch (TREE_CODE_LENGTH (code
))
3806 op0
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 0), f
, r
);
3807 if (op0
== TREE_OPERAND (exp
, 0))
3810 new_tree
= fold_build1 (code
, TREE_TYPE (exp
), op0
);
3814 op0
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 0), f
, r
);
3815 op1
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 1), f
, r
);
3817 if (op0
== TREE_OPERAND (exp
, 0) && op1
== TREE_OPERAND (exp
, 1))
3820 new_tree
= fold_build2 (code
, TREE_TYPE (exp
), op0
, op1
);
3824 op0
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 0), f
, r
);
3825 op1
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 1), f
, r
);
3826 op2
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 2), f
, r
);
3828 if (op0
== TREE_OPERAND (exp
, 0) && op1
== TREE_OPERAND (exp
, 1)
3829 && op2
== TREE_OPERAND (exp
, 2))
3832 new_tree
= fold_build3 (code
, TREE_TYPE (exp
), op0
, op1
, op2
);
3836 op0
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 0), f
, r
);
3837 op1
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 1), f
, r
);
3838 op2
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 2), f
, r
);
3839 op3
= SUBSTITUTE_IN_EXPR (TREE_OPERAND (exp
, 3), f
, r
);
3841 if (op0
== TREE_OPERAND (exp
, 0) && op1
== TREE_OPERAND (exp
, 1)
3842 && op2
== TREE_OPERAND (exp
, 2)
3843 && op3
== TREE_OPERAND (exp
, 3))
3847 = fold (build4 (code
, TREE_TYPE (exp
), op0
, op1
, op2
, op3
));
3859 new_tree
= NULL_TREE
;
3861 /* If we are trying to replace F with a constant, inline back
3862 functions which do nothing else than computing a value from
3863 the arguments they are passed. This makes it possible to
3864 fold partially or entirely the replacement expression. */
3865 if (CONSTANT_CLASS_P (r
) && code
== CALL_EXPR
)
3867 tree t
= maybe_inline_call_in_expr (exp
);
3869 return SUBSTITUTE_IN_EXPR (t
, f
, r
);
3872 for (i
= 1; i
< TREE_OPERAND_LENGTH (exp
); i
++)
3874 tree op
= TREE_OPERAND (exp
, i
);
3875 tree new_op
= SUBSTITUTE_IN_EXPR (op
, f
, r
);
3879 new_tree
= copy_node (exp
);
3880 TREE_OPERAND (new_tree
, i
) = new_op
;
3886 new_tree
= fold (new_tree
);
3887 if (TREE_CODE (new_tree
) == CALL_EXPR
)
3888 process_call_operands (new_tree
);
3899 TREE_READONLY (new_tree
) |= TREE_READONLY (exp
);
3901 if (code
== INDIRECT_REF
|| code
== ARRAY_REF
|| code
== ARRAY_RANGE_REF
)
3902 TREE_THIS_NOTRAP (new_tree
) |= TREE_THIS_NOTRAP (exp
);
3907 /* Similar, but look for a PLACEHOLDER_EXPR in EXP and find a replacement
3908 for it within OBJ, a tree that is an object or a chain of references. */
3911 substitute_placeholder_in_expr (tree exp
, tree obj
)
3913 enum tree_code code
= TREE_CODE (exp
);
3914 tree op0
, op1
, op2
, op3
;
3917 /* If this is a PLACEHOLDER_EXPR, see if we find a corresponding type
3918 in the chain of OBJ. */
3919 if (code
== PLACEHOLDER_EXPR
)
3921 tree need_type
= TYPE_MAIN_VARIANT (TREE_TYPE (exp
));
3924 for (elt
= obj
; elt
!= 0;
3925 elt
= ((TREE_CODE (elt
) == COMPOUND_EXPR
3926 || TREE_CODE (elt
) == COND_EXPR
)
3927 ? TREE_OPERAND (elt
, 1)
3928 : (REFERENCE_CLASS_P (elt
)
3929 || UNARY_CLASS_P (elt
)
3930 || BINARY_CLASS_P (elt
)
3931 || VL_EXP_CLASS_P (elt
)
3932 || EXPRESSION_CLASS_P (elt
))
3933 ? TREE_OPERAND (elt
, 0) : 0))
3934 if (TYPE_MAIN_VARIANT (TREE_TYPE (elt
)) == need_type
)
3937 for (elt
= obj
; elt
!= 0;
3938 elt
= ((TREE_CODE (elt
) == COMPOUND_EXPR
3939 || TREE_CODE (elt
) == COND_EXPR
)
3940 ? TREE_OPERAND (elt
, 1)
3941 : (REFERENCE_CLASS_P (elt
)
3942 || UNARY_CLASS_P (elt
)
3943 || BINARY_CLASS_P (elt
)
3944 || VL_EXP_CLASS_P (elt
)
3945 || EXPRESSION_CLASS_P (elt
))
3946 ? TREE_OPERAND (elt
, 0) : 0))
3947 if (POINTER_TYPE_P (TREE_TYPE (elt
))
3948 && (TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (elt
)))
3950 return fold_build1 (INDIRECT_REF
, need_type
, elt
);
3952 /* If we didn't find it, return the original PLACEHOLDER_EXPR. If it
3953 survives until RTL generation, there will be an error. */
3957 /* TREE_LIST is special because we need to look at TREE_VALUE
3958 and TREE_CHAIN, not TREE_OPERANDS. */
3959 else if (code
== TREE_LIST
)
3961 op0
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_CHAIN (exp
), obj
);
3962 op1
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_VALUE (exp
), obj
);
3963 if (op0
== TREE_CHAIN (exp
) && op1
== TREE_VALUE (exp
))
3966 return tree_cons (TREE_PURPOSE (exp
), op1
, op0
);
3969 switch (TREE_CODE_CLASS (code
))
3972 case tcc_declaration
:
3975 case tcc_exceptional
:
3978 case tcc_comparison
:
3979 case tcc_expression
:
3982 switch (TREE_CODE_LENGTH (code
))
3988 op0
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 0), obj
);
3989 if (op0
== TREE_OPERAND (exp
, 0))
3992 new_tree
= fold_build1 (code
, TREE_TYPE (exp
), op0
);
3996 op0
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 0), obj
);
3997 op1
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 1), obj
);
3999 if (op0
== TREE_OPERAND (exp
, 0) && op1
== TREE_OPERAND (exp
, 1))
4002 new_tree
= fold_build2 (code
, TREE_TYPE (exp
), op0
, op1
);
4006 op0
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 0), obj
);
4007 op1
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 1), obj
);
4008 op2
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 2), obj
);
4010 if (op0
== TREE_OPERAND (exp
, 0) && op1
== TREE_OPERAND (exp
, 1)
4011 && op2
== TREE_OPERAND (exp
, 2))
4014 new_tree
= fold_build3 (code
, TREE_TYPE (exp
), op0
, op1
, op2
);
4018 op0
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 0), obj
);
4019 op1
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 1), obj
);
4020 op2
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 2), obj
);
4021 op3
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (TREE_OPERAND (exp
, 3), obj
);
4023 if (op0
== TREE_OPERAND (exp
, 0) && op1
== TREE_OPERAND (exp
, 1)
4024 && op2
== TREE_OPERAND (exp
, 2)
4025 && op3
== TREE_OPERAND (exp
, 3))
4029 = fold (build4 (code
, TREE_TYPE (exp
), op0
, op1
, op2
, op3
));
4041 new_tree
= NULL_TREE
;
4043 for (i
= 1; i
< TREE_OPERAND_LENGTH (exp
); i
++)
4045 tree op
= TREE_OPERAND (exp
, i
);
4046 tree new_op
= SUBSTITUTE_PLACEHOLDER_IN_EXPR (op
, obj
);
4050 new_tree
= copy_node (exp
);
4051 TREE_OPERAND (new_tree
, i
) = new_op
;
4057 new_tree
= fold (new_tree
);
4058 if (TREE_CODE (new_tree
) == CALL_EXPR
)
4059 process_call_operands (new_tree
);
4070 TREE_READONLY (new_tree
) |= TREE_READONLY (exp
);
4072 if (code
== INDIRECT_REF
|| code
== ARRAY_REF
|| code
== ARRAY_RANGE_REF
)
4073 TREE_THIS_NOTRAP (new_tree
) |= TREE_THIS_NOTRAP (exp
);
4079 /* Subroutine of stabilize_reference; this is called for subtrees of
4080 references. Any expression with side-effects must be put in a SAVE_EXPR
4081 to ensure that it is only evaluated once.
4083 We don't put SAVE_EXPR nodes around everything, because assigning very
4084 simple expressions to temporaries causes us to miss good opportunities
4085 for optimizations. Among other things, the opportunity to fold in the
4086 addition of a constant into an addressing mode often gets lost, e.g.
4087 "y[i+1] += x;". In general, we take the approach that we should not make
4088 an assignment unless we are forced into it - i.e., that any non-side effect
4089 operator should be allowed, and that cse should take care of coalescing
4090 multiple utterances of the same expression should that prove fruitful. */
4093 stabilize_reference_1 (tree e
)
4096 enum tree_code code
= TREE_CODE (e
);
4098 /* We cannot ignore const expressions because it might be a reference
4099 to a const array but whose index contains side-effects. But we can
4100 ignore things that are actual constant or that already have been
4101 handled by this function. */
4103 if (tree_invariant_p (e
))
4106 switch (TREE_CODE_CLASS (code
))
4108 case tcc_exceptional
:
4110 case tcc_declaration
:
4111 case tcc_comparison
:
4113 case tcc_expression
:
4116 /* If the expression has side-effects, then encase it in a SAVE_EXPR
4117 so that it will only be evaluated once. */
4118 /* The reference (r) and comparison (<) classes could be handled as
4119 below, but it is generally faster to only evaluate them once. */
4120 if (TREE_SIDE_EFFECTS (e
))
4121 return save_expr (e
);
4125 /* Constants need no processing. In fact, we should never reach
4130 /* Division is slow and tends to be compiled with jumps,
4131 especially the division by powers of 2 that is often
4132 found inside of an array reference. So do it just once. */
4133 if (code
== TRUNC_DIV_EXPR
|| code
== TRUNC_MOD_EXPR
4134 || code
== FLOOR_DIV_EXPR
|| code
== FLOOR_MOD_EXPR
4135 || code
== CEIL_DIV_EXPR
|| code
== CEIL_MOD_EXPR
4136 || code
== ROUND_DIV_EXPR
|| code
== ROUND_MOD_EXPR
)
4137 return save_expr (e
);
4138 /* Recursively stabilize each operand. */
4139 result
= build_nt (code
, stabilize_reference_1 (TREE_OPERAND (e
, 0)),
4140 stabilize_reference_1 (TREE_OPERAND (e
, 1)));
4144 /* Recursively stabilize each operand. */
4145 result
= build_nt (code
, stabilize_reference_1 (TREE_OPERAND (e
, 0)));
4152 TREE_TYPE (result
) = TREE_TYPE (e
);
4153 TREE_READONLY (result
) = TREE_READONLY (e
);
4154 TREE_SIDE_EFFECTS (result
) = TREE_SIDE_EFFECTS (e
);
4155 TREE_THIS_VOLATILE (result
) = TREE_THIS_VOLATILE (e
);
4160 /* Stabilize a reference so that we can use it any number of times
4161 without causing its operands to be evaluated more than once.
4162 Returns the stabilized reference. This works by means of save_expr,
4163 so see the caveats in the comments about save_expr.
4165 Also allows conversion expressions whose operands are references.
4166 Any other kind of expression is returned unchanged. */
4169 stabilize_reference (tree ref
)
4172 enum tree_code code
= TREE_CODE (ref
);
4179 /* No action is needed in this case. */
4184 case FIX_TRUNC_EXPR
:
4185 result
= build_nt (code
, stabilize_reference (TREE_OPERAND (ref
, 0)));
4189 result
= build_nt (INDIRECT_REF
,
4190 stabilize_reference_1 (TREE_OPERAND (ref
, 0)));
4194 result
= build_nt (COMPONENT_REF
,
4195 stabilize_reference (TREE_OPERAND (ref
, 0)),
4196 TREE_OPERAND (ref
, 1), NULL_TREE
);
4200 result
= build_nt (BIT_FIELD_REF
,
4201 stabilize_reference (TREE_OPERAND (ref
, 0)),
4202 TREE_OPERAND (ref
, 1), TREE_OPERAND (ref
, 2));
4203 REF_REVERSE_STORAGE_ORDER (result
) = REF_REVERSE_STORAGE_ORDER (ref
);
4207 result
= build_nt (ARRAY_REF
,
4208 stabilize_reference (TREE_OPERAND (ref
, 0)),
4209 stabilize_reference_1 (TREE_OPERAND (ref
, 1)),
4210 TREE_OPERAND (ref
, 2), TREE_OPERAND (ref
, 3));
4213 case ARRAY_RANGE_REF
:
4214 result
= build_nt (ARRAY_RANGE_REF
,
4215 stabilize_reference (TREE_OPERAND (ref
, 0)),
4216 stabilize_reference_1 (TREE_OPERAND (ref
, 1)),
4217 TREE_OPERAND (ref
, 2), TREE_OPERAND (ref
, 3));
4221 /* We cannot wrap the first expression in a SAVE_EXPR, as then
4222 it wouldn't be ignored. This matters when dealing with
4224 return stabilize_reference_1 (ref
);
4226 /* If arg isn't a kind of lvalue we recognize, make no change.
4227 Caller should recognize the error for an invalid lvalue. */
4232 return error_mark_node
;
4235 TREE_TYPE (result
) = TREE_TYPE (ref
);
4236 TREE_READONLY (result
) = TREE_READONLY (ref
);
4237 TREE_SIDE_EFFECTS (result
) = TREE_SIDE_EFFECTS (ref
);
4238 TREE_THIS_VOLATILE (result
) = TREE_THIS_VOLATILE (ref
);
4243 /* Low-level constructors for expressions. */
4245 /* A helper function for build1 and constant folders. Set TREE_CONSTANT,
4246 and TREE_SIDE_EFFECTS for an ADDR_EXPR. */
4249 recompute_tree_invariant_for_addr_expr (tree t
)
4252 bool tc
= true, se
= false;
4254 gcc_assert (TREE_CODE (t
) == ADDR_EXPR
);
4256 /* We started out assuming this address is both invariant and constant, but
4257 does not have side effects. Now go down any handled components and see if
4258 any of them involve offsets that are either non-constant or non-invariant.
4259 Also check for side-effects.
4261 ??? Note that this code makes no attempt to deal with the case where
4262 taking the address of something causes a copy due to misalignment. */
4264 #define UPDATE_FLAGS(NODE) \
4265 do { tree _node = (NODE); \
4266 if (_node && !TREE_CONSTANT (_node)) tc = false; \
4267 if (_node && TREE_SIDE_EFFECTS (_node)) se = true; } while (0)
4269 for (node
= TREE_OPERAND (t
, 0); handled_component_p (node
);
4270 node
= TREE_OPERAND (node
, 0))
4272 /* If the first operand doesn't have an ARRAY_TYPE, this is a bogus
4273 array reference (probably made temporarily by the G++ front end),
4274 so ignore all the operands. */
4275 if ((TREE_CODE (node
) == ARRAY_REF
4276 || TREE_CODE (node
) == ARRAY_RANGE_REF
)
4277 && TREE_CODE (TREE_TYPE (TREE_OPERAND (node
, 0))) == ARRAY_TYPE
)
4279 UPDATE_FLAGS (TREE_OPERAND (node
, 1));
4280 if (TREE_OPERAND (node
, 2))
4281 UPDATE_FLAGS (TREE_OPERAND (node
, 2));
4282 if (TREE_OPERAND (node
, 3))
4283 UPDATE_FLAGS (TREE_OPERAND (node
, 3));
4285 /* Likewise, just because this is a COMPONENT_REF doesn't mean we have a
4286 FIELD_DECL, apparently. The G++ front end can put something else
4287 there, at least temporarily. */
4288 else if (TREE_CODE (node
) == COMPONENT_REF
4289 && TREE_CODE (TREE_OPERAND (node
, 1)) == FIELD_DECL
)
4291 if (TREE_OPERAND (node
, 2))
4292 UPDATE_FLAGS (TREE_OPERAND (node
, 2));
4296 node
= lang_hooks
.expr_to_decl (node
, &tc
, &se
);
4298 /* Now see what's inside. If it's an INDIRECT_REF, copy our properties from
4299 the address, since &(*a)->b is a form of addition. If it's a constant, the
4300 address is constant too. If it's a decl, its address is constant if the
4301 decl is static. Everything else is not constant and, furthermore,
4302 taking the address of a volatile variable is not volatile. */
4303 if (TREE_CODE (node
) == INDIRECT_REF
4304 || TREE_CODE (node
) == MEM_REF
)
4305 UPDATE_FLAGS (TREE_OPERAND (node
, 0));
4306 else if (CONSTANT_CLASS_P (node
))
4308 else if (DECL_P (node
))
4309 tc
&= (staticp (node
) != NULL_TREE
);
4313 se
|= TREE_SIDE_EFFECTS (node
);
4317 TREE_CONSTANT (t
) = tc
;
4318 TREE_SIDE_EFFECTS (t
) = se
;
4322 /* Build an expression of code CODE, data type TYPE, and operands as
4323 specified. Expressions and reference nodes can be created this way.
4324 Constants, decls, types and misc nodes cannot be.
4326 We define 5 non-variadic functions, from 0 to 4 arguments. This is
4327 enough for all extant tree codes. */
4330 build0_stat (enum tree_code code
, tree tt MEM_STAT_DECL
)
4334 gcc_assert (TREE_CODE_LENGTH (code
) == 0);
4336 t
= make_node_stat (code PASS_MEM_STAT
);
4343 build1_stat (enum tree_code code
, tree type
, tree node MEM_STAT_DECL
)
4345 int length
= sizeof (struct tree_exp
);
4348 record_node_allocation_statistics (code
, length
);
4350 gcc_assert (TREE_CODE_LENGTH (code
) == 1);
4352 t
= ggc_alloc_tree_node_stat (length PASS_MEM_STAT
);
4354 memset (t
, 0, sizeof (struct tree_common
));
4356 TREE_SET_CODE (t
, code
);
4358 TREE_TYPE (t
) = type
;
4359 SET_EXPR_LOCATION (t
, UNKNOWN_LOCATION
);
4360 TREE_OPERAND (t
, 0) = node
;
4361 if (node
&& !TYPE_P (node
))
4363 TREE_SIDE_EFFECTS (t
) = TREE_SIDE_EFFECTS (node
);
4364 TREE_READONLY (t
) = TREE_READONLY (node
);
4367 if (TREE_CODE_CLASS (code
) == tcc_statement
)
4368 TREE_SIDE_EFFECTS (t
) = 1;
4372 /* All of these have side-effects, no matter what their
4374 TREE_SIDE_EFFECTS (t
) = 1;
4375 TREE_READONLY (t
) = 0;
4379 /* Whether a dereference is readonly has nothing to do with whether
4380 its operand is readonly. */
4381 TREE_READONLY (t
) = 0;
4386 recompute_tree_invariant_for_addr_expr (t
);
4390 if ((TREE_CODE_CLASS (code
) == tcc_unary
|| code
== VIEW_CONVERT_EXPR
)
4391 && node
&& !TYPE_P (node
)
4392 && TREE_CONSTANT (node
))
4393 TREE_CONSTANT (t
) = 1;
4394 if (TREE_CODE_CLASS (code
) == tcc_reference
4395 && node
&& TREE_THIS_VOLATILE (node
))
4396 TREE_THIS_VOLATILE (t
) = 1;
4403 #define PROCESS_ARG(N) \
4405 TREE_OPERAND (t, N) = arg##N; \
4406 if (arg##N &&!TYPE_P (arg##N)) \
4408 if (TREE_SIDE_EFFECTS (arg##N)) \
4410 if (!TREE_READONLY (arg##N) \
4411 && !CONSTANT_CLASS_P (arg##N)) \
4412 (void) (read_only = 0); \
4413 if (!TREE_CONSTANT (arg##N)) \
4414 (void) (constant = 0); \
4419 build2_stat (enum tree_code code
, tree tt
, tree arg0
, tree arg1 MEM_STAT_DECL
)
4421 bool constant
, read_only
, side_effects
;
4424 gcc_assert (TREE_CODE_LENGTH (code
) == 2);
4426 if ((code
== MINUS_EXPR
|| code
== PLUS_EXPR
|| code
== MULT_EXPR
)
4427 && arg0
&& arg1
&& tt
&& POINTER_TYPE_P (tt
)
4428 /* When sizetype precision doesn't match that of pointers
4429 we need to be able to build explicit extensions or truncations
4430 of the offset argument. */
4431 && TYPE_PRECISION (sizetype
) == TYPE_PRECISION (tt
))
4432 gcc_assert (TREE_CODE (arg0
) == INTEGER_CST
4433 && TREE_CODE (arg1
) == INTEGER_CST
);
4435 if (code
== POINTER_PLUS_EXPR
&& arg0
&& arg1
&& tt
)
4436 gcc_assert (POINTER_TYPE_P (tt
) && POINTER_TYPE_P (TREE_TYPE (arg0
))
4437 && ptrofftype_p (TREE_TYPE (arg1
)));
4439 t
= make_node_stat (code PASS_MEM_STAT
);
4442 /* Below, we automatically set TREE_SIDE_EFFECTS and TREE_READONLY for the
4443 result based on those same flags for the arguments. But if the
4444 arguments aren't really even `tree' expressions, we shouldn't be trying
4447 /* Expressions without side effects may be constant if their
4448 arguments are as well. */
4449 constant
= (TREE_CODE_CLASS (code
) == tcc_comparison
4450 || TREE_CODE_CLASS (code
) == tcc_binary
);
4452 side_effects
= TREE_SIDE_EFFECTS (t
);
4457 TREE_SIDE_EFFECTS (t
) = side_effects
;
4458 if (code
== MEM_REF
)
4460 if (arg0
&& TREE_CODE (arg0
) == ADDR_EXPR
)
4462 tree o
= TREE_OPERAND (arg0
, 0);
4463 TREE_READONLY (t
) = TREE_READONLY (o
);
4464 TREE_THIS_VOLATILE (t
) = TREE_THIS_VOLATILE (o
);
4469 TREE_READONLY (t
) = read_only
;
4470 TREE_CONSTANT (t
) = constant
;
4471 TREE_THIS_VOLATILE (t
)
4472 = (TREE_CODE_CLASS (code
) == tcc_reference
4473 && arg0
&& TREE_THIS_VOLATILE (arg0
));
4481 build3_stat (enum tree_code code
, tree tt
, tree arg0
, tree arg1
,
4482 tree arg2 MEM_STAT_DECL
)
4484 bool constant
, read_only
, side_effects
;
4487 gcc_assert (TREE_CODE_LENGTH (code
) == 3);
4488 gcc_assert (TREE_CODE_CLASS (code
) != tcc_vl_exp
);
4490 t
= make_node_stat (code PASS_MEM_STAT
);
4495 /* As a special exception, if COND_EXPR has NULL branches, we
4496 assume that it is a gimple statement and always consider
4497 it to have side effects. */
4498 if (code
== COND_EXPR
4499 && tt
== void_type_node
4500 && arg1
== NULL_TREE
4501 && arg2
== NULL_TREE
)
4502 side_effects
= true;
4504 side_effects
= TREE_SIDE_EFFECTS (t
);
4510 if (code
== COND_EXPR
)
4511 TREE_READONLY (t
) = read_only
;
4513 TREE_SIDE_EFFECTS (t
) = side_effects
;
4514 TREE_THIS_VOLATILE (t
)
4515 = (TREE_CODE_CLASS (code
) == tcc_reference
4516 && arg0
&& TREE_THIS_VOLATILE (arg0
));
4522 build4_stat (enum tree_code code
, tree tt
, tree arg0
, tree arg1
,
4523 tree arg2
, tree arg3 MEM_STAT_DECL
)
4525 bool constant
, read_only
, side_effects
;
4528 gcc_assert (TREE_CODE_LENGTH (code
) == 4);
4530 t
= make_node_stat (code PASS_MEM_STAT
);
4533 side_effects
= TREE_SIDE_EFFECTS (t
);
4540 TREE_SIDE_EFFECTS (t
) = side_effects
;
4541 TREE_THIS_VOLATILE (t
)
4542 = (TREE_CODE_CLASS (code
) == tcc_reference
4543 && arg0
&& TREE_THIS_VOLATILE (arg0
));
4549 build5_stat (enum tree_code code
, tree tt
, tree arg0
, tree arg1
,
4550 tree arg2
, tree arg3
, tree arg4 MEM_STAT_DECL
)
4552 bool constant
, read_only
, side_effects
;
4555 gcc_assert (TREE_CODE_LENGTH (code
) == 5);
4557 t
= make_node_stat (code PASS_MEM_STAT
);
4560 side_effects
= TREE_SIDE_EFFECTS (t
);
4568 TREE_SIDE_EFFECTS (t
) = side_effects
;
4569 if (code
== TARGET_MEM_REF
)
4571 if (arg0
&& TREE_CODE (arg0
) == ADDR_EXPR
)
4573 tree o
= TREE_OPERAND (arg0
, 0);
4574 TREE_READONLY (t
) = TREE_READONLY (o
);
4575 TREE_THIS_VOLATILE (t
) = TREE_THIS_VOLATILE (o
);
4579 TREE_THIS_VOLATILE (t
)
4580 = (TREE_CODE_CLASS (code
) == tcc_reference
4581 && arg0
&& TREE_THIS_VOLATILE (arg0
));
4586 /* Build a simple MEM_REF tree with the sematics of a plain INDIRECT_REF
4587 on the pointer PTR. */
4590 build_simple_mem_ref_loc (location_t loc
, tree ptr
)
4592 HOST_WIDE_INT offset
= 0;
4593 tree ptype
= TREE_TYPE (ptr
);
4595 /* For convenience allow addresses that collapse to a simple base
4597 if (TREE_CODE (ptr
) == ADDR_EXPR
4598 && (handled_component_p (TREE_OPERAND (ptr
, 0))
4599 || TREE_CODE (TREE_OPERAND (ptr
, 0)) == MEM_REF
))
4601 ptr
= get_addr_base_and_unit_offset (TREE_OPERAND (ptr
, 0), &offset
);
4603 ptr
= build_fold_addr_expr (ptr
);
4604 gcc_assert (is_gimple_reg (ptr
) || is_gimple_min_invariant (ptr
));
4606 tem
= build2 (MEM_REF
, TREE_TYPE (ptype
),
4607 ptr
, build_int_cst (ptype
, offset
));
4608 SET_EXPR_LOCATION (tem
, loc
);
4612 /* Return the constant offset of a MEM_REF or TARGET_MEM_REF tree T. */
4615 mem_ref_offset (const_tree t
)
4617 return offset_int::from (TREE_OPERAND (t
, 1), SIGNED
);
4620 /* Return an invariant ADDR_EXPR of type TYPE taking the address of BASE
4621 offsetted by OFFSET units. */
4624 build_invariant_address (tree type
, tree base
, HOST_WIDE_INT offset
)
4626 tree ref
= fold_build2 (MEM_REF
, TREE_TYPE (type
),
4627 build_fold_addr_expr (base
),
4628 build_int_cst (ptr_type_node
, offset
));
4629 tree addr
= build1 (ADDR_EXPR
, type
, ref
);
4630 recompute_tree_invariant_for_addr_expr (addr
);
4634 /* Similar except don't specify the TREE_TYPE
4635 and leave the TREE_SIDE_EFFECTS as 0.
4636 It is permissible for arguments to be null,
4637 or even garbage if their values do not matter. */
4640 build_nt (enum tree_code code
, ...)
4647 gcc_assert (TREE_CODE_CLASS (code
) != tcc_vl_exp
);
4651 t
= make_node (code
);
4652 length
= TREE_CODE_LENGTH (code
);
4654 for (i
= 0; i
< length
; i
++)
4655 TREE_OPERAND (t
, i
) = va_arg (p
, tree
);
4661 /* Similar to build_nt, but for creating a CALL_EXPR object with a
4665 build_nt_call_vec (tree fn
, vec
<tree
, va_gc
> *args
)
4670 ret
= build_vl_exp (CALL_EXPR
, vec_safe_length (args
) + 3);
4671 CALL_EXPR_FN (ret
) = fn
;
4672 CALL_EXPR_STATIC_CHAIN (ret
) = NULL_TREE
;
4673 FOR_EACH_VEC_SAFE_ELT (args
, ix
, t
)
4674 CALL_EXPR_ARG (ret
, ix
) = t
;
4678 /* Create a DECL_... node of code CODE, name NAME and data type TYPE.
4679 We do NOT enter this node in any sort of symbol table.
4681 LOC is the location of the decl.
4683 layout_decl is used to set up the decl's storage layout.
4684 Other slots are initialized to 0 or null pointers. */
4687 build_decl_stat (location_t loc
, enum tree_code code
, tree name
,
4688 tree type MEM_STAT_DECL
)
4692 t
= make_node_stat (code PASS_MEM_STAT
);
4693 DECL_SOURCE_LOCATION (t
) = loc
;
4695 /* if (type == error_mark_node)
4696 type = integer_type_node; */
4697 /* That is not done, deliberately, so that having error_mark_node
4698 as the type can suppress useless errors in the use of this variable. */
4700 DECL_NAME (t
) = name
;
4701 TREE_TYPE (t
) = type
;
4703 if (code
== VAR_DECL
|| code
== PARM_DECL
|| code
== RESULT_DECL
)
4709 /* Builds and returns function declaration with NAME and TYPE. */
4712 build_fn_decl (const char *name
, tree type
)
4714 tree id
= get_identifier (name
);
4715 tree decl
= build_decl (input_location
, FUNCTION_DECL
, id
, type
);
4717 DECL_EXTERNAL (decl
) = 1;
4718 TREE_PUBLIC (decl
) = 1;
4719 DECL_ARTIFICIAL (decl
) = 1;
4720 TREE_NOTHROW (decl
) = 1;
4725 vec
<tree
, va_gc
> *all_translation_units
;
4727 /* Builds a new translation-unit decl with name NAME, queues it in the
4728 global list of translation-unit decls and returns it. */
4731 build_translation_unit_decl (tree name
)
4733 tree tu
= build_decl (UNKNOWN_LOCATION
, TRANSLATION_UNIT_DECL
,
4735 TRANSLATION_UNIT_LANGUAGE (tu
) = lang_hooks
.name
;
4736 vec_safe_push (all_translation_units
, tu
);
4741 /* BLOCK nodes are used to represent the structure of binding contours
4742 and declarations, once those contours have been exited and their contents
4743 compiled. This information is used for outputting debugging info. */
4746 build_block (tree vars
, tree subblocks
, tree supercontext
, tree chain
)
4748 tree block
= make_node (BLOCK
);
4750 BLOCK_VARS (block
) = vars
;
4751 BLOCK_SUBBLOCKS (block
) = subblocks
;
4752 BLOCK_SUPERCONTEXT (block
) = supercontext
;
4753 BLOCK_CHAIN (block
) = chain
;
4758 /* Like SET_EXPR_LOCATION, but make sure the tree can have a location.
4760 LOC is the location to use in tree T. */
4763 protected_set_expr_location (tree t
, location_t loc
)
4765 if (CAN_HAVE_LOCATION_P (t
))
4766 SET_EXPR_LOCATION (t
, loc
);
4769 /* Return a declaration like DDECL except that its DECL_ATTRIBUTES
4773 build_decl_attribute_variant (tree ddecl
, tree attribute
)
4775 DECL_ATTRIBUTES (ddecl
) = attribute
;
4779 /* Return a type like TTYPE except that its TYPE_ATTRIBUTE
4780 is ATTRIBUTE and its qualifiers are QUALS.
4782 Record such modified types already made so we don't make duplicates. */
4785 build_type_attribute_qual_variant (tree ttype
, tree attribute
, int quals
)
4787 if (! attribute_list_equal (TYPE_ATTRIBUTES (ttype
), attribute
))
4789 inchash::hash hstate
;
4793 enum tree_code code
= TREE_CODE (ttype
);
4795 /* Building a distinct copy of a tagged type is inappropriate; it
4796 causes breakage in code that expects there to be a one-to-one
4797 relationship between a struct and its fields.
4798 build_duplicate_type is another solution (as used in
4799 handle_transparent_union_attribute), but that doesn't play well
4800 with the stronger C++ type identity model. */
4801 if (TREE_CODE (ttype
) == RECORD_TYPE
4802 || TREE_CODE (ttype
) == UNION_TYPE
4803 || TREE_CODE (ttype
) == QUAL_UNION_TYPE
4804 || TREE_CODE (ttype
) == ENUMERAL_TYPE
)
4806 warning (OPT_Wattributes
,
4807 "ignoring attributes applied to %qT after definition",
4808 TYPE_MAIN_VARIANT (ttype
));
4809 return build_qualified_type (ttype
, quals
);
4812 ttype
= build_qualified_type (ttype
, TYPE_UNQUALIFIED
);
4813 ntype
= build_distinct_type_copy (ttype
);
4815 TYPE_ATTRIBUTES (ntype
) = attribute
;
4817 hstate
.add_int (code
);
4818 if (TREE_TYPE (ntype
))
4819 hstate
.add_object (TYPE_HASH (TREE_TYPE (ntype
)));
4820 attribute_hash_list (attribute
, hstate
);
4822 switch (TREE_CODE (ntype
))
4825 type_hash_list (TYPE_ARG_TYPES (ntype
), hstate
);
4828 if (TYPE_DOMAIN (ntype
))
4829 hstate
.add_object (TYPE_HASH (TYPE_DOMAIN (ntype
)));
4832 t
= TYPE_MAX_VALUE (ntype
);
4833 for (i
= 0; i
< TREE_INT_CST_NUNITS (t
); i
++)
4834 hstate
.add_object (TREE_INT_CST_ELT (t
, i
));
4837 case FIXED_POINT_TYPE
:
4839 unsigned int precision
= TYPE_PRECISION (ntype
);
4840 hstate
.add_object (precision
);
4847 ntype
= type_hash_canon (hstate
.end(), ntype
);
4849 /* If the target-dependent attributes make NTYPE different from
4850 its canonical type, we will need to use structural equality
4851 checks for this type. */
4852 if (TYPE_STRUCTURAL_EQUALITY_P (ttype
)
4853 || !comp_type_attributes (ntype
, ttype
))
4854 SET_TYPE_STRUCTURAL_EQUALITY (ntype
);
4855 else if (TYPE_CANONICAL (ntype
) == ntype
)
4856 TYPE_CANONICAL (ntype
) = TYPE_CANONICAL (ttype
);
4858 ttype
= build_qualified_type (ntype
, quals
);
4860 else if (TYPE_QUALS (ttype
) != quals
)
4861 ttype
= build_qualified_type (ttype
, quals
);
4866 /* Check if "omp declare simd" attribute arguments, CLAUSES1 and CLAUSES2, are
4870 omp_declare_simd_clauses_equal (tree clauses1
, tree clauses2
)
4873 for (cl1
= clauses1
, cl2
= clauses2
;
4875 cl1
= OMP_CLAUSE_CHAIN (cl1
), cl2
= OMP_CLAUSE_CHAIN (cl2
))
4877 if (OMP_CLAUSE_CODE (cl1
) != OMP_CLAUSE_CODE (cl2
))
4879 if (OMP_CLAUSE_CODE (cl1
) != OMP_CLAUSE_SIMDLEN
)
4881 if (simple_cst_equal (OMP_CLAUSE_DECL (cl1
),
4882 OMP_CLAUSE_DECL (cl2
)) != 1)
4885 switch (OMP_CLAUSE_CODE (cl1
))
4887 case OMP_CLAUSE_ALIGNED
:
4888 if (simple_cst_equal (OMP_CLAUSE_ALIGNED_ALIGNMENT (cl1
),
4889 OMP_CLAUSE_ALIGNED_ALIGNMENT (cl2
)) != 1)
4892 case OMP_CLAUSE_LINEAR
:
4893 if (simple_cst_equal (OMP_CLAUSE_LINEAR_STEP (cl1
),
4894 OMP_CLAUSE_LINEAR_STEP (cl2
)) != 1)
4897 case OMP_CLAUSE_SIMDLEN
:
4898 if (simple_cst_equal (OMP_CLAUSE_SIMDLEN_EXPR (cl1
),
4899 OMP_CLAUSE_SIMDLEN_EXPR (cl2
)) != 1)
4908 /* Compare two constructor-element-type constants. Return 1 if the lists
4909 are known to be equal; otherwise return 0. */
4912 simple_cst_list_equal (const_tree l1
, const_tree l2
)
4914 while (l1
!= NULL_TREE
&& l2
!= NULL_TREE
)
4916 if (simple_cst_equal (TREE_VALUE (l1
), TREE_VALUE (l2
)) != 1)
4919 l1
= TREE_CHAIN (l1
);
4920 l2
= TREE_CHAIN (l2
);
4926 /* Compare two identifier nodes representing attributes. Either one may
4927 be in wrapped __ATTR__ form. Return true if they are the same, false
4931 cmp_attrib_identifiers (const_tree attr1
, const_tree attr2
)
4933 /* Make sure we're dealing with IDENTIFIER_NODEs. */
4934 gcc_checking_assert (TREE_CODE (attr1
) == IDENTIFIER_NODE
4935 && TREE_CODE (attr2
) == IDENTIFIER_NODE
);
4937 /* Identifiers can be compared directly for equality. */
4941 /* If they are not equal, they may still be one in the form
4942 'text' while the other one is in the form '__text__'. TODO:
4943 If we were storing attributes in normalized 'text' form, then
4944 this could all go away and we could take full advantage of
4945 the fact that we're comparing identifiers. :-) */
4946 const size_t attr1_len
= IDENTIFIER_LENGTH (attr1
);
4947 const size_t attr2_len
= IDENTIFIER_LENGTH (attr2
);
4949 if (attr2_len
== attr1_len
+ 4)
4951 const char *p
= IDENTIFIER_POINTER (attr2
);
4952 const char *q
= IDENTIFIER_POINTER (attr1
);
4953 if (p
[0] == '_' && p
[1] == '_'
4954 && p
[attr2_len
- 2] == '_' && p
[attr2_len
- 1] == '_'
4955 && strncmp (q
, p
+ 2, attr1_len
) == 0)
4958 else if (attr2_len
+ 4 == attr1_len
)
4960 const char *p
= IDENTIFIER_POINTER (attr2
);
4961 const char *q
= IDENTIFIER_POINTER (attr1
);
4962 if (q
[0] == '_' && q
[1] == '_'
4963 && q
[attr1_len
- 2] == '_' && q
[attr1_len
- 1] == '_'
4964 && strncmp (q
+ 2, p
, attr2_len
) == 0)
4971 /* Compare two attributes for their value identity. Return true if the
4972 attribute values are known to be equal; otherwise return false. */
4975 attribute_value_equal (const_tree attr1
, const_tree attr2
)
4977 if (TREE_VALUE (attr1
) == TREE_VALUE (attr2
))
4980 if (TREE_VALUE (attr1
) != NULL_TREE
4981 && TREE_CODE (TREE_VALUE (attr1
)) == TREE_LIST
4982 && TREE_VALUE (attr2
) != NULL_TREE
4983 && TREE_CODE (TREE_VALUE (attr2
)) == TREE_LIST
)
4985 /* Handle attribute format. */
4986 if (is_attribute_p ("format", TREE_PURPOSE (attr1
)))
4988 attr1
= TREE_VALUE (attr1
);
4989 attr2
= TREE_VALUE (attr2
);
4990 /* Compare the archetypes (printf/scanf/strftime/...). */
4991 if (!cmp_attrib_identifiers (TREE_VALUE (attr1
),
4992 TREE_VALUE (attr2
)))
4994 /* Archetypes are the same. Compare the rest. */
4995 return (simple_cst_list_equal (TREE_CHAIN (attr1
),
4996 TREE_CHAIN (attr2
)) == 1);
4998 return (simple_cst_list_equal (TREE_VALUE (attr1
),
4999 TREE_VALUE (attr2
)) == 1);
5002 if ((flag_openmp
|| flag_openmp_simd
)
5003 && TREE_VALUE (attr1
) && TREE_VALUE (attr2
)
5004 && TREE_CODE (TREE_VALUE (attr1
)) == OMP_CLAUSE
5005 && TREE_CODE (TREE_VALUE (attr2
)) == OMP_CLAUSE
)
5006 return omp_declare_simd_clauses_equal (TREE_VALUE (attr1
),
5007 TREE_VALUE (attr2
));
5009 return (simple_cst_equal (TREE_VALUE (attr1
), TREE_VALUE (attr2
)) == 1);
5012 /* Return 0 if the attributes for two types are incompatible, 1 if they
5013 are compatible, and 2 if they are nearly compatible (which causes a
5014 warning to be generated). */
5016 comp_type_attributes (const_tree type1
, const_tree type2
)
5018 const_tree a1
= TYPE_ATTRIBUTES (type1
);
5019 const_tree a2
= TYPE_ATTRIBUTES (type2
);
5024 for (a
= a1
; a
!= NULL_TREE
; a
= TREE_CHAIN (a
))
5026 const struct attribute_spec
*as
;
5029 as
= lookup_attribute_spec (get_attribute_name (a
));
5030 if (!as
|| as
->affects_type_identity
== false)
5033 attr
= lookup_attribute (as
->name
, CONST_CAST_TREE (a2
));
5034 if (!attr
|| !attribute_value_equal (a
, attr
))
5039 for (a
= a2
; a
!= NULL_TREE
; a
= TREE_CHAIN (a
))
5041 const struct attribute_spec
*as
;
5043 as
= lookup_attribute_spec (get_attribute_name (a
));
5044 if (!as
|| as
->affects_type_identity
== false)
5047 if (!lookup_attribute (as
->name
, CONST_CAST_TREE (a1
)))
5049 /* We don't need to compare trees again, as we did this
5050 already in first loop. */
5052 /* All types - affecting identity - are equal, so
5053 there is no need to call target hook for comparison. */
5057 if (lookup_attribute ("transaction_safe", CONST_CAST_TREE (a
)))
5059 /* As some type combinations - like default calling-convention - might
5060 be compatible, we have to call the target hook to get the final result. */
5061 return targetm
.comp_type_attributes (type1
, type2
);
5064 /* Return a type like TTYPE except that its TYPE_ATTRIBUTE
5067 Record such modified types already made so we don't make duplicates. */
5070 build_type_attribute_variant (tree ttype
, tree attribute
)
5072 return build_type_attribute_qual_variant (ttype
, attribute
,
5073 TYPE_QUALS (ttype
));
5077 /* Reset the expression *EXPR_P, a size or position.
5079 ??? We could reset all non-constant sizes or positions. But it's cheap
5080 enough to not do so and refrain from adding workarounds to dwarf2out.c.
5082 We need to reset self-referential sizes or positions because they cannot
5083 be gimplified and thus can contain a CALL_EXPR after the gimplification
5084 is finished, which will run afoul of LTO streaming. And they need to be
5085 reset to something essentially dummy but not constant, so as to preserve
5086 the properties of the object they are attached to. */
5089 free_lang_data_in_one_sizepos (tree
*expr_p
)
5091 tree expr
= *expr_p
;
5092 if (CONTAINS_PLACEHOLDER_P (expr
))
5093 *expr_p
= build0 (PLACEHOLDER_EXPR
, TREE_TYPE (expr
));
5097 /* Reset all the fields in a binfo node BINFO. We only keep
5098 BINFO_VTABLE, which is used by gimple_fold_obj_type_ref. */
5101 free_lang_data_in_binfo (tree binfo
)
5106 gcc_assert (TREE_CODE (binfo
) == TREE_BINFO
);
5108 BINFO_VIRTUALS (binfo
) = NULL_TREE
;
5109 BINFO_BASE_ACCESSES (binfo
) = NULL
;
5110 BINFO_INHERITANCE_CHAIN (binfo
) = NULL_TREE
;
5111 BINFO_SUBVTT_INDEX (binfo
) = NULL_TREE
;
5113 FOR_EACH_VEC_ELT (*BINFO_BASE_BINFOS (binfo
), i
, t
)
5114 free_lang_data_in_binfo (t
);
5118 /* Reset all language specific information still present in TYPE. */
5121 free_lang_data_in_type (tree type
)
5123 gcc_assert (TYPE_P (type
));
5125 /* Give the FE a chance to remove its own data first. */
5126 lang_hooks
.free_lang_data (type
);
5128 TREE_LANG_FLAG_0 (type
) = 0;
5129 TREE_LANG_FLAG_1 (type
) = 0;
5130 TREE_LANG_FLAG_2 (type
) = 0;
5131 TREE_LANG_FLAG_3 (type
) = 0;
5132 TREE_LANG_FLAG_4 (type
) = 0;
5133 TREE_LANG_FLAG_5 (type
) = 0;
5134 TREE_LANG_FLAG_6 (type
) = 0;
5136 if (TREE_CODE (type
) == FUNCTION_TYPE
)
5138 /* Remove the const and volatile qualifiers from arguments. The
5139 C++ front end removes them, but the C front end does not,
5140 leading to false ODR violation errors when merging two
5141 instances of the same function signature compiled by
5142 different front ends. */
5145 for (p
= TYPE_ARG_TYPES (type
); p
; p
= TREE_CHAIN (p
))
5147 tree arg_type
= TREE_VALUE (p
);
5149 if (TYPE_READONLY (arg_type
) || TYPE_VOLATILE (arg_type
))
5151 int quals
= TYPE_QUALS (arg_type
)
5153 & ~TYPE_QUAL_VOLATILE
;
5154 TREE_VALUE (p
) = build_qualified_type (arg_type
, quals
);
5155 free_lang_data_in_type (TREE_VALUE (p
));
5157 /* C++ FE uses TREE_PURPOSE to store initial values. */
5158 TREE_PURPOSE (p
) = NULL
;
5160 /* Java uses TYPE_MINVAL for TYPE_ARGUMENT_SIGNATURE. */
5161 TYPE_MINVAL (type
) = NULL
;
5163 if (TREE_CODE (type
) == METHOD_TYPE
)
5167 for (p
= TYPE_ARG_TYPES (type
); p
; p
= TREE_CHAIN (p
))
5169 /* C++ FE uses TREE_PURPOSE to store initial values. */
5170 TREE_PURPOSE (p
) = NULL
;
5172 /* Java uses TYPE_MINVAL for TYPE_ARGUMENT_SIGNATURE. */
5173 TYPE_MINVAL (type
) = NULL
;
5176 /* Remove members that are not actually FIELD_DECLs from the field
5177 list of an aggregate. These occur in C++. */
5178 if (RECORD_OR_UNION_TYPE_P (type
))
5182 /* Note that TYPE_FIELDS can be shared across distinct
5183 TREE_TYPEs. Therefore, if the first field of TYPE_FIELDS is
5184 to be removed, we cannot set its TREE_CHAIN to NULL.
5185 Otherwise, we would not be able to find all the other fields
5186 in the other instances of this TREE_TYPE.
5188 This was causing an ICE in testsuite/g++.dg/lto/20080915.C. */
5190 member
= TYPE_FIELDS (type
);
5193 if (TREE_CODE (member
) == FIELD_DECL
5194 || (TREE_CODE (member
) == TYPE_DECL
5195 && !DECL_IGNORED_P (member
)
5196 && debug_info_level
> DINFO_LEVEL_TERSE
5197 && !is_redundant_typedef (member
)))
5200 TREE_CHAIN (prev
) = member
;
5202 TYPE_FIELDS (type
) = member
;
5206 member
= TREE_CHAIN (member
);
5210 TREE_CHAIN (prev
) = NULL_TREE
;
5212 TYPE_FIELDS (type
) = NULL_TREE
;
5214 /* FIXME: C FE uses TYPE_VFIELD to record C_TYPE_INCOMPLETE_VARS
5215 and danagle the pointer from time to time. */
5216 if (TYPE_VFIELD (type
) && TREE_CODE (TYPE_VFIELD (type
)) != FIELD_DECL
)
5217 TYPE_VFIELD (type
) = NULL_TREE
;
5219 /* Remove TYPE_METHODS list. While it would be nice to keep it
5220 to enable ODR warnings about different method lists, doing so
5221 seems to impractically increase size of LTO data streamed.
5222 Keep the information if TYPE_METHODS was non-NULL. This is used
5223 by function.c and pretty printers. */
5224 if (TYPE_METHODS (type
))
5225 TYPE_METHODS (type
) = error_mark_node
;
5226 if (TYPE_BINFO (type
))
5228 free_lang_data_in_binfo (TYPE_BINFO (type
));
5229 /* We need to preserve link to bases and virtual table for all
5230 polymorphic types to make devirtualization machinery working.
5231 Debug output cares only about bases, but output also
5232 virtual table pointers so merging of -fdevirtualize and
5233 -fno-devirtualize units is easier. */
5234 if ((!BINFO_VTABLE (TYPE_BINFO (type
))
5235 || !flag_devirtualize
)
5236 && ((!BINFO_N_BASE_BINFOS (TYPE_BINFO (type
))
5237 && !BINFO_VTABLE (TYPE_BINFO (type
)))
5238 || debug_info_level
!= DINFO_LEVEL_NONE
))
5239 TYPE_BINFO (type
) = NULL
;
5244 /* For non-aggregate types, clear out the language slot (which
5245 overloads TYPE_BINFO). */
5246 TYPE_LANG_SLOT_1 (type
) = NULL_TREE
;
5248 if (INTEGRAL_TYPE_P (type
)
5249 || SCALAR_FLOAT_TYPE_P (type
)
5250 || FIXED_POINT_TYPE_P (type
))
5252 free_lang_data_in_one_sizepos (&TYPE_MIN_VALUE (type
));
5253 free_lang_data_in_one_sizepos (&TYPE_MAX_VALUE (type
));
5257 free_lang_data_in_one_sizepos (&TYPE_SIZE (type
));
5258 free_lang_data_in_one_sizepos (&TYPE_SIZE_UNIT (type
));
5260 if (TYPE_CONTEXT (type
)
5261 && TREE_CODE (TYPE_CONTEXT (type
)) == BLOCK
)
5263 tree ctx
= TYPE_CONTEXT (type
);
5266 ctx
= BLOCK_SUPERCONTEXT (ctx
);
5268 while (ctx
&& TREE_CODE (ctx
) == BLOCK
);
5269 TYPE_CONTEXT (type
) = ctx
;
5274 /* Return true if DECL may need an assembler name to be set. */
5277 need_assembler_name_p (tree decl
)
5279 /* We use DECL_ASSEMBLER_NAME to hold mangled type names for One Definition
5280 Rule merging. This makes type_odr_p to return true on those types during
5281 LTO and by comparing the mangled name, we can say what types are intended
5282 to be equivalent across compilation unit.
5284 We do not store names of type_in_anonymous_namespace_p.
5286 Record, union and enumeration type have linkage that allows use
5287 to check type_in_anonymous_namespace_p. We do not mangle compound types
5288 that always can be compared structurally.
5290 Similarly for builtin types, we compare properties of their main variant.
5291 A special case are integer types where mangling do make differences
5292 between char/signed char/unsigned char etc. Storing name for these makes
5293 e.g. -fno-signed-char/-fsigned-char mismatches to be handled well.
5294 See cp/mangle.c:write_builtin_type for details. */
5296 if (flag_lto_odr_type_mering
5297 && TREE_CODE (decl
) == TYPE_DECL
5299 && decl
== TYPE_NAME (TREE_TYPE (decl
))
5300 && !TYPE_ARTIFICIAL (TREE_TYPE (decl
))
5301 && (type_with_linkage_p (TREE_TYPE (decl
))
5302 || TREE_CODE (TREE_TYPE (decl
)) == INTEGER_TYPE
)
5303 && !variably_modified_type_p (TREE_TYPE (decl
), NULL_TREE
))
5304 return !DECL_ASSEMBLER_NAME_SET_P (decl
);
5305 /* Only FUNCTION_DECLs and VAR_DECLs are considered. */
5306 if (TREE_CODE (decl
) != FUNCTION_DECL
5307 && TREE_CODE (decl
) != VAR_DECL
)
5310 /* If DECL already has its assembler name set, it does not need a
5312 if (!HAS_DECL_ASSEMBLER_NAME_P (decl
)
5313 || DECL_ASSEMBLER_NAME_SET_P (decl
))
5316 /* Abstract decls do not need an assembler name. */
5317 if (DECL_ABSTRACT_P (decl
))
5320 /* For VAR_DECLs, only static, public and external symbols need an
5322 if (TREE_CODE (decl
) == VAR_DECL
5323 && !TREE_STATIC (decl
)
5324 && !TREE_PUBLIC (decl
)
5325 && !DECL_EXTERNAL (decl
))
5328 if (TREE_CODE (decl
) == FUNCTION_DECL
)
5330 /* Do not set assembler name on builtins. Allow RTL expansion to
5331 decide whether to expand inline or via a regular call. */
5332 if (DECL_BUILT_IN (decl
)
5333 && DECL_BUILT_IN_CLASS (decl
) != BUILT_IN_FRONTEND
)
5336 /* Functions represented in the callgraph need an assembler name. */
5337 if (cgraph_node::get (decl
) != NULL
)
5340 /* Unused and not public functions don't need an assembler name. */
5341 if (!TREE_USED (decl
) && !TREE_PUBLIC (decl
))
5349 /* Reset all language specific information still present in symbol
5353 free_lang_data_in_decl (tree decl
)
5355 gcc_assert (DECL_P (decl
));
5357 /* Give the FE a chance to remove its own data first. */
5358 lang_hooks
.free_lang_data (decl
);
5360 TREE_LANG_FLAG_0 (decl
) = 0;
5361 TREE_LANG_FLAG_1 (decl
) = 0;
5362 TREE_LANG_FLAG_2 (decl
) = 0;
5363 TREE_LANG_FLAG_3 (decl
) = 0;
5364 TREE_LANG_FLAG_4 (decl
) = 0;
5365 TREE_LANG_FLAG_5 (decl
) = 0;
5366 TREE_LANG_FLAG_6 (decl
) = 0;
5368 free_lang_data_in_one_sizepos (&DECL_SIZE (decl
));
5369 free_lang_data_in_one_sizepos (&DECL_SIZE_UNIT (decl
));
5370 if (TREE_CODE (decl
) == FIELD_DECL
)
5372 free_lang_data_in_one_sizepos (&DECL_FIELD_OFFSET (decl
));
5373 if (TREE_CODE (DECL_CONTEXT (decl
)) == QUAL_UNION_TYPE
)
5374 DECL_QUALIFIER (decl
) = NULL_TREE
;
5377 if (TREE_CODE (decl
) == FUNCTION_DECL
)
5379 struct cgraph_node
*node
;
5380 if (!(node
= cgraph_node::get (decl
))
5381 || (!node
->definition
&& !node
->clones
))
5384 node
->release_body ();
5387 release_function_body (decl
);
5388 DECL_ARGUMENTS (decl
) = NULL
;
5389 DECL_RESULT (decl
) = NULL
;
5390 DECL_INITIAL (decl
) = error_mark_node
;
5393 if (gimple_has_body_p (decl
))
5397 /* If DECL has a gimple body, then the context for its
5398 arguments must be DECL. Otherwise, it doesn't really
5399 matter, as we will not be emitting any code for DECL. In
5400 general, there may be other instances of DECL created by
5401 the front end and since PARM_DECLs are generally shared,
5402 their DECL_CONTEXT changes as the replicas of DECL are
5403 created. The only time where DECL_CONTEXT is important
5404 is for the FUNCTION_DECLs that have a gimple body (since
5405 the PARM_DECL will be used in the function's body). */
5406 for (t
= DECL_ARGUMENTS (decl
); t
; t
= TREE_CHAIN (t
))
5407 DECL_CONTEXT (t
) = decl
;
5408 if (!DECL_FUNCTION_SPECIFIC_TARGET (decl
))
5409 DECL_FUNCTION_SPECIFIC_TARGET (decl
)
5410 = target_option_default_node
;
5411 if (!DECL_FUNCTION_SPECIFIC_OPTIMIZATION (decl
))
5412 DECL_FUNCTION_SPECIFIC_OPTIMIZATION (decl
)
5413 = optimization_default_node
;
5416 /* DECL_SAVED_TREE holds the GENERIC representation for DECL.
5417 At this point, it is not needed anymore. */
5418 DECL_SAVED_TREE (decl
) = NULL_TREE
;
5420 /* Clear the abstract origin if it refers to a method. Otherwise
5421 dwarf2out.c will ICE as we clear TYPE_METHODS and thus the
5422 origin will not be output correctly. */
5423 if (DECL_ABSTRACT_ORIGIN (decl
)
5424 && DECL_CONTEXT (DECL_ABSTRACT_ORIGIN (decl
))
5425 && RECORD_OR_UNION_TYPE_P
5426 (DECL_CONTEXT (DECL_ABSTRACT_ORIGIN (decl
))))
5427 DECL_ABSTRACT_ORIGIN (decl
) = NULL_TREE
;
5429 /* Sometimes the C++ frontend doesn't manage to transform a temporary
5430 DECL_VINDEX referring to itself into a vtable slot number as it
5431 should. Happens with functions that are copied and then forgotten
5432 about. Just clear it, it won't matter anymore. */
5433 if (DECL_VINDEX (decl
) && !tree_fits_shwi_p (DECL_VINDEX (decl
)))
5434 DECL_VINDEX (decl
) = NULL_TREE
;
5436 else if (TREE_CODE (decl
) == VAR_DECL
)
5438 if ((DECL_EXTERNAL (decl
)
5439 && (!TREE_STATIC (decl
) || !TREE_READONLY (decl
)))
5440 || (decl_function_context (decl
) && !TREE_STATIC (decl
)))
5441 DECL_INITIAL (decl
) = NULL_TREE
;
5443 else if (TREE_CODE (decl
) == TYPE_DECL
5444 || TREE_CODE (decl
) == FIELD_DECL
)
5445 DECL_INITIAL (decl
) = NULL_TREE
;
5446 else if (TREE_CODE (decl
) == TRANSLATION_UNIT_DECL
5447 && DECL_INITIAL (decl
)
5448 && TREE_CODE (DECL_INITIAL (decl
)) == BLOCK
)
5450 /* Strip builtins from the translation-unit BLOCK. We still have targets
5451 without builtin_decl_explicit support and also builtins are shared
5452 nodes and thus we can't use TREE_CHAIN in multiple lists. */
5453 tree
*nextp
= &BLOCK_VARS (DECL_INITIAL (decl
));
5457 if (TREE_CODE (var
) == FUNCTION_DECL
5458 && DECL_BUILT_IN (var
))
5459 *nextp
= TREE_CHAIN (var
);
5461 nextp
= &TREE_CHAIN (var
);
5467 /* Data used when collecting DECLs and TYPEs for language data removal. */
5469 struct free_lang_data_d
5471 /* Worklist to avoid excessive recursion. */
5474 /* Set of traversed objects. Used to avoid duplicate visits. */
5475 hash_set
<tree
> *pset
;
5477 /* Array of symbols to process with free_lang_data_in_decl. */
5480 /* Array of types to process with free_lang_data_in_type. */
5485 /* Save all language fields needed to generate proper debug information
5486 for DECL. This saves most fields cleared out by free_lang_data_in_decl. */
5489 save_debug_info_for_decl (tree t
)
5491 /*struct saved_debug_info_d *sdi;*/
5493 gcc_assert (debug_info_level
> DINFO_LEVEL_TERSE
&& t
&& DECL_P (t
));
5495 /* FIXME. Partial implementation for saving debug info removed. */
5499 /* Save all language fields needed to generate proper debug information
5500 for TYPE. This saves most fields cleared out by free_lang_data_in_type. */
5503 save_debug_info_for_type (tree t
)
5505 /*struct saved_debug_info_d *sdi;*/
5507 gcc_assert (debug_info_level
> DINFO_LEVEL_TERSE
&& t
&& TYPE_P (t
));
5509 /* FIXME. Partial implementation for saving debug info removed. */
5513 /* Add type or decl T to one of the list of tree nodes that need their
5514 language data removed. The lists are held inside FLD. */
5517 add_tree_to_fld_list (tree t
, struct free_lang_data_d
*fld
)
5521 fld
->decls
.safe_push (t
);
5522 if (debug_info_level
> DINFO_LEVEL_TERSE
)
5523 save_debug_info_for_decl (t
);
5525 else if (TYPE_P (t
))
5527 fld
->types
.safe_push (t
);
5528 if (debug_info_level
> DINFO_LEVEL_TERSE
)
5529 save_debug_info_for_type (t
);
5535 /* Push tree node T into FLD->WORKLIST. */
5538 fld_worklist_push (tree t
, struct free_lang_data_d
*fld
)
5540 if (t
&& !is_lang_specific (t
) && !fld
->pset
->contains (t
))
5541 fld
->worklist
.safe_push ((t
));
5545 /* Operand callback helper for free_lang_data_in_node. *TP is the
5546 subtree operand being considered. */
5549 find_decls_types_r (tree
*tp
, int *ws
, void *data
)
5552 struct free_lang_data_d
*fld
= (struct free_lang_data_d
*) data
;
5554 if (TREE_CODE (t
) == TREE_LIST
)
5557 /* Language specific nodes will be removed, so there is no need
5558 to gather anything under them. */
5559 if (is_lang_specific (t
))
5567 /* Note that walk_tree does not traverse every possible field in
5568 decls, so we have to do our own traversals here. */
5569 add_tree_to_fld_list (t
, fld
);
5571 fld_worklist_push (DECL_NAME (t
), fld
);
5572 fld_worklist_push (DECL_CONTEXT (t
), fld
);
5573 fld_worklist_push (DECL_SIZE (t
), fld
);
5574 fld_worklist_push (DECL_SIZE_UNIT (t
), fld
);
5576 /* We are going to remove everything under DECL_INITIAL for
5577 TYPE_DECLs. No point walking them. */
5578 if (TREE_CODE (t
) != TYPE_DECL
)
5579 fld_worklist_push (DECL_INITIAL (t
), fld
);
5581 fld_worklist_push (DECL_ATTRIBUTES (t
), fld
);
5582 fld_worklist_push (DECL_ABSTRACT_ORIGIN (t
), fld
);
5584 if (TREE_CODE (t
) == FUNCTION_DECL
)
5586 fld_worklist_push (DECL_ARGUMENTS (t
), fld
);
5587 fld_worklist_push (DECL_RESULT (t
), fld
);
5589 else if (TREE_CODE (t
) == TYPE_DECL
)
5591 fld_worklist_push (DECL_ORIGINAL_TYPE (t
), fld
);
5593 else if (TREE_CODE (t
) == FIELD_DECL
)
5595 fld_worklist_push (DECL_FIELD_OFFSET (t
), fld
);
5596 fld_worklist_push (DECL_BIT_FIELD_TYPE (t
), fld
);
5597 fld_worklist_push (DECL_FIELD_BIT_OFFSET (t
), fld
);
5598 fld_worklist_push (DECL_FCONTEXT (t
), fld
);
5601 if ((TREE_CODE (t
) == VAR_DECL
|| TREE_CODE (t
) == PARM_DECL
)
5602 && DECL_HAS_VALUE_EXPR_P (t
))
5603 fld_worklist_push (DECL_VALUE_EXPR (t
), fld
);
5605 if (TREE_CODE (t
) != FIELD_DECL
5606 && TREE_CODE (t
) != TYPE_DECL
)
5607 fld_worklist_push (TREE_CHAIN (t
), fld
);
5610 else if (TYPE_P (t
))
5612 /* Note that walk_tree does not traverse every possible field in
5613 types, so we have to do our own traversals here. */
5614 add_tree_to_fld_list (t
, fld
);
5616 if (!RECORD_OR_UNION_TYPE_P (t
))
5617 fld_worklist_push (TYPE_CACHED_VALUES (t
), fld
);
5618 fld_worklist_push (TYPE_SIZE (t
), fld
);
5619 fld_worklist_push (TYPE_SIZE_UNIT (t
), fld
);
5620 fld_worklist_push (TYPE_ATTRIBUTES (t
), fld
);
5621 fld_worklist_push (TYPE_POINTER_TO (t
), fld
);
5622 fld_worklist_push (TYPE_REFERENCE_TO (t
), fld
);
5623 fld_worklist_push (TYPE_NAME (t
), fld
);
5624 /* Do not walk TYPE_NEXT_PTR_TO or TYPE_NEXT_REF_TO. We do not stream
5625 them and thus do not and want not to reach unused pointer types
5627 if (!POINTER_TYPE_P (t
))
5628 fld_worklist_push (TYPE_MINVAL (t
), fld
);
5629 if (!RECORD_OR_UNION_TYPE_P (t
))
5630 fld_worklist_push (TYPE_MAXVAL (t
), fld
);
5631 fld_worklist_push (TYPE_MAIN_VARIANT (t
), fld
);
5632 /* Do not walk TYPE_NEXT_VARIANT. We do not stream it and thus
5633 do not and want not to reach unused variants this way. */
5634 if (TYPE_CONTEXT (t
))
5636 tree ctx
= TYPE_CONTEXT (t
);
5637 /* We adjust BLOCK TYPE_CONTEXTs to the innermost non-BLOCK one.
5638 So push that instead. */
5639 while (ctx
&& TREE_CODE (ctx
) == BLOCK
)
5640 ctx
= BLOCK_SUPERCONTEXT (ctx
);
5641 fld_worklist_push (ctx
, fld
);
5643 /* Do not walk TYPE_CANONICAL. We do not stream it and thus do not
5644 and want not to reach unused types this way. */
5646 if (RECORD_OR_UNION_TYPE_P (t
) && TYPE_BINFO (t
))
5650 FOR_EACH_VEC_ELT (*BINFO_BASE_BINFOS (TYPE_BINFO (t
)), i
, tem
)
5651 fld_worklist_push (TREE_TYPE (tem
), fld
);
5652 tem
= BINFO_VIRTUALS (TYPE_BINFO (t
));
5654 /* The Java FE overloads BINFO_VIRTUALS for its own purpose. */
5655 && TREE_CODE (tem
) == TREE_LIST
)
5658 fld_worklist_push (TREE_VALUE (tem
), fld
);
5659 tem
= TREE_CHAIN (tem
);
5663 if (RECORD_OR_UNION_TYPE_P (t
))
5666 /* Push all TYPE_FIELDS - there can be interleaving interesting
5667 and non-interesting things. */
5668 tem
= TYPE_FIELDS (t
);
5671 if (TREE_CODE (tem
) == FIELD_DECL
5672 || (TREE_CODE (tem
) == TYPE_DECL
5673 && !DECL_IGNORED_P (tem
)
5674 && debug_info_level
> DINFO_LEVEL_TERSE
5675 && !is_redundant_typedef (tem
)))
5676 fld_worklist_push (tem
, fld
);
5677 tem
= TREE_CHAIN (tem
);
5681 fld_worklist_push (TYPE_STUB_DECL (t
), fld
);
5684 else if (TREE_CODE (t
) == BLOCK
)
5687 for (tem
= BLOCK_VARS (t
); tem
; tem
= TREE_CHAIN (tem
))
5688 fld_worklist_push (tem
, fld
);
5689 for (tem
= BLOCK_SUBBLOCKS (t
); tem
; tem
= BLOCK_CHAIN (tem
))
5690 fld_worklist_push (tem
, fld
);
5691 fld_worklist_push (BLOCK_ABSTRACT_ORIGIN (t
), fld
);
5694 if (TREE_CODE (t
) != IDENTIFIER_NODE
5695 && CODE_CONTAINS_STRUCT (TREE_CODE (t
), TS_TYPED
))
5696 fld_worklist_push (TREE_TYPE (t
), fld
);
5702 /* Find decls and types in T. */
5705 find_decls_types (tree t
, struct free_lang_data_d
*fld
)
5709 if (!fld
->pset
->contains (t
))
5710 walk_tree (&t
, find_decls_types_r
, fld
, fld
->pset
);
5711 if (fld
->worklist
.is_empty ())
5713 t
= fld
->worklist
.pop ();
5717 /* Translate all the types in LIST with the corresponding runtime
5721 get_eh_types_for_runtime (tree list
)
5725 if (list
== NULL_TREE
)
5728 head
= build_tree_list (0, lookup_type_for_runtime (TREE_VALUE (list
)));
5730 list
= TREE_CHAIN (list
);
5733 tree n
= build_tree_list (0, lookup_type_for_runtime (TREE_VALUE (list
)));
5734 TREE_CHAIN (prev
) = n
;
5735 prev
= TREE_CHAIN (prev
);
5736 list
= TREE_CHAIN (list
);
5743 /* Find decls and types referenced in EH region R and store them in
5744 FLD->DECLS and FLD->TYPES. */
5747 find_decls_types_in_eh_region (eh_region r
, struct free_lang_data_d
*fld
)
5758 /* The types referenced in each catch must first be changed to the
5759 EH types used at runtime. This removes references to FE types
5761 for (c
= r
->u
.eh_try
.first_catch
; c
; c
= c
->next_catch
)
5763 c
->type_list
= get_eh_types_for_runtime (c
->type_list
);
5764 walk_tree (&c
->type_list
, find_decls_types_r
, fld
, fld
->pset
);
5769 case ERT_ALLOWED_EXCEPTIONS
:
5770 r
->u
.allowed
.type_list
5771 = get_eh_types_for_runtime (r
->u
.allowed
.type_list
);
5772 walk_tree (&r
->u
.allowed
.type_list
, find_decls_types_r
, fld
, fld
->pset
);
5775 case ERT_MUST_NOT_THROW
:
5776 walk_tree (&r
->u
.must_not_throw
.failure_decl
,
5777 find_decls_types_r
, fld
, fld
->pset
);
5783 /* Find decls and types referenced in cgraph node N and store them in
5784 FLD->DECLS and FLD->TYPES. Unlike pass_referenced_vars, this will
5785 look for *every* kind of DECL and TYPE node reachable from N,
5786 including those embedded inside types and decls (i.e,, TYPE_DECLs,
5787 NAMESPACE_DECLs, etc). */
5790 find_decls_types_in_node (struct cgraph_node
*n
, struct free_lang_data_d
*fld
)
5793 struct function
*fn
;
5797 find_decls_types (n
->decl
, fld
);
5799 if (!gimple_has_body_p (n
->decl
))
5802 gcc_assert (current_function_decl
== NULL_TREE
&& cfun
== NULL
);
5804 fn
= DECL_STRUCT_FUNCTION (n
->decl
);
5806 /* Traverse locals. */
5807 FOR_EACH_LOCAL_DECL (fn
, ix
, t
)
5808 find_decls_types (t
, fld
);
5810 /* Traverse EH regions in FN. */
5813 FOR_ALL_EH_REGION_FN (r
, fn
)
5814 find_decls_types_in_eh_region (r
, fld
);
5817 /* Traverse every statement in FN. */
5818 FOR_EACH_BB_FN (bb
, fn
)
5821 gimple_stmt_iterator si
;
5824 for (psi
= gsi_start_phis (bb
); !gsi_end_p (psi
); gsi_next (&psi
))
5826 gphi
*phi
= psi
.phi ();
5828 for (i
= 0; i
< gimple_phi_num_args (phi
); i
++)
5830 tree
*arg_p
= gimple_phi_arg_def_ptr (phi
, i
);
5831 find_decls_types (*arg_p
, fld
);
5835 for (si
= gsi_start_bb (bb
); !gsi_end_p (si
); gsi_next (&si
))
5837 gimple
*stmt
= gsi_stmt (si
);
5839 if (is_gimple_call (stmt
))
5840 find_decls_types (gimple_call_fntype (stmt
), fld
);
5842 for (i
= 0; i
< gimple_num_ops (stmt
); i
++)
5844 tree arg
= gimple_op (stmt
, i
);
5845 find_decls_types (arg
, fld
);
5852 /* Find decls and types referenced in varpool node N and store them in
5853 FLD->DECLS and FLD->TYPES. Unlike pass_referenced_vars, this will
5854 look for *every* kind of DECL and TYPE node reachable from N,
5855 including those embedded inside types and decls (i.e,, TYPE_DECLs,
5856 NAMESPACE_DECLs, etc). */
5859 find_decls_types_in_var (varpool_node
*v
, struct free_lang_data_d
*fld
)
5861 find_decls_types (v
->decl
, fld
);
5864 /* If T needs an assembler name, have one created for it. */
5867 assign_assembler_name_if_neeeded (tree t
)
5869 if (need_assembler_name_p (t
))
5871 /* When setting DECL_ASSEMBLER_NAME, the C++ mangler may emit
5872 diagnostics that use input_location to show locus
5873 information. The problem here is that, at this point,
5874 input_location is generally anchored to the end of the file
5875 (since the parser is long gone), so we don't have a good
5876 position to pin it to.
5878 To alleviate this problem, this uses the location of T's
5879 declaration. Examples of this are
5880 testsuite/g++.dg/template/cond2.C and
5881 testsuite/g++.dg/template/pr35240.C. */
5882 location_t saved_location
= input_location
;
5883 input_location
= DECL_SOURCE_LOCATION (t
);
5885 decl_assembler_name (t
);
5887 input_location
= saved_location
;
5892 /* Free language specific information for every operand and expression
5893 in every node of the call graph. This process operates in three stages:
5895 1- Every callgraph node and varpool node is traversed looking for
5896 decls and types embedded in them. This is a more exhaustive
5897 search than that done by find_referenced_vars, because it will
5898 also collect individual fields, decls embedded in types, etc.
5900 2- All the decls found are sent to free_lang_data_in_decl.
5902 3- All the types found are sent to free_lang_data_in_type.
5904 The ordering between decls and types is important because
5905 free_lang_data_in_decl sets assembler names, which includes
5906 mangling. So types cannot be freed up until assembler names have
5910 free_lang_data_in_cgraph (void)
5912 struct cgraph_node
*n
;
5914 struct free_lang_data_d fld
;
5919 /* Initialize sets and arrays to store referenced decls and types. */
5920 fld
.pset
= new hash_set
<tree
>;
5921 fld
.worklist
.create (0);
5922 fld
.decls
.create (100);
5923 fld
.types
.create (100);
5925 /* Find decls and types in the body of every function in the callgraph. */
5926 FOR_EACH_FUNCTION (n
)
5927 find_decls_types_in_node (n
, &fld
);
5929 FOR_EACH_VEC_SAFE_ELT (alias_pairs
, i
, p
)
5930 find_decls_types (p
->decl
, &fld
);
5932 /* Find decls and types in every varpool symbol. */
5933 FOR_EACH_VARIABLE (v
)
5934 find_decls_types_in_var (v
, &fld
);
5936 /* Set the assembler name on every decl found. We need to do this
5937 now because free_lang_data_in_decl will invalidate data needed
5938 for mangling. This breaks mangling on interdependent decls. */
5939 FOR_EACH_VEC_ELT (fld
.decls
, i
, t
)
5940 assign_assembler_name_if_neeeded (t
);
5942 /* Traverse every decl found freeing its language data. */
5943 FOR_EACH_VEC_ELT (fld
.decls
, i
, t
)
5944 free_lang_data_in_decl (t
);
5946 /* Traverse every type found freeing its language data. */
5947 FOR_EACH_VEC_ELT (fld
.types
, i
, t
)
5948 free_lang_data_in_type (t
);
5951 FOR_EACH_VEC_ELT (fld
.types
, i
, t
)
5956 fld
.worklist
.release ();
5957 fld
.decls
.release ();
5958 fld
.types
.release ();
5962 /* Free resources that are used by FE but are not needed once they are done. */
5965 free_lang_data (void)
5969 /* If we are the LTO frontend we have freed lang-specific data already. */
5971 || (!flag_generate_lto
&& !flag_generate_offload
))
5974 /* Allocate and assign alias sets to the standard integer types
5975 while the slots are still in the way the frontends generated them. */
5976 for (i
= 0; i
< itk_none
; ++i
)
5977 if (integer_types
[i
])
5978 TYPE_ALIAS_SET (integer_types
[i
]) = get_alias_set (integer_types
[i
]);
5980 /* Traverse the IL resetting language specific information for
5981 operands, expressions, etc. */
5982 free_lang_data_in_cgraph ();
5984 /* Create gimple variants for common types. */
5985 ptrdiff_type_node
= integer_type_node
;
5986 fileptr_type_node
= ptr_type_node
;
5988 /* Reset some langhooks. Do not reset types_compatible_p, it may
5989 still be used indirectly via the get_alias_set langhook. */
5990 lang_hooks
.dwarf_name
= lhd_dwarf_name
;
5991 lang_hooks
.decl_printable_name
= gimple_decl_printable_name
;
5992 lang_hooks
.gimplify_expr
= lhd_gimplify_expr
;
5994 /* We do not want the default decl_assembler_name implementation,
5995 rather if we have fixed everything we want a wrapper around it
5996 asserting that all non-local symbols already got their assembler
5997 name and only produce assembler names for local symbols. Or rather
5998 make sure we never call decl_assembler_name on local symbols and
5999 devise a separate, middle-end private scheme for it. */
6001 /* Reset diagnostic machinery. */
6002 tree_diagnostics_defaults (global_dc
);
6010 const pass_data pass_data_ipa_free_lang_data
=
6012 SIMPLE_IPA_PASS
, /* type */
6013 "*free_lang_data", /* name */
6014 OPTGROUP_NONE
, /* optinfo_flags */
6015 TV_IPA_FREE_LANG_DATA
, /* tv_id */
6016 0, /* properties_required */
6017 0, /* properties_provided */
6018 0, /* properties_destroyed */
6019 0, /* todo_flags_start */
6020 0, /* todo_flags_finish */
6023 class pass_ipa_free_lang_data
: public simple_ipa_opt_pass
6026 pass_ipa_free_lang_data (gcc::context
*ctxt
)
6027 : simple_ipa_opt_pass (pass_data_ipa_free_lang_data
, ctxt
)
6030 /* opt_pass methods: */
6031 virtual unsigned int execute (function
*) { return free_lang_data (); }
6033 }; // class pass_ipa_free_lang_data
6037 simple_ipa_opt_pass
*
6038 make_pass_ipa_free_lang_data (gcc::context
*ctxt
)
6040 return new pass_ipa_free_lang_data (ctxt
);
6043 /* The backbone of is_attribute_p(). ATTR_LEN is the string length of
6044 ATTR_NAME. Also used internally by remove_attribute(). */
6046 private_is_attribute_p (const char *attr_name
, size_t attr_len
, const_tree ident
)
6048 size_t ident_len
= IDENTIFIER_LENGTH (ident
);
6050 if (ident_len
== attr_len
)
6052 if (strcmp (attr_name
, IDENTIFIER_POINTER (ident
)) == 0)
6055 else if (ident_len
== attr_len
+ 4)
6057 /* There is the possibility that ATTR is 'text' and IDENT is
6059 const char *p
= IDENTIFIER_POINTER (ident
);
6060 if (p
[0] == '_' && p
[1] == '_'
6061 && p
[ident_len
- 2] == '_' && p
[ident_len
- 1] == '_'
6062 && strncmp (attr_name
, p
+ 2, attr_len
) == 0)
6069 /* The backbone of lookup_attribute(). ATTR_LEN is the string length
6070 of ATTR_NAME, and LIST is not NULL_TREE. */
6072 private_lookup_attribute (const char *attr_name
, size_t attr_len
, tree list
)
6076 size_t ident_len
= IDENTIFIER_LENGTH (get_attribute_name (list
));
6078 if (ident_len
== attr_len
)
6080 if (!strcmp (attr_name
,
6081 IDENTIFIER_POINTER (get_attribute_name (list
))))
6084 /* TODO: If we made sure that attributes were stored in the
6085 canonical form without '__...__' (ie, as in 'text' as opposed
6086 to '__text__') then we could avoid the following case. */
6087 else if (ident_len
== attr_len
+ 4)
6089 const char *p
= IDENTIFIER_POINTER (get_attribute_name (list
));
6090 if (p
[0] == '_' && p
[1] == '_'
6091 && p
[ident_len
- 2] == '_' && p
[ident_len
- 1] == '_'
6092 && strncmp (attr_name
, p
+ 2, attr_len
) == 0)
6095 list
= TREE_CHAIN (list
);
6101 /* Given an attribute name ATTR_NAME and a list of attributes LIST,
6102 return a pointer to the attribute's list first element if the attribute
6103 starts with ATTR_NAME. ATTR_NAME must be in the form 'text' (not
6107 private_lookup_attribute_by_prefix (const char *attr_name
, size_t attr_len
,
6112 size_t ident_len
= IDENTIFIER_LENGTH (get_attribute_name (list
));
6114 if (attr_len
> ident_len
)
6116 list
= TREE_CHAIN (list
);
6120 const char *p
= IDENTIFIER_POINTER (get_attribute_name (list
));
6122 if (strncmp (attr_name
, p
, attr_len
) == 0)
6125 /* TODO: If we made sure that attributes were stored in the
6126 canonical form without '__...__' (ie, as in 'text' as opposed
6127 to '__text__') then we could avoid the following case. */
6128 if (p
[0] == '_' && p
[1] == '_' &&
6129 strncmp (attr_name
, p
+ 2, attr_len
) == 0)
6132 list
= TREE_CHAIN (list
);
6139 /* A variant of lookup_attribute() that can be used with an identifier
6140 as the first argument, and where the identifier can be either
6141 'text' or '__text__'.
6143 Given an attribute ATTR_IDENTIFIER, and a list of attributes LIST,
6144 return a pointer to the attribute's list element if the attribute
6145 is part of the list, or NULL_TREE if not found. If the attribute
6146 appears more than once, this only returns the first occurrence; the
6147 TREE_CHAIN of the return value should be passed back in if further
6148 occurrences are wanted. ATTR_IDENTIFIER must be an identifier but
6149 can be in the form 'text' or '__text__'. */
6151 lookup_ident_attribute (tree attr_identifier
, tree list
)
6153 gcc_checking_assert (TREE_CODE (attr_identifier
) == IDENTIFIER_NODE
);
6157 gcc_checking_assert (TREE_CODE (get_attribute_name (list
))
6158 == IDENTIFIER_NODE
);
6160 if (cmp_attrib_identifiers (attr_identifier
,
6161 get_attribute_name (list
)))
6164 list
= TREE_CHAIN (list
);
6170 /* Remove any instances of attribute ATTR_NAME in LIST and return the
6174 remove_attribute (const char *attr_name
, tree list
)
6177 size_t attr_len
= strlen (attr_name
);
6179 gcc_checking_assert (attr_name
[0] != '_');
6181 for (p
= &list
; *p
; )
6184 /* TODO: If we were storing attributes in normalized form, here
6185 we could use a simple strcmp(). */
6186 if (private_is_attribute_p (attr_name
, attr_len
, get_attribute_name (l
)))
6187 *p
= TREE_CHAIN (l
);
6189 p
= &TREE_CHAIN (l
);
6195 /* Return an attribute list that is the union of a1 and a2. */
6198 merge_attributes (tree a1
, tree a2
)
6202 /* Either one unset? Take the set one. */
6204 if ((attributes
= a1
) == 0)
6207 /* One that completely contains the other? Take it. */
6209 else if (a2
!= 0 && ! attribute_list_contained (a1
, a2
))
6211 if (attribute_list_contained (a2
, a1
))
6215 /* Pick the longest list, and hang on the other list. */
6217 if (list_length (a1
) < list_length (a2
))
6218 attributes
= a2
, a2
= a1
;
6220 for (; a2
!= 0; a2
= TREE_CHAIN (a2
))
6223 for (a
= lookup_ident_attribute (get_attribute_name (a2
),
6225 a
!= NULL_TREE
&& !attribute_value_equal (a
, a2
);
6226 a
= lookup_ident_attribute (get_attribute_name (a2
),
6231 a1
= copy_node (a2
);
6232 TREE_CHAIN (a1
) = attributes
;
6241 /* Given types T1 and T2, merge their attributes and return
6245 merge_type_attributes (tree t1
, tree t2
)
6247 return merge_attributes (TYPE_ATTRIBUTES (t1
),
6248 TYPE_ATTRIBUTES (t2
));
6251 /* Given decls OLDDECL and NEWDECL, merge their attributes and return
6255 merge_decl_attributes (tree olddecl
, tree newdecl
)
6257 return merge_attributes (DECL_ATTRIBUTES (olddecl
),
6258 DECL_ATTRIBUTES (newdecl
));
6261 #if TARGET_DLLIMPORT_DECL_ATTRIBUTES
6263 /* Specialization of merge_decl_attributes for various Windows targets.
6265 This handles the following situation:
6267 __declspec (dllimport) int foo;
6270 The second instance of `foo' nullifies the dllimport. */
6273 merge_dllimport_decl_attributes (tree old
, tree new_tree
)
6276 int delete_dllimport_p
= 1;
6278 /* What we need to do here is remove from `old' dllimport if it doesn't
6279 appear in `new'. dllimport behaves like extern: if a declaration is
6280 marked dllimport and a definition appears later, then the object
6281 is not dllimport'd. We also remove a `new' dllimport if the old list
6282 contains dllexport: dllexport always overrides dllimport, regardless
6283 of the order of declaration. */
6284 if (!VAR_OR_FUNCTION_DECL_P (new_tree
))
6285 delete_dllimport_p
= 0;
6286 else if (DECL_DLLIMPORT_P (new_tree
)
6287 && lookup_attribute ("dllexport", DECL_ATTRIBUTES (old
)))
6289 DECL_DLLIMPORT_P (new_tree
) = 0;
6290 warning (OPT_Wattributes
, "%q+D already declared with dllexport attribute: "
6291 "dllimport ignored", new_tree
);
6293 else if (DECL_DLLIMPORT_P (old
) && !DECL_DLLIMPORT_P (new_tree
))
6295 /* Warn about overriding a symbol that has already been used, e.g.:
6296 extern int __attribute__ ((dllimport)) foo;
6297 int* bar () {return &foo;}
6300 if (TREE_USED (old
))
6302 warning (0, "%q+D redeclared without dllimport attribute "
6303 "after being referenced with dll linkage", new_tree
);
6304 /* If we have used a variable's address with dllimport linkage,
6305 keep the old DECL_DLLIMPORT_P flag: the ADDR_EXPR using the
6306 decl may already have had TREE_CONSTANT computed.
6307 We still remove the attribute so that assembler code refers
6308 to '&foo rather than '_imp__foo'. */
6309 if (TREE_CODE (old
) == VAR_DECL
&& TREE_ADDRESSABLE (old
))
6310 DECL_DLLIMPORT_P (new_tree
) = 1;
6313 /* Let an inline definition silently override the external reference,
6314 but otherwise warn about attribute inconsistency. */
6315 else if (TREE_CODE (new_tree
) == VAR_DECL
6316 || !DECL_DECLARED_INLINE_P (new_tree
))
6317 warning (OPT_Wattributes
, "%q+D redeclared without dllimport attribute: "
6318 "previous dllimport ignored", new_tree
);
6321 delete_dllimport_p
= 0;
6323 a
= merge_attributes (DECL_ATTRIBUTES (old
), DECL_ATTRIBUTES (new_tree
));
6325 if (delete_dllimport_p
)
6326 a
= remove_attribute ("dllimport", a
);
6331 /* Handle a "dllimport" or "dllexport" attribute; arguments as in
6332 struct attribute_spec.handler. */
6335 handle_dll_attribute (tree
* pnode
, tree name
, tree args
, int flags
,
6341 /* These attributes may apply to structure and union types being created,
6342 but otherwise should pass to the declaration involved. */
6345 if (flags
& ((int) ATTR_FLAG_DECL_NEXT
| (int) ATTR_FLAG_FUNCTION_NEXT
6346 | (int) ATTR_FLAG_ARRAY_NEXT
))
6348 *no_add_attrs
= true;
6349 return tree_cons (name
, args
, NULL_TREE
);
6351 if (TREE_CODE (node
) == RECORD_TYPE
6352 || TREE_CODE (node
) == UNION_TYPE
)
6354 node
= TYPE_NAME (node
);
6360 warning (OPT_Wattributes
, "%qE attribute ignored",
6362 *no_add_attrs
= true;
6367 if (TREE_CODE (node
) != FUNCTION_DECL
6368 && TREE_CODE (node
) != VAR_DECL
6369 && TREE_CODE (node
) != TYPE_DECL
)
6371 *no_add_attrs
= true;
6372 warning (OPT_Wattributes
, "%qE attribute ignored",
6377 if (TREE_CODE (node
) == TYPE_DECL
6378 && TREE_CODE (TREE_TYPE (node
)) != RECORD_TYPE
6379 && TREE_CODE (TREE_TYPE (node
)) != UNION_TYPE
)
6381 *no_add_attrs
= true;
6382 warning (OPT_Wattributes
, "%qE attribute ignored",
6387 is_dllimport
= is_attribute_p ("dllimport", name
);
6389 /* Report error on dllimport ambiguities seen now before they cause
6393 /* Honor any target-specific overrides. */
6394 if (!targetm
.valid_dllimport_attribute_p (node
))
6395 *no_add_attrs
= true;
6397 else if (TREE_CODE (node
) == FUNCTION_DECL
6398 && DECL_DECLARED_INLINE_P (node
))
6400 warning (OPT_Wattributes
, "inline function %q+D declared as "
6401 " dllimport: attribute ignored", node
);
6402 *no_add_attrs
= true;
6404 /* Like MS, treat definition of dllimported variables and
6405 non-inlined functions on declaration as syntax errors. */
6406 else if (TREE_CODE (node
) == FUNCTION_DECL
&& DECL_INITIAL (node
))
6408 error ("function %q+D definition is marked dllimport", node
);
6409 *no_add_attrs
= true;
6412 else if (TREE_CODE (node
) == VAR_DECL
)
6414 if (DECL_INITIAL (node
))
6416 error ("variable %q+D definition is marked dllimport",
6418 *no_add_attrs
= true;
6421 /* `extern' needn't be specified with dllimport.
6422 Specify `extern' now and hope for the best. Sigh. */
6423 DECL_EXTERNAL (node
) = 1;
6424 /* Also, implicitly give dllimport'd variables declared within
6425 a function global scope, unless declared static. */
6426 if (current_function_decl
!= NULL_TREE
&& !TREE_STATIC (node
))
6427 TREE_PUBLIC (node
) = 1;
6430 if (*no_add_attrs
== false)
6431 DECL_DLLIMPORT_P (node
) = 1;
6433 else if (TREE_CODE (node
) == FUNCTION_DECL
6434 && DECL_DECLARED_INLINE_P (node
)
6435 && flag_keep_inline_dllexport
)
6436 /* An exported function, even if inline, must be emitted. */
6437 DECL_EXTERNAL (node
) = 0;
6439 /* Report error if symbol is not accessible at global scope. */
6440 if (!TREE_PUBLIC (node
)
6441 && (TREE_CODE (node
) == VAR_DECL
6442 || TREE_CODE (node
) == FUNCTION_DECL
))
6444 error ("external linkage required for symbol %q+D because of "
6445 "%qE attribute", node
, name
);
6446 *no_add_attrs
= true;
6449 /* A dllexport'd entity must have default visibility so that other
6450 program units (shared libraries or the main executable) can see
6451 it. A dllimport'd entity must have default visibility so that
6452 the linker knows that undefined references within this program
6453 unit can be resolved by the dynamic linker. */
6456 if (DECL_VISIBILITY_SPECIFIED (node
)
6457 && DECL_VISIBILITY (node
) != VISIBILITY_DEFAULT
)
6458 error ("%qE implies default visibility, but %qD has already "
6459 "been declared with a different visibility",
6461 DECL_VISIBILITY (node
) = VISIBILITY_DEFAULT
;
6462 DECL_VISIBILITY_SPECIFIED (node
) = 1;
6468 #endif /* TARGET_DLLIMPORT_DECL_ATTRIBUTES */
6470 /* Set the type qualifiers for TYPE to TYPE_QUALS, which is a bitmask
6471 of the various TYPE_QUAL values. */
6474 set_type_quals (tree type
, int type_quals
)
6476 TYPE_READONLY (type
) = (type_quals
& TYPE_QUAL_CONST
) != 0;
6477 TYPE_VOLATILE (type
) = (type_quals
& TYPE_QUAL_VOLATILE
) != 0;
6478 TYPE_RESTRICT (type
) = (type_quals
& TYPE_QUAL_RESTRICT
) != 0;
6479 TYPE_ATOMIC (type
) = (type_quals
& TYPE_QUAL_ATOMIC
) != 0;
6480 TYPE_ADDR_SPACE (type
) = DECODE_QUAL_ADDR_SPACE (type_quals
);
6483 /* Returns true iff unqualified CAND and BASE are equivalent. */
6486 check_base_type (const_tree cand
, const_tree base
)
6488 return (TYPE_NAME (cand
) == TYPE_NAME (base
)
6489 /* Apparently this is needed for Objective-C. */
6490 && TYPE_CONTEXT (cand
) == TYPE_CONTEXT (base
)
6491 /* Check alignment. */
6492 && TYPE_ALIGN (cand
) == TYPE_ALIGN (base
)
6493 && attribute_list_equal (TYPE_ATTRIBUTES (cand
),
6494 TYPE_ATTRIBUTES (base
)));
6497 /* Returns true iff CAND is equivalent to BASE with TYPE_QUALS. */
6500 check_qualified_type (const_tree cand
, const_tree base
, int type_quals
)
6502 return (TYPE_QUALS (cand
) == type_quals
6503 && check_base_type (cand
, base
));
6506 /* Returns true iff CAND is equivalent to BASE with ALIGN. */
6509 check_aligned_type (const_tree cand
, const_tree base
, unsigned int align
)
6511 return (TYPE_QUALS (cand
) == TYPE_QUALS (base
)
6512 && TYPE_NAME (cand
) == TYPE_NAME (base
)
6513 /* Apparently this is needed for Objective-C. */
6514 && TYPE_CONTEXT (cand
) == TYPE_CONTEXT (base
)
6515 /* Check alignment. */
6516 && TYPE_ALIGN (cand
) == align
6517 && attribute_list_equal (TYPE_ATTRIBUTES (cand
),
6518 TYPE_ATTRIBUTES (base
)));
6521 /* This function checks to see if TYPE matches the size one of the built-in
6522 atomic types, and returns that core atomic type. */
6525 find_atomic_core_type (tree type
)
6527 tree base_atomic_type
;
6529 /* Only handle complete types. */
6530 if (TYPE_SIZE (type
) == NULL_TREE
)
6533 HOST_WIDE_INT type_size
= tree_to_uhwi (TYPE_SIZE (type
));
6537 base_atomic_type
= atomicQI_type_node
;
6541 base_atomic_type
= atomicHI_type_node
;
6545 base_atomic_type
= atomicSI_type_node
;
6549 base_atomic_type
= atomicDI_type_node
;
6553 base_atomic_type
= atomicTI_type_node
;
6557 base_atomic_type
= NULL_TREE
;
6560 return base_atomic_type
;
6563 /* Return a version of the TYPE, qualified as indicated by the
6564 TYPE_QUALS, if one exists. If no qualified version exists yet,
6565 return NULL_TREE. */
6568 get_qualified_type (tree type
, int type_quals
)
6572 if (TYPE_QUALS (type
) == type_quals
)
6575 /* Search the chain of variants to see if there is already one there just
6576 like the one we need to have. If so, use that existing one. We must
6577 preserve the TYPE_NAME, since there is code that depends on this. */
6578 for (t
= TYPE_MAIN_VARIANT (type
); t
; t
= TYPE_NEXT_VARIANT (t
))
6579 if (check_qualified_type (t
, type
, type_quals
))
6585 /* Like get_qualified_type, but creates the type if it does not
6586 exist. This function never returns NULL_TREE. */
6589 build_qualified_type (tree type
, int type_quals
)
6593 /* See if we already have the appropriate qualified variant. */
6594 t
= get_qualified_type (type
, type_quals
);
6596 /* If not, build it. */
6599 t
= build_variant_type_copy (type
);
6600 set_type_quals (t
, type_quals
);
6602 if (((type_quals
& TYPE_QUAL_ATOMIC
) == TYPE_QUAL_ATOMIC
))
6604 /* See if this object can map to a basic atomic type. */
6605 tree atomic_type
= find_atomic_core_type (type
);
6608 /* Ensure the alignment of this type is compatible with
6609 the required alignment of the atomic type. */
6610 if (TYPE_ALIGN (atomic_type
) > TYPE_ALIGN (t
))
6611 TYPE_ALIGN (t
) = TYPE_ALIGN (atomic_type
);
6615 if (TYPE_STRUCTURAL_EQUALITY_P (type
))
6616 /* Propagate structural equality. */
6617 SET_TYPE_STRUCTURAL_EQUALITY (t
);
6618 else if (TYPE_CANONICAL (type
) != type
)
6619 /* Build the underlying canonical type, since it is different
6622 tree c
= build_qualified_type (TYPE_CANONICAL (type
), type_quals
);
6623 TYPE_CANONICAL (t
) = TYPE_CANONICAL (c
);
6626 /* T is its own canonical type. */
6627 TYPE_CANONICAL (t
) = t
;
6634 /* Create a variant of type T with alignment ALIGN. */
6637 build_aligned_type (tree type
, unsigned int align
)
6641 if (TYPE_PACKED (type
)
6642 || TYPE_ALIGN (type
) == align
)
6645 for (t
= TYPE_MAIN_VARIANT (type
); t
; t
= TYPE_NEXT_VARIANT (t
))
6646 if (check_aligned_type (t
, type
, align
))
6649 t
= build_variant_type_copy (type
);
6650 TYPE_ALIGN (t
) = align
;
6655 /* Create a new distinct copy of TYPE. The new type is made its own
6656 MAIN_VARIANT. If TYPE requires structural equality checks, the
6657 resulting type requires structural equality checks; otherwise, its
6658 TYPE_CANONICAL points to itself. */
6661 build_distinct_type_copy (tree type
)
6663 tree t
= copy_node (type
);
6665 TYPE_POINTER_TO (t
) = 0;
6666 TYPE_REFERENCE_TO (t
) = 0;
6668 /* Set the canonical type either to a new equivalence class, or
6669 propagate the need for structural equality checks. */
6670 if (TYPE_STRUCTURAL_EQUALITY_P (type
))
6671 SET_TYPE_STRUCTURAL_EQUALITY (t
);
6673 TYPE_CANONICAL (t
) = t
;
6675 /* Make it its own variant. */
6676 TYPE_MAIN_VARIANT (t
) = t
;
6677 TYPE_NEXT_VARIANT (t
) = 0;
6679 /* We do not record methods in type copies nor variants
6680 so we do not need to keep them up to date when new method
6682 if (RECORD_OR_UNION_TYPE_P (t
))
6683 TYPE_METHODS (t
) = NULL_TREE
;
6685 /* Note that it is now possible for TYPE_MIN_VALUE to be a value
6686 whose TREE_TYPE is not t. This can also happen in the Ada
6687 frontend when using subtypes. */
6692 /* Create a new variant of TYPE, equivalent but distinct. This is so
6693 the caller can modify it. TYPE_CANONICAL for the return type will
6694 be equivalent to TYPE_CANONICAL of TYPE, indicating that the types
6695 are considered equal by the language itself (or that both types
6696 require structural equality checks). */
6699 build_variant_type_copy (tree type
)
6701 tree t
, m
= TYPE_MAIN_VARIANT (type
);
6703 t
= build_distinct_type_copy (type
);
6705 /* Since we're building a variant, assume that it is a non-semantic
6706 variant. This also propagates TYPE_STRUCTURAL_EQUALITY_P. */
6707 TYPE_CANONICAL (t
) = TYPE_CANONICAL (type
);
6708 /* Type variants have no alias set defined. */
6709 TYPE_ALIAS_SET (t
) = -1;
6711 /* Add the new type to the chain of variants of TYPE. */
6712 TYPE_NEXT_VARIANT (t
) = TYPE_NEXT_VARIANT (m
);
6713 TYPE_NEXT_VARIANT (m
) = t
;
6714 TYPE_MAIN_VARIANT (t
) = m
;
6719 /* Return true if the from tree in both tree maps are equal. */
6722 tree_map_base_eq (const void *va
, const void *vb
)
6724 const struct tree_map_base
*const a
= (const struct tree_map_base
*) va
,
6725 *const b
= (const struct tree_map_base
*) vb
;
6726 return (a
->from
== b
->from
);
6729 /* Hash a from tree in a tree_base_map. */
6732 tree_map_base_hash (const void *item
)
6734 return htab_hash_pointer (((const struct tree_map_base
*)item
)->from
);
6737 /* Return true if this tree map structure is marked for garbage collection
6738 purposes. We simply return true if the from tree is marked, so that this
6739 structure goes away when the from tree goes away. */
6742 tree_map_base_marked_p (const void *p
)
6744 return ggc_marked_p (((const struct tree_map_base
*) p
)->from
);
6747 /* Hash a from tree in a tree_map. */
6750 tree_map_hash (const void *item
)
6752 return (((const struct tree_map
*) item
)->hash
);
6755 /* Hash a from tree in a tree_decl_map. */
6758 tree_decl_map_hash (const void *item
)
6760 return DECL_UID (((const struct tree_decl_map
*) item
)->base
.from
);
6763 /* Return the initialization priority for DECL. */
6766 decl_init_priority_lookup (tree decl
)
6768 symtab_node
*snode
= symtab_node::get (decl
);
6771 return DEFAULT_INIT_PRIORITY
;
6773 snode
->get_init_priority ();
6776 /* Return the finalization priority for DECL. */
6779 decl_fini_priority_lookup (tree decl
)
6781 cgraph_node
*node
= cgraph_node::get (decl
);
6784 return DEFAULT_INIT_PRIORITY
;
6786 node
->get_fini_priority ();
6789 /* Set the initialization priority for DECL to PRIORITY. */
6792 decl_init_priority_insert (tree decl
, priority_type priority
)
6794 struct symtab_node
*snode
;
6796 if (priority
== DEFAULT_INIT_PRIORITY
)
6798 snode
= symtab_node::get (decl
);
6802 else if (TREE_CODE (decl
) == VAR_DECL
)
6803 snode
= varpool_node::get_create (decl
);
6805 snode
= cgraph_node::get_create (decl
);
6806 snode
->set_init_priority (priority
);
6809 /* Set the finalization priority for DECL to PRIORITY. */
6812 decl_fini_priority_insert (tree decl
, priority_type priority
)
6814 struct cgraph_node
*node
;
6816 if (priority
== DEFAULT_INIT_PRIORITY
)
6818 node
= cgraph_node::get (decl
);
6823 node
= cgraph_node::get_create (decl
);
6824 node
->set_fini_priority (priority
);
6827 /* Print out the statistics for the DECL_DEBUG_EXPR hash table. */
6830 print_debug_expr_statistics (void)
6832 fprintf (stderr
, "DECL_DEBUG_EXPR hash: size %ld, %ld elements, %f collisions\n",
6833 (long) debug_expr_for_decl
->size (),
6834 (long) debug_expr_for_decl
->elements (),
6835 debug_expr_for_decl
->collisions ());
6838 /* Print out the statistics for the DECL_VALUE_EXPR hash table. */
6841 print_value_expr_statistics (void)
6843 fprintf (stderr
, "DECL_VALUE_EXPR hash: size %ld, %ld elements, %f collisions\n",
6844 (long) value_expr_for_decl
->size (),
6845 (long) value_expr_for_decl
->elements (),
6846 value_expr_for_decl
->collisions ());
6849 /* Lookup a debug expression for FROM, and return it if we find one. */
6852 decl_debug_expr_lookup (tree from
)
6854 struct tree_decl_map
*h
, in
;
6855 in
.base
.from
= from
;
6857 h
= debug_expr_for_decl
->find_with_hash (&in
, DECL_UID (from
));
6863 /* Insert a mapping FROM->TO in the debug expression hashtable. */
6866 decl_debug_expr_insert (tree from
, tree to
)
6868 struct tree_decl_map
*h
;
6870 h
= ggc_alloc
<tree_decl_map
> ();
6871 h
->base
.from
= from
;
6873 *debug_expr_for_decl
->find_slot_with_hash (h
, DECL_UID (from
), INSERT
) = h
;
6876 /* Lookup a value expression for FROM, and return it if we find one. */
6879 decl_value_expr_lookup (tree from
)
6881 struct tree_decl_map
*h
, in
;
6882 in
.base
.from
= from
;
6884 h
= value_expr_for_decl
->find_with_hash (&in
, DECL_UID (from
));
6890 /* Insert a mapping FROM->TO in the value expression hashtable. */
6893 decl_value_expr_insert (tree from
, tree to
)
6895 struct tree_decl_map
*h
;
6897 h
= ggc_alloc
<tree_decl_map
> ();
6898 h
->base
.from
= from
;
6900 *value_expr_for_decl
->find_slot_with_hash (h
, DECL_UID (from
), INSERT
) = h
;
6903 /* Lookup a vector of debug arguments for FROM, and return it if we
6907 decl_debug_args_lookup (tree from
)
6909 struct tree_vec_map
*h
, in
;
6911 if (!DECL_HAS_DEBUG_ARGS_P (from
))
6913 gcc_checking_assert (debug_args_for_decl
!= NULL
);
6914 in
.base
.from
= from
;
6915 h
= debug_args_for_decl
->find_with_hash (&in
, DECL_UID (from
));
6921 /* Insert a mapping FROM->empty vector of debug arguments in the value
6922 expression hashtable. */
6925 decl_debug_args_insert (tree from
)
6927 struct tree_vec_map
*h
;
6930 if (DECL_HAS_DEBUG_ARGS_P (from
))
6931 return decl_debug_args_lookup (from
);
6932 if (debug_args_for_decl
== NULL
)
6933 debug_args_for_decl
= hash_table
<tree_vec_map_cache_hasher
>::create_ggc (64);
6934 h
= ggc_alloc
<tree_vec_map
> ();
6935 h
->base
.from
= from
;
6937 loc
= debug_args_for_decl
->find_slot_with_hash (h
, DECL_UID (from
), INSERT
);
6939 DECL_HAS_DEBUG_ARGS_P (from
) = 1;
6943 /* Hashing of types so that we don't make duplicates.
6944 The entry point is `type_hash_canon'. */
6946 /* Compute a hash code for a list of types (chain of TREE_LIST nodes
6947 with types in the TREE_VALUE slots), by adding the hash codes
6948 of the individual types. */
6951 type_hash_list (const_tree list
, inchash::hash
&hstate
)
6955 for (tail
= list
; tail
; tail
= TREE_CHAIN (tail
))
6956 if (TREE_VALUE (tail
) != error_mark_node
)
6957 hstate
.add_object (TYPE_HASH (TREE_VALUE (tail
)));
6960 /* These are the Hashtable callback functions. */
6962 /* Returns true iff the types are equivalent. */
6965 type_cache_hasher::equal (type_hash
*a
, type_hash
*b
)
6967 /* First test the things that are the same for all types. */
6968 if (a
->hash
!= b
->hash
6969 || TREE_CODE (a
->type
) != TREE_CODE (b
->type
)
6970 || TREE_TYPE (a
->type
) != TREE_TYPE (b
->type
)
6971 || !attribute_list_equal (TYPE_ATTRIBUTES (a
->type
),
6972 TYPE_ATTRIBUTES (b
->type
))
6973 || (TREE_CODE (a
->type
) != COMPLEX_TYPE
6974 && TYPE_NAME (a
->type
) != TYPE_NAME (b
->type
)))
6977 /* Be careful about comparing arrays before and after the element type
6978 has been completed; don't compare TYPE_ALIGN unless both types are
6980 if (COMPLETE_TYPE_P (a
->type
) && COMPLETE_TYPE_P (b
->type
)
6981 && (TYPE_ALIGN (a
->type
) != TYPE_ALIGN (b
->type
)
6982 || TYPE_MODE (a
->type
) != TYPE_MODE (b
->type
)))
6985 switch (TREE_CODE (a
->type
))
6990 case REFERENCE_TYPE
:
6995 return TYPE_VECTOR_SUBPARTS (a
->type
) == TYPE_VECTOR_SUBPARTS (b
->type
);
6998 if (TYPE_VALUES (a
->type
) != TYPE_VALUES (b
->type
)
6999 && !(TYPE_VALUES (a
->type
)
7000 && TREE_CODE (TYPE_VALUES (a
->type
)) == TREE_LIST
7001 && TYPE_VALUES (b
->type
)
7002 && TREE_CODE (TYPE_VALUES (b
->type
)) == TREE_LIST
7003 && type_list_equal (TYPE_VALUES (a
->type
),
7004 TYPE_VALUES (b
->type
))))
7007 /* ... fall through ... */
7012 if (TYPE_PRECISION (a
->type
) != TYPE_PRECISION (b
->type
))
7014 return ((TYPE_MAX_VALUE (a
->type
) == TYPE_MAX_VALUE (b
->type
)
7015 || tree_int_cst_equal (TYPE_MAX_VALUE (a
->type
),
7016 TYPE_MAX_VALUE (b
->type
)))
7017 && (TYPE_MIN_VALUE (a
->type
) == TYPE_MIN_VALUE (b
->type
)
7018 || tree_int_cst_equal (TYPE_MIN_VALUE (a
->type
),
7019 TYPE_MIN_VALUE (b
->type
))));
7021 case FIXED_POINT_TYPE
:
7022 return TYPE_SATURATING (a
->type
) == TYPE_SATURATING (b
->type
);
7025 return TYPE_OFFSET_BASETYPE (a
->type
) == TYPE_OFFSET_BASETYPE (b
->type
);
7028 if (TYPE_METHOD_BASETYPE (a
->type
) == TYPE_METHOD_BASETYPE (b
->type
)
7029 && (TYPE_ARG_TYPES (a
->type
) == TYPE_ARG_TYPES (b
->type
)
7030 || (TYPE_ARG_TYPES (a
->type
)
7031 && TREE_CODE (TYPE_ARG_TYPES (a
->type
)) == TREE_LIST
7032 && TYPE_ARG_TYPES (b
->type
)
7033 && TREE_CODE (TYPE_ARG_TYPES (b
->type
)) == TREE_LIST
7034 && type_list_equal (TYPE_ARG_TYPES (a
->type
),
7035 TYPE_ARG_TYPES (b
->type
)))))
7039 return TYPE_DOMAIN (a
->type
) == TYPE_DOMAIN (b
->type
);
7043 case QUAL_UNION_TYPE
:
7044 return (TYPE_FIELDS (a
->type
) == TYPE_FIELDS (b
->type
)
7045 || (TYPE_FIELDS (a
->type
)
7046 && TREE_CODE (TYPE_FIELDS (a
->type
)) == TREE_LIST
7047 && TYPE_FIELDS (b
->type
)
7048 && TREE_CODE (TYPE_FIELDS (b
->type
)) == TREE_LIST
7049 && type_list_equal (TYPE_FIELDS (a
->type
),
7050 TYPE_FIELDS (b
->type
))));
7053 if (TYPE_ARG_TYPES (a
->type
) == TYPE_ARG_TYPES (b
->type
)
7054 || (TYPE_ARG_TYPES (a
->type
)
7055 && TREE_CODE (TYPE_ARG_TYPES (a
->type
)) == TREE_LIST
7056 && TYPE_ARG_TYPES (b
->type
)
7057 && TREE_CODE (TYPE_ARG_TYPES (b
->type
)) == TREE_LIST
7058 && type_list_equal (TYPE_ARG_TYPES (a
->type
),
7059 TYPE_ARG_TYPES (b
->type
))))
7067 if (lang_hooks
.types
.type_hash_eq
!= NULL
)
7068 return lang_hooks
.types
.type_hash_eq (a
->type
, b
->type
);
7073 /* Given TYPE, and HASHCODE its hash code, return the canonical
7074 object for an identical type if one already exists.
7075 Otherwise, return TYPE, and record it as the canonical object.
7077 To use this function, first create a type of the sort you want.
7078 Then compute its hash code from the fields of the type that
7079 make it different from other similar types.
7080 Then call this function and use the value. */
7083 type_hash_canon (unsigned int hashcode
, tree type
)
7088 /* The hash table only contains main variants, so ensure that's what we're
7090 gcc_assert (TYPE_MAIN_VARIANT (type
) == type
);
7092 /* The TYPE_ALIGN field of a type is set by layout_type(), so we
7093 must call that routine before comparing TYPE_ALIGNs. */
7099 loc
= type_hash_table
->find_slot_with_hash (&in
, hashcode
, INSERT
);
7102 tree t1
= ((type_hash
*) *loc
)->type
;
7103 gcc_assert (TYPE_MAIN_VARIANT (t1
) == t1
);
7109 struct type_hash
*h
;
7111 h
= ggc_alloc
<type_hash
> ();
7121 print_type_hash_statistics (void)
7123 fprintf (stderr
, "Type hash: size %ld, %ld elements, %f collisions\n",
7124 (long) type_hash_table
->size (),
7125 (long) type_hash_table
->elements (),
7126 type_hash_table
->collisions ());
7129 /* Compute a hash code for a list of attributes (chain of TREE_LIST nodes
7130 with names in the TREE_PURPOSE slots and args in the TREE_VALUE slots),
7131 by adding the hash codes of the individual attributes. */
7134 attribute_hash_list (const_tree list
, inchash::hash
&hstate
)
7138 for (tail
= list
; tail
; tail
= TREE_CHAIN (tail
))
7139 /* ??? Do we want to add in TREE_VALUE too? */
7140 hstate
.add_object (IDENTIFIER_HASH_VALUE (get_attribute_name (tail
)));
7143 /* Given two lists of attributes, return true if list l2 is
7144 equivalent to l1. */
7147 attribute_list_equal (const_tree l1
, const_tree l2
)
7152 return attribute_list_contained (l1
, l2
)
7153 && attribute_list_contained (l2
, l1
);
7156 /* Given two lists of attributes, return true if list L2 is
7157 completely contained within L1. */
7158 /* ??? This would be faster if attribute names were stored in a canonicalized
7159 form. Otherwise, if L1 uses `foo' and L2 uses `__foo__', the long method
7160 must be used to show these elements are equivalent (which they are). */
7161 /* ??? It's not clear that attributes with arguments will always be handled
7165 attribute_list_contained (const_tree l1
, const_tree l2
)
7169 /* First check the obvious, maybe the lists are identical. */
7173 /* Maybe the lists are similar. */
7174 for (t1
= l1
, t2
= l2
;
7176 && get_attribute_name (t1
) == get_attribute_name (t2
)
7177 && TREE_VALUE (t1
) == TREE_VALUE (t2
);
7178 t1
= TREE_CHAIN (t1
), t2
= TREE_CHAIN (t2
))
7181 /* Maybe the lists are equal. */
7182 if (t1
== 0 && t2
== 0)
7185 for (; t2
!= 0; t2
= TREE_CHAIN (t2
))
7188 /* This CONST_CAST is okay because lookup_attribute does not
7189 modify its argument and the return value is assigned to a
7191 for (attr
= lookup_ident_attribute (get_attribute_name (t2
),
7192 CONST_CAST_TREE (l1
));
7193 attr
!= NULL_TREE
&& !attribute_value_equal (t2
, attr
);
7194 attr
= lookup_ident_attribute (get_attribute_name (t2
),
7198 if (attr
== NULL_TREE
)
7205 /* Given two lists of types
7206 (chains of TREE_LIST nodes with types in the TREE_VALUE slots)
7207 return 1 if the lists contain the same types in the same order.
7208 Also, the TREE_PURPOSEs must match. */
7211 type_list_equal (const_tree l1
, const_tree l2
)
7215 for (t1
= l1
, t2
= l2
; t1
&& t2
; t1
= TREE_CHAIN (t1
), t2
= TREE_CHAIN (t2
))
7216 if (TREE_VALUE (t1
) != TREE_VALUE (t2
)
7217 || (TREE_PURPOSE (t1
) != TREE_PURPOSE (t2
)
7218 && ! (1 == simple_cst_equal (TREE_PURPOSE (t1
), TREE_PURPOSE (t2
))
7219 && (TREE_TYPE (TREE_PURPOSE (t1
))
7220 == TREE_TYPE (TREE_PURPOSE (t2
))))))
7226 /* Returns the number of arguments to the FUNCTION_TYPE or METHOD_TYPE
7227 given by TYPE. If the argument list accepts variable arguments,
7228 then this function counts only the ordinary arguments. */
7231 type_num_arguments (const_tree type
)
7236 for (t
= TYPE_ARG_TYPES (type
); t
; t
= TREE_CHAIN (t
))
7237 /* If the function does not take a variable number of arguments,
7238 the last element in the list will have type `void'. */
7239 if (VOID_TYPE_P (TREE_VALUE (t
)))
7247 /* Nonzero if integer constants T1 and T2
7248 represent the same constant value. */
7251 tree_int_cst_equal (const_tree t1
, const_tree t2
)
7256 if (t1
== 0 || t2
== 0)
7259 if (TREE_CODE (t1
) == INTEGER_CST
7260 && TREE_CODE (t2
) == INTEGER_CST
7261 && wi::to_widest (t1
) == wi::to_widest (t2
))
7267 /* Return true if T is an INTEGER_CST whose numerical value (extended
7268 according to TYPE_UNSIGNED) fits in a signed HOST_WIDE_INT. */
7271 tree_fits_shwi_p (const_tree t
)
7273 return (t
!= NULL_TREE
7274 && TREE_CODE (t
) == INTEGER_CST
7275 && wi::fits_shwi_p (wi::to_widest (t
)));
7278 /* Return true if T is an INTEGER_CST whose numerical value (extended
7279 according to TYPE_UNSIGNED) fits in an unsigned HOST_WIDE_INT. */
7282 tree_fits_uhwi_p (const_tree t
)
7284 return (t
!= NULL_TREE
7285 && TREE_CODE (t
) == INTEGER_CST
7286 && wi::fits_uhwi_p (wi::to_widest (t
)));
7289 /* T is an INTEGER_CST whose numerical value (extended according to
7290 TYPE_UNSIGNED) fits in a signed HOST_WIDE_INT. Return that
7294 tree_to_shwi (const_tree t
)
7296 gcc_assert (tree_fits_shwi_p (t
));
7297 return TREE_INT_CST_LOW (t
);
7300 /* T is an INTEGER_CST whose numerical value (extended according to
7301 TYPE_UNSIGNED) fits in an unsigned HOST_WIDE_INT. Return that
7304 unsigned HOST_WIDE_INT
7305 tree_to_uhwi (const_tree t
)
7307 gcc_assert (tree_fits_uhwi_p (t
));
7308 return TREE_INT_CST_LOW (t
);
7311 /* Return the most significant (sign) bit of T. */
7314 tree_int_cst_sign_bit (const_tree t
)
7316 unsigned bitno
= TYPE_PRECISION (TREE_TYPE (t
)) - 1;
7318 return wi::extract_uhwi (t
, bitno
, 1);
7321 /* Return an indication of the sign of the integer constant T.
7322 The return value is -1 if T < 0, 0 if T == 0, and 1 if T > 0.
7323 Note that -1 will never be returned if T's type is unsigned. */
7326 tree_int_cst_sgn (const_tree t
)
7328 if (wi::eq_p (t
, 0))
7330 else if (TYPE_UNSIGNED (TREE_TYPE (t
)))
7332 else if (wi::neg_p (t
))
7338 /* Return the minimum number of bits needed to represent VALUE in a
7339 signed or unsigned type, UNSIGNEDP says which. */
7342 tree_int_cst_min_precision (tree value
, signop sgn
)
7344 /* If the value is negative, compute its negative minus 1. The latter
7345 adjustment is because the absolute value of the largest negative value
7346 is one larger than the largest positive value. This is equivalent to
7347 a bit-wise negation, so use that operation instead. */
7349 if (tree_int_cst_sgn (value
) < 0)
7350 value
= fold_build1 (BIT_NOT_EXPR
, TREE_TYPE (value
), value
);
7352 /* Return the number of bits needed, taking into account the fact
7353 that we need one more bit for a signed than unsigned type.
7354 If value is 0 or -1, the minimum precision is 1 no matter
7355 whether unsignedp is true or false. */
7357 if (integer_zerop (value
))
7360 return tree_floor_log2 (value
) + 1 + (sgn
== SIGNED
? 1 : 0) ;
7363 /* Return truthvalue of whether T1 is the same tree structure as T2.
7364 Return 1 if they are the same.
7365 Return 0 if they are understandably different.
7366 Return -1 if either contains tree structure not understood by
7370 simple_cst_equal (const_tree t1
, const_tree t2
)
7372 enum tree_code code1
, code2
;
7378 if (t1
== 0 || t2
== 0)
7381 code1
= TREE_CODE (t1
);
7382 code2
= TREE_CODE (t2
);
7384 if (CONVERT_EXPR_CODE_P (code1
) || code1
== NON_LVALUE_EXPR
)
7386 if (CONVERT_EXPR_CODE_P (code2
)
7387 || code2
== NON_LVALUE_EXPR
)
7388 return simple_cst_equal (TREE_OPERAND (t1
, 0), TREE_OPERAND (t2
, 0));
7390 return simple_cst_equal (TREE_OPERAND (t1
, 0), t2
);
7393 else if (CONVERT_EXPR_CODE_P (code2
)
7394 || code2
== NON_LVALUE_EXPR
)
7395 return simple_cst_equal (t1
, TREE_OPERAND (t2
, 0));
7403 return wi::to_widest (t1
) == wi::to_widest (t2
);
7406 return real_identical (&TREE_REAL_CST (t1
), &TREE_REAL_CST (t2
));
7409 return FIXED_VALUES_IDENTICAL (TREE_FIXED_CST (t1
), TREE_FIXED_CST (t2
));
7412 return (TREE_STRING_LENGTH (t1
) == TREE_STRING_LENGTH (t2
)
7413 && ! memcmp (TREE_STRING_POINTER (t1
), TREE_STRING_POINTER (t2
),
7414 TREE_STRING_LENGTH (t1
)));
7418 unsigned HOST_WIDE_INT idx
;
7419 vec
<constructor_elt
, va_gc
> *v1
= CONSTRUCTOR_ELTS (t1
);
7420 vec
<constructor_elt
, va_gc
> *v2
= CONSTRUCTOR_ELTS (t2
);
7422 if (vec_safe_length (v1
) != vec_safe_length (v2
))
7425 for (idx
= 0; idx
< vec_safe_length (v1
); ++idx
)
7426 /* ??? Should we handle also fields here? */
7427 if (!simple_cst_equal ((*v1
)[idx
].value
, (*v2
)[idx
].value
))
7433 return simple_cst_equal (TREE_OPERAND (t1
, 0), TREE_OPERAND (t2
, 0));
7436 cmp
= simple_cst_equal (CALL_EXPR_FN (t1
), CALL_EXPR_FN (t2
));
7439 if (call_expr_nargs (t1
) != call_expr_nargs (t2
))
7442 const_tree arg1
, arg2
;
7443 const_call_expr_arg_iterator iter1
, iter2
;
7444 for (arg1
= first_const_call_expr_arg (t1
, &iter1
),
7445 arg2
= first_const_call_expr_arg (t2
, &iter2
);
7447 arg1
= next_const_call_expr_arg (&iter1
),
7448 arg2
= next_const_call_expr_arg (&iter2
))
7450 cmp
= simple_cst_equal (arg1
, arg2
);
7454 return arg1
== arg2
;
7458 /* Special case: if either target is an unallocated VAR_DECL,
7459 it means that it's going to be unified with whatever the
7460 TARGET_EXPR is really supposed to initialize, so treat it
7461 as being equivalent to anything. */
7462 if ((TREE_CODE (TREE_OPERAND (t1
, 0)) == VAR_DECL
7463 && DECL_NAME (TREE_OPERAND (t1
, 0)) == NULL_TREE
7464 && !DECL_RTL_SET_P (TREE_OPERAND (t1
, 0)))
7465 || (TREE_CODE (TREE_OPERAND (t2
, 0)) == VAR_DECL
7466 && DECL_NAME (TREE_OPERAND (t2
, 0)) == NULL_TREE
7467 && !DECL_RTL_SET_P (TREE_OPERAND (t2
, 0))))
7470 cmp
= simple_cst_equal (TREE_OPERAND (t1
, 0), TREE_OPERAND (t2
, 0));
7475 return simple_cst_equal (TREE_OPERAND (t1
, 1), TREE_OPERAND (t2
, 1));
7477 case WITH_CLEANUP_EXPR
:
7478 cmp
= simple_cst_equal (TREE_OPERAND (t1
, 0), TREE_OPERAND (t2
, 0));
7482 return simple_cst_equal (TREE_OPERAND (t1
, 1), TREE_OPERAND (t1
, 1));
7485 if (TREE_OPERAND (t1
, 1) == TREE_OPERAND (t2
, 1))
7486 return simple_cst_equal (TREE_OPERAND (t1
, 0), TREE_OPERAND (t2
, 0));
7500 /* This general rule works for most tree codes. All exceptions should be
7501 handled above. If this is a language-specific tree code, we can't
7502 trust what might be in the operand, so say we don't know
7504 if ((int) code1
>= (int) LAST_AND_UNUSED_TREE_CODE
)
7507 switch (TREE_CODE_CLASS (code1
))
7511 case tcc_comparison
:
7512 case tcc_expression
:
7516 for (i
= 0; i
< TREE_CODE_LENGTH (code1
); i
++)
7518 cmp
= simple_cst_equal (TREE_OPERAND (t1
, i
), TREE_OPERAND (t2
, i
));
7530 /* Compare the value of T, an INTEGER_CST, with U, an unsigned integer value.
7531 Return -1, 0, or 1 if the value of T is less than, equal to, or greater
7532 than U, respectively. */
7535 compare_tree_int (const_tree t
, unsigned HOST_WIDE_INT u
)
7537 if (tree_int_cst_sgn (t
) < 0)
7539 else if (!tree_fits_uhwi_p (t
))
7541 else if (TREE_INT_CST_LOW (t
) == u
)
7543 else if (TREE_INT_CST_LOW (t
) < u
)
7549 /* Return true if SIZE represents a constant size that is in bounds of
7550 what the middle-end and the backend accepts (covering not more than
7551 half of the address-space). */
7554 valid_constant_size_p (const_tree size
)
7556 if (! tree_fits_uhwi_p (size
)
7557 || TREE_OVERFLOW (size
)
7558 || tree_int_cst_sign_bit (size
) != 0)
7563 /* Return the precision of the type, or for a complex or vector type the
7564 precision of the type of its elements. */
7567 element_precision (const_tree type
)
7570 type
= TREE_TYPE (type
);
7571 enum tree_code code
= TREE_CODE (type
);
7572 if (code
== COMPLEX_TYPE
|| code
== VECTOR_TYPE
)
7573 type
= TREE_TYPE (type
);
7575 return TYPE_PRECISION (type
);
7578 /* Return true if CODE represents an associative tree code. Otherwise
7581 associative_tree_code (enum tree_code code
)
7600 /* Return true if CODE represents a commutative tree code. Otherwise
7603 commutative_tree_code (enum tree_code code
)
7609 case MULT_HIGHPART_EXPR
:
7617 case UNORDERED_EXPR
:
7621 case TRUTH_AND_EXPR
:
7622 case TRUTH_XOR_EXPR
:
7624 case WIDEN_MULT_EXPR
:
7625 case VEC_WIDEN_MULT_HI_EXPR
:
7626 case VEC_WIDEN_MULT_LO_EXPR
:
7627 case VEC_WIDEN_MULT_EVEN_EXPR
:
7628 case VEC_WIDEN_MULT_ODD_EXPR
:
7637 /* Return true if CODE represents a ternary tree code for which the
7638 first two operands are commutative. Otherwise return false. */
7640 commutative_ternary_tree_code (enum tree_code code
)
7644 case WIDEN_MULT_PLUS_EXPR
:
7645 case WIDEN_MULT_MINUS_EXPR
:
7656 /* Returns true if CODE can overflow. */
7659 operation_can_overflow (enum tree_code code
)
7667 /* Can overflow in various ways. */
7669 case TRUNC_DIV_EXPR
:
7670 case EXACT_DIV_EXPR
:
7671 case FLOOR_DIV_EXPR
:
7673 /* For INT_MIN / -1. */
7680 /* These operators cannot overflow. */
7685 /* Returns true if CODE operating on operands of type TYPE doesn't overflow, or
7686 ftrapv doesn't generate trapping insns for CODE. */
7689 operation_no_trapping_overflow (tree type
, enum tree_code code
)
7691 gcc_checking_assert (ANY_INTEGRAL_TYPE_P (type
));
7693 /* We don't generate instructions that trap on overflow for complex or vector
7695 if (!INTEGRAL_TYPE_P (type
))
7698 if (!TYPE_OVERFLOW_TRAPS (type
))
7708 /* These operators can overflow, and -ftrapv generates trapping code for
7711 case TRUNC_DIV_EXPR
:
7712 case EXACT_DIV_EXPR
:
7713 case FLOOR_DIV_EXPR
:
7716 /* These operators can overflow, but -ftrapv does not generate trapping
7720 /* These operators cannot overflow. */
7728 /* Generate a hash value for an expression. This can be used iteratively
7729 by passing a previous result as the HSTATE argument.
7731 This function is intended to produce the same hash for expressions which
7732 would compare equal using operand_equal_p. */
7734 add_expr (const_tree t
, inchash::hash
&hstate
)
7737 enum tree_code code
;
7738 enum tree_code_class tclass
;
7742 hstate
.merge_hash (0);
7746 code
= TREE_CODE (t
);
7750 /* Alas, constants aren't shared, so we can't rely on pointer
7753 hstate
.merge_hash (0);
7756 for (i
= 0; i
< TREE_INT_CST_NUNITS (t
); i
++)
7757 hstate
.add_wide_int (TREE_INT_CST_ELT (t
, i
));
7761 unsigned int val2
= real_hash (TREE_REAL_CST_PTR (t
));
7762 hstate
.merge_hash (val2
);
7767 unsigned int val2
= fixed_hash (TREE_FIXED_CST_PTR (t
));
7768 hstate
.merge_hash (val2
);
7772 hstate
.add ((const void *) TREE_STRING_POINTER (t
), TREE_STRING_LENGTH (t
));
7775 inchash::add_expr (TREE_REALPART (t
), hstate
);
7776 inchash::add_expr (TREE_IMAGPART (t
), hstate
);
7781 for (i
= 0; i
< VECTOR_CST_NELTS (t
); ++i
)
7782 inchash::add_expr (VECTOR_CST_ELT (t
, i
), hstate
);
7786 /* We can just compare by pointer. */
7787 hstate
.add_wide_int (SSA_NAME_VERSION (t
));
7789 case PLACEHOLDER_EXPR
:
7790 /* The node itself doesn't matter. */
7793 /* A list of expressions, for a CALL_EXPR or as the elements of a
7795 for (; t
; t
= TREE_CHAIN (t
))
7796 inchash::add_expr (TREE_VALUE (t
), hstate
);
7800 unsigned HOST_WIDE_INT idx
;
7802 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (t
), idx
, field
, value
)
7804 inchash::add_expr (field
, hstate
);
7805 inchash::add_expr (value
, hstate
);
7810 /* When referring to a built-in FUNCTION_DECL, use the __builtin__ form.
7811 Otherwise nodes that compare equal according to operand_equal_p might
7812 get different hash codes. However, don't do this for machine specific
7813 or front end builtins, since the function code is overloaded in those
7815 if (DECL_BUILT_IN_CLASS (t
) == BUILT_IN_NORMAL
7816 && builtin_decl_explicit_p (DECL_FUNCTION_CODE (t
)))
7818 t
= builtin_decl_explicit (DECL_FUNCTION_CODE (t
));
7819 code
= TREE_CODE (t
);
7823 tclass
= TREE_CODE_CLASS (code
);
7825 if (tclass
== tcc_declaration
)
7827 /* DECL's have a unique ID */
7828 hstate
.add_wide_int (DECL_UID (t
));
7832 gcc_assert (IS_EXPR_CODE_CLASS (tclass
));
7834 hstate
.add_object (code
);
7836 /* Don't hash the type, that can lead to having nodes which
7837 compare equal according to operand_equal_p, but which
7838 have different hash codes. */
7839 if (CONVERT_EXPR_CODE_P (code
)
7840 || code
== NON_LVALUE_EXPR
)
7842 /* Make sure to include signness in the hash computation. */
7843 hstate
.add_int (TYPE_UNSIGNED (TREE_TYPE (t
)));
7844 inchash::add_expr (TREE_OPERAND (t
, 0), hstate
);
7847 else if (commutative_tree_code (code
))
7849 /* It's a commutative expression. We want to hash it the same
7850 however it appears. We do this by first hashing both operands
7851 and then rehashing based on the order of their independent
7853 inchash::hash one
, two
;
7854 inchash::add_expr (TREE_OPERAND (t
, 0), one
);
7855 inchash::add_expr (TREE_OPERAND (t
, 1), two
);
7856 hstate
.add_commutative (one
, two
);
7859 for (i
= TREE_OPERAND_LENGTH (t
) - 1; i
>= 0; --i
)
7860 inchash::add_expr (TREE_OPERAND (t
, i
), hstate
);
7868 /* Constructors for pointer, array and function types.
7869 (RECORD_TYPE, UNION_TYPE and ENUMERAL_TYPE nodes are
7870 constructed by language-dependent code, not here.) */
7872 /* Construct, lay out and return the type of pointers to TO_TYPE with
7873 mode MODE. If CAN_ALIAS_ALL is TRUE, indicate this type can
7874 reference all of memory. If such a type has already been
7875 constructed, reuse it. */
7878 build_pointer_type_for_mode (tree to_type
, machine_mode mode
,
7882 bool could_alias
= can_alias_all
;
7884 if (to_type
== error_mark_node
)
7885 return error_mark_node
;
7887 /* If the pointed-to type has the may_alias attribute set, force
7888 a TYPE_REF_CAN_ALIAS_ALL pointer to be generated. */
7889 if (lookup_attribute ("may_alias", TYPE_ATTRIBUTES (to_type
)))
7890 can_alias_all
= true;
7892 /* In some cases, languages will have things that aren't a POINTER_TYPE
7893 (such as a RECORD_TYPE for fat pointers in Ada) as TYPE_POINTER_TO.
7894 In that case, return that type without regard to the rest of our
7897 ??? This is a kludge, but consistent with the way this function has
7898 always operated and there doesn't seem to be a good way to avoid this
7900 if (TYPE_POINTER_TO (to_type
) != 0
7901 && TREE_CODE (TYPE_POINTER_TO (to_type
)) != POINTER_TYPE
)
7902 return TYPE_POINTER_TO (to_type
);
7904 /* First, if we already have a type for pointers to TO_TYPE and it's
7905 the proper mode, use it. */
7906 for (t
= TYPE_POINTER_TO (to_type
); t
; t
= TYPE_NEXT_PTR_TO (t
))
7907 if (TYPE_MODE (t
) == mode
&& TYPE_REF_CAN_ALIAS_ALL (t
) == can_alias_all
)
7910 t
= make_node (POINTER_TYPE
);
7912 TREE_TYPE (t
) = to_type
;
7913 SET_TYPE_MODE (t
, mode
);
7914 TYPE_REF_CAN_ALIAS_ALL (t
) = can_alias_all
;
7915 TYPE_NEXT_PTR_TO (t
) = TYPE_POINTER_TO (to_type
);
7916 TYPE_POINTER_TO (to_type
) = t
;
7918 /* During LTO we do not set TYPE_CANONICAL of pointers and references. */
7919 if (TYPE_STRUCTURAL_EQUALITY_P (to_type
) || in_lto_p
)
7920 SET_TYPE_STRUCTURAL_EQUALITY (t
);
7921 else if (TYPE_CANONICAL (to_type
) != to_type
|| could_alias
)
7923 = build_pointer_type_for_mode (TYPE_CANONICAL (to_type
),
7926 /* Lay out the type. This function has many callers that are concerned
7927 with expression-construction, and this simplifies them all. */
7933 /* By default build pointers in ptr_mode. */
7936 build_pointer_type (tree to_type
)
7938 addr_space_t as
= to_type
== error_mark_node
? ADDR_SPACE_GENERIC
7939 : TYPE_ADDR_SPACE (to_type
);
7940 machine_mode pointer_mode
= targetm
.addr_space
.pointer_mode (as
);
7941 return build_pointer_type_for_mode (to_type
, pointer_mode
, false);
7944 /* Same as build_pointer_type_for_mode, but for REFERENCE_TYPE. */
7947 build_reference_type_for_mode (tree to_type
, machine_mode mode
,
7951 bool could_alias
= can_alias_all
;
7953 if (to_type
== error_mark_node
)
7954 return error_mark_node
;
7956 /* If the pointed-to type has the may_alias attribute set, force
7957 a TYPE_REF_CAN_ALIAS_ALL pointer to be generated. */
7958 if (lookup_attribute ("may_alias", TYPE_ATTRIBUTES (to_type
)))
7959 can_alias_all
= true;
7961 /* In some cases, languages will have things that aren't a REFERENCE_TYPE
7962 (such as a RECORD_TYPE for fat pointers in Ada) as TYPE_REFERENCE_TO.
7963 In that case, return that type without regard to the rest of our
7966 ??? This is a kludge, but consistent with the way this function has
7967 always operated and there doesn't seem to be a good way to avoid this
7969 if (TYPE_REFERENCE_TO (to_type
) != 0
7970 && TREE_CODE (TYPE_REFERENCE_TO (to_type
)) != REFERENCE_TYPE
)
7971 return TYPE_REFERENCE_TO (to_type
);
7973 /* First, if we already have a type for pointers to TO_TYPE and it's
7974 the proper mode, use it. */
7975 for (t
= TYPE_REFERENCE_TO (to_type
); t
; t
= TYPE_NEXT_REF_TO (t
))
7976 if (TYPE_MODE (t
) == mode
&& TYPE_REF_CAN_ALIAS_ALL (t
) == can_alias_all
)
7979 t
= make_node (REFERENCE_TYPE
);
7981 TREE_TYPE (t
) = to_type
;
7982 SET_TYPE_MODE (t
, mode
);
7983 TYPE_REF_CAN_ALIAS_ALL (t
) = can_alias_all
;
7984 TYPE_NEXT_REF_TO (t
) = TYPE_REFERENCE_TO (to_type
);
7985 TYPE_REFERENCE_TO (to_type
) = t
;
7987 /* During LTO we do not set TYPE_CANONICAL of pointers and references. */
7988 if (TYPE_STRUCTURAL_EQUALITY_P (to_type
) || in_lto_p
)
7989 SET_TYPE_STRUCTURAL_EQUALITY (t
);
7990 else if (TYPE_CANONICAL (to_type
) != to_type
|| could_alias
)
7992 = build_reference_type_for_mode (TYPE_CANONICAL (to_type
),
8001 /* Build the node for the type of references-to-TO_TYPE by default
8005 build_reference_type (tree to_type
)
8007 addr_space_t as
= to_type
== error_mark_node
? ADDR_SPACE_GENERIC
8008 : TYPE_ADDR_SPACE (to_type
);
8009 machine_mode pointer_mode
= targetm
.addr_space
.pointer_mode (as
);
8010 return build_reference_type_for_mode (to_type
, pointer_mode
, false);
8013 #define MAX_INT_CACHED_PREC \
8014 (HOST_BITS_PER_WIDE_INT > 64 ? HOST_BITS_PER_WIDE_INT : 64)
8015 static GTY(()) tree nonstandard_integer_type_cache
[2 * MAX_INT_CACHED_PREC
+ 2];
8017 /* Builds a signed or unsigned integer type of precision PRECISION.
8018 Used for C bitfields whose precision does not match that of
8019 built-in target types. */
8021 build_nonstandard_integer_type (unsigned HOST_WIDE_INT precision
,
8027 unsignedp
= MAX_INT_CACHED_PREC
+ 1;
8029 if (precision
<= MAX_INT_CACHED_PREC
)
8031 itype
= nonstandard_integer_type_cache
[precision
+ unsignedp
];
8036 itype
= make_node (INTEGER_TYPE
);
8037 TYPE_PRECISION (itype
) = precision
;
8040 fixup_unsigned_type (itype
);
8042 fixup_signed_type (itype
);
8045 if (tree_fits_uhwi_p (TYPE_MAX_VALUE (itype
)))
8046 ret
= type_hash_canon (tree_to_uhwi (TYPE_MAX_VALUE (itype
)), itype
);
8047 if (precision
<= MAX_INT_CACHED_PREC
)
8048 nonstandard_integer_type_cache
[precision
+ unsignedp
] = ret
;
8053 #define MAX_BOOL_CACHED_PREC \
8054 (HOST_BITS_PER_WIDE_INT > 64 ? HOST_BITS_PER_WIDE_INT : 64)
8055 static GTY(()) tree nonstandard_boolean_type_cache
[MAX_BOOL_CACHED_PREC
+ 1];
8057 /* Builds a boolean type of precision PRECISION.
8058 Used for boolean vectors to choose proper vector element size. */
8060 build_nonstandard_boolean_type (unsigned HOST_WIDE_INT precision
)
8064 if (precision
<= MAX_BOOL_CACHED_PREC
)
8066 type
= nonstandard_boolean_type_cache
[precision
];
8071 type
= make_node (BOOLEAN_TYPE
);
8072 TYPE_PRECISION (type
) = precision
;
8073 fixup_signed_type (type
);
8075 if (precision
<= MAX_INT_CACHED_PREC
)
8076 nonstandard_boolean_type_cache
[precision
] = type
;
8081 /* Create a range of some discrete type TYPE (an INTEGER_TYPE, ENUMERAL_TYPE
8082 or BOOLEAN_TYPE) with low bound LOWVAL and high bound HIGHVAL. If SHARED
8083 is true, reuse such a type that has already been constructed. */
8086 build_range_type_1 (tree type
, tree lowval
, tree highval
, bool shared
)
8088 tree itype
= make_node (INTEGER_TYPE
);
8089 inchash::hash hstate
;
8091 TREE_TYPE (itype
) = type
;
8093 TYPE_MIN_VALUE (itype
) = fold_convert (type
, lowval
);
8094 TYPE_MAX_VALUE (itype
) = highval
? fold_convert (type
, highval
) : NULL
;
8096 TYPE_PRECISION (itype
) = TYPE_PRECISION (type
);
8097 SET_TYPE_MODE (itype
, TYPE_MODE (type
));
8098 TYPE_SIZE (itype
) = TYPE_SIZE (type
);
8099 TYPE_SIZE_UNIT (itype
) = TYPE_SIZE_UNIT (type
);
8100 TYPE_ALIGN (itype
) = TYPE_ALIGN (type
);
8101 TYPE_USER_ALIGN (itype
) = TYPE_USER_ALIGN (type
);
8106 if ((TYPE_MIN_VALUE (itype
)
8107 && TREE_CODE (TYPE_MIN_VALUE (itype
)) != INTEGER_CST
)
8108 || (TYPE_MAX_VALUE (itype
)
8109 && TREE_CODE (TYPE_MAX_VALUE (itype
)) != INTEGER_CST
))
8111 /* Since we cannot reliably merge this type, we need to compare it using
8112 structural equality checks. */
8113 SET_TYPE_STRUCTURAL_EQUALITY (itype
);
8117 inchash::add_expr (TYPE_MIN_VALUE (itype
), hstate
);
8118 inchash::add_expr (TYPE_MAX_VALUE (itype
), hstate
);
8119 hstate
.merge_hash (TYPE_HASH (type
));
8120 itype
= type_hash_canon (hstate
.end (), itype
);
8125 /* Wrapper around build_range_type_1 with SHARED set to true. */
8128 build_range_type (tree type
, tree lowval
, tree highval
)
8130 return build_range_type_1 (type
, lowval
, highval
, true);
8133 /* Wrapper around build_range_type_1 with SHARED set to false. */
8136 build_nonshared_range_type (tree type
, tree lowval
, tree highval
)
8138 return build_range_type_1 (type
, lowval
, highval
, false);
8141 /* Create a type of integers to be the TYPE_DOMAIN of an ARRAY_TYPE.
8142 MAXVAL should be the maximum value in the domain
8143 (one less than the length of the array).
8145 The maximum value that MAXVAL can have is INT_MAX for a HOST_WIDE_INT.
8146 We don't enforce this limit, that is up to caller (e.g. language front end).
8147 The limit exists because the result is a signed type and we don't handle
8148 sizes that use more than one HOST_WIDE_INT. */
8151 build_index_type (tree maxval
)
8153 return build_range_type (sizetype
, size_zero_node
, maxval
);
8156 /* Return true if the debug information for TYPE, a subtype, should be emitted
8157 as a subrange type. If so, set LOWVAL to the low bound and HIGHVAL to the
8158 high bound, respectively. Sometimes doing so unnecessarily obfuscates the
8159 debug info and doesn't reflect the source code. */
8162 subrange_type_for_debug_p (const_tree type
, tree
*lowval
, tree
*highval
)
8164 tree base_type
= TREE_TYPE (type
), low
, high
;
8166 /* Subrange types have a base type which is an integral type. */
8167 if (!INTEGRAL_TYPE_P (base_type
))
8170 /* Get the real bounds of the subtype. */
8171 if (lang_hooks
.types
.get_subrange_bounds
)
8172 lang_hooks
.types
.get_subrange_bounds (type
, &low
, &high
);
8175 low
= TYPE_MIN_VALUE (type
);
8176 high
= TYPE_MAX_VALUE (type
);
8179 /* If the type and its base type have the same representation and the same
8180 name, then the type is not a subrange but a copy of the base type. */
8181 if ((TREE_CODE (base_type
) == INTEGER_TYPE
8182 || TREE_CODE (base_type
) == BOOLEAN_TYPE
)
8183 && int_size_in_bytes (type
) == int_size_in_bytes (base_type
)
8184 && tree_int_cst_equal (low
, TYPE_MIN_VALUE (base_type
))
8185 && tree_int_cst_equal (high
, TYPE_MAX_VALUE (base_type
))
8186 && TYPE_IDENTIFIER (type
) == TYPE_IDENTIFIER (base_type
))
8196 /* Construct, lay out and return the type of arrays of elements with ELT_TYPE
8197 and number of elements specified by the range of values of INDEX_TYPE.
8198 If SHARED is true, reuse such a type that has already been constructed. */
8201 build_array_type_1 (tree elt_type
, tree index_type
, bool shared
)
8205 if (TREE_CODE (elt_type
) == FUNCTION_TYPE
)
8207 error ("arrays of functions are not meaningful");
8208 elt_type
= integer_type_node
;
8211 t
= make_node (ARRAY_TYPE
);
8212 TREE_TYPE (t
) = elt_type
;
8213 TYPE_DOMAIN (t
) = index_type
;
8214 TYPE_ADDR_SPACE (t
) = TYPE_ADDR_SPACE (elt_type
);
8217 /* If the element type is incomplete at this point we get marked for
8218 structural equality. Do not record these types in the canonical
8220 if (TYPE_STRUCTURAL_EQUALITY_P (t
))
8225 inchash::hash hstate
;
8226 hstate
.add_object (TYPE_HASH (elt_type
));
8228 hstate
.add_object (TYPE_HASH (index_type
));
8229 t
= type_hash_canon (hstate
.end (), t
);
8232 if (TYPE_CANONICAL (t
) == t
)
8234 if (TYPE_STRUCTURAL_EQUALITY_P (elt_type
)
8235 || (index_type
&& TYPE_STRUCTURAL_EQUALITY_P (index_type
))
8237 SET_TYPE_STRUCTURAL_EQUALITY (t
);
8238 else if (TYPE_CANONICAL (elt_type
) != elt_type
8239 || (index_type
&& TYPE_CANONICAL (index_type
) != index_type
))
8241 = build_array_type_1 (TYPE_CANONICAL (elt_type
),
8243 ? TYPE_CANONICAL (index_type
) : NULL_TREE
,
8250 /* Wrapper around build_array_type_1 with SHARED set to true. */
8253 build_array_type (tree elt_type
, tree index_type
)
8255 return build_array_type_1 (elt_type
, index_type
, true);
8258 /* Wrapper around build_array_type_1 with SHARED set to false. */
8261 build_nonshared_array_type (tree elt_type
, tree index_type
)
8263 return build_array_type_1 (elt_type
, index_type
, false);
8266 /* Return a representation of ELT_TYPE[NELTS], using indices of type
8270 build_array_type_nelts (tree elt_type
, unsigned HOST_WIDE_INT nelts
)
8272 return build_array_type (elt_type
, build_index_type (size_int (nelts
- 1)));
8275 /* Recursively examines the array elements of TYPE, until a non-array
8276 element type is found. */
8279 strip_array_types (tree type
)
8281 while (TREE_CODE (type
) == ARRAY_TYPE
)
8282 type
= TREE_TYPE (type
);
8287 /* Computes the canonical argument types from the argument type list
8290 Upon return, *ANY_STRUCTURAL_P will be true iff either it was true
8291 on entry to this function, or if any of the ARGTYPES are
8294 Upon return, *ANY_NONCANONICAL_P will be true iff either it was
8295 true on entry to this function, or if any of the ARGTYPES are
8298 Returns a canonical argument list, which may be ARGTYPES when the
8299 canonical argument list is unneeded (i.e., *ANY_STRUCTURAL_P is
8300 true) or would not differ from ARGTYPES. */
8303 maybe_canonicalize_argtypes (tree argtypes
,
8304 bool *any_structural_p
,
8305 bool *any_noncanonical_p
)
8308 bool any_noncanonical_argtypes_p
= false;
8310 for (arg
= argtypes
; arg
&& !(*any_structural_p
); arg
= TREE_CHAIN (arg
))
8312 if (!TREE_VALUE (arg
) || TREE_VALUE (arg
) == error_mark_node
)
8313 /* Fail gracefully by stating that the type is structural. */
8314 *any_structural_p
= true;
8315 else if (TYPE_STRUCTURAL_EQUALITY_P (TREE_VALUE (arg
)))
8316 *any_structural_p
= true;
8317 else if (TYPE_CANONICAL (TREE_VALUE (arg
)) != TREE_VALUE (arg
)
8318 || TREE_PURPOSE (arg
))
8319 /* If the argument has a default argument, we consider it
8320 non-canonical even though the type itself is canonical.
8321 That way, different variants of function and method types
8322 with default arguments will all point to the variant with
8323 no defaults as their canonical type. */
8324 any_noncanonical_argtypes_p
= true;
8327 if (*any_structural_p
)
8330 if (any_noncanonical_argtypes_p
)
8332 /* Build the canonical list of argument types. */
8333 tree canon_argtypes
= NULL_TREE
;
8334 bool is_void
= false;
8336 for (arg
= argtypes
; arg
; arg
= TREE_CHAIN (arg
))
8338 if (arg
== void_list_node
)
8341 canon_argtypes
= tree_cons (NULL_TREE
,
8342 TYPE_CANONICAL (TREE_VALUE (arg
)),
8346 canon_argtypes
= nreverse (canon_argtypes
);
8348 canon_argtypes
= chainon (canon_argtypes
, void_list_node
);
8350 /* There is a non-canonical type. */
8351 *any_noncanonical_p
= true;
8352 return canon_argtypes
;
8355 /* The canonical argument types are the same as ARGTYPES. */
8359 /* Construct, lay out and return
8360 the type of functions returning type VALUE_TYPE
8361 given arguments of types ARG_TYPES.
8362 ARG_TYPES is a chain of TREE_LIST nodes whose TREE_VALUEs
8363 are data type nodes for the arguments of the function.
8364 If such a type has already been constructed, reuse it. */
8367 build_function_type (tree value_type
, tree arg_types
)
8370 inchash::hash hstate
;
8371 bool any_structural_p
, any_noncanonical_p
;
8372 tree canon_argtypes
;
8374 if (TREE_CODE (value_type
) == FUNCTION_TYPE
)
8376 error ("function return type cannot be function");
8377 value_type
= integer_type_node
;
8380 /* Make a node of the sort we want. */
8381 t
= make_node (FUNCTION_TYPE
);
8382 TREE_TYPE (t
) = value_type
;
8383 TYPE_ARG_TYPES (t
) = arg_types
;
8385 /* If we already have such a type, use the old one. */
8386 hstate
.add_object (TYPE_HASH (value_type
));
8387 type_hash_list (arg_types
, hstate
);
8388 t
= type_hash_canon (hstate
.end (), t
);
8390 /* Set up the canonical type. */
8391 any_structural_p
= TYPE_STRUCTURAL_EQUALITY_P (value_type
);
8392 any_noncanonical_p
= TYPE_CANONICAL (value_type
) != value_type
;
8393 canon_argtypes
= maybe_canonicalize_argtypes (arg_types
,
8395 &any_noncanonical_p
);
8396 if (any_structural_p
)
8397 SET_TYPE_STRUCTURAL_EQUALITY (t
);
8398 else if (any_noncanonical_p
)
8399 TYPE_CANONICAL (t
) = build_function_type (TYPE_CANONICAL (value_type
),
8402 if (!COMPLETE_TYPE_P (t
))
8407 /* Build a function type. The RETURN_TYPE is the type returned by the
8408 function. If VAARGS is set, no void_type_node is appended to the
8409 the list. ARGP must be always be terminated be a NULL_TREE. */
8412 build_function_type_list_1 (bool vaargs
, tree return_type
, va_list argp
)
8416 t
= va_arg (argp
, tree
);
8417 for (args
= NULL_TREE
; t
!= NULL_TREE
; t
= va_arg (argp
, tree
))
8418 args
= tree_cons (NULL_TREE
, t
, args
);
8423 if (args
!= NULL_TREE
)
8424 args
= nreverse (args
);
8425 gcc_assert (last
!= void_list_node
);
8427 else if (args
== NULL_TREE
)
8428 args
= void_list_node
;
8432 args
= nreverse (args
);
8433 TREE_CHAIN (last
) = void_list_node
;
8435 args
= build_function_type (return_type
, args
);
8440 /* Build a function type. The RETURN_TYPE is the type returned by the
8441 function. If additional arguments are provided, they are
8442 additional argument types. The list of argument types must always
8443 be terminated by NULL_TREE. */
8446 build_function_type_list (tree return_type
, ...)
8451 va_start (p
, return_type
);
8452 args
= build_function_type_list_1 (false, return_type
, p
);
8457 /* Build a variable argument function type. The RETURN_TYPE is the
8458 type returned by the function. If additional arguments are provided,
8459 they are additional argument types. The list of argument types must
8460 always be terminated by NULL_TREE. */
8463 build_varargs_function_type_list (tree return_type
, ...)
8468 va_start (p
, return_type
);
8469 args
= build_function_type_list_1 (true, return_type
, p
);
8475 /* Build a function type. RETURN_TYPE is the type returned by the
8476 function; VAARGS indicates whether the function takes varargs. The
8477 function takes N named arguments, the types of which are provided in
8481 build_function_type_array_1 (bool vaargs
, tree return_type
, int n
,
8485 tree t
= vaargs
? NULL_TREE
: void_list_node
;
8487 for (i
= n
- 1; i
>= 0; i
--)
8488 t
= tree_cons (NULL_TREE
, arg_types
[i
], t
);
8490 return build_function_type (return_type
, t
);
8493 /* Build a function type. RETURN_TYPE is the type returned by the
8494 function. The function takes N named arguments, the types of which
8495 are provided in ARG_TYPES. */
8498 build_function_type_array (tree return_type
, int n
, tree
*arg_types
)
8500 return build_function_type_array_1 (false, return_type
, n
, arg_types
);
8503 /* Build a variable argument function type. RETURN_TYPE is the type
8504 returned by the function. The function takes N named arguments, the
8505 types of which are provided in ARG_TYPES. */
8508 build_varargs_function_type_array (tree return_type
, int n
, tree
*arg_types
)
8510 return build_function_type_array_1 (true, return_type
, n
, arg_types
);
8513 /* Build a METHOD_TYPE for a member of BASETYPE. The RETTYPE (a TYPE)
8514 and ARGTYPES (a TREE_LIST) are the return type and arguments types
8515 for the method. An implicit additional parameter (of type
8516 pointer-to-BASETYPE) is added to the ARGTYPES. */
8519 build_method_type_directly (tree basetype
,
8525 inchash::hash hstate
;
8526 bool any_structural_p
, any_noncanonical_p
;
8527 tree canon_argtypes
;
8529 /* Make a node of the sort we want. */
8530 t
= make_node (METHOD_TYPE
);
8532 TYPE_METHOD_BASETYPE (t
) = TYPE_MAIN_VARIANT (basetype
);
8533 TREE_TYPE (t
) = rettype
;
8534 ptype
= build_pointer_type (basetype
);
8536 /* The actual arglist for this function includes a "hidden" argument
8537 which is "this". Put it into the list of argument types. */
8538 argtypes
= tree_cons (NULL_TREE
, ptype
, argtypes
);
8539 TYPE_ARG_TYPES (t
) = argtypes
;
8541 /* If we already have such a type, use the old one. */
8542 hstate
.add_object (TYPE_HASH (basetype
));
8543 hstate
.add_object (TYPE_HASH (rettype
));
8544 type_hash_list (argtypes
, hstate
);
8545 t
= type_hash_canon (hstate
.end (), t
);
8547 /* Set up the canonical type. */
8549 = (TYPE_STRUCTURAL_EQUALITY_P (basetype
)
8550 || TYPE_STRUCTURAL_EQUALITY_P (rettype
));
8552 = (TYPE_CANONICAL (basetype
) != basetype
8553 || TYPE_CANONICAL (rettype
) != rettype
);
8554 canon_argtypes
= maybe_canonicalize_argtypes (TREE_CHAIN (argtypes
),
8556 &any_noncanonical_p
);
8557 if (any_structural_p
)
8558 SET_TYPE_STRUCTURAL_EQUALITY (t
);
8559 else if (any_noncanonical_p
)
8561 = build_method_type_directly (TYPE_CANONICAL (basetype
),
8562 TYPE_CANONICAL (rettype
),
8564 if (!COMPLETE_TYPE_P (t
))
8570 /* Construct, lay out and return the type of methods belonging to class
8571 BASETYPE and whose arguments and values are described by TYPE.
8572 If that type exists already, reuse it.
8573 TYPE must be a FUNCTION_TYPE node. */
8576 build_method_type (tree basetype
, tree type
)
8578 gcc_assert (TREE_CODE (type
) == FUNCTION_TYPE
);
8580 return build_method_type_directly (basetype
,
8582 TYPE_ARG_TYPES (type
));
8585 /* Construct, lay out and return the type of offsets to a value
8586 of type TYPE, within an object of type BASETYPE.
8587 If a suitable offset type exists already, reuse it. */
8590 build_offset_type (tree basetype
, tree type
)
8593 inchash::hash hstate
;
8595 /* Make a node of the sort we want. */
8596 t
= make_node (OFFSET_TYPE
);
8598 TYPE_OFFSET_BASETYPE (t
) = TYPE_MAIN_VARIANT (basetype
);
8599 TREE_TYPE (t
) = type
;
8601 /* If we already have such a type, use the old one. */
8602 hstate
.add_object (TYPE_HASH (basetype
));
8603 hstate
.add_object (TYPE_HASH (type
));
8604 t
= type_hash_canon (hstate
.end (), t
);
8606 if (!COMPLETE_TYPE_P (t
))
8609 if (TYPE_CANONICAL (t
) == t
)
8611 if (TYPE_STRUCTURAL_EQUALITY_P (basetype
)
8612 || TYPE_STRUCTURAL_EQUALITY_P (type
))
8613 SET_TYPE_STRUCTURAL_EQUALITY (t
);
8614 else if (TYPE_CANONICAL (TYPE_MAIN_VARIANT (basetype
)) != basetype
8615 || TYPE_CANONICAL (type
) != type
)
8617 = build_offset_type (TYPE_CANONICAL (TYPE_MAIN_VARIANT (basetype
)),
8618 TYPE_CANONICAL (type
));
8624 /* Create a complex type whose components are COMPONENT_TYPE. */
8627 build_complex_type (tree component_type
)
8630 inchash::hash hstate
;
8632 gcc_assert (INTEGRAL_TYPE_P (component_type
)
8633 || SCALAR_FLOAT_TYPE_P (component_type
)
8634 || FIXED_POINT_TYPE_P (component_type
));
8636 /* Make a node of the sort we want. */
8637 t
= make_node (COMPLEX_TYPE
);
8639 TREE_TYPE (t
) = TYPE_MAIN_VARIANT (component_type
);
8641 /* If we already have such a type, use the old one. */
8642 hstate
.add_object (TYPE_HASH (component_type
));
8643 t
= type_hash_canon (hstate
.end (), t
);
8645 if (!COMPLETE_TYPE_P (t
))
8648 if (TYPE_CANONICAL (t
) == t
)
8650 if (TYPE_STRUCTURAL_EQUALITY_P (component_type
))
8651 SET_TYPE_STRUCTURAL_EQUALITY (t
);
8652 else if (TYPE_CANONICAL (component_type
) != component_type
)
8654 = build_complex_type (TYPE_CANONICAL (component_type
));
8657 /* We need to create a name, since complex is a fundamental type. */
8658 if (! TYPE_NAME (t
))
8661 if (component_type
== char_type_node
)
8662 name
= "complex char";
8663 else if (component_type
== signed_char_type_node
)
8664 name
= "complex signed char";
8665 else if (component_type
== unsigned_char_type_node
)
8666 name
= "complex unsigned char";
8667 else if (component_type
== short_integer_type_node
)
8668 name
= "complex short int";
8669 else if (component_type
== short_unsigned_type_node
)
8670 name
= "complex short unsigned int";
8671 else if (component_type
== integer_type_node
)
8672 name
= "complex int";
8673 else if (component_type
== unsigned_type_node
)
8674 name
= "complex unsigned int";
8675 else if (component_type
== long_integer_type_node
)
8676 name
= "complex long int";
8677 else if (component_type
== long_unsigned_type_node
)
8678 name
= "complex long unsigned int";
8679 else if (component_type
== long_long_integer_type_node
)
8680 name
= "complex long long int";
8681 else if (component_type
== long_long_unsigned_type_node
)
8682 name
= "complex long long unsigned int";
8687 TYPE_NAME (t
) = build_decl (UNKNOWN_LOCATION
, TYPE_DECL
,
8688 get_identifier (name
), t
);
8691 return build_qualified_type (t
, TYPE_QUALS (component_type
));
8694 /* If TYPE is a real or complex floating-point type and the target
8695 does not directly support arithmetic on TYPE then return the wider
8696 type to be used for arithmetic on TYPE. Otherwise, return
8700 excess_precision_type (tree type
)
8702 if (flag_excess_precision
!= EXCESS_PRECISION_FAST
)
8704 int flt_eval_method
= TARGET_FLT_EVAL_METHOD
;
8705 switch (TREE_CODE (type
))
8708 switch (flt_eval_method
)
8711 if (TYPE_MODE (type
) == TYPE_MODE (float_type_node
))
8712 return double_type_node
;
8715 if (TYPE_MODE (type
) == TYPE_MODE (float_type_node
)
8716 || TYPE_MODE (type
) == TYPE_MODE (double_type_node
))
8717 return long_double_type_node
;
8724 if (TREE_CODE (TREE_TYPE (type
)) != REAL_TYPE
)
8726 switch (flt_eval_method
)
8729 if (TYPE_MODE (TREE_TYPE (type
)) == TYPE_MODE (float_type_node
))
8730 return complex_double_type_node
;
8733 if (TYPE_MODE (TREE_TYPE (type
)) == TYPE_MODE (float_type_node
)
8734 || (TYPE_MODE (TREE_TYPE (type
))
8735 == TYPE_MODE (double_type_node
)))
8736 return complex_long_double_type_node
;
8749 /* Return OP, stripped of any conversions to wider types as much as is safe.
8750 Converting the value back to OP's type makes a value equivalent to OP.
8752 If FOR_TYPE is nonzero, we return a value which, if converted to
8753 type FOR_TYPE, would be equivalent to converting OP to type FOR_TYPE.
8755 OP must have integer, real or enumeral type. Pointers are not allowed!
8757 There are some cases where the obvious value we could return
8758 would regenerate to OP if converted to OP's type,
8759 but would not extend like OP to wider types.
8760 If FOR_TYPE indicates such extension is contemplated, we eschew such values.
8761 For example, if OP is (unsigned short)(signed char)-1,
8762 we avoid returning (signed char)-1 if FOR_TYPE is int,
8763 even though extending that to an unsigned short would regenerate OP,
8764 since the result of extending (signed char)-1 to (int)
8765 is different from (int) OP. */
8768 get_unwidened (tree op
, tree for_type
)
8770 /* Set UNS initially if converting OP to FOR_TYPE is a zero-extension. */
8771 tree type
= TREE_TYPE (op
);
8773 = TYPE_PRECISION (for_type
!= 0 ? for_type
: type
);
8775 = (for_type
!= 0 && for_type
!= type
8776 && final_prec
> TYPE_PRECISION (type
)
8777 && TYPE_UNSIGNED (type
));
8780 while (CONVERT_EXPR_P (op
))
8784 /* TYPE_PRECISION on vector types has different meaning
8785 (TYPE_VECTOR_SUBPARTS) and casts from vectors are view conversions,
8786 so avoid them here. */
8787 if (TREE_CODE (TREE_TYPE (TREE_OPERAND (op
, 0))) == VECTOR_TYPE
)
8790 bitschange
= TYPE_PRECISION (TREE_TYPE (op
))
8791 - TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (op
, 0)));
8793 /* Truncations are many-one so cannot be removed.
8794 Unless we are later going to truncate down even farther. */
8796 && final_prec
> TYPE_PRECISION (TREE_TYPE (op
)))
8799 /* See what's inside this conversion. If we decide to strip it,
8801 op
= TREE_OPERAND (op
, 0);
8803 /* If we have not stripped any zero-extensions (uns is 0),
8804 we can strip any kind of extension.
8805 If we have previously stripped a zero-extension,
8806 only zero-extensions can safely be stripped.
8807 Any extension can be stripped if the bits it would produce
8808 are all going to be discarded later by truncating to FOR_TYPE. */
8812 if (! uns
|| final_prec
<= TYPE_PRECISION (TREE_TYPE (op
)))
8814 /* TYPE_UNSIGNED says whether this is a zero-extension.
8815 Let's avoid computing it if it does not affect WIN
8816 and if UNS will not be needed again. */
8818 || CONVERT_EXPR_P (op
))
8819 && TYPE_UNSIGNED (TREE_TYPE (op
)))
8827 /* If we finally reach a constant see if it fits in for_type and
8828 in that case convert it. */
8830 && TREE_CODE (win
) == INTEGER_CST
8831 && TREE_TYPE (win
) != for_type
8832 && int_fits_type_p (win
, for_type
))
8833 win
= fold_convert (for_type
, win
);
8838 /* Return OP or a simpler expression for a narrower value
8839 which can be sign-extended or zero-extended to give back OP.
8840 Store in *UNSIGNEDP_PTR either 1 if the value should be zero-extended
8841 or 0 if the value should be sign-extended. */
8844 get_narrower (tree op
, int *unsignedp_ptr
)
8849 bool integral_p
= INTEGRAL_TYPE_P (TREE_TYPE (op
));
8851 while (TREE_CODE (op
) == NOP_EXPR
)
8854 = (TYPE_PRECISION (TREE_TYPE (op
))
8855 - TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (op
, 0))));
8857 /* Truncations are many-one so cannot be removed. */
8861 /* See what's inside this conversion. If we decide to strip it,
8866 op
= TREE_OPERAND (op
, 0);
8867 /* An extension: the outermost one can be stripped,
8868 but remember whether it is zero or sign extension. */
8870 uns
= TYPE_UNSIGNED (TREE_TYPE (op
));
8871 /* Otherwise, if a sign extension has been stripped,
8872 only sign extensions can now be stripped;
8873 if a zero extension has been stripped, only zero-extensions. */
8874 else if (uns
!= TYPE_UNSIGNED (TREE_TYPE (op
)))
8878 else /* bitschange == 0 */
8880 /* A change in nominal type can always be stripped, but we must
8881 preserve the unsignedness. */
8883 uns
= TYPE_UNSIGNED (TREE_TYPE (op
));
8885 op
= TREE_OPERAND (op
, 0);
8886 /* Keep trying to narrow, but don't assign op to win if it
8887 would turn an integral type into something else. */
8888 if (INTEGRAL_TYPE_P (TREE_TYPE (op
)) != integral_p
)
8895 if (TREE_CODE (op
) == COMPONENT_REF
8896 /* Since type_for_size always gives an integer type. */
8897 && TREE_CODE (TREE_TYPE (op
)) != REAL_TYPE
8898 && TREE_CODE (TREE_TYPE (op
)) != FIXED_POINT_TYPE
8899 /* Ensure field is laid out already. */
8900 && DECL_SIZE (TREE_OPERAND (op
, 1)) != 0
8901 && tree_fits_uhwi_p (DECL_SIZE (TREE_OPERAND (op
, 1))))
8903 unsigned HOST_WIDE_INT innerprec
8904 = tree_to_uhwi (DECL_SIZE (TREE_OPERAND (op
, 1)));
8905 int unsignedp
= (DECL_UNSIGNED (TREE_OPERAND (op
, 1))
8906 || TYPE_UNSIGNED (TREE_TYPE (TREE_OPERAND (op
, 1))));
8907 tree type
= lang_hooks
.types
.type_for_size (innerprec
, unsignedp
);
8909 /* We can get this structure field in a narrower type that fits it,
8910 but the resulting extension to its nominal type (a fullword type)
8911 must satisfy the same conditions as for other extensions.
8913 Do this only for fields that are aligned (not bit-fields),
8914 because when bit-field insns will be used there is no
8915 advantage in doing this. */
8917 if (innerprec
< TYPE_PRECISION (TREE_TYPE (op
))
8918 && ! DECL_BIT_FIELD (TREE_OPERAND (op
, 1))
8919 && (first
|| uns
== DECL_UNSIGNED (TREE_OPERAND (op
, 1)))
8923 uns
= DECL_UNSIGNED (TREE_OPERAND (op
, 1));
8924 win
= fold_convert (type
, op
);
8928 *unsignedp_ptr
= uns
;
8932 /* Returns true if integer constant C has a value that is permissible
8933 for type TYPE (an INTEGER_TYPE). */
8936 int_fits_type_p (const_tree c
, const_tree type
)
8938 tree type_low_bound
, type_high_bound
;
8939 bool ok_for_low_bound
, ok_for_high_bound
;
8940 signop sgn_c
= TYPE_SIGN (TREE_TYPE (c
));
8943 type_low_bound
= TYPE_MIN_VALUE (type
);
8944 type_high_bound
= TYPE_MAX_VALUE (type
);
8946 /* If at least one bound of the type is a constant integer, we can check
8947 ourselves and maybe make a decision. If no such decision is possible, but
8948 this type is a subtype, try checking against that. Otherwise, use
8949 fits_to_tree_p, which checks against the precision.
8951 Compute the status for each possibly constant bound, and return if we see
8952 one does not match. Use ok_for_xxx_bound for this purpose, assigning -1
8953 for "unknown if constant fits", 0 for "constant known *not* to fit" and 1
8954 for "constant known to fit". */
8956 /* Check if c >= type_low_bound. */
8957 if (type_low_bound
&& TREE_CODE (type_low_bound
) == INTEGER_CST
)
8959 if (tree_int_cst_lt (c
, type_low_bound
))
8961 ok_for_low_bound
= true;
8964 ok_for_low_bound
= false;
8966 /* Check if c <= type_high_bound. */
8967 if (type_high_bound
&& TREE_CODE (type_high_bound
) == INTEGER_CST
)
8969 if (tree_int_cst_lt (type_high_bound
, c
))
8971 ok_for_high_bound
= true;
8974 ok_for_high_bound
= false;
8976 /* If the constant fits both bounds, the result is known. */
8977 if (ok_for_low_bound
&& ok_for_high_bound
)
8980 /* Perform some generic filtering which may allow making a decision
8981 even if the bounds are not constant. First, negative integers
8982 never fit in unsigned types, */
8983 if (TYPE_UNSIGNED (type
) && sgn_c
== SIGNED
&& wi::neg_p (c
))
8986 /* Second, narrower types always fit in wider ones. */
8987 if (TYPE_PRECISION (type
) > TYPE_PRECISION (TREE_TYPE (c
)))
8990 /* Third, unsigned integers with top bit set never fit signed types. */
8991 if (!TYPE_UNSIGNED (type
) && sgn_c
== UNSIGNED
)
8993 int prec
= GET_MODE_PRECISION (TYPE_MODE (TREE_TYPE (c
))) - 1;
8994 if (prec
< TYPE_PRECISION (TREE_TYPE (c
)))
8996 /* When a tree_cst is converted to a wide-int, the precision
8997 is taken from the type. However, if the precision of the
8998 mode underneath the type is smaller than that, it is
8999 possible that the value will not fit. The test below
9000 fails if any bit is set between the sign bit of the
9001 underlying mode and the top bit of the type. */
9002 if (wi::ne_p (wi::zext (c
, prec
- 1), c
))
9005 else if (wi::neg_p (c
))
9009 /* If we haven't been able to decide at this point, there nothing more we
9010 can check ourselves here. Look at the base type if we have one and it
9011 has the same precision. */
9012 if (TREE_CODE (type
) == INTEGER_TYPE
9013 && TREE_TYPE (type
) != 0
9014 && TYPE_PRECISION (type
) == TYPE_PRECISION (TREE_TYPE (type
)))
9016 type
= TREE_TYPE (type
);
9020 /* Or to fits_to_tree_p, if nothing else. */
9021 return wi::fits_to_tree_p (c
, type
);
9024 /* Stores bounds of an integer TYPE in MIN and MAX. If TYPE has non-constant
9025 bounds or is a POINTER_TYPE, the maximum and/or minimum values that can be
9026 represented (assuming two's-complement arithmetic) within the bit
9027 precision of the type are returned instead. */
9030 get_type_static_bounds (const_tree type
, mpz_t min
, mpz_t max
)
9032 if (!POINTER_TYPE_P (type
) && TYPE_MIN_VALUE (type
)
9033 && TREE_CODE (TYPE_MIN_VALUE (type
)) == INTEGER_CST
)
9034 wi::to_mpz (TYPE_MIN_VALUE (type
), min
, TYPE_SIGN (type
));
9037 if (TYPE_UNSIGNED (type
))
9038 mpz_set_ui (min
, 0);
9041 wide_int mn
= wi::min_value (TYPE_PRECISION (type
), SIGNED
);
9042 wi::to_mpz (mn
, min
, SIGNED
);
9046 if (!POINTER_TYPE_P (type
) && TYPE_MAX_VALUE (type
)
9047 && TREE_CODE (TYPE_MAX_VALUE (type
)) == INTEGER_CST
)
9048 wi::to_mpz (TYPE_MAX_VALUE (type
), max
, TYPE_SIGN (type
));
9051 wide_int mn
= wi::max_value (TYPE_PRECISION (type
), TYPE_SIGN (type
));
9052 wi::to_mpz (mn
, max
, TYPE_SIGN (type
));
9056 /* Return true if VAR is an automatic variable defined in function FN. */
9059 auto_var_in_fn_p (const_tree var
, const_tree fn
)
9061 return (DECL_P (var
) && DECL_CONTEXT (var
) == fn
9062 && ((((TREE_CODE (var
) == VAR_DECL
&& ! DECL_EXTERNAL (var
))
9063 || TREE_CODE (var
) == PARM_DECL
)
9064 && ! TREE_STATIC (var
))
9065 || TREE_CODE (var
) == LABEL_DECL
9066 || TREE_CODE (var
) == RESULT_DECL
));
9069 /* Subprogram of following function. Called by walk_tree.
9071 Return *TP if it is an automatic variable or parameter of the
9072 function passed in as DATA. */
9075 find_var_from_fn (tree
*tp
, int *walk_subtrees
, void *data
)
9077 tree fn
= (tree
) data
;
9082 else if (DECL_P (*tp
)
9083 && auto_var_in_fn_p (*tp
, fn
))
9089 /* Returns true if T is, contains, or refers to a type with variable
9090 size. For METHOD_TYPEs and FUNCTION_TYPEs we exclude the
9091 arguments, but not the return type. If FN is nonzero, only return
9092 true if a modifier of the type or position of FN is a variable or
9093 parameter inside FN.
9095 This concept is more general than that of C99 'variably modified types':
9096 in C99, a struct type is never variably modified because a VLA may not
9097 appear as a structure member. However, in GNU C code like:
9099 struct S { int i[f()]; };
9101 is valid, and other languages may define similar constructs. */
9104 variably_modified_type_p (tree type
, tree fn
)
9108 /* Test if T is either variable (if FN is zero) or an expression containing
9109 a variable in FN. If TYPE isn't gimplified, return true also if
9110 gimplify_one_sizepos would gimplify the expression into a local
9112 #define RETURN_TRUE_IF_VAR(T) \
9113 do { tree _t = (T); \
9114 if (_t != NULL_TREE \
9115 && _t != error_mark_node \
9116 && TREE_CODE (_t) != INTEGER_CST \
9117 && TREE_CODE (_t) != PLACEHOLDER_EXPR \
9119 || (!TYPE_SIZES_GIMPLIFIED (type) \
9120 && !is_gimple_sizepos (_t)) \
9121 || walk_tree (&_t, find_var_from_fn, fn, NULL))) \
9122 return true; } while (0)
9124 if (type
== error_mark_node
)
9127 /* If TYPE itself has variable size, it is variably modified. */
9128 RETURN_TRUE_IF_VAR (TYPE_SIZE (type
));
9129 RETURN_TRUE_IF_VAR (TYPE_SIZE_UNIT (type
));
9131 switch (TREE_CODE (type
))
9134 case REFERENCE_TYPE
:
9136 if (variably_modified_type_p (TREE_TYPE (type
), fn
))
9142 /* If TYPE is a function type, it is variably modified if the
9143 return type is variably modified. */
9144 if (variably_modified_type_p (TREE_TYPE (type
), fn
))
9150 case FIXED_POINT_TYPE
:
9153 /* Scalar types are variably modified if their end points
9155 RETURN_TRUE_IF_VAR (TYPE_MIN_VALUE (type
));
9156 RETURN_TRUE_IF_VAR (TYPE_MAX_VALUE (type
));
9161 case QUAL_UNION_TYPE
:
9162 /* We can't see if any of the fields are variably-modified by the
9163 definition we normally use, since that would produce infinite
9164 recursion via pointers. */
9165 /* This is variably modified if some field's type is. */
9166 for (t
= TYPE_FIELDS (type
); t
; t
= DECL_CHAIN (t
))
9167 if (TREE_CODE (t
) == FIELD_DECL
)
9169 RETURN_TRUE_IF_VAR (DECL_FIELD_OFFSET (t
));
9170 RETURN_TRUE_IF_VAR (DECL_SIZE (t
));
9171 RETURN_TRUE_IF_VAR (DECL_SIZE_UNIT (t
));
9173 if (TREE_CODE (type
) == QUAL_UNION_TYPE
)
9174 RETURN_TRUE_IF_VAR (DECL_QUALIFIER (t
));
9179 /* Do not call ourselves to avoid infinite recursion. This is
9180 variably modified if the element type is. */
9181 RETURN_TRUE_IF_VAR (TYPE_SIZE (TREE_TYPE (type
)));
9182 RETURN_TRUE_IF_VAR (TYPE_SIZE_UNIT (TREE_TYPE (type
)));
9189 /* The current language may have other cases to check, but in general,
9190 all other types are not variably modified. */
9191 return lang_hooks
.tree_inlining
.var_mod_type_p (type
, fn
);
9193 #undef RETURN_TRUE_IF_VAR
9196 /* Given a DECL or TYPE, return the scope in which it was declared, or
9197 NULL_TREE if there is no containing scope. */
9200 get_containing_scope (const_tree t
)
9202 return (TYPE_P (t
) ? TYPE_CONTEXT (t
) : DECL_CONTEXT (t
));
9205 /* Return the innermost context enclosing DECL that is
9206 a FUNCTION_DECL, or zero if none. */
9209 decl_function_context (const_tree decl
)
9213 if (TREE_CODE (decl
) == ERROR_MARK
)
9216 /* C++ virtual functions use DECL_CONTEXT for the class of the vtable
9217 where we look up the function at runtime. Such functions always take
9218 a first argument of type 'pointer to real context'.
9220 C++ should really be fixed to use DECL_CONTEXT for the real context,
9221 and use something else for the "virtual context". */
9222 else if (TREE_CODE (decl
) == FUNCTION_DECL
&& DECL_VINDEX (decl
))
9225 (TREE_TYPE (TREE_VALUE (TYPE_ARG_TYPES (TREE_TYPE (decl
)))));
9227 context
= DECL_CONTEXT (decl
);
9229 while (context
&& TREE_CODE (context
) != FUNCTION_DECL
)
9231 if (TREE_CODE (context
) == BLOCK
)
9232 context
= BLOCK_SUPERCONTEXT (context
);
9234 context
= get_containing_scope (context
);
9240 /* Return the innermost context enclosing DECL that is
9241 a RECORD_TYPE, UNION_TYPE or QUAL_UNION_TYPE, or zero if none.
9242 TYPE_DECLs and FUNCTION_DECLs are transparent to this function. */
9245 decl_type_context (const_tree decl
)
9247 tree context
= DECL_CONTEXT (decl
);
9250 switch (TREE_CODE (context
))
9252 case NAMESPACE_DECL
:
9253 case TRANSLATION_UNIT_DECL
:
9258 case QUAL_UNION_TYPE
:
9263 context
= DECL_CONTEXT (context
);
9267 context
= BLOCK_SUPERCONTEXT (context
);
9277 /* CALL is a CALL_EXPR. Return the declaration for the function
9278 called, or NULL_TREE if the called function cannot be
9282 get_callee_fndecl (const_tree call
)
9286 if (call
== error_mark_node
)
9287 return error_mark_node
;
9289 /* It's invalid to call this function with anything but a
9291 gcc_assert (TREE_CODE (call
) == CALL_EXPR
);
9293 /* The first operand to the CALL is the address of the function
9295 addr
= CALL_EXPR_FN (call
);
9297 /* If there is no function, return early. */
9298 if (addr
== NULL_TREE
)
9303 /* If this is a readonly function pointer, extract its initial value. */
9304 if (DECL_P (addr
) && TREE_CODE (addr
) != FUNCTION_DECL
9305 && TREE_READONLY (addr
) && ! TREE_THIS_VOLATILE (addr
)
9306 && DECL_INITIAL (addr
))
9307 addr
= DECL_INITIAL (addr
);
9309 /* If the address is just `&f' for some function `f', then we know
9310 that `f' is being called. */
9311 if (TREE_CODE (addr
) == ADDR_EXPR
9312 && TREE_CODE (TREE_OPERAND (addr
, 0)) == FUNCTION_DECL
)
9313 return TREE_OPERAND (addr
, 0);
9315 /* We couldn't figure out what was being called. */
9319 /* If CALL_EXPR CALL calls a normal built-in function or an internal function,
9320 return the associated function code, otherwise return CFN_LAST. */
9323 get_call_combined_fn (const_tree call
)
9325 /* It's invalid to call this function with anything but a CALL_EXPR. */
9326 gcc_assert (TREE_CODE (call
) == CALL_EXPR
);
9328 if (!CALL_EXPR_FN (call
))
9329 return as_combined_fn (CALL_EXPR_IFN (call
));
9331 tree fndecl
= get_callee_fndecl (call
);
9332 if (fndecl
&& DECL_BUILT_IN_CLASS (fndecl
) == BUILT_IN_NORMAL
)
9333 return as_combined_fn (DECL_FUNCTION_CODE (fndecl
));
9338 #define TREE_MEM_USAGE_SPACES 40
9340 /* Print debugging information about tree nodes generated during the compile,
9341 and any language-specific information. */
9344 dump_tree_statistics (void)
9346 if (GATHER_STATISTICS
)
9349 int total_nodes
, total_bytes
;
9350 fprintf (stderr
, "\nKind Nodes Bytes\n");
9351 mem_usage::print_dash_line (TREE_MEM_USAGE_SPACES
);
9352 total_nodes
= total_bytes
= 0;
9353 for (i
= 0; i
< (int) all_kinds
; i
++)
9355 fprintf (stderr
, "%-20s %7d %10d\n", tree_node_kind_names
[i
],
9356 tree_node_counts
[i
], tree_node_sizes
[i
]);
9357 total_nodes
+= tree_node_counts
[i
];
9358 total_bytes
+= tree_node_sizes
[i
];
9360 mem_usage::print_dash_line (TREE_MEM_USAGE_SPACES
);
9361 fprintf (stderr
, "%-20s %7d %10d\n", "Total", total_nodes
, total_bytes
);
9362 mem_usage::print_dash_line (TREE_MEM_USAGE_SPACES
);
9363 fprintf (stderr
, "Code Nodes\n");
9364 mem_usage::print_dash_line (TREE_MEM_USAGE_SPACES
);
9365 for (i
= 0; i
< (int) MAX_TREE_CODES
; i
++)
9366 fprintf (stderr
, "%-32s %7d\n", get_tree_code_name ((enum tree_code
) i
),
9367 tree_code_counts
[i
]);
9368 mem_usage::print_dash_line (TREE_MEM_USAGE_SPACES
);
9369 fprintf (stderr
, "\n");
9370 ssanames_print_statistics ();
9371 fprintf (stderr
, "\n");
9372 phinodes_print_statistics ();
9373 fprintf (stderr
, "\n");
9376 fprintf (stderr
, "(No per-node statistics)\n");
9378 print_type_hash_statistics ();
9379 print_debug_expr_statistics ();
9380 print_value_expr_statistics ();
9381 lang_hooks
.print_statistics ();
9384 #define FILE_FUNCTION_FORMAT "_GLOBAL__%s_%s"
9386 /* Generate a crc32 of a byte. */
9389 crc32_unsigned_bits (unsigned chksum
, unsigned value
, unsigned bits
)
9393 for (ix
= bits
; ix
--; value
<<= 1)
9397 feedback
= (value
^ chksum
) & 0x80000000 ? 0x04c11db7 : 0;
9404 /* Generate a crc32 of a 32-bit unsigned. */
9407 crc32_unsigned (unsigned chksum
, unsigned value
)
9409 return crc32_unsigned_bits (chksum
, value
, 32);
9412 /* Generate a crc32 of a byte. */
9415 crc32_byte (unsigned chksum
, char byte
)
9417 return crc32_unsigned_bits (chksum
, (unsigned) byte
<< 24, 8);
9420 /* Generate a crc32 of a string. */
9423 crc32_string (unsigned chksum
, const char *string
)
9427 chksum
= crc32_byte (chksum
, *string
);
9433 /* P is a string that will be used in a symbol. Mask out any characters
9434 that are not valid in that context. */
9437 clean_symbol_name (char *p
)
9441 #ifndef NO_DOLLAR_IN_LABEL /* this for `$'; unlikely, but... -- kr */
9444 #ifndef NO_DOT_IN_LABEL /* this for `.'; unlikely, but... */
9451 /* For anonymous aggregate types, we need some sort of name to
9452 hold on to. In practice, this should not appear, but it should
9453 not be harmful if it does. */
9455 anon_aggrname_p(const_tree id_node
)
9457 #ifndef NO_DOT_IN_LABEL
9458 return (IDENTIFIER_POINTER (id_node
)[0] == '.'
9459 && IDENTIFIER_POINTER (id_node
)[1] == '_');
9460 #else /* NO_DOT_IN_LABEL */
9461 #ifndef NO_DOLLAR_IN_LABEL
9462 return (IDENTIFIER_POINTER (id_node
)[0] == '$' \
9463 && IDENTIFIER_POINTER (id_node
)[1] == '_');
9464 #else /* NO_DOLLAR_IN_LABEL */
9465 #define ANON_AGGRNAME_PREFIX "__anon_"
9466 return (!strncmp (IDENTIFIER_POINTER (id_node
), ANON_AGGRNAME_PREFIX
,
9467 sizeof (ANON_AGGRNAME_PREFIX
) - 1));
9468 #endif /* NO_DOLLAR_IN_LABEL */
9469 #endif /* NO_DOT_IN_LABEL */
9472 /* Return a format for an anonymous aggregate name. */
9474 anon_aggrname_format()
9476 #ifndef NO_DOT_IN_LABEL
9478 #else /* NO_DOT_IN_LABEL */
9479 #ifndef NO_DOLLAR_IN_LABEL
9481 #else /* NO_DOLLAR_IN_LABEL */
9483 #endif /* NO_DOLLAR_IN_LABEL */
9484 #endif /* NO_DOT_IN_LABEL */
9487 /* Generate a name for a special-purpose function.
9488 The generated name may need to be unique across the whole link.
9489 Changes to this function may also require corresponding changes to
9490 xstrdup_mask_random.
9491 TYPE is some string to identify the purpose of this function to the
9492 linker or collect2; it must start with an uppercase letter,
9494 I - for constructors
9496 N - for C++ anonymous namespaces
9497 F - for DWARF unwind frame information. */
9500 get_file_function_name (const char *type
)
9506 /* If we already have a name we know to be unique, just use that. */
9507 if (first_global_object_name
)
9508 p
= q
= ASTRDUP (first_global_object_name
);
9509 /* If the target is handling the constructors/destructors, they
9510 will be local to this file and the name is only necessary for
9512 We also assign sub_I and sub_D sufixes to constructors called from
9513 the global static constructors. These are always local. */
9514 else if (((type
[0] == 'I' || type
[0] == 'D') && targetm
.have_ctors_dtors
)
9515 || (strncmp (type
, "sub_", 4) == 0
9516 && (type
[4] == 'I' || type
[4] == 'D')))
9518 const char *file
= main_input_filename
;
9520 file
= LOCATION_FILE (input_location
);
9521 /* Just use the file's basename, because the full pathname
9522 might be quite long. */
9523 p
= q
= ASTRDUP (lbasename (file
));
9527 /* Otherwise, the name must be unique across the entire link.
9528 We don't have anything that we know to be unique to this translation
9529 unit, so use what we do have and throw in some randomness. */
9531 const char *name
= weak_global_object_name
;
9532 const char *file
= main_input_filename
;
9537 file
= LOCATION_FILE (input_location
);
9539 len
= strlen (file
);
9540 q
= (char *) alloca (9 + 17 + len
+ 1);
9541 memcpy (q
, file
, len
+ 1);
9543 snprintf (q
+ len
, 9 + 17 + 1, "_%08X_" HOST_WIDE_INT_PRINT_HEX
,
9544 crc32_string (0, name
), get_random_seed (false));
9549 clean_symbol_name (q
);
9550 buf
= (char *) alloca (sizeof (FILE_FUNCTION_FORMAT
) + strlen (p
)
9553 /* Set up the name of the file-level functions we may need.
9554 Use a global object (which is already required to be unique over
9555 the program) rather than the file name (which imposes extra
9557 sprintf (buf
, FILE_FUNCTION_FORMAT
, type
, p
);
9559 return get_identifier (buf
);
9562 #if defined ENABLE_TREE_CHECKING && (GCC_VERSION >= 2007)
9564 /* Complain that the tree code of NODE does not match the expected 0
9565 terminated list of trailing codes. The trailing code list can be
9566 empty, for a more vague error message. FILE, LINE, and FUNCTION
9567 are of the caller. */
9570 tree_check_failed (const_tree node
, const char *file
,
9571 int line
, const char *function
, ...)
9575 unsigned length
= 0;
9576 enum tree_code code
;
9578 va_start (args
, function
);
9579 while ((code
= (enum tree_code
) va_arg (args
, int)))
9580 length
+= 4 + strlen (get_tree_code_name (code
));
9585 va_start (args
, function
);
9586 length
+= strlen ("expected ");
9587 buffer
= tmp
= (char *) alloca (length
);
9589 while ((code
= (enum tree_code
) va_arg (args
, int)))
9591 const char *prefix
= length
? " or " : "expected ";
9593 strcpy (tmp
+ length
, prefix
);
9594 length
+= strlen (prefix
);
9595 strcpy (tmp
+ length
, get_tree_code_name (code
));
9596 length
+= strlen (get_tree_code_name (code
));
9601 buffer
= "unexpected node";
9603 internal_error ("tree check: %s, have %s in %s, at %s:%d",
9604 buffer
, get_tree_code_name (TREE_CODE (node
)),
9605 function
, trim_filename (file
), line
);
9608 /* Complain that the tree code of NODE does match the expected 0
9609 terminated list of trailing codes. FILE, LINE, and FUNCTION are of
9613 tree_not_check_failed (const_tree node
, const char *file
,
9614 int line
, const char *function
, ...)
9618 unsigned length
= 0;
9619 enum tree_code code
;
9621 va_start (args
, function
);
9622 while ((code
= (enum tree_code
) va_arg (args
, int)))
9623 length
+= 4 + strlen (get_tree_code_name (code
));
9625 va_start (args
, function
);
9626 buffer
= (char *) alloca (length
);
9628 while ((code
= (enum tree_code
) va_arg (args
, int)))
9632 strcpy (buffer
+ length
, " or ");
9635 strcpy (buffer
+ length
, get_tree_code_name (code
));
9636 length
+= strlen (get_tree_code_name (code
));
9640 internal_error ("tree check: expected none of %s, have %s in %s, at %s:%d",
9641 buffer
, get_tree_code_name (TREE_CODE (node
)),
9642 function
, trim_filename (file
), line
);
9645 /* Similar to tree_check_failed, except that we check for a class of tree
9646 code, given in CL. */
9649 tree_class_check_failed (const_tree node
, const enum tree_code_class cl
,
9650 const char *file
, int line
, const char *function
)
9653 ("tree check: expected class %qs, have %qs (%s) in %s, at %s:%d",
9654 TREE_CODE_CLASS_STRING (cl
),
9655 TREE_CODE_CLASS_STRING (TREE_CODE_CLASS (TREE_CODE (node
))),
9656 get_tree_code_name (TREE_CODE (node
)), function
, trim_filename (file
), line
);
9659 /* Similar to tree_check_failed, except that instead of specifying a
9660 dozen codes, use the knowledge that they're all sequential. */
9663 tree_range_check_failed (const_tree node
, const char *file
, int line
,
9664 const char *function
, enum tree_code c1
,
9668 unsigned length
= 0;
9671 for (c
= c1
; c
<= c2
; ++c
)
9672 length
+= 4 + strlen (get_tree_code_name ((enum tree_code
) c
));
9674 length
+= strlen ("expected ");
9675 buffer
= (char *) alloca (length
);
9678 for (c
= c1
; c
<= c2
; ++c
)
9680 const char *prefix
= length
? " or " : "expected ";
9682 strcpy (buffer
+ length
, prefix
);
9683 length
+= strlen (prefix
);
9684 strcpy (buffer
+ length
, get_tree_code_name ((enum tree_code
) c
));
9685 length
+= strlen (get_tree_code_name ((enum tree_code
) c
));
9688 internal_error ("tree check: %s, have %s in %s, at %s:%d",
9689 buffer
, get_tree_code_name (TREE_CODE (node
)),
9690 function
, trim_filename (file
), line
);
9694 /* Similar to tree_check_failed, except that we check that a tree does
9695 not have the specified code, given in CL. */
9698 tree_not_class_check_failed (const_tree node
, const enum tree_code_class cl
,
9699 const char *file
, int line
, const char *function
)
9702 ("tree check: did not expect class %qs, have %qs (%s) in %s, at %s:%d",
9703 TREE_CODE_CLASS_STRING (cl
),
9704 TREE_CODE_CLASS_STRING (TREE_CODE_CLASS (TREE_CODE (node
))),
9705 get_tree_code_name (TREE_CODE (node
)), function
, trim_filename (file
), line
);
9709 /* Similar to tree_check_failed but applied to OMP_CLAUSE codes. */
9712 omp_clause_check_failed (const_tree node
, const char *file
, int line
,
9713 const char *function
, enum omp_clause_code code
)
9715 internal_error ("tree check: expected omp_clause %s, have %s in %s, at %s:%d",
9716 omp_clause_code_name
[code
], get_tree_code_name (TREE_CODE (node
)),
9717 function
, trim_filename (file
), line
);
9721 /* Similar to tree_range_check_failed but applied to OMP_CLAUSE codes. */
9724 omp_clause_range_check_failed (const_tree node
, const char *file
, int line
,
9725 const char *function
, enum omp_clause_code c1
,
9726 enum omp_clause_code c2
)
9729 unsigned length
= 0;
9732 for (c
= c1
; c
<= c2
; ++c
)
9733 length
+= 4 + strlen (omp_clause_code_name
[c
]);
9735 length
+= strlen ("expected ");
9736 buffer
= (char *) alloca (length
);
9739 for (c
= c1
; c
<= c2
; ++c
)
9741 const char *prefix
= length
? " or " : "expected ";
9743 strcpy (buffer
+ length
, prefix
);
9744 length
+= strlen (prefix
);
9745 strcpy (buffer
+ length
, omp_clause_code_name
[c
]);
9746 length
+= strlen (omp_clause_code_name
[c
]);
9749 internal_error ("tree check: %s, have %s in %s, at %s:%d",
9750 buffer
, omp_clause_code_name
[TREE_CODE (node
)],
9751 function
, trim_filename (file
), line
);
9755 #undef DEFTREESTRUCT
9756 #define DEFTREESTRUCT(VAL, NAME) NAME,
9758 static const char *ts_enum_names
[] = {
9759 #include "treestruct.def"
9761 #undef DEFTREESTRUCT
9763 #define TS_ENUM_NAME(EN) (ts_enum_names[(EN)])
9765 /* Similar to tree_class_check_failed, except that we check for
9766 whether CODE contains the tree structure identified by EN. */
9769 tree_contains_struct_check_failed (const_tree node
,
9770 const enum tree_node_structure_enum en
,
9771 const char *file
, int line
,
9772 const char *function
)
9775 ("tree check: expected tree that contains %qs structure, have %qs in %s, at %s:%d",
9777 get_tree_code_name (TREE_CODE (node
)), function
, trim_filename (file
), line
);
9781 /* Similar to above, except that the check is for the bounds of a TREE_VEC's
9782 (dynamically sized) vector. */
9785 tree_int_cst_elt_check_failed (int idx
, int len
, const char *file
, int line
,
9786 const char *function
)
9789 ("tree check: accessed elt %d of tree_int_cst with %d elts in %s, at %s:%d",
9790 idx
+ 1, len
, function
, trim_filename (file
), line
);
9793 /* Similar to above, except that the check is for the bounds of a TREE_VEC's
9794 (dynamically sized) vector. */
9797 tree_vec_elt_check_failed (int idx
, int len
, const char *file
, int line
,
9798 const char *function
)
9801 ("tree check: accessed elt %d of tree_vec with %d elts in %s, at %s:%d",
9802 idx
+ 1, len
, function
, trim_filename (file
), line
);
9805 /* Similar to above, except that the check is for the bounds of the operand
9806 vector of an expression node EXP. */
9809 tree_operand_check_failed (int idx
, const_tree exp
, const char *file
,
9810 int line
, const char *function
)
9812 enum tree_code code
= TREE_CODE (exp
);
9814 ("tree check: accessed operand %d of %s with %d operands in %s, at %s:%d",
9815 idx
+ 1, get_tree_code_name (code
), TREE_OPERAND_LENGTH (exp
),
9816 function
, trim_filename (file
), line
);
9819 /* Similar to above, except that the check is for the number of
9820 operands of an OMP_CLAUSE node. */
9823 omp_clause_operand_check_failed (int idx
, const_tree t
, const char *file
,
9824 int line
, const char *function
)
9827 ("tree check: accessed operand %d of omp_clause %s with %d operands "
9828 "in %s, at %s:%d", idx
+ 1, omp_clause_code_name
[OMP_CLAUSE_CODE (t
)],
9829 omp_clause_num_ops
[OMP_CLAUSE_CODE (t
)], function
,
9830 trim_filename (file
), line
);
9832 #endif /* ENABLE_TREE_CHECKING */
9834 /* Create a new vector type node holding SUBPARTS units of type INNERTYPE,
9835 and mapped to the machine mode MODE. Initialize its fields and build
9836 the information necessary for debugging output. */
9839 make_vector_type (tree innertype
, int nunits
, machine_mode mode
)
9842 inchash::hash hstate
;
9843 tree mv_innertype
= TYPE_MAIN_VARIANT (innertype
);
9845 t
= make_node (VECTOR_TYPE
);
9846 TREE_TYPE (t
) = mv_innertype
;
9847 SET_TYPE_VECTOR_SUBPARTS (t
, nunits
);
9848 SET_TYPE_MODE (t
, mode
);
9850 if (TYPE_STRUCTURAL_EQUALITY_P (mv_innertype
) || in_lto_p
)
9851 SET_TYPE_STRUCTURAL_EQUALITY (t
);
9852 else if ((TYPE_CANONICAL (mv_innertype
) != innertype
9853 || mode
!= VOIDmode
)
9854 && !VECTOR_BOOLEAN_TYPE_P (t
))
9856 = make_vector_type (TYPE_CANONICAL (mv_innertype
), nunits
, VOIDmode
);
9860 hstate
.add_wide_int (VECTOR_TYPE
);
9861 hstate
.add_wide_int (nunits
);
9862 hstate
.add_wide_int (mode
);
9863 hstate
.add_object (TYPE_HASH (TREE_TYPE (t
)));
9864 t
= type_hash_canon (hstate
.end (), t
);
9866 /* We have built a main variant, based on the main variant of the
9867 inner type. Use it to build the variant we return. */
9868 if ((TYPE_ATTRIBUTES (innertype
) || TYPE_QUALS (innertype
))
9869 && TREE_TYPE (t
) != innertype
)
9870 return build_type_attribute_qual_variant (t
,
9871 TYPE_ATTRIBUTES (innertype
),
9872 TYPE_QUALS (innertype
));
9878 make_or_reuse_type (unsigned size
, int unsignedp
)
9882 if (size
== INT_TYPE_SIZE
)
9883 return unsignedp
? unsigned_type_node
: integer_type_node
;
9884 if (size
== CHAR_TYPE_SIZE
)
9885 return unsignedp
? unsigned_char_type_node
: signed_char_type_node
;
9886 if (size
== SHORT_TYPE_SIZE
)
9887 return unsignedp
? short_unsigned_type_node
: short_integer_type_node
;
9888 if (size
== LONG_TYPE_SIZE
)
9889 return unsignedp
? long_unsigned_type_node
: long_integer_type_node
;
9890 if (size
== LONG_LONG_TYPE_SIZE
)
9891 return (unsignedp
? long_long_unsigned_type_node
9892 : long_long_integer_type_node
);
9894 for (i
= 0; i
< NUM_INT_N_ENTS
; i
++)
9895 if (size
== int_n_data
[i
].bitsize
9896 && int_n_enabled_p
[i
])
9897 return (unsignedp
? int_n_trees
[i
].unsigned_type
9898 : int_n_trees
[i
].signed_type
);
9901 return make_unsigned_type (size
);
9903 return make_signed_type (size
);
9906 /* Create or reuse a fract type by SIZE, UNSIGNEDP, and SATP. */
9909 make_or_reuse_fract_type (unsigned size
, int unsignedp
, int satp
)
9913 if (size
== SHORT_FRACT_TYPE_SIZE
)
9914 return unsignedp
? sat_unsigned_short_fract_type_node
9915 : sat_short_fract_type_node
;
9916 if (size
== FRACT_TYPE_SIZE
)
9917 return unsignedp
? sat_unsigned_fract_type_node
: sat_fract_type_node
;
9918 if (size
== LONG_FRACT_TYPE_SIZE
)
9919 return unsignedp
? sat_unsigned_long_fract_type_node
9920 : sat_long_fract_type_node
;
9921 if (size
== LONG_LONG_FRACT_TYPE_SIZE
)
9922 return unsignedp
? sat_unsigned_long_long_fract_type_node
9923 : sat_long_long_fract_type_node
;
9927 if (size
== SHORT_FRACT_TYPE_SIZE
)
9928 return unsignedp
? unsigned_short_fract_type_node
9929 : short_fract_type_node
;
9930 if (size
== FRACT_TYPE_SIZE
)
9931 return unsignedp
? unsigned_fract_type_node
: fract_type_node
;
9932 if (size
== LONG_FRACT_TYPE_SIZE
)
9933 return unsignedp
? unsigned_long_fract_type_node
9934 : long_fract_type_node
;
9935 if (size
== LONG_LONG_FRACT_TYPE_SIZE
)
9936 return unsignedp
? unsigned_long_long_fract_type_node
9937 : long_long_fract_type_node
;
9940 return make_fract_type (size
, unsignedp
, satp
);
9943 /* Create or reuse an accum type by SIZE, UNSIGNEDP, and SATP. */
9946 make_or_reuse_accum_type (unsigned size
, int unsignedp
, int satp
)
9950 if (size
== SHORT_ACCUM_TYPE_SIZE
)
9951 return unsignedp
? sat_unsigned_short_accum_type_node
9952 : sat_short_accum_type_node
;
9953 if (size
== ACCUM_TYPE_SIZE
)
9954 return unsignedp
? sat_unsigned_accum_type_node
: sat_accum_type_node
;
9955 if (size
== LONG_ACCUM_TYPE_SIZE
)
9956 return unsignedp
? sat_unsigned_long_accum_type_node
9957 : sat_long_accum_type_node
;
9958 if (size
== LONG_LONG_ACCUM_TYPE_SIZE
)
9959 return unsignedp
? sat_unsigned_long_long_accum_type_node
9960 : sat_long_long_accum_type_node
;
9964 if (size
== SHORT_ACCUM_TYPE_SIZE
)
9965 return unsignedp
? unsigned_short_accum_type_node
9966 : short_accum_type_node
;
9967 if (size
== ACCUM_TYPE_SIZE
)
9968 return unsignedp
? unsigned_accum_type_node
: accum_type_node
;
9969 if (size
== LONG_ACCUM_TYPE_SIZE
)
9970 return unsignedp
? unsigned_long_accum_type_node
9971 : long_accum_type_node
;
9972 if (size
== LONG_LONG_ACCUM_TYPE_SIZE
)
9973 return unsignedp
? unsigned_long_long_accum_type_node
9974 : long_long_accum_type_node
;
9977 return make_accum_type (size
, unsignedp
, satp
);
9981 /* Create an atomic variant node for TYPE. This routine is called
9982 during initialization of data types to create the 5 basic atomic
9983 types. The generic build_variant_type function requires these to
9984 already be set up in order to function properly, so cannot be
9985 called from there. If ALIGN is non-zero, then ensure alignment is
9986 overridden to this value. */
9989 build_atomic_base (tree type
, unsigned int align
)
9993 /* Make sure its not already registered. */
9994 if ((t
= get_qualified_type (type
, TYPE_QUAL_ATOMIC
)))
9997 t
= build_variant_type_copy (type
);
9998 set_type_quals (t
, TYPE_QUAL_ATOMIC
);
10001 TYPE_ALIGN (t
) = align
;
10006 /* Create nodes for all integer types (and error_mark_node) using the sizes
10007 of C datatypes. SIGNED_CHAR specifies whether char is signed,
10008 SHORT_DOUBLE specifies whether double should be of the same precision
10012 build_common_tree_nodes (bool signed_char
, bool short_double
)
10016 error_mark_node
= make_node (ERROR_MARK
);
10017 TREE_TYPE (error_mark_node
) = error_mark_node
;
10019 initialize_sizetypes ();
10021 /* Define both `signed char' and `unsigned char'. */
10022 signed_char_type_node
= make_signed_type (CHAR_TYPE_SIZE
);
10023 TYPE_STRING_FLAG (signed_char_type_node
) = 1;
10024 unsigned_char_type_node
= make_unsigned_type (CHAR_TYPE_SIZE
);
10025 TYPE_STRING_FLAG (unsigned_char_type_node
) = 1;
10027 /* Define `char', which is like either `signed char' or `unsigned char'
10028 but not the same as either. */
10031 ? make_signed_type (CHAR_TYPE_SIZE
)
10032 : make_unsigned_type (CHAR_TYPE_SIZE
));
10033 TYPE_STRING_FLAG (char_type_node
) = 1;
10035 short_integer_type_node
= make_signed_type (SHORT_TYPE_SIZE
);
10036 short_unsigned_type_node
= make_unsigned_type (SHORT_TYPE_SIZE
);
10037 integer_type_node
= make_signed_type (INT_TYPE_SIZE
);
10038 unsigned_type_node
= make_unsigned_type (INT_TYPE_SIZE
);
10039 long_integer_type_node
= make_signed_type (LONG_TYPE_SIZE
);
10040 long_unsigned_type_node
= make_unsigned_type (LONG_TYPE_SIZE
);
10041 long_long_integer_type_node
= make_signed_type (LONG_LONG_TYPE_SIZE
);
10042 long_long_unsigned_type_node
= make_unsigned_type (LONG_LONG_TYPE_SIZE
);
10044 for (i
= 0; i
< NUM_INT_N_ENTS
; i
++)
10046 int_n_trees
[i
].signed_type
= make_signed_type (int_n_data
[i
].bitsize
);
10047 int_n_trees
[i
].unsigned_type
= make_unsigned_type (int_n_data
[i
].bitsize
);
10048 TYPE_SIZE (int_n_trees
[i
].signed_type
) = bitsize_int (int_n_data
[i
].bitsize
);
10049 TYPE_SIZE (int_n_trees
[i
].unsigned_type
) = bitsize_int (int_n_data
[i
].bitsize
);
10051 if (int_n_data
[i
].bitsize
> LONG_LONG_TYPE_SIZE
10052 && int_n_enabled_p
[i
])
10054 integer_types
[itk_intN_0
+ i
* 2] = int_n_trees
[i
].signed_type
;
10055 integer_types
[itk_unsigned_intN_0
+ i
* 2] = int_n_trees
[i
].unsigned_type
;
10059 /* Define a boolean type. This type only represents boolean values but
10060 may be larger than char depending on the value of BOOL_TYPE_SIZE. */
10061 boolean_type_node
= make_unsigned_type (BOOL_TYPE_SIZE
);
10062 TREE_SET_CODE (boolean_type_node
, BOOLEAN_TYPE
);
10063 TYPE_PRECISION (boolean_type_node
) = 1;
10064 TYPE_MAX_VALUE (boolean_type_node
) = build_int_cst (boolean_type_node
, 1);
10066 /* Define what type to use for size_t. */
10067 if (strcmp (SIZE_TYPE
, "unsigned int") == 0)
10068 size_type_node
= unsigned_type_node
;
10069 else if (strcmp (SIZE_TYPE
, "long unsigned int") == 0)
10070 size_type_node
= long_unsigned_type_node
;
10071 else if (strcmp (SIZE_TYPE
, "long long unsigned int") == 0)
10072 size_type_node
= long_long_unsigned_type_node
;
10073 else if (strcmp (SIZE_TYPE
, "short unsigned int") == 0)
10074 size_type_node
= short_unsigned_type_node
;
10079 size_type_node
= NULL_TREE
;
10080 for (i
= 0; i
< NUM_INT_N_ENTS
; i
++)
10081 if (int_n_enabled_p
[i
])
10084 sprintf (name
, "__int%d unsigned", int_n_data
[i
].bitsize
);
10086 if (strcmp (name
, SIZE_TYPE
) == 0)
10088 size_type_node
= int_n_trees
[i
].unsigned_type
;
10091 if (size_type_node
== NULL_TREE
)
10092 gcc_unreachable ();
10095 /* Fill in the rest of the sized types. Reuse existing type nodes
10097 intQI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (QImode
), 0);
10098 intHI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (HImode
), 0);
10099 intSI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (SImode
), 0);
10100 intDI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (DImode
), 0);
10101 intTI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (TImode
), 0);
10103 unsigned_intQI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (QImode
), 1);
10104 unsigned_intHI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (HImode
), 1);
10105 unsigned_intSI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (SImode
), 1);
10106 unsigned_intDI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (DImode
), 1);
10107 unsigned_intTI_type_node
= make_or_reuse_type (GET_MODE_BITSIZE (TImode
), 1);
10109 /* Don't call build_qualified type for atomics. That routine does
10110 special processing for atomics, and until they are initialized
10111 it's better not to make that call.
10113 Check to see if there is a target override for atomic types. */
10115 atomicQI_type_node
= build_atomic_base (unsigned_intQI_type_node
,
10116 targetm
.atomic_align_for_mode (QImode
));
10117 atomicHI_type_node
= build_atomic_base (unsigned_intHI_type_node
,
10118 targetm
.atomic_align_for_mode (HImode
));
10119 atomicSI_type_node
= build_atomic_base (unsigned_intSI_type_node
,
10120 targetm
.atomic_align_for_mode (SImode
));
10121 atomicDI_type_node
= build_atomic_base (unsigned_intDI_type_node
,
10122 targetm
.atomic_align_for_mode (DImode
));
10123 atomicTI_type_node
= build_atomic_base (unsigned_intTI_type_node
,
10124 targetm
.atomic_align_for_mode (TImode
));
10126 access_public_node
= get_identifier ("public");
10127 access_protected_node
= get_identifier ("protected");
10128 access_private_node
= get_identifier ("private");
10130 /* Define these next since types below may used them. */
10131 integer_zero_node
= build_int_cst (integer_type_node
, 0);
10132 integer_one_node
= build_int_cst (integer_type_node
, 1);
10133 integer_three_node
= build_int_cst (integer_type_node
, 3);
10134 integer_minus_one_node
= build_int_cst (integer_type_node
, -1);
10136 size_zero_node
= size_int (0);
10137 size_one_node
= size_int (1);
10138 bitsize_zero_node
= bitsize_int (0);
10139 bitsize_one_node
= bitsize_int (1);
10140 bitsize_unit_node
= bitsize_int (BITS_PER_UNIT
);
10142 boolean_false_node
= TYPE_MIN_VALUE (boolean_type_node
);
10143 boolean_true_node
= TYPE_MAX_VALUE (boolean_type_node
);
10145 void_type_node
= make_node (VOID_TYPE
);
10146 layout_type (void_type_node
);
10148 pointer_bounds_type_node
= targetm
.chkp_bound_type ();
10150 /* We are not going to have real types in C with less than byte alignment,
10151 so we might as well not have any types that claim to have it. */
10152 TYPE_ALIGN (void_type_node
) = BITS_PER_UNIT
;
10153 TYPE_USER_ALIGN (void_type_node
) = 0;
10155 void_node
= make_node (VOID_CST
);
10156 TREE_TYPE (void_node
) = void_type_node
;
10158 null_pointer_node
= build_int_cst (build_pointer_type (void_type_node
), 0);
10159 layout_type (TREE_TYPE (null_pointer_node
));
10161 ptr_type_node
= build_pointer_type (void_type_node
);
10162 const_ptr_type_node
10163 = build_pointer_type (build_type_variant (void_type_node
, 1, 0));
10164 fileptr_type_node
= ptr_type_node
;
10166 pointer_sized_int_node
= build_nonstandard_integer_type (POINTER_SIZE
, 1);
10168 float_type_node
= make_node (REAL_TYPE
);
10169 TYPE_PRECISION (float_type_node
) = FLOAT_TYPE_SIZE
;
10170 layout_type (float_type_node
);
10172 double_type_node
= make_node (REAL_TYPE
);
10174 TYPE_PRECISION (double_type_node
) = FLOAT_TYPE_SIZE
;
10176 TYPE_PRECISION (double_type_node
) = DOUBLE_TYPE_SIZE
;
10177 layout_type (double_type_node
);
10179 long_double_type_node
= make_node (REAL_TYPE
);
10180 TYPE_PRECISION (long_double_type_node
) = LONG_DOUBLE_TYPE_SIZE
;
10181 layout_type (long_double_type_node
);
10183 float_ptr_type_node
= build_pointer_type (float_type_node
);
10184 double_ptr_type_node
= build_pointer_type (double_type_node
);
10185 long_double_ptr_type_node
= build_pointer_type (long_double_type_node
);
10186 integer_ptr_type_node
= build_pointer_type (integer_type_node
);
10188 /* Fixed size integer types. */
10189 uint16_type_node
= make_or_reuse_type (16, 1);
10190 uint32_type_node
= make_or_reuse_type (32, 1);
10191 uint64_type_node
= make_or_reuse_type (64, 1);
10193 /* Decimal float types. */
10194 dfloat32_type_node
= make_node (REAL_TYPE
);
10195 TYPE_PRECISION (dfloat32_type_node
) = DECIMAL32_TYPE_SIZE
;
10196 layout_type (dfloat32_type_node
);
10197 SET_TYPE_MODE (dfloat32_type_node
, SDmode
);
10198 dfloat32_ptr_type_node
= build_pointer_type (dfloat32_type_node
);
10200 dfloat64_type_node
= make_node (REAL_TYPE
);
10201 TYPE_PRECISION (dfloat64_type_node
) = DECIMAL64_TYPE_SIZE
;
10202 layout_type (dfloat64_type_node
);
10203 SET_TYPE_MODE (dfloat64_type_node
, DDmode
);
10204 dfloat64_ptr_type_node
= build_pointer_type (dfloat64_type_node
);
10206 dfloat128_type_node
= make_node (REAL_TYPE
);
10207 TYPE_PRECISION (dfloat128_type_node
) = DECIMAL128_TYPE_SIZE
;
10208 layout_type (dfloat128_type_node
);
10209 SET_TYPE_MODE (dfloat128_type_node
, TDmode
);
10210 dfloat128_ptr_type_node
= build_pointer_type (dfloat128_type_node
);
10212 complex_integer_type_node
= build_complex_type (integer_type_node
);
10213 complex_float_type_node
= build_complex_type (float_type_node
);
10214 complex_double_type_node
= build_complex_type (double_type_node
);
10215 complex_long_double_type_node
= build_complex_type (long_double_type_node
);
10217 /* Make fixed-point nodes based on sat/non-sat and signed/unsigned. */
10218 #define MAKE_FIXED_TYPE_NODE(KIND,SIZE) \
10219 sat_ ## KIND ## _type_node = \
10220 make_sat_signed_ ## KIND ## _type (SIZE); \
10221 sat_unsigned_ ## KIND ## _type_node = \
10222 make_sat_unsigned_ ## KIND ## _type (SIZE); \
10223 KIND ## _type_node = make_signed_ ## KIND ## _type (SIZE); \
10224 unsigned_ ## KIND ## _type_node = \
10225 make_unsigned_ ## KIND ## _type (SIZE);
10227 #define MAKE_FIXED_TYPE_NODE_WIDTH(KIND,WIDTH,SIZE) \
10228 sat_ ## WIDTH ## KIND ## _type_node = \
10229 make_sat_signed_ ## KIND ## _type (SIZE); \
10230 sat_unsigned_ ## WIDTH ## KIND ## _type_node = \
10231 make_sat_unsigned_ ## KIND ## _type (SIZE); \
10232 WIDTH ## KIND ## _type_node = make_signed_ ## KIND ## _type (SIZE); \
10233 unsigned_ ## WIDTH ## KIND ## _type_node = \
10234 make_unsigned_ ## KIND ## _type (SIZE);
10236 /* Make fixed-point type nodes based on four different widths. */
10237 #define MAKE_FIXED_TYPE_NODE_FAMILY(N1,N2) \
10238 MAKE_FIXED_TYPE_NODE_WIDTH (N1, short_, SHORT_ ## N2 ## _TYPE_SIZE) \
10239 MAKE_FIXED_TYPE_NODE (N1, N2 ## _TYPE_SIZE) \
10240 MAKE_FIXED_TYPE_NODE_WIDTH (N1, long_, LONG_ ## N2 ## _TYPE_SIZE) \
10241 MAKE_FIXED_TYPE_NODE_WIDTH (N1, long_long_, LONG_LONG_ ## N2 ## _TYPE_SIZE)
10243 /* Make fixed-point mode nodes based on sat/non-sat and signed/unsigned. */
10244 #define MAKE_FIXED_MODE_NODE(KIND,NAME,MODE) \
10245 NAME ## _type_node = \
10246 make_or_reuse_signed_ ## KIND ## _type (GET_MODE_BITSIZE (MODE ## mode)); \
10247 u ## NAME ## _type_node = \
10248 make_or_reuse_unsigned_ ## KIND ## _type \
10249 (GET_MODE_BITSIZE (U ## MODE ## mode)); \
10250 sat_ ## NAME ## _type_node = \
10251 make_or_reuse_sat_signed_ ## KIND ## _type \
10252 (GET_MODE_BITSIZE (MODE ## mode)); \
10253 sat_u ## NAME ## _type_node = \
10254 make_or_reuse_sat_unsigned_ ## KIND ## _type \
10255 (GET_MODE_BITSIZE (U ## MODE ## mode));
10257 /* Fixed-point type and mode nodes. */
10258 MAKE_FIXED_TYPE_NODE_FAMILY (fract
, FRACT
)
10259 MAKE_FIXED_TYPE_NODE_FAMILY (accum
, ACCUM
)
10260 MAKE_FIXED_MODE_NODE (fract
, qq
, QQ
)
10261 MAKE_FIXED_MODE_NODE (fract
, hq
, HQ
)
10262 MAKE_FIXED_MODE_NODE (fract
, sq
, SQ
)
10263 MAKE_FIXED_MODE_NODE (fract
, dq
, DQ
)
10264 MAKE_FIXED_MODE_NODE (fract
, tq
, TQ
)
10265 MAKE_FIXED_MODE_NODE (accum
, ha
, HA
)
10266 MAKE_FIXED_MODE_NODE (accum
, sa
, SA
)
10267 MAKE_FIXED_MODE_NODE (accum
, da
, DA
)
10268 MAKE_FIXED_MODE_NODE (accum
, ta
, TA
)
10271 tree t
= targetm
.build_builtin_va_list ();
10273 /* Many back-ends define record types without setting TYPE_NAME.
10274 If we copied the record type here, we'd keep the original
10275 record type without a name. This breaks name mangling. So,
10276 don't copy record types and let c_common_nodes_and_builtins()
10277 declare the type to be __builtin_va_list. */
10278 if (TREE_CODE (t
) != RECORD_TYPE
)
10279 t
= build_variant_type_copy (t
);
10281 va_list_type_node
= t
;
10285 /* Modify DECL for given flags.
10286 TM_PURE attribute is set only on types, so the function will modify
10287 DECL's type when ECF_TM_PURE is used. */
10290 set_call_expr_flags (tree decl
, int flags
)
10292 if (flags
& ECF_NOTHROW
)
10293 TREE_NOTHROW (decl
) = 1;
10294 if (flags
& ECF_CONST
)
10295 TREE_READONLY (decl
) = 1;
10296 if (flags
& ECF_PURE
)
10297 DECL_PURE_P (decl
) = 1;
10298 if (flags
& ECF_LOOPING_CONST_OR_PURE
)
10299 DECL_LOOPING_CONST_OR_PURE_P (decl
) = 1;
10300 if (flags
& ECF_NOVOPS
)
10301 DECL_IS_NOVOPS (decl
) = 1;
10302 if (flags
& ECF_NORETURN
)
10303 TREE_THIS_VOLATILE (decl
) = 1;
10304 if (flags
& ECF_MALLOC
)
10305 DECL_IS_MALLOC (decl
) = 1;
10306 if (flags
& ECF_RETURNS_TWICE
)
10307 DECL_IS_RETURNS_TWICE (decl
) = 1;
10308 if (flags
& ECF_LEAF
)
10309 DECL_ATTRIBUTES (decl
) = tree_cons (get_identifier ("leaf"),
10310 NULL
, DECL_ATTRIBUTES (decl
));
10311 if ((flags
& ECF_TM_PURE
) && flag_tm
)
10312 apply_tm_attr (decl
, get_identifier ("transaction_pure"));
10313 /* Looping const or pure is implied by noreturn.
10314 There is currently no way to declare looping const or looping pure alone. */
10315 gcc_assert (!(flags
& ECF_LOOPING_CONST_OR_PURE
)
10316 || ((flags
& ECF_NORETURN
) && (flags
& (ECF_CONST
| ECF_PURE
))));
10320 /* A subroutine of build_common_builtin_nodes. Define a builtin function. */
10323 local_define_builtin (const char *name
, tree type
, enum built_in_function code
,
10324 const char *library_name
, int ecf_flags
)
10328 decl
= add_builtin_function (name
, type
, code
, BUILT_IN_NORMAL
,
10329 library_name
, NULL_TREE
);
10330 set_call_expr_flags (decl
, ecf_flags
);
10332 set_builtin_decl (code
, decl
, true);
10335 /* Call this function after instantiating all builtins that the language
10336 front end cares about. This will build the rest of the builtins
10337 and internal functions that are relied upon by the tree optimizers and
10341 build_common_builtin_nodes (void)
10346 if (!builtin_decl_explicit_p (BUILT_IN_UNREACHABLE
))
10348 ftype
= build_function_type (void_type_node
, void_list_node
);
10349 local_define_builtin ("__builtin_unreachable", ftype
, BUILT_IN_UNREACHABLE
,
10350 "__builtin_unreachable",
10351 ECF_NOTHROW
| ECF_LEAF
| ECF_NORETURN
10355 if (!builtin_decl_explicit_p (BUILT_IN_MEMCPY
)
10356 || !builtin_decl_explicit_p (BUILT_IN_MEMMOVE
))
10358 ftype
= build_function_type_list (ptr_type_node
,
10359 ptr_type_node
, const_ptr_type_node
,
10360 size_type_node
, NULL_TREE
);
10362 if (!builtin_decl_explicit_p (BUILT_IN_MEMCPY
))
10363 local_define_builtin ("__builtin_memcpy", ftype
, BUILT_IN_MEMCPY
,
10364 "memcpy", ECF_NOTHROW
| ECF_LEAF
);
10365 if (!builtin_decl_explicit_p (BUILT_IN_MEMMOVE
))
10366 local_define_builtin ("__builtin_memmove", ftype
, BUILT_IN_MEMMOVE
,
10367 "memmove", ECF_NOTHROW
| ECF_LEAF
);
10370 if (!builtin_decl_explicit_p (BUILT_IN_MEMCMP
))
10372 ftype
= build_function_type_list (integer_type_node
, const_ptr_type_node
,
10373 const_ptr_type_node
, size_type_node
,
10375 local_define_builtin ("__builtin_memcmp", ftype
, BUILT_IN_MEMCMP
,
10376 "memcmp", ECF_PURE
| ECF_NOTHROW
| ECF_LEAF
);
10379 if (!builtin_decl_explicit_p (BUILT_IN_MEMSET
))
10381 ftype
= build_function_type_list (ptr_type_node
,
10382 ptr_type_node
, integer_type_node
,
10383 size_type_node
, NULL_TREE
);
10384 local_define_builtin ("__builtin_memset", ftype
, BUILT_IN_MEMSET
,
10385 "memset", ECF_NOTHROW
| ECF_LEAF
);
10388 if (!builtin_decl_explicit_p (BUILT_IN_ALLOCA
))
10390 ftype
= build_function_type_list (ptr_type_node
,
10391 size_type_node
, NULL_TREE
);
10392 local_define_builtin ("__builtin_alloca", ftype
, BUILT_IN_ALLOCA
,
10393 "alloca", ECF_MALLOC
| ECF_NOTHROW
| ECF_LEAF
);
10396 ftype
= build_function_type_list (ptr_type_node
, size_type_node
,
10397 size_type_node
, NULL_TREE
);
10398 local_define_builtin ("__builtin_alloca_with_align", ftype
,
10399 BUILT_IN_ALLOCA_WITH_ALIGN
,
10400 "__builtin_alloca_with_align",
10401 ECF_MALLOC
| ECF_NOTHROW
| ECF_LEAF
);
10403 /* If we're checking the stack, `alloca' can throw. */
10404 if (flag_stack_check
)
10406 TREE_NOTHROW (builtin_decl_explicit (BUILT_IN_ALLOCA
)) = 0;
10407 TREE_NOTHROW (builtin_decl_explicit (BUILT_IN_ALLOCA_WITH_ALIGN
)) = 0;
10410 ftype
= build_function_type_list (void_type_node
,
10411 ptr_type_node
, ptr_type_node
,
10412 ptr_type_node
, NULL_TREE
);
10413 local_define_builtin ("__builtin_init_trampoline", ftype
,
10414 BUILT_IN_INIT_TRAMPOLINE
,
10415 "__builtin_init_trampoline", ECF_NOTHROW
| ECF_LEAF
);
10416 local_define_builtin ("__builtin_init_heap_trampoline", ftype
,
10417 BUILT_IN_INIT_HEAP_TRAMPOLINE
,
10418 "__builtin_init_heap_trampoline",
10419 ECF_NOTHROW
| ECF_LEAF
);
10421 ftype
= build_function_type_list (ptr_type_node
, ptr_type_node
, NULL_TREE
);
10422 local_define_builtin ("__builtin_adjust_trampoline", ftype
,
10423 BUILT_IN_ADJUST_TRAMPOLINE
,
10424 "__builtin_adjust_trampoline",
10425 ECF_CONST
| ECF_NOTHROW
);
10427 ftype
= build_function_type_list (void_type_node
,
10428 ptr_type_node
, ptr_type_node
, NULL_TREE
);
10429 local_define_builtin ("__builtin_nonlocal_goto", ftype
,
10430 BUILT_IN_NONLOCAL_GOTO
,
10431 "__builtin_nonlocal_goto",
10432 ECF_NORETURN
| ECF_NOTHROW
);
10434 ftype
= build_function_type_list (void_type_node
,
10435 ptr_type_node
, ptr_type_node
, NULL_TREE
);
10436 local_define_builtin ("__builtin_setjmp_setup", ftype
,
10437 BUILT_IN_SETJMP_SETUP
,
10438 "__builtin_setjmp_setup", ECF_NOTHROW
);
10440 ftype
= build_function_type_list (void_type_node
, ptr_type_node
, NULL_TREE
);
10441 local_define_builtin ("__builtin_setjmp_receiver", ftype
,
10442 BUILT_IN_SETJMP_RECEIVER
,
10443 "__builtin_setjmp_receiver", ECF_NOTHROW
| ECF_LEAF
);
10445 ftype
= build_function_type_list (ptr_type_node
, NULL_TREE
);
10446 local_define_builtin ("__builtin_stack_save", ftype
, BUILT_IN_STACK_SAVE
,
10447 "__builtin_stack_save", ECF_NOTHROW
| ECF_LEAF
);
10449 ftype
= build_function_type_list (void_type_node
, ptr_type_node
, NULL_TREE
);
10450 local_define_builtin ("__builtin_stack_restore", ftype
,
10451 BUILT_IN_STACK_RESTORE
,
10452 "__builtin_stack_restore", ECF_NOTHROW
| ECF_LEAF
);
10454 /* If there's a possibility that we might use the ARM EABI, build the
10455 alternate __cxa_end_cleanup node used to resume from C++ and Java. */
10456 if (targetm
.arm_eabi_unwinder
)
10458 ftype
= build_function_type_list (void_type_node
, NULL_TREE
);
10459 local_define_builtin ("__builtin_cxa_end_cleanup", ftype
,
10460 BUILT_IN_CXA_END_CLEANUP
,
10461 "__cxa_end_cleanup", ECF_NORETURN
| ECF_LEAF
);
10464 ftype
= build_function_type_list (void_type_node
, ptr_type_node
, NULL_TREE
);
10465 local_define_builtin ("__builtin_unwind_resume", ftype
,
10466 BUILT_IN_UNWIND_RESUME
,
10467 ((targetm_common
.except_unwind_info (&global_options
)
10469 ? "_Unwind_SjLj_Resume" : "_Unwind_Resume"),
10472 if (builtin_decl_explicit (BUILT_IN_RETURN_ADDRESS
) == NULL_TREE
)
10474 ftype
= build_function_type_list (ptr_type_node
, integer_type_node
,
10476 local_define_builtin ("__builtin_return_address", ftype
,
10477 BUILT_IN_RETURN_ADDRESS
,
10478 "__builtin_return_address",
10482 if (!builtin_decl_explicit_p (BUILT_IN_PROFILE_FUNC_ENTER
)
10483 || !builtin_decl_explicit_p (BUILT_IN_PROFILE_FUNC_EXIT
))
10485 ftype
= build_function_type_list (void_type_node
, ptr_type_node
,
10486 ptr_type_node
, NULL_TREE
);
10487 if (!builtin_decl_explicit_p (BUILT_IN_PROFILE_FUNC_ENTER
))
10488 local_define_builtin ("__cyg_profile_func_enter", ftype
,
10489 BUILT_IN_PROFILE_FUNC_ENTER
,
10490 "__cyg_profile_func_enter", 0);
10491 if (!builtin_decl_explicit_p (BUILT_IN_PROFILE_FUNC_EXIT
))
10492 local_define_builtin ("__cyg_profile_func_exit", ftype
,
10493 BUILT_IN_PROFILE_FUNC_EXIT
,
10494 "__cyg_profile_func_exit", 0);
10497 /* The exception object and filter values from the runtime. The argument
10498 must be zero before exception lowering, i.e. from the front end. After
10499 exception lowering, it will be the region number for the exception
10500 landing pad. These functions are PURE instead of CONST to prevent
10501 them from being hoisted past the exception edge that will initialize
10502 its value in the landing pad. */
10503 ftype
= build_function_type_list (ptr_type_node
,
10504 integer_type_node
, NULL_TREE
);
10505 ecf_flags
= ECF_PURE
| ECF_NOTHROW
| ECF_LEAF
;
10506 /* Only use TM_PURE if we have TM language support. */
10507 if (builtin_decl_explicit_p (BUILT_IN_TM_LOAD_1
))
10508 ecf_flags
|= ECF_TM_PURE
;
10509 local_define_builtin ("__builtin_eh_pointer", ftype
, BUILT_IN_EH_POINTER
,
10510 "__builtin_eh_pointer", ecf_flags
);
10512 tmp
= lang_hooks
.types
.type_for_mode (targetm
.eh_return_filter_mode (), 0);
10513 ftype
= build_function_type_list (tmp
, integer_type_node
, NULL_TREE
);
10514 local_define_builtin ("__builtin_eh_filter", ftype
, BUILT_IN_EH_FILTER
,
10515 "__builtin_eh_filter", ECF_PURE
| ECF_NOTHROW
| ECF_LEAF
);
10517 ftype
= build_function_type_list (void_type_node
,
10518 integer_type_node
, integer_type_node
,
10520 local_define_builtin ("__builtin_eh_copy_values", ftype
,
10521 BUILT_IN_EH_COPY_VALUES
,
10522 "__builtin_eh_copy_values", ECF_NOTHROW
);
10524 /* Complex multiplication and division. These are handled as builtins
10525 rather than optabs because emit_library_call_value doesn't support
10526 complex. Further, we can do slightly better with folding these
10527 beasties if the real and complex parts of the arguments are separate. */
10531 for (mode
= MIN_MODE_COMPLEX_FLOAT
; mode
<= MAX_MODE_COMPLEX_FLOAT
; ++mode
)
10533 char mode_name_buf
[4], *q
;
10535 enum built_in_function mcode
, dcode
;
10536 tree type
, inner_type
;
10537 const char *prefix
= "__";
10539 if (targetm
.libfunc_gnu_prefix
)
10542 type
= lang_hooks
.types
.type_for_mode ((machine_mode
) mode
, 0);
10545 inner_type
= TREE_TYPE (type
);
10547 ftype
= build_function_type_list (type
, inner_type
, inner_type
,
10548 inner_type
, inner_type
, NULL_TREE
);
10550 mcode
= ((enum built_in_function
)
10551 (BUILT_IN_COMPLEX_MUL_MIN
+ mode
- MIN_MODE_COMPLEX_FLOAT
));
10552 dcode
= ((enum built_in_function
)
10553 (BUILT_IN_COMPLEX_DIV_MIN
+ mode
- MIN_MODE_COMPLEX_FLOAT
));
10555 for (p
= GET_MODE_NAME (mode
), q
= mode_name_buf
; *p
; p
++, q
++)
10559 built_in_names
[mcode
] = concat (prefix
, "mul", mode_name_buf
, "3",
10561 local_define_builtin (built_in_names
[mcode
], ftype
, mcode
,
10562 built_in_names
[mcode
],
10563 ECF_CONST
| ECF_NOTHROW
| ECF_LEAF
);
10565 built_in_names
[dcode
] = concat (prefix
, "div", mode_name_buf
, "3",
10567 local_define_builtin (built_in_names
[dcode
], ftype
, dcode
,
10568 built_in_names
[dcode
],
10569 ECF_CONST
| ECF_NOTHROW
| ECF_LEAF
);
10573 init_internal_fns ();
10576 /* HACK. GROSS. This is absolutely disgusting. I wish there was a
10579 If we requested a pointer to a vector, build up the pointers that
10580 we stripped off while looking for the inner type. Similarly for
10581 return values from functions.
10583 The argument TYPE is the top of the chain, and BOTTOM is the
10584 new type which we will point to. */
10587 reconstruct_complex_type (tree type
, tree bottom
)
10591 if (TREE_CODE (type
) == POINTER_TYPE
)
10593 inner
= reconstruct_complex_type (TREE_TYPE (type
), bottom
);
10594 outer
= build_pointer_type_for_mode (inner
, TYPE_MODE (type
),
10595 TYPE_REF_CAN_ALIAS_ALL (type
));
10597 else if (TREE_CODE (type
) == REFERENCE_TYPE
)
10599 inner
= reconstruct_complex_type (TREE_TYPE (type
), bottom
);
10600 outer
= build_reference_type_for_mode (inner
, TYPE_MODE (type
),
10601 TYPE_REF_CAN_ALIAS_ALL (type
));
10603 else if (TREE_CODE (type
) == ARRAY_TYPE
)
10605 inner
= reconstruct_complex_type (TREE_TYPE (type
), bottom
);
10606 outer
= build_array_type (inner
, TYPE_DOMAIN (type
));
10608 else if (TREE_CODE (type
) == FUNCTION_TYPE
)
10610 inner
= reconstruct_complex_type (TREE_TYPE (type
), bottom
);
10611 outer
= build_function_type (inner
, TYPE_ARG_TYPES (type
));
10613 else if (TREE_CODE (type
) == METHOD_TYPE
)
10615 inner
= reconstruct_complex_type (TREE_TYPE (type
), bottom
);
10616 /* The build_method_type_directly() routine prepends 'this' to argument list,
10617 so we must compensate by getting rid of it. */
10619 = build_method_type_directly
10620 (TREE_TYPE (TREE_VALUE (TYPE_ARG_TYPES (type
))),
10622 TREE_CHAIN (TYPE_ARG_TYPES (type
)));
10624 else if (TREE_CODE (type
) == OFFSET_TYPE
)
10626 inner
= reconstruct_complex_type (TREE_TYPE (type
), bottom
);
10627 outer
= build_offset_type (TYPE_OFFSET_BASETYPE (type
), inner
);
10632 return build_type_attribute_qual_variant (outer
, TYPE_ATTRIBUTES (type
),
10633 TYPE_QUALS (type
));
10636 /* Returns a vector tree node given a mode (integer, vector, or BLKmode) and
10639 build_vector_type_for_mode (tree innertype
, machine_mode mode
)
10643 switch (GET_MODE_CLASS (mode
))
10645 case MODE_VECTOR_INT
:
10646 case MODE_VECTOR_FLOAT
:
10647 case MODE_VECTOR_FRACT
:
10648 case MODE_VECTOR_UFRACT
:
10649 case MODE_VECTOR_ACCUM
:
10650 case MODE_VECTOR_UACCUM
:
10651 nunits
= GET_MODE_NUNITS (mode
);
10655 /* Check that there are no leftover bits. */
10656 gcc_assert (GET_MODE_BITSIZE (mode
)
10657 % TREE_INT_CST_LOW (TYPE_SIZE (innertype
)) == 0);
10659 nunits
= GET_MODE_BITSIZE (mode
)
10660 / TREE_INT_CST_LOW (TYPE_SIZE (innertype
));
10664 gcc_unreachable ();
10667 return make_vector_type (innertype
, nunits
, mode
);
10670 /* Similarly, but takes the inner type and number of units, which must be
10674 build_vector_type (tree innertype
, int nunits
)
10676 return make_vector_type (innertype
, nunits
, VOIDmode
);
10679 /* Build truth vector with specified length and number of units. */
10682 build_truth_vector_type (unsigned nunits
, unsigned vector_size
)
10684 machine_mode mask_mode
= targetm
.vectorize
.get_mask_mode (nunits
,
10687 gcc_assert (mask_mode
!= VOIDmode
);
10689 unsigned HOST_WIDE_INT vsize
;
10690 if (mask_mode
== BLKmode
)
10691 vsize
= vector_size
* BITS_PER_UNIT
;
10693 vsize
= GET_MODE_BITSIZE (mask_mode
);
10695 unsigned HOST_WIDE_INT esize
= vsize
/ nunits
;
10696 gcc_assert (esize
* nunits
== vsize
);
10698 tree bool_type
= build_nonstandard_boolean_type (esize
);
10700 return make_vector_type (bool_type
, nunits
, mask_mode
);
10703 /* Returns a vector type corresponding to a comparison of VECTYPE. */
10706 build_same_sized_truth_vector_type (tree vectype
)
10708 if (VECTOR_BOOLEAN_TYPE_P (vectype
))
10711 unsigned HOST_WIDE_INT size
= GET_MODE_SIZE (TYPE_MODE (vectype
));
10714 size
= tree_to_uhwi (TYPE_SIZE_UNIT (vectype
));
10716 return build_truth_vector_type (TYPE_VECTOR_SUBPARTS (vectype
), size
);
10719 /* Similarly, but builds a variant type with TYPE_VECTOR_OPAQUE set. */
10722 build_opaque_vector_type (tree innertype
, int nunits
)
10724 tree t
= make_vector_type (innertype
, nunits
, VOIDmode
);
10726 /* We always build the non-opaque variant before the opaque one,
10727 so if it already exists, it is TYPE_NEXT_VARIANT of this one. */
10728 cand
= TYPE_NEXT_VARIANT (t
);
10730 && TYPE_VECTOR_OPAQUE (cand
)
10731 && check_qualified_type (cand
, t
, TYPE_QUALS (t
)))
10733 /* Othewise build a variant type and make sure to queue it after
10734 the non-opaque type. */
10735 cand
= build_distinct_type_copy (t
);
10736 TYPE_VECTOR_OPAQUE (cand
) = true;
10737 TYPE_CANONICAL (cand
) = TYPE_CANONICAL (t
);
10738 TYPE_NEXT_VARIANT (cand
) = TYPE_NEXT_VARIANT (t
);
10739 TYPE_NEXT_VARIANT (t
) = cand
;
10740 TYPE_MAIN_VARIANT (cand
) = TYPE_MAIN_VARIANT (t
);
10745 /* Given an initializer INIT, return TRUE if INIT is zero or some
10746 aggregate of zeros. Otherwise return FALSE. */
10748 initializer_zerop (const_tree init
)
10754 switch (TREE_CODE (init
))
10757 return integer_zerop (init
);
10760 /* ??? Note that this is not correct for C4X float formats. There,
10761 a bit pattern of all zeros is 1.0; 0.0 is encoded with the most
10762 negative exponent. */
10763 return real_zerop (init
)
10764 && ! REAL_VALUE_MINUS_ZERO (TREE_REAL_CST (init
));
10767 return fixed_zerop (init
);
10770 return integer_zerop (init
)
10771 || (real_zerop (init
)
10772 && ! REAL_VALUE_MINUS_ZERO (TREE_REAL_CST (TREE_REALPART (init
)))
10773 && ! REAL_VALUE_MINUS_ZERO (TREE_REAL_CST (TREE_IMAGPART (init
))));
10778 for (i
= 0; i
< VECTOR_CST_NELTS (init
); ++i
)
10779 if (!initializer_zerop (VECTOR_CST_ELT (init
, i
)))
10786 unsigned HOST_WIDE_INT idx
;
10788 if (TREE_CLOBBER_P (init
))
10790 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (init
), idx
, elt
)
10791 if (!initializer_zerop (elt
))
10800 /* We need to loop through all elements to handle cases like
10801 "\0" and "\0foobar". */
10802 for (i
= 0; i
< TREE_STRING_LENGTH (init
); ++i
)
10803 if (TREE_STRING_POINTER (init
)[i
] != '\0')
10814 /* Check if vector VEC consists of all the equal elements and
10815 that the number of elements corresponds to the type of VEC.
10816 The function returns first element of the vector
10817 or NULL_TREE if the vector is not uniform. */
10819 uniform_vector_p (const_tree vec
)
10824 if (vec
== NULL_TREE
)
10827 gcc_assert (VECTOR_TYPE_P (TREE_TYPE (vec
)));
10829 if (TREE_CODE (vec
) == VECTOR_CST
)
10831 first
= VECTOR_CST_ELT (vec
, 0);
10832 for (i
= 1; i
< VECTOR_CST_NELTS (vec
); ++i
)
10833 if (!operand_equal_p (first
, VECTOR_CST_ELT (vec
, i
), 0))
10839 else if (TREE_CODE (vec
) == CONSTRUCTOR
)
10841 first
= error_mark_node
;
10843 FOR_EACH_CONSTRUCTOR_VALUE (CONSTRUCTOR_ELTS (vec
), i
, t
)
10850 if (!operand_equal_p (first
, t
, 0))
10853 if (i
!= TYPE_VECTOR_SUBPARTS (TREE_TYPE (vec
)))
10862 /* Build an empty statement at location LOC. */
10865 build_empty_stmt (location_t loc
)
10867 tree t
= build1 (NOP_EXPR
, void_type_node
, size_zero_node
);
10868 SET_EXPR_LOCATION (t
, loc
);
10873 /* Build an OpenMP clause with code CODE. LOC is the location of the
10877 build_omp_clause (location_t loc
, enum omp_clause_code code
)
10882 length
= omp_clause_num_ops
[code
];
10883 size
= (sizeof (struct tree_omp_clause
) + (length
- 1) * sizeof (tree
));
10885 record_node_allocation_statistics (OMP_CLAUSE
, size
);
10887 t
= (tree
) ggc_internal_alloc (size
);
10888 memset (t
, 0, size
);
10889 TREE_SET_CODE (t
, OMP_CLAUSE
);
10890 OMP_CLAUSE_SET_CODE (t
, code
);
10891 OMP_CLAUSE_LOCATION (t
) = loc
;
10896 /* Build a tcc_vl_exp object with code CODE and room for LEN operands. LEN
10897 includes the implicit operand count in TREE_OPERAND 0, and so must be >= 1.
10898 Except for the CODE and operand count field, other storage for the
10899 object is initialized to zeros. */
10902 build_vl_exp_stat (enum tree_code code
, int len MEM_STAT_DECL
)
10905 int length
= (len
- 1) * sizeof (tree
) + sizeof (struct tree_exp
);
10907 gcc_assert (TREE_CODE_CLASS (code
) == tcc_vl_exp
);
10908 gcc_assert (len
>= 1);
10910 record_node_allocation_statistics (code
, length
);
10912 t
= ggc_alloc_cleared_tree_node_stat (length PASS_MEM_STAT
);
10914 TREE_SET_CODE (t
, code
);
10916 /* Can't use TREE_OPERAND to store the length because if checking is
10917 enabled, it will try to check the length before we store it. :-P */
10918 t
->exp
.operands
[0] = build_int_cst (sizetype
, len
);
10923 /* Helper function for build_call_* functions; build a CALL_EXPR with
10924 indicated RETURN_TYPE, FN, and NARGS, but do not initialize any of
10925 the argument slots. */
10928 build_call_1 (tree return_type
, tree fn
, int nargs
)
10932 t
= build_vl_exp (CALL_EXPR
, nargs
+ 3);
10933 TREE_TYPE (t
) = return_type
;
10934 CALL_EXPR_FN (t
) = fn
;
10935 CALL_EXPR_STATIC_CHAIN (t
) = NULL
;
10940 /* Build a CALL_EXPR of class tcc_vl_exp with the indicated RETURN_TYPE and
10941 FN and a null static chain slot. NARGS is the number of call arguments
10942 which are specified as "..." arguments. */
10945 build_call_nary (tree return_type
, tree fn
, int nargs
, ...)
10949 va_start (args
, nargs
);
10950 ret
= build_call_valist (return_type
, fn
, nargs
, args
);
10955 /* Build a CALL_EXPR of class tcc_vl_exp with the indicated RETURN_TYPE and
10956 FN and a null static chain slot. NARGS is the number of call arguments
10957 which are specified as a va_list ARGS. */
10960 build_call_valist (tree return_type
, tree fn
, int nargs
, va_list args
)
10965 t
= build_call_1 (return_type
, fn
, nargs
);
10966 for (i
= 0; i
< nargs
; i
++)
10967 CALL_EXPR_ARG (t
, i
) = va_arg (args
, tree
);
10968 process_call_operands (t
);
10972 /* Build a CALL_EXPR of class tcc_vl_exp with the indicated RETURN_TYPE and
10973 FN and a null static chain slot. NARGS is the number of call arguments
10974 which are specified as a tree array ARGS. */
10977 build_call_array_loc (location_t loc
, tree return_type
, tree fn
,
10978 int nargs
, const tree
*args
)
10983 t
= build_call_1 (return_type
, fn
, nargs
);
10984 for (i
= 0; i
< nargs
; i
++)
10985 CALL_EXPR_ARG (t
, i
) = args
[i
];
10986 process_call_operands (t
);
10987 SET_EXPR_LOCATION (t
, loc
);
10991 /* Like build_call_array, but takes a vec. */
10994 build_call_vec (tree return_type
, tree fn
, vec
<tree
, va_gc
> *args
)
10999 ret
= build_call_1 (return_type
, fn
, vec_safe_length (args
));
11000 FOR_EACH_VEC_SAFE_ELT (args
, ix
, t
)
11001 CALL_EXPR_ARG (ret
, ix
) = t
;
11002 process_call_operands (ret
);
11006 /* Conveniently construct a function call expression. FNDECL names the
11007 function to be called and N arguments are passed in the array
11011 build_call_expr_loc_array (location_t loc
, tree fndecl
, int n
, tree
*argarray
)
11013 tree fntype
= TREE_TYPE (fndecl
);
11014 tree fn
= build1 (ADDR_EXPR
, build_pointer_type (fntype
), fndecl
);
11016 return fold_build_call_array_loc (loc
, TREE_TYPE (fntype
), fn
, n
, argarray
);
11019 /* Conveniently construct a function call expression. FNDECL names the
11020 function to be called and the arguments are passed in the vector
11024 build_call_expr_loc_vec (location_t loc
, tree fndecl
, vec
<tree
, va_gc
> *vec
)
11026 return build_call_expr_loc_array (loc
, fndecl
, vec_safe_length (vec
),
11027 vec_safe_address (vec
));
11031 /* Conveniently construct a function call expression. FNDECL names the
11032 function to be called, N is the number of arguments, and the "..."
11033 parameters are the argument expressions. */
11036 build_call_expr_loc (location_t loc
, tree fndecl
, int n
, ...)
11039 tree
*argarray
= XALLOCAVEC (tree
, n
);
11043 for (i
= 0; i
< n
; i
++)
11044 argarray
[i
] = va_arg (ap
, tree
);
11046 return build_call_expr_loc_array (loc
, fndecl
, n
, argarray
);
11049 /* Like build_call_expr_loc (UNKNOWN_LOCATION, ...). Duplicated because
11050 varargs macros aren't supported by all bootstrap compilers. */
11053 build_call_expr (tree fndecl
, int n
, ...)
11056 tree
*argarray
= XALLOCAVEC (tree
, n
);
11060 for (i
= 0; i
< n
; i
++)
11061 argarray
[i
] = va_arg (ap
, tree
);
11063 return build_call_expr_loc_array (UNKNOWN_LOCATION
, fndecl
, n
, argarray
);
11066 /* Build an internal call to IFN, with arguments ARGS[0:N-1] and with return
11067 type TYPE. This is just like CALL_EXPR, except its CALL_EXPR_FN is NULL.
11068 It will get gimplified later into an ordinary internal function. */
11071 build_call_expr_internal_loc_array (location_t loc
, internal_fn ifn
,
11072 tree type
, int n
, const tree
*args
)
11074 tree t
= build_call_1 (type
, NULL_TREE
, n
);
11075 for (int i
= 0; i
< n
; ++i
)
11076 CALL_EXPR_ARG (t
, i
) = args
[i
];
11077 SET_EXPR_LOCATION (t
, loc
);
11078 CALL_EXPR_IFN (t
) = ifn
;
11082 /* Build internal call expression. This is just like CALL_EXPR, except
11083 its CALL_EXPR_FN is NULL. It will get gimplified later into ordinary
11084 internal function. */
11087 build_call_expr_internal_loc (location_t loc
, enum internal_fn ifn
,
11088 tree type
, int n
, ...)
11091 tree
*argarray
= XALLOCAVEC (tree
, n
);
11095 for (i
= 0; i
< n
; i
++)
11096 argarray
[i
] = va_arg (ap
, tree
);
11098 return build_call_expr_internal_loc_array (loc
, ifn
, type
, n
, argarray
);
11101 /* Return a function call to FN, if the target is guaranteed to support it,
11104 N is the number of arguments, passed in the "...", and TYPE is the
11105 type of the return value. */
11108 maybe_build_call_expr_loc (location_t loc
, combined_fn fn
, tree type
,
11112 tree
*argarray
= XALLOCAVEC (tree
, n
);
11116 for (i
= 0; i
< n
; i
++)
11117 argarray
[i
] = va_arg (ap
, tree
);
11119 if (internal_fn_p (fn
))
11121 internal_fn ifn
= as_internal_fn (fn
);
11122 if (direct_internal_fn_p (ifn
))
11124 tree_pair types
= direct_internal_fn_types (ifn
, type
, argarray
);
11125 if (!direct_internal_fn_supported_p (ifn
, types
,
11126 OPTIMIZE_FOR_BOTH
))
11129 return build_call_expr_internal_loc_array (loc
, ifn
, type
, n
, argarray
);
11133 tree fndecl
= builtin_decl_implicit (as_builtin_fn (fn
));
11136 return build_call_expr_loc_array (loc
, fndecl
, n
, argarray
);
11140 /* Create a new constant string literal and return a char* pointer to it.
11141 The STRING_CST value is the LEN characters at STR. */
11143 build_string_literal (int len
, const char *str
)
11145 tree t
, elem
, index
, type
;
11147 t
= build_string (len
, str
);
11148 elem
= build_type_variant (char_type_node
, 1, 0);
11149 index
= build_index_type (size_int (len
- 1));
11150 type
= build_array_type (elem
, index
);
11151 TREE_TYPE (t
) = type
;
11152 TREE_CONSTANT (t
) = 1;
11153 TREE_READONLY (t
) = 1;
11154 TREE_STATIC (t
) = 1;
11156 type
= build_pointer_type (elem
);
11157 t
= build1 (ADDR_EXPR
, type
,
11158 build4 (ARRAY_REF
, elem
,
11159 t
, integer_zero_node
, NULL_TREE
, NULL_TREE
));
11165 /* Return true if T (assumed to be a DECL) must be assigned a memory
11169 needs_to_live_in_memory (const_tree t
)
11171 return (TREE_ADDRESSABLE (t
)
11172 || is_global_var (t
)
11173 || (TREE_CODE (t
) == RESULT_DECL
11174 && !DECL_BY_REFERENCE (t
)
11175 && aggregate_value_p (t
, current_function_decl
)));
11178 /* Return value of a constant X and sign-extend it. */
11181 int_cst_value (const_tree x
)
11183 unsigned bits
= TYPE_PRECISION (TREE_TYPE (x
));
11184 unsigned HOST_WIDE_INT val
= TREE_INT_CST_LOW (x
);
11186 /* Make sure the sign-extended value will fit in a HOST_WIDE_INT. */
11187 gcc_assert (cst_and_fits_in_hwi (x
));
11189 if (bits
< HOST_BITS_PER_WIDE_INT
)
11191 bool negative
= ((val
>> (bits
- 1)) & 1) != 0;
11193 val
|= (~(unsigned HOST_WIDE_INT
) 0) << (bits
- 1) << 1;
11195 val
&= ~((~(unsigned HOST_WIDE_INT
) 0) << (bits
- 1) << 1);
11201 /* If TYPE is an integral or pointer type, return an integer type with
11202 the same precision which is unsigned iff UNSIGNEDP is true, or itself
11203 if TYPE is already an integer type of signedness UNSIGNEDP. */
11206 signed_or_unsigned_type_for (int unsignedp
, tree type
)
11208 if (TREE_CODE (type
) == INTEGER_TYPE
&& TYPE_UNSIGNED (type
) == unsignedp
)
11211 if (TREE_CODE (type
) == VECTOR_TYPE
)
11213 tree inner
= TREE_TYPE (type
);
11214 tree inner2
= signed_or_unsigned_type_for (unsignedp
, inner
);
11217 if (inner
== inner2
)
11219 return build_vector_type (inner2
, TYPE_VECTOR_SUBPARTS (type
));
11222 if (!INTEGRAL_TYPE_P (type
)
11223 && !POINTER_TYPE_P (type
)
11224 && TREE_CODE (type
) != OFFSET_TYPE
)
11227 return build_nonstandard_integer_type (TYPE_PRECISION (type
), unsignedp
);
11230 /* If TYPE is an integral or pointer type, return an integer type with
11231 the same precision which is unsigned, or itself if TYPE is already an
11232 unsigned integer type. */
11235 unsigned_type_for (tree type
)
11237 return signed_or_unsigned_type_for (1, type
);
11240 /* If TYPE is an integral or pointer type, return an integer type with
11241 the same precision which is signed, or itself if TYPE is already a
11242 signed integer type. */
11245 signed_type_for (tree type
)
11247 return signed_or_unsigned_type_for (0, type
);
11250 /* If TYPE is a vector type, return a signed integer vector type with the
11251 same width and number of subparts. Otherwise return boolean_type_node. */
11254 truth_type_for (tree type
)
11256 if (TREE_CODE (type
) == VECTOR_TYPE
)
11258 if (VECTOR_BOOLEAN_TYPE_P (type
))
11260 return build_truth_vector_type (TYPE_VECTOR_SUBPARTS (type
),
11261 GET_MODE_SIZE (TYPE_MODE (type
)));
11264 return boolean_type_node
;
11267 /* Returns the largest value obtainable by casting something in INNER type to
11271 upper_bound_in_type (tree outer
, tree inner
)
11273 unsigned int det
= 0;
11274 unsigned oprec
= TYPE_PRECISION (outer
);
11275 unsigned iprec
= TYPE_PRECISION (inner
);
11278 /* Compute a unique number for every combination. */
11279 det
|= (oprec
> iprec
) ? 4 : 0;
11280 det
|= TYPE_UNSIGNED (outer
) ? 2 : 0;
11281 det
|= TYPE_UNSIGNED (inner
) ? 1 : 0;
11283 /* Determine the exponent to use. */
11288 /* oprec <= iprec, outer: signed, inner: don't care. */
11293 /* oprec <= iprec, outer: unsigned, inner: don't care. */
11297 /* oprec > iprec, outer: signed, inner: signed. */
11301 /* oprec > iprec, outer: signed, inner: unsigned. */
11305 /* oprec > iprec, outer: unsigned, inner: signed. */
11309 /* oprec > iprec, outer: unsigned, inner: unsigned. */
11313 gcc_unreachable ();
11316 return wide_int_to_tree (outer
,
11317 wi::mask (prec
, false, TYPE_PRECISION (outer
)));
11320 /* Returns the smallest value obtainable by casting something in INNER type to
11324 lower_bound_in_type (tree outer
, tree inner
)
11326 unsigned oprec
= TYPE_PRECISION (outer
);
11327 unsigned iprec
= TYPE_PRECISION (inner
);
11329 /* If OUTER type is unsigned, we can definitely cast 0 to OUTER type
11331 if (TYPE_UNSIGNED (outer
)
11332 /* If we are widening something of an unsigned type, OUTER type
11333 contains all values of INNER type. In particular, both INNER
11334 and OUTER types have zero in common. */
11335 || (oprec
> iprec
&& TYPE_UNSIGNED (inner
)))
11336 return build_int_cst (outer
, 0);
11339 /* If we are widening a signed type to another signed type, we
11340 want to obtain -2^^(iprec-1). If we are keeping the
11341 precision or narrowing to a signed type, we want to obtain
11343 unsigned prec
= oprec
> iprec
? iprec
: oprec
;
11344 return wide_int_to_tree (outer
,
11345 wi::mask (prec
- 1, true,
11346 TYPE_PRECISION (outer
)));
11350 /* Return nonzero if two operands that are suitable for PHI nodes are
11351 necessarily equal. Specifically, both ARG0 and ARG1 must be either
11352 SSA_NAME or invariant. Note that this is strictly an optimization.
11353 That is, callers of this function can directly call operand_equal_p
11354 and get the same result, only slower. */
11357 operand_equal_for_phi_arg_p (const_tree arg0
, const_tree arg1
)
11361 if (TREE_CODE (arg0
) == SSA_NAME
|| TREE_CODE (arg1
) == SSA_NAME
)
11363 return operand_equal_p (arg0
, arg1
, 0);
11366 /* Returns number of zeros at the end of binary representation of X. */
11369 num_ending_zeros (const_tree x
)
11371 return build_int_cst (TREE_TYPE (x
), wi::ctz (x
));
11375 #define WALK_SUBTREE(NODE) \
11378 result = walk_tree_1 (&(NODE), func, data, pset, lh); \
11384 /* This is a subroutine of walk_tree that walks field of TYPE that are to
11385 be walked whenever a type is seen in the tree. Rest of operands and return
11386 value are as for walk_tree. */
11389 walk_type_fields (tree type
, walk_tree_fn func
, void *data
,
11390 hash_set
<tree
> *pset
, walk_tree_lh lh
)
11392 tree result
= NULL_TREE
;
11394 switch (TREE_CODE (type
))
11397 case REFERENCE_TYPE
:
11399 /* We have to worry about mutually recursive pointers. These can't
11400 be written in C. They can in Ada. It's pathological, but
11401 there's an ACATS test (c38102a) that checks it. Deal with this
11402 by checking if we're pointing to another pointer, that one
11403 points to another pointer, that one does too, and we have no htab.
11404 If so, get a hash table. We check three levels deep to avoid
11405 the cost of the hash table if we don't need one. */
11406 if (POINTER_TYPE_P (TREE_TYPE (type
))
11407 && POINTER_TYPE_P (TREE_TYPE (TREE_TYPE (type
)))
11408 && POINTER_TYPE_P (TREE_TYPE (TREE_TYPE (TREE_TYPE (type
))))
11411 result
= walk_tree_without_duplicates (&TREE_TYPE (type
),
11419 /* ... fall through ... */
11422 WALK_SUBTREE (TREE_TYPE (type
));
11426 WALK_SUBTREE (TYPE_METHOD_BASETYPE (type
));
11428 /* Fall through. */
11430 case FUNCTION_TYPE
:
11431 WALK_SUBTREE (TREE_TYPE (type
));
11435 /* We never want to walk into default arguments. */
11436 for (arg
= TYPE_ARG_TYPES (type
); arg
; arg
= TREE_CHAIN (arg
))
11437 WALK_SUBTREE (TREE_VALUE (arg
));
11442 /* Don't follow this nodes's type if a pointer for fear that
11443 we'll have infinite recursion. If we have a PSET, then we
11446 || (!POINTER_TYPE_P (TREE_TYPE (type
))
11447 && TREE_CODE (TREE_TYPE (type
)) != OFFSET_TYPE
))
11448 WALK_SUBTREE (TREE_TYPE (type
));
11449 WALK_SUBTREE (TYPE_DOMAIN (type
));
11453 WALK_SUBTREE (TREE_TYPE (type
));
11454 WALK_SUBTREE (TYPE_OFFSET_BASETYPE (type
));
11464 /* Apply FUNC to all the sub-trees of TP in a pre-order traversal. FUNC is
11465 called with the DATA and the address of each sub-tree. If FUNC returns a
11466 non-NULL value, the traversal is stopped, and the value returned by FUNC
11467 is returned. If PSET is non-NULL it is used to record the nodes visited,
11468 and to avoid visiting a node more than once. */
11471 walk_tree_1 (tree
*tp
, walk_tree_fn func
, void *data
,
11472 hash_set
<tree
> *pset
, walk_tree_lh lh
)
11474 enum tree_code code
;
11478 #define WALK_SUBTREE_TAIL(NODE) \
11482 goto tail_recurse; \
11487 /* Skip empty subtrees. */
11491 /* Don't walk the same tree twice, if the user has requested
11492 that we avoid doing so. */
11493 if (pset
&& pset
->add (*tp
))
11496 /* Call the function. */
11498 result
= (*func
) (tp
, &walk_subtrees
, data
);
11500 /* If we found something, return it. */
11504 code
= TREE_CODE (*tp
);
11506 /* Even if we didn't, FUNC may have decided that there was nothing
11507 interesting below this point in the tree. */
11508 if (!walk_subtrees
)
11510 /* But we still need to check our siblings. */
11511 if (code
== TREE_LIST
)
11512 WALK_SUBTREE_TAIL (TREE_CHAIN (*tp
));
11513 else if (code
== OMP_CLAUSE
)
11514 WALK_SUBTREE_TAIL (OMP_CLAUSE_CHAIN (*tp
));
11521 result
= (*lh
) (tp
, &walk_subtrees
, func
, data
, pset
);
11522 if (result
|| !walk_subtrees
)
11529 case IDENTIFIER_NODE
:
11536 case PLACEHOLDER_EXPR
:
11540 /* None of these have subtrees other than those already walked
11545 WALK_SUBTREE (TREE_VALUE (*tp
));
11546 WALK_SUBTREE_TAIL (TREE_CHAIN (*tp
));
11551 int len
= TREE_VEC_LENGTH (*tp
);
11556 /* Walk all elements but the first. */
11558 WALK_SUBTREE (TREE_VEC_ELT (*tp
, len
));
11560 /* Now walk the first one as a tail call. */
11561 WALK_SUBTREE_TAIL (TREE_VEC_ELT (*tp
, 0));
11565 WALK_SUBTREE (TREE_REALPART (*tp
));
11566 WALK_SUBTREE_TAIL (TREE_IMAGPART (*tp
));
11570 unsigned HOST_WIDE_INT idx
;
11571 constructor_elt
*ce
;
11573 for (idx
= 0; vec_safe_iterate (CONSTRUCTOR_ELTS (*tp
), idx
, &ce
);
11575 WALK_SUBTREE (ce
->value
);
11580 WALK_SUBTREE_TAIL (TREE_OPERAND (*tp
, 0));
11585 for (decl
= BIND_EXPR_VARS (*tp
); decl
; decl
= DECL_CHAIN (decl
))
11587 /* Walk the DECL_INITIAL and DECL_SIZE. We don't want to walk
11588 into declarations that are just mentioned, rather than
11589 declared; they don't really belong to this part of the tree.
11590 And, we can see cycles: the initializer for a declaration
11591 can refer to the declaration itself. */
11592 WALK_SUBTREE (DECL_INITIAL (decl
));
11593 WALK_SUBTREE (DECL_SIZE (decl
));
11594 WALK_SUBTREE (DECL_SIZE_UNIT (decl
));
11596 WALK_SUBTREE_TAIL (BIND_EXPR_BODY (*tp
));
11599 case STATEMENT_LIST
:
11601 tree_stmt_iterator i
;
11602 for (i
= tsi_start (*tp
); !tsi_end_p (i
); tsi_next (&i
))
11603 WALK_SUBTREE (*tsi_stmt_ptr (i
));
11608 switch (OMP_CLAUSE_CODE (*tp
))
11610 case OMP_CLAUSE_GANG
:
11611 WALK_SUBTREE (OMP_CLAUSE_OPERAND (*tp
, 1));
11614 case OMP_CLAUSE_DEVICE_RESIDENT
:
11615 case OMP_CLAUSE_USE_DEVICE
:
11616 case OMP_CLAUSE_ASYNC
:
11617 case OMP_CLAUSE_WAIT
:
11618 case OMP_CLAUSE_WORKER
:
11619 case OMP_CLAUSE_VECTOR
:
11620 case OMP_CLAUSE_NUM_GANGS
:
11621 case OMP_CLAUSE_NUM_WORKERS
:
11622 case OMP_CLAUSE_VECTOR_LENGTH
:
11623 case OMP_CLAUSE_PRIVATE
:
11624 case OMP_CLAUSE_SHARED
:
11625 case OMP_CLAUSE_FIRSTPRIVATE
:
11626 case OMP_CLAUSE_COPYIN
:
11627 case OMP_CLAUSE_COPYPRIVATE
:
11628 case OMP_CLAUSE_FINAL
:
11629 case OMP_CLAUSE_IF
:
11630 case OMP_CLAUSE_NUM_THREADS
:
11631 case OMP_CLAUSE_SCHEDULE
:
11632 case OMP_CLAUSE_UNIFORM
:
11633 case OMP_CLAUSE_DEPEND
:
11634 case OMP_CLAUSE_NUM_TEAMS
:
11635 case OMP_CLAUSE_THREAD_LIMIT
:
11636 case OMP_CLAUSE_DEVICE
:
11637 case OMP_CLAUSE_DIST_SCHEDULE
:
11638 case OMP_CLAUSE_SAFELEN
:
11639 case OMP_CLAUSE_SIMDLEN
:
11640 case OMP_CLAUSE_ORDERED
:
11641 case OMP_CLAUSE_PRIORITY
:
11642 case OMP_CLAUSE_GRAINSIZE
:
11643 case OMP_CLAUSE_NUM_TASKS
:
11644 case OMP_CLAUSE_HINT
:
11645 case OMP_CLAUSE_TO_DECLARE
:
11646 case OMP_CLAUSE_LINK
:
11647 case OMP_CLAUSE_USE_DEVICE_PTR
:
11648 case OMP_CLAUSE_IS_DEVICE_PTR
:
11649 case OMP_CLAUSE__LOOPTEMP_
:
11650 case OMP_CLAUSE__SIMDUID_
:
11651 case OMP_CLAUSE__CILK_FOR_COUNT_
:
11652 WALK_SUBTREE (OMP_CLAUSE_OPERAND (*tp
, 0));
11655 case OMP_CLAUSE_INDEPENDENT
:
11656 case OMP_CLAUSE_NOWAIT
:
11657 case OMP_CLAUSE_DEFAULT
:
11658 case OMP_CLAUSE_UNTIED
:
11659 case OMP_CLAUSE_MERGEABLE
:
11660 case OMP_CLAUSE_PROC_BIND
:
11661 case OMP_CLAUSE_INBRANCH
:
11662 case OMP_CLAUSE_NOTINBRANCH
:
11663 case OMP_CLAUSE_FOR
:
11664 case OMP_CLAUSE_PARALLEL
:
11665 case OMP_CLAUSE_SECTIONS
:
11666 case OMP_CLAUSE_TASKGROUP
:
11667 case OMP_CLAUSE_NOGROUP
:
11668 case OMP_CLAUSE_THREADS
:
11669 case OMP_CLAUSE_SIMD
:
11670 case OMP_CLAUSE_DEFAULTMAP
:
11671 case OMP_CLAUSE_AUTO
:
11672 case OMP_CLAUSE_SEQ
:
11673 case OMP_CLAUSE_TILE
:
11674 WALK_SUBTREE_TAIL (OMP_CLAUSE_CHAIN (*tp
));
11676 case OMP_CLAUSE_LASTPRIVATE
:
11677 WALK_SUBTREE (OMP_CLAUSE_DECL (*tp
));
11678 WALK_SUBTREE (OMP_CLAUSE_LASTPRIVATE_STMT (*tp
));
11679 WALK_SUBTREE_TAIL (OMP_CLAUSE_CHAIN (*tp
));
11681 case OMP_CLAUSE_COLLAPSE
:
11684 for (i
= 0; i
< 3; i
++)
11685 WALK_SUBTREE (OMP_CLAUSE_OPERAND (*tp
, i
));
11686 WALK_SUBTREE_TAIL (OMP_CLAUSE_CHAIN (*tp
));
11689 case OMP_CLAUSE_LINEAR
:
11690 WALK_SUBTREE (OMP_CLAUSE_DECL (*tp
));
11691 WALK_SUBTREE (OMP_CLAUSE_LINEAR_STEP (*tp
));
11692 WALK_SUBTREE (OMP_CLAUSE_LINEAR_STMT (*tp
));
11693 WALK_SUBTREE_TAIL (OMP_CLAUSE_CHAIN (*tp
));
11695 case OMP_CLAUSE_ALIGNED
:
11696 case OMP_CLAUSE_FROM
:
11697 case OMP_CLAUSE_TO
:
11698 case OMP_CLAUSE_MAP
:
11699 case OMP_CLAUSE__CACHE_
:
11700 WALK_SUBTREE (OMP_CLAUSE_DECL (*tp
));
11701 WALK_SUBTREE (OMP_CLAUSE_OPERAND (*tp
, 1));
11702 WALK_SUBTREE_TAIL (OMP_CLAUSE_CHAIN (*tp
));
11704 case OMP_CLAUSE_REDUCTION
:
11707 for (i
= 0; i
< 5; i
++)
11708 WALK_SUBTREE (OMP_CLAUSE_OPERAND (*tp
, i
));
11709 WALK_SUBTREE_TAIL (OMP_CLAUSE_CHAIN (*tp
));
11713 gcc_unreachable ();
11721 /* TARGET_EXPRs are peculiar: operands 1 and 3 can be the same.
11722 But, we only want to walk once. */
11723 len
= (TREE_OPERAND (*tp
, 3) == TREE_OPERAND (*tp
, 1)) ? 2 : 3;
11724 for (i
= 0; i
< len
; ++i
)
11725 WALK_SUBTREE (TREE_OPERAND (*tp
, i
));
11726 WALK_SUBTREE_TAIL (TREE_OPERAND (*tp
, len
));
11730 /* If this is a TYPE_DECL, walk into the fields of the type that it's
11731 defining. We only want to walk into these fields of a type in this
11732 case and not in the general case of a mere reference to the type.
11734 The criterion is as follows: if the field can be an expression, it
11735 must be walked only here. This should be in keeping with the fields
11736 that are directly gimplified in gimplify_type_sizes in order for the
11737 mark/copy-if-shared/unmark machinery of the gimplifier to work with
11738 variable-sized types.
11740 Note that DECLs get walked as part of processing the BIND_EXPR. */
11741 if (TREE_CODE (DECL_EXPR_DECL (*tp
)) == TYPE_DECL
)
11743 tree
*type_p
= &TREE_TYPE (DECL_EXPR_DECL (*tp
));
11744 if (TREE_CODE (*type_p
) == ERROR_MARK
)
11747 /* Call the function for the type. See if it returns anything or
11748 doesn't want us to continue. If we are to continue, walk both
11749 the normal fields and those for the declaration case. */
11750 result
= (*func
) (type_p
, &walk_subtrees
, data
);
11751 if (result
|| !walk_subtrees
)
11754 /* But do not walk a pointed-to type since it may itself need to
11755 be walked in the declaration case if it isn't anonymous. */
11756 if (!POINTER_TYPE_P (*type_p
))
11758 result
= walk_type_fields (*type_p
, func
, data
, pset
, lh
);
11763 /* If this is a record type, also walk the fields. */
11764 if (RECORD_OR_UNION_TYPE_P (*type_p
))
11768 for (field
= TYPE_FIELDS (*type_p
); field
;
11769 field
= DECL_CHAIN (field
))
11771 /* We'd like to look at the type of the field, but we can
11772 easily get infinite recursion. So assume it's pointed
11773 to elsewhere in the tree. Also, ignore things that
11775 if (TREE_CODE (field
) != FIELD_DECL
)
11778 WALK_SUBTREE (DECL_FIELD_OFFSET (field
));
11779 WALK_SUBTREE (DECL_SIZE (field
));
11780 WALK_SUBTREE (DECL_SIZE_UNIT (field
));
11781 if (TREE_CODE (*type_p
) == QUAL_UNION_TYPE
)
11782 WALK_SUBTREE (DECL_QUALIFIER (field
));
11786 /* Same for scalar types. */
11787 else if (TREE_CODE (*type_p
) == BOOLEAN_TYPE
11788 || TREE_CODE (*type_p
) == ENUMERAL_TYPE
11789 || TREE_CODE (*type_p
) == INTEGER_TYPE
11790 || TREE_CODE (*type_p
) == FIXED_POINT_TYPE
11791 || TREE_CODE (*type_p
) == REAL_TYPE
)
11793 WALK_SUBTREE (TYPE_MIN_VALUE (*type_p
));
11794 WALK_SUBTREE (TYPE_MAX_VALUE (*type_p
));
11797 WALK_SUBTREE (TYPE_SIZE (*type_p
));
11798 WALK_SUBTREE_TAIL (TYPE_SIZE_UNIT (*type_p
));
11803 if (IS_EXPR_CODE_CLASS (TREE_CODE_CLASS (code
)))
11807 /* Walk over all the sub-trees of this operand. */
11808 len
= TREE_OPERAND_LENGTH (*tp
);
11810 /* Go through the subtrees. We need to do this in forward order so
11811 that the scope of a FOR_EXPR is handled properly. */
11814 for (i
= 0; i
< len
- 1; ++i
)
11815 WALK_SUBTREE (TREE_OPERAND (*tp
, i
));
11816 WALK_SUBTREE_TAIL (TREE_OPERAND (*tp
, len
- 1));
11819 /* If this is a type, walk the needed fields in the type. */
11820 else if (TYPE_P (*tp
))
11821 return walk_type_fields (*tp
, func
, data
, pset
, lh
);
11825 /* We didn't find what we were looking for. */
11828 #undef WALK_SUBTREE_TAIL
11830 #undef WALK_SUBTREE
11832 /* Like walk_tree, but does not walk duplicate nodes more than once. */
11835 walk_tree_without_duplicates_1 (tree
*tp
, walk_tree_fn func
, void *data
,
11840 hash_set
<tree
> pset
;
11841 result
= walk_tree_1 (tp
, func
, data
, &pset
, lh
);
11847 tree_block (tree t
)
11849 const enum tree_code_class c
= TREE_CODE_CLASS (TREE_CODE (t
));
11851 if (IS_EXPR_CODE_CLASS (c
))
11852 return LOCATION_BLOCK (t
->exp
.locus
);
11853 gcc_unreachable ();
11858 tree_set_block (tree t
, tree b
)
11860 const enum tree_code_class c
= TREE_CODE_CLASS (TREE_CODE (t
));
11862 if (IS_EXPR_CODE_CLASS (c
))
11864 t
->exp
.locus
= set_block (t
->exp
.locus
, b
);
11867 gcc_unreachable ();
11870 /* Create a nameless artificial label and put it in the current
11871 function context. The label has a location of LOC. Returns the
11872 newly created label. */
11875 create_artificial_label (location_t loc
)
11877 tree lab
= build_decl (loc
,
11878 LABEL_DECL
, NULL_TREE
, void_type_node
);
11880 DECL_ARTIFICIAL (lab
) = 1;
11881 DECL_IGNORED_P (lab
) = 1;
11882 DECL_CONTEXT (lab
) = current_function_decl
;
11886 /* Given a tree, try to return a useful variable name that we can use
11887 to prefix a temporary that is being assigned the value of the tree.
11888 I.E. given <temp> = &A, return A. */
11893 tree stripped_decl
;
11896 STRIP_NOPS (stripped_decl
);
11897 if (DECL_P (stripped_decl
) && DECL_NAME (stripped_decl
))
11898 return IDENTIFIER_POINTER (DECL_NAME (stripped_decl
));
11899 else if (TREE_CODE (stripped_decl
) == SSA_NAME
)
11901 tree name
= SSA_NAME_IDENTIFIER (stripped_decl
);
11904 return IDENTIFIER_POINTER (name
);
11908 switch (TREE_CODE (stripped_decl
))
11911 return get_name (TREE_OPERAND (stripped_decl
, 0));
11918 /* Return true if TYPE has a variable argument list. */
11921 stdarg_p (const_tree fntype
)
11923 function_args_iterator args_iter
;
11924 tree n
= NULL_TREE
, t
;
11929 FOREACH_FUNCTION_ARGS (fntype
, t
, args_iter
)
11934 return n
!= NULL_TREE
&& n
!= void_type_node
;
11937 /* Return true if TYPE has a prototype. */
11940 prototype_p (const_tree fntype
)
11944 gcc_assert (fntype
!= NULL_TREE
);
11946 t
= TYPE_ARG_TYPES (fntype
);
11947 return (t
!= NULL_TREE
);
11950 /* If BLOCK is inlined from an __attribute__((__artificial__))
11951 routine, return pointer to location from where it has been
11954 block_nonartificial_location (tree block
)
11956 location_t
*ret
= NULL
;
11958 while (block
&& TREE_CODE (block
) == BLOCK
11959 && BLOCK_ABSTRACT_ORIGIN (block
))
11961 tree ao
= BLOCK_ABSTRACT_ORIGIN (block
);
11963 while (TREE_CODE (ao
) == BLOCK
11964 && BLOCK_ABSTRACT_ORIGIN (ao
)
11965 && BLOCK_ABSTRACT_ORIGIN (ao
) != ao
)
11966 ao
= BLOCK_ABSTRACT_ORIGIN (ao
);
11968 if (TREE_CODE (ao
) == FUNCTION_DECL
)
11970 /* If AO is an artificial inline, point RET to the
11971 call site locus at which it has been inlined and continue
11972 the loop, in case AO's caller is also an artificial
11974 if (DECL_DECLARED_INLINE_P (ao
)
11975 && lookup_attribute ("artificial", DECL_ATTRIBUTES (ao
)))
11976 ret
= &BLOCK_SOURCE_LOCATION (block
);
11980 else if (TREE_CODE (ao
) != BLOCK
)
11983 block
= BLOCK_SUPERCONTEXT (block
);
11989 /* If EXP is inlined from an __attribute__((__artificial__))
11990 function, return the location of the original call expression. */
11993 tree_nonartificial_location (tree exp
)
11995 location_t
*loc
= block_nonartificial_location (TREE_BLOCK (exp
));
12000 return EXPR_LOCATION (exp
);
12004 /* These are the hash table functions for the hash table of OPTIMIZATION_NODEq
12007 /* Return the hash code X, an OPTIMIZATION_NODE or TARGET_OPTION code. */
12010 cl_option_hasher::hash (tree x
)
12012 const_tree
const t
= x
;
12016 hashval_t hash
= 0;
12018 if (TREE_CODE (t
) == OPTIMIZATION_NODE
)
12020 p
= (const char *)TREE_OPTIMIZATION (t
);
12021 len
= sizeof (struct cl_optimization
);
12024 else if (TREE_CODE (t
) == TARGET_OPTION_NODE
)
12025 return cl_target_option_hash (TREE_TARGET_OPTION (t
));
12028 gcc_unreachable ();
12030 /* assume most opt flags are just 0/1, some are 2-3, and a few might be
12032 for (i
= 0; i
< len
; i
++)
12034 hash
= (hash
<< 4) ^ ((i
<< 2) | p
[i
]);
12039 /* Return nonzero if the value represented by *X (an OPTIMIZATION or
12040 TARGET_OPTION tree node) is the same as that given by *Y, which is the
12044 cl_option_hasher::equal (tree x
, tree y
)
12046 const_tree
const xt
= x
;
12047 const_tree
const yt
= y
;
12052 if (TREE_CODE (xt
) != TREE_CODE (yt
))
12055 if (TREE_CODE (xt
) == OPTIMIZATION_NODE
)
12057 xp
= (const char *)TREE_OPTIMIZATION (xt
);
12058 yp
= (const char *)TREE_OPTIMIZATION (yt
);
12059 len
= sizeof (struct cl_optimization
);
12062 else if (TREE_CODE (xt
) == TARGET_OPTION_NODE
)
12064 return cl_target_option_eq (TREE_TARGET_OPTION (xt
),
12065 TREE_TARGET_OPTION (yt
));
12069 gcc_unreachable ();
12071 return (memcmp (xp
, yp
, len
) == 0);
12074 /* Build an OPTIMIZATION_NODE based on the options in OPTS. */
12077 build_optimization_node (struct gcc_options
*opts
)
12081 /* Use the cache of optimization nodes. */
12083 cl_optimization_save (TREE_OPTIMIZATION (cl_optimization_node
),
12086 tree
*slot
= cl_option_hash_table
->find_slot (cl_optimization_node
, INSERT
);
12090 /* Insert this one into the hash table. */
12091 t
= cl_optimization_node
;
12094 /* Make a new node for next time round. */
12095 cl_optimization_node
= make_node (OPTIMIZATION_NODE
);
12101 /* Build a TARGET_OPTION_NODE based on the options in OPTS. */
12104 build_target_option_node (struct gcc_options
*opts
)
12108 /* Use the cache of optimization nodes. */
12110 cl_target_option_save (TREE_TARGET_OPTION (cl_target_option_node
),
12113 tree
*slot
= cl_option_hash_table
->find_slot (cl_target_option_node
, INSERT
);
12117 /* Insert this one into the hash table. */
12118 t
= cl_target_option_node
;
12121 /* Make a new node for next time round. */
12122 cl_target_option_node
= make_node (TARGET_OPTION_NODE
);
12128 /* Clear TREE_TARGET_GLOBALS of all TARGET_OPTION_NODE trees,
12129 so that they aren't saved during PCH writing. */
12132 prepare_target_option_nodes_for_pch (void)
12134 hash_table
<cl_option_hasher
>::iterator iter
= cl_option_hash_table
->begin ();
12135 for (; iter
!= cl_option_hash_table
->end (); ++iter
)
12136 if (TREE_CODE (*iter
) == TARGET_OPTION_NODE
)
12137 TREE_TARGET_GLOBALS (*iter
) = NULL
;
12140 /* Determine the "ultimate origin" of a block. The block may be an inlined
12141 instance of an inlined instance of a block which is local to an inline
12142 function, so we have to trace all of the way back through the origin chain
12143 to find out what sort of node actually served as the original seed for the
12147 block_ultimate_origin (const_tree block
)
12149 tree immediate_origin
= BLOCK_ABSTRACT_ORIGIN (block
);
12151 /* BLOCK_ABSTRACT_ORIGIN can point to itself; ignore that if
12152 we're trying to output the abstract instance of this function. */
12153 if (BLOCK_ABSTRACT (block
) && immediate_origin
== block
)
12156 if (immediate_origin
== NULL_TREE
)
12161 tree lookahead
= immediate_origin
;
12165 ret_val
= lookahead
;
12166 lookahead
= (TREE_CODE (ret_val
) == BLOCK
12167 ? BLOCK_ABSTRACT_ORIGIN (ret_val
) : NULL
);
12169 while (lookahead
!= NULL
&& lookahead
!= ret_val
);
12171 /* The block's abstract origin chain may not be the *ultimate* origin of
12172 the block. It could lead to a DECL that has an abstract origin set.
12173 If so, we want that DECL's abstract origin (which is what DECL_ORIGIN
12174 will give us if it has one). Note that DECL's abstract origins are
12175 supposed to be the most distant ancestor (or so decl_ultimate_origin
12176 claims), so we don't need to loop following the DECL origins. */
12177 if (DECL_P (ret_val
))
12178 return DECL_ORIGIN (ret_val
);
12184 /* Return true iff conversion from INNER_TYPE to OUTER_TYPE generates
12188 tree_nop_conversion_p (const_tree outer_type
, const_tree inner_type
)
12190 /* Use precision rather then machine mode when we can, which gives
12191 the correct answer even for submode (bit-field) types. */
12192 if ((INTEGRAL_TYPE_P (outer_type
)
12193 || POINTER_TYPE_P (outer_type
)
12194 || TREE_CODE (outer_type
) == OFFSET_TYPE
)
12195 && (INTEGRAL_TYPE_P (inner_type
)
12196 || POINTER_TYPE_P (inner_type
)
12197 || TREE_CODE (inner_type
) == OFFSET_TYPE
))
12198 return TYPE_PRECISION (outer_type
) == TYPE_PRECISION (inner_type
);
12200 /* Otherwise fall back on comparing machine modes (e.g. for
12201 aggregate types, floats). */
12202 return TYPE_MODE (outer_type
) == TYPE_MODE (inner_type
);
12205 /* Return true iff conversion in EXP generates no instruction. Mark
12206 it inline so that we fully inline into the stripping functions even
12207 though we have two uses of this function. */
12210 tree_nop_conversion (const_tree exp
)
12212 tree outer_type
, inner_type
;
12214 if (!CONVERT_EXPR_P (exp
)
12215 && TREE_CODE (exp
) != NON_LVALUE_EXPR
)
12217 if (TREE_OPERAND (exp
, 0) == error_mark_node
)
12220 outer_type
= TREE_TYPE (exp
);
12221 inner_type
= TREE_TYPE (TREE_OPERAND (exp
, 0));
12226 return tree_nop_conversion_p (outer_type
, inner_type
);
12229 /* Return true iff conversion in EXP generates no instruction. Don't
12230 consider conversions changing the signedness. */
12233 tree_sign_nop_conversion (const_tree exp
)
12235 tree outer_type
, inner_type
;
12237 if (!tree_nop_conversion (exp
))
12240 outer_type
= TREE_TYPE (exp
);
12241 inner_type
= TREE_TYPE (TREE_OPERAND (exp
, 0));
12243 return (TYPE_UNSIGNED (outer_type
) == TYPE_UNSIGNED (inner_type
)
12244 && POINTER_TYPE_P (outer_type
) == POINTER_TYPE_P (inner_type
));
12247 /* Strip conversions from EXP according to tree_nop_conversion and
12248 return the resulting expression. */
12251 tree_strip_nop_conversions (tree exp
)
12253 while (tree_nop_conversion (exp
))
12254 exp
= TREE_OPERAND (exp
, 0);
12258 /* Strip conversions from EXP according to tree_sign_nop_conversion
12259 and return the resulting expression. */
12262 tree_strip_sign_nop_conversions (tree exp
)
12264 while (tree_sign_nop_conversion (exp
))
12265 exp
= TREE_OPERAND (exp
, 0);
12269 /* Avoid any floating point extensions from EXP. */
12271 strip_float_extensions (tree exp
)
12273 tree sub
, expt
, subt
;
12275 /* For floating point constant look up the narrowest type that can hold
12276 it properly and handle it like (type)(narrowest_type)constant.
12277 This way we can optimize for instance a=a*2.0 where "a" is float
12278 but 2.0 is double constant. */
12279 if (TREE_CODE (exp
) == REAL_CST
&& !DECIMAL_FLOAT_TYPE_P (TREE_TYPE (exp
)))
12281 REAL_VALUE_TYPE orig
;
12284 orig
= TREE_REAL_CST (exp
);
12285 if (TYPE_PRECISION (TREE_TYPE (exp
)) > TYPE_PRECISION (float_type_node
)
12286 && exact_real_truncate (TYPE_MODE (float_type_node
), &orig
))
12287 type
= float_type_node
;
12288 else if (TYPE_PRECISION (TREE_TYPE (exp
))
12289 > TYPE_PRECISION (double_type_node
)
12290 && exact_real_truncate (TYPE_MODE (double_type_node
), &orig
))
12291 type
= double_type_node
;
12293 return build_real_truncate (type
, orig
);
12296 if (!CONVERT_EXPR_P (exp
))
12299 sub
= TREE_OPERAND (exp
, 0);
12300 subt
= TREE_TYPE (sub
);
12301 expt
= TREE_TYPE (exp
);
12303 if (!FLOAT_TYPE_P (subt
))
12306 if (DECIMAL_FLOAT_TYPE_P (expt
) != DECIMAL_FLOAT_TYPE_P (subt
))
12309 if (TYPE_PRECISION (subt
) > TYPE_PRECISION (expt
))
12312 return strip_float_extensions (sub
);
12315 /* Strip out all handled components that produce invariant
12319 strip_invariant_refs (const_tree op
)
12321 while (handled_component_p (op
))
12323 switch (TREE_CODE (op
))
12326 case ARRAY_RANGE_REF
:
12327 if (!is_gimple_constant (TREE_OPERAND (op
, 1))
12328 || TREE_OPERAND (op
, 2) != NULL_TREE
12329 || TREE_OPERAND (op
, 3) != NULL_TREE
)
12333 case COMPONENT_REF
:
12334 if (TREE_OPERAND (op
, 2) != NULL_TREE
)
12340 op
= TREE_OPERAND (op
, 0);
12346 static GTY(()) tree gcc_eh_personality_decl
;
12348 /* Return the GCC personality function decl. */
12351 lhd_gcc_personality (void)
12353 if (!gcc_eh_personality_decl
)
12354 gcc_eh_personality_decl
= build_personality_function ("gcc");
12355 return gcc_eh_personality_decl
;
12358 /* TARGET is a call target of GIMPLE call statement
12359 (obtained by gimple_call_fn). Return true if it is
12360 OBJ_TYPE_REF representing an virtual call of C++ method.
12361 (As opposed to OBJ_TYPE_REF representing objc calls
12362 through a cast where middle-end devirtualization machinery
12366 virtual_method_call_p (const_tree target
)
12368 if (TREE_CODE (target
) != OBJ_TYPE_REF
)
12370 tree t
= TREE_TYPE (target
);
12371 gcc_checking_assert (TREE_CODE (t
) == POINTER_TYPE
);
12373 if (TREE_CODE (t
) == FUNCTION_TYPE
)
12375 gcc_checking_assert (TREE_CODE (t
) == METHOD_TYPE
);
12376 /* If we do not have BINFO associated, it means that type was built
12377 without devirtualization enabled. Do not consider this a virtual
12379 if (!TYPE_BINFO (obj_type_ref_class (target
)))
12384 /* REF is OBJ_TYPE_REF, return the class the ref corresponds to. */
12387 obj_type_ref_class (const_tree ref
)
12389 gcc_checking_assert (TREE_CODE (ref
) == OBJ_TYPE_REF
);
12390 ref
= TREE_TYPE (ref
);
12391 gcc_checking_assert (TREE_CODE (ref
) == POINTER_TYPE
);
12392 ref
= TREE_TYPE (ref
);
12393 /* We look for type THIS points to. ObjC also builds
12394 OBJ_TYPE_REF with non-method calls, Their first parameter
12395 ID however also corresponds to class type. */
12396 gcc_checking_assert (TREE_CODE (ref
) == METHOD_TYPE
12397 || TREE_CODE (ref
) == FUNCTION_TYPE
);
12398 ref
= TREE_VALUE (TYPE_ARG_TYPES (ref
));
12399 gcc_checking_assert (TREE_CODE (ref
) == POINTER_TYPE
);
12400 return TREE_TYPE (ref
);
12403 /* Lookup sub-BINFO of BINFO of TYPE at offset POS. */
12406 lookup_binfo_at_offset (tree binfo
, tree type
, HOST_WIDE_INT pos
)
12409 tree base_binfo
, b
;
12411 for (i
= 0; BINFO_BASE_ITERATE (binfo
, i
, base_binfo
); i
++)
12412 if (pos
== tree_to_shwi (BINFO_OFFSET (base_binfo
))
12413 && types_same_for_odr (TREE_TYPE (base_binfo
), type
))
12415 else if ((b
= lookup_binfo_at_offset (base_binfo
, type
, pos
)) != NULL
)
12420 /* Try to find a base info of BINFO that would have its field decl at offset
12421 OFFSET within the BINFO type and which is of EXPECTED_TYPE. If it can be
12422 found, return, otherwise return NULL_TREE. */
12425 get_binfo_at_offset (tree binfo
, HOST_WIDE_INT offset
, tree expected_type
)
12427 tree type
= BINFO_TYPE (binfo
);
12431 HOST_WIDE_INT pos
, size
;
12435 if (types_same_for_odr (type
, expected_type
))
12440 for (fld
= TYPE_FIELDS (type
); fld
; fld
= DECL_CHAIN (fld
))
12442 if (TREE_CODE (fld
) != FIELD_DECL
|| !DECL_ARTIFICIAL (fld
))
12445 pos
= int_bit_position (fld
);
12446 size
= tree_to_uhwi (DECL_SIZE (fld
));
12447 if (pos
<= offset
&& (pos
+ size
) > offset
)
12450 if (!fld
|| TREE_CODE (TREE_TYPE (fld
)) != RECORD_TYPE
)
12453 /* Offset 0 indicates the primary base, whose vtable contents are
12454 represented in the binfo for the derived class. */
12455 else if (offset
!= 0)
12457 tree found_binfo
= NULL
, base_binfo
;
12458 /* Offsets in BINFO are in bytes relative to the whole structure
12459 while POS is in bits relative to the containing field. */
12460 int binfo_offset
= (tree_to_shwi (BINFO_OFFSET (binfo
)) + pos
12463 for (i
= 0; BINFO_BASE_ITERATE (binfo
, i
, base_binfo
); i
++)
12464 if (tree_to_shwi (BINFO_OFFSET (base_binfo
)) == binfo_offset
12465 && types_same_for_odr (TREE_TYPE (base_binfo
), TREE_TYPE (fld
)))
12467 found_binfo
= base_binfo
;
12471 binfo
= found_binfo
;
12473 binfo
= lookup_binfo_at_offset (binfo
, TREE_TYPE (fld
),
12477 type
= TREE_TYPE (fld
);
12482 /* Returns true if X is a typedef decl. */
12485 is_typedef_decl (const_tree x
)
12487 return (x
&& TREE_CODE (x
) == TYPE_DECL
12488 && DECL_ORIGINAL_TYPE (x
) != NULL_TREE
);
12491 /* Returns true iff TYPE is a type variant created for a typedef. */
12494 typedef_variant_p (const_tree type
)
12496 return is_typedef_decl (TYPE_NAME (type
));
12499 /* Warn about a use of an identifier which was marked deprecated. */
12501 warn_deprecated_use (tree node
, tree attr
)
12505 if (node
== 0 || !warn_deprecated_decl
)
12511 attr
= DECL_ATTRIBUTES (node
);
12512 else if (TYPE_P (node
))
12514 tree decl
= TYPE_STUB_DECL (node
);
12516 attr
= lookup_attribute ("deprecated",
12517 TYPE_ATTRIBUTES (TREE_TYPE (decl
)));
12522 attr
= lookup_attribute ("deprecated", attr
);
12525 msg
= TREE_STRING_POINTER (TREE_VALUE (TREE_VALUE (attr
)));
12533 w
= warning (OPT_Wdeprecated_declarations
,
12534 "%qD is deprecated: %s", node
, msg
);
12536 w
= warning (OPT_Wdeprecated_declarations
,
12537 "%qD is deprecated", node
);
12539 inform (DECL_SOURCE_LOCATION (node
), "declared here");
12541 else if (TYPE_P (node
))
12543 tree what
= NULL_TREE
;
12544 tree decl
= TYPE_STUB_DECL (node
);
12546 if (TYPE_NAME (node
))
12548 if (TREE_CODE (TYPE_NAME (node
)) == IDENTIFIER_NODE
)
12549 what
= TYPE_NAME (node
);
12550 else if (TREE_CODE (TYPE_NAME (node
)) == TYPE_DECL
12551 && DECL_NAME (TYPE_NAME (node
)))
12552 what
= DECL_NAME (TYPE_NAME (node
));
12560 w
= warning (OPT_Wdeprecated_declarations
,
12561 "%qE is deprecated: %s", what
, msg
);
12563 w
= warning (OPT_Wdeprecated_declarations
,
12564 "%qE is deprecated", what
);
12569 w
= warning (OPT_Wdeprecated_declarations
,
12570 "type is deprecated: %s", msg
);
12572 w
= warning (OPT_Wdeprecated_declarations
,
12573 "type is deprecated");
12576 inform (DECL_SOURCE_LOCATION (decl
), "declared here");
12583 warning (OPT_Wdeprecated_declarations
, "%qE is deprecated: %s",
12586 warning (OPT_Wdeprecated_declarations
, "%qE is deprecated", what
);
12591 warning (OPT_Wdeprecated_declarations
, "type is deprecated: %s",
12594 warning (OPT_Wdeprecated_declarations
, "type is deprecated");
12600 /* Return true if REF has a COMPONENT_REF with a bit-field field declaration
12601 somewhere in it. */
12604 contains_bitfld_component_ref_p (const_tree ref
)
12606 while (handled_component_p (ref
))
12608 if (TREE_CODE (ref
) == COMPONENT_REF
12609 && DECL_BIT_FIELD (TREE_OPERAND (ref
, 1)))
12611 ref
= TREE_OPERAND (ref
, 0);
12617 /* Try to determine whether a TRY_CATCH expression can fall through.
12618 This is a subroutine of block_may_fallthru. */
12621 try_catch_may_fallthru (const_tree stmt
)
12623 tree_stmt_iterator i
;
12625 /* If the TRY block can fall through, the whole TRY_CATCH can
12627 if (block_may_fallthru (TREE_OPERAND (stmt
, 0)))
12630 i
= tsi_start (TREE_OPERAND (stmt
, 1));
12631 switch (TREE_CODE (tsi_stmt (i
)))
12634 /* We expect to see a sequence of CATCH_EXPR trees, each with a
12635 catch expression and a body. The whole TRY_CATCH may fall
12636 through iff any of the catch bodies falls through. */
12637 for (; !tsi_end_p (i
); tsi_next (&i
))
12639 if (block_may_fallthru (CATCH_BODY (tsi_stmt (i
))))
12644 case EH_FILTER_EXPR
:
12645 /* The exception filter expression only matters if there is an
12646 exception. If the exception does not match EH_FILTER_TYPES,
12647 we will execute EH_FILTER_FAILURE, and we will fall through
12648 if that falls through. If the exception does match
12649 EH_FILTER_TYPES, the stack unwinder will continue up the
12650 stack, so we will not fall through. We don't know whether we
12651 will throw an exception which matches EH_FILTER_TYPES or not,
12652 so we just ignore EH_FILTER_TYPES and assume that we might
12653 throw an exception which doesn't match. */
12654 return block_may_fallthru (EH_FILTER_FAILURE (tsi_stmt (i
)));
12657 /* This case represents statements to be executed when an
12658 exception occurs. Those statements are implicitly followed
12659 by a RESX statement to resume execution after the exception.
12660 So in this case the TRY_CATCH never falls through. */
12665 /* Try to determine if we can fall out of the bottom of BLOCK. This guess
12666 need not be 100% accurate; simply be conservative and return true if we
12667 don't know. This is used only to avoid stupidly generating extra code.
12668 If we're wrong, we'll just delete the extra code later. */
12671 block_may_fallthru (const_tree block
)
12673 /* This CONST_CAST is okay because expr_last returns its argument
12674 unmodified and we assign it to a const_tree. */
12675 const_tree stmt
= expr_last (CONST_CAST_TREE (block
));
12677 switch (stmt
? TREE_CODE (stmt
) : ERROR_MARK
)
12681 /* Easy cases. If the last statement of the block implies
12682 control transfer, then we can't fall through. */
12686 /* If SWITCH_LABELS is set, this is lowered, and represents a
12687 branch to a selected label and hence can not fall through.
12688 Otherwise SWITCH_BODY is set, and the switch can fall
12690 return SWITCH_LABELS (stmt
) == NULL_TREE
;
12693 if (block_may_fallthru (COND_EXPR_THEN (stmt
)))
12695 return block_may_fallthru (COND_EXPR_ELSE (stmt
));
12698 return block_may_fallthru (BIND_EXPR_BODY (stmt
));
12700 case TRY_CATCH_EXPR
:
12701 return try_catch_may_fallthru (stmt
);
12703 case TRY_FINALLY_EXPR
:
12704 /* The finally clause is always executed after the try clause,
12705 so if it does not fall through, then the try-finally will not
12706 fall through. Otherwise, if the try clause does not fall
12707 through, then when the finally clause falls through it will
12708 resume execution wherever the try clause was going. So the
12709 whole try-finally will only fall through if both the try
12710 clause and the finally clause fall through. */
12711 return (block_may_fallthru (TREE_OPERAND (stmt
, 0))
12712 && block_may_fallthru (TREE_OPERAND (stmt
, 1)));
12715 if (TREE_CODE (TREE_OPERAND (stmt
, 1)) == CALL_EXPR
)
12716 stmt
= TREE_OPERAND (stmt
, 1);
12722 /* Functions that do not return do not fall through. */
12723 return (call_expr_flags (stmt
) & ECF_NORETURN
) == 0;
12725 case CLEANUP_POINT_EXPR
:
12726 return block_may_fallthru (TREE_OPERAND (stmt
, 0));
12729 return block_may_fallthru (TREE_OPERAND (stmt
, 1));
12735 return lang_hooks
.block_may_fallthru (stmt
);
12739 /* True if we are using EH to handle cleanups. */
12740 static bool using_eh_for_cleanups_flag
= false;
12742 /* This routine is called from front ends to indicate eh should be used for
12745 using_eh_for_cleanups (void)
12747 using_eh_for_cleanups_flag
= true;
12750 /* Query whether EH is used for cleanups. */
12752 using_eh_for_cleanups_p (void)
12754 return using_eh_for_cleanups_flag
;
12757 /* Wrapper for tree_code_name to ensure that tree code is valid */
12759 get_tree_code_name (enum tree_code code
)
12761 const char *invalid
= "<invalid tree code>";
12763 if (code
>= MAX_TREE_CODES
)
12766 return tree_code_name
[code
];
12769 /* Drops the TREE_OVERFLOW flag from T. */
12772 drop_tree_overflow (tree t
)
12774 gcc_checking_assert (TREE_OVERFLOW (t
));
12776 /* For tree codes with a sharing machinery re-build the result. */
12777 if (TREE_CODE (t
) == INTEGER_CST
)
12778 return wide_int_to_tree (TREE_TYPE (t
), t
);
12780 /* Otherwise, as all tcc_constants are possibly shared, copy the node
12781 and drop the flag. */
12783 TREE_OVERFLOW (t
) = 0;
12787 /* Given a memory reference expression T, return its base address.
12788 The base address of a memory reference expression is the main
12789 object being referenced. For instance, the base address for
12790 'array[i].fld[j]' is 'array'. You can think of this as stripping
12791 away the offset part from a memory address.
12793 This function calls handled_component_p to strip away all the inner
12794 parts of the memory reference until it reaches the base object. */
12797 get_base_address (tree t
)
12799 while (handled_component_p (t
))
12800 t
= TREE_OPERAND (t
, 0);
12802 if ((TREE_CODE (t
) == MEM_REF
12803 || TREE_CODE (t
) == TARGET_MEM_REF
)
12804 && TREE_CODE (TREE_OPERAND (t
, 0)) == ADDR_EXPR
)
12805 t
= TREE_OPERAND (TREE_OPERAND (t
, 0), 0);
12807 /* ??? Either the alias oracle or all callers need to properly deal
12808 with WITH_SIZE_EXPRs before we can look through those. */
12809 if (TREE_CODE (t
) == WITH_SIZE_EXPR
)
12815 /* Return a tree of sizetype representing the size, in bytes, of the element
12816 of EXP, an ARRAY_REF or an ARRAY_RANGE_REF. */
12819 array_ref_element_size (tree exp
)
12821 tree aligned_size
= TREE_OPERAND (exp
, 3);
12822 tree elmt_type
= TREE_TYPE (TREE_TYPE (TREE_OPERAND (exp
, 0)));
12823 location_t loc
= EXPR_LOCATION (exp
);
12825 /* If a size was specified in the ARRAY_REF, it's the size measured
12826 in alignment units of the element type. So multiply by that value. */
12829 /* ??? tree_ssa_useless_type_conversion will eliminate casts to
12830 sizetype from another type of the same width and signedness. */
12831 if (TREE_TYPE (aligned_size
) != sizetype
)
12832 aligned_size
= fold_convert_loc (loc
, sizetype
, aligned_size
);
12833 return size_binop_loc (loc
, MULT_EXPR
, aligned_size
,
12834 size_int (TYPE_ALIGN_UNIT (elmt_type
)));
12837 /* Otherwise, take the size from that of the element type. Substitute
12838 any PLACEHOLDER_EXPR that we have. */
12840 return SUBSTITUTE_PLACEHOLDER_IN_EXPR (TYPE_SIZE_UNIT (elmt_type
), exp
);
12843 /* Return a tree representing the lower bound of the array mentioned in
12844 EXP, an ARRAY_REF or an ARRAY_RANGE_REF. */
12847 array_ref_low_bound (tree exp
)
12849 tree domain_type
= TYPE_DOMAIN (TREE_TYPE (TREE_OPERAND (exp
, 0)));
12851 /* If a lower bound is specified in EXP, use it. */
12852 if (TREE_OPERAND (exp
, 2))
12853 return TREE_OPERAND (exp
, 2);
12855 /* Otherwise, if there is a domain type and it has a lower bound, use it,
12856 substituting for a PLACEHOLDER_EXPR as needed. */
12857 if (domain_type
&& TYPE_MIN_VALUE (domain_type
))
12858 return SUBSTITUTE_PLACEHOLDER_IN_EXPR (TYPE_MIN_VALUE (domain_type
), exp
);
12860 /* Otherwise, return a zero of the appropriate type. */
12861 return build_int_cst (TREE_TYPE (TREE_OPERAND (exp
, 1)), 0);
12864 /* Return a tree representing the upper bound of the array mentioned in
12865 EXP, an ARRAY_REF or an ARRAY_RANGE_REF. */
12868 array_ref_up_bound (tree exp
)
12870 tree domain_type
= TYPE_DOMAIN (TREE_TYPE (TREE_OPERAND (exp
, 0)));
12872 /* If there is a domain type and it has an upper bound, use it, substituting
12873 for a PLACEHOLDER_EXPR as needed. */
12874 if (domain_type
&& TYPE_MAX_VALUE (domain_type
))
12875 return SUBSTITUTE_PLACEHOLDER_IN_EXPR (TYPE_MAX_VALUE (domain_type
), exp
);
12877 /* Otherwise fail. */
12881 /* Returns true if REF is an array reference to an array at the end of
12882 a structure. If this is the case, the array may be allocated larger
12883 than its upper bound implies. */
12886 array_at_struct_end_p (tree ref
)
12888 if (TREE_CODE (ref
) != ARRAY_REF
12889 && TREE_CODE (ref
) != ARRAY_RANGE_REF
)
12892 while (handled_component_p (ref
))
12894 /* If the reference chain contains a component reference to a
12895 non-union type and there follows another field the reference
12896 is not at the end of a structure. */
12897 if (TREE_CODE (ref
) == COMPONENT_REF
12898 && TREE_CODE (TREE_TYPE (TREE_OPERAND (ref
, 0))) == RECORD_TYPE
)
12900 tree nextf
= DECL_CHAIN (TREE_OPERAND (ref
, 1));
12901 while (nextf
&& TREE_CODE (nextf
) != FIELD_DECL
)
12902 nextf
= DECL_CHAIN (nextf
);
12907 ref
= TREE_OPERAND (ref
, 0);
12910 /* If the reference is based on a declared entity, the size of the array
12911 is constrained by its given domain. */
12918 /* Return a tree representing the offset, in bytes, of the field referenced
12919 by EXP. This does not include any offset in DECL_FIELD_BIT_OFFSET. */
12922 component_ref_field_offset (tree exp
)
12924 tree aligned_offset
= TREE_OPERAND (exp
, 2);
12925 tree field
= TREE_OPERAND (exp
, 1);
12926 location_t loc
= EXPR_LOCATION (exp
);
12928 /* If an offset was specified in the COMPONENT_REF, it's the offset measured
12929 in units of DECL_OFFSET_ALIGN / BITS_PER_UNIT. So multiply by that
12931 if (aligned_offset
)
12933 /* ??? tree_ssa_useless_type_conversion will eliminate casts to
12934 sizetype from another type of the same width and signedness. */
12935 if (TREE_TYPE (aligned_offset
) != sizetype
)
12936 aligned_offset
= fold_convert_loc (loc
, sizetype
, aligned_offset
);
12937 return size_binop_loc (loc
, MULT_EXPR
, aligned_offset
,
12938 size_int (DECL_OFFSET_ALIGN (field
)
12942 /* Otherwise, take the offset from that of the field. Substitute
12943 any PLACEHOLDER_EXPR that we have. */
12945 return SUBSTITUTE_PLACEHOLDER_IN_EXPR (DECL_FIELD_OFFSET (field
), exp
);
12948 /* Return the machine mode of T. For vectors, returns the mode of the
12949 inner type. The main use case is to feed the result to HONOR_NANS,
12950 avoiding the BLKmode that a direct TYPE_MODE (T) might return. */
12953 element_mode (const_tree t
)
12957 if (VECTOR_TYPE_P (t
) || TREE_CODE (t
) == COMPLEX_TYPE
)
12959 return TYPE_MODE (t
);
12963 /* Veirfy that basic properties of T match TV and thus T can be a variant of
12964 TV. TV should be the more specified variant (i.e. the main variant). */
12967 verify_type_variant (const_tree t
, tree tv
)
12969 /* Type variant can differ by:
12971 - TYPE_QUALS: TYPE_READONLY, TYPE_VOLATILE, TYPE_ATOMIC, TYPE_RESTRICT,
12972 ENCODE_QUAL_ADDR_SPACE.
12973 - main variant may be TYPE_COMPLETE_P and variant types !TYPE_COMPLETE_P
12974 in this case some values may not be set in the variant types
12975 (see TYPE_COMPLETE_P checks).
12976 - it is possible to have TYPE_ARTIFICIAL variant of non-artifical type
12977 - by TYPE_NAME and attributes (i.e. when variant originate by typedef)
12978 - TYPE_CANONICAL (TYPE_ALIAS_SET is the same among variants)
12979 - by the alignment: TYPE_ALIGN and TYPE_USER_ALIGN
12980 - during LTO by TYPE_CONTEXT if type is TYPE_FILE_SCOPE_P
12981 this is necessary to make it possible to merge types form different TUs
12982 - arrays, pointers and references may have TREE_TYPE that is a variant
12983 of TREE_TYPE of their main variants.
12984 - aggregates may have new TYPE_FIELDS list that list variants of
12985 the main variant TYPE_FIELDS.
12986 - vector types may differ by TYPE_VECTOR_OPAQUE
12987 - TYPE_METHODS is always NULL for vairant types and maintained for
12991 /* Convenience macro for matching individual fields. */
12992 #define verify_variant_match(flag) \
12994 if (flag (tv) != flag (t)) \
12996 error ("type variant differs by " #flag "."); \
13002 /* tree_base checks. */
13004 verify_variant_match (TREE_CODE
);
13005 /* FIXME: Ada builds non-artificial variants of artificial types. */
13006 if (TYPE_ARTIFICIAL (tv
) && 0)
13007 verify_variant_match (TYPE_ARTIFICIAL
);
13008 if (POINTER_TYPE_P (tv
))
13009 verify_variant_match (TYPE_REF_CAN_ALIAS_ALL
);
13010 /* FIXME: TYPE_SIZES_GIMPLIFIED may differs for Ada build. */
13011 verify_variant_match (TYPE_UNSIGNED
);
13012 verify_variant_match (TYPE_ALIGN_OK
);
13013 verify_variant_match (TYPE_PACKED
);
13014 if (TREE_CODE (t
) == REFERENCE_TYPE
)
13015 verify_variant_match (TYPE_REF_IS_RVALUE
);
13016 if (AGGREGATE_TYPE_P (t
))
13017 verify_variant_match (TYPE_REVERSE_STORAGE_ORDER
);
13019 verify_variant_match (TYPE_SATURATING
);
13020 /* FIXME: This check trigger during libstdc++ build. */
13021 if (RECORD_OR_UNION_TYPE_P (t
) && COMPLETE_TYPE_P (t
) && 0)
13022 verify_variant_match (TYPE_FINAL_P
);
13024 /* tree_type_common checks. */
13026 if (COMPLETE_TYPE_P (t
))
13028 verify_variant_match (TYPE_SIZE
);
13029 verify_variant_match (TYPE_MODE
);
13030 if (TYPE_SIZE_UNIT (t
) != TYPE_SIZE_UNIT (tv
)
13031 /* FIXME: ideally we should compare pointer equality, but java FE
13032 produce variants where size is INTEGER_CST of different type (int
13033 wrt size_type) during libjava biuld. */
13034 && !operand_equal_p (TYPE_SIZE_UNIT (t
), TYPE_SIZE_UNIT (tv
), 0))
13036 error ("type variant has different TYPE_SIZE_UNIT");
13038 error ("type variant's TYPE_SIZE_UNIT");
13039 debug_tree (TYPE_SIZE_UNIT (tv
));
13040 error ("type's TYPE_SIZE_UNIT");
13041 debug_tree (TYPE_SIZE_UNIT (t
));
13045 verify_variant_match (TYPE_PRECISION
);
13046 verify_variant_match (TYPE_NEEDS_CONSTRUCTING
);
13047 if (RECORD_OR_UNION_TYPE_P (t
))
13048 verify_variant_match (TYPE_TRANSPARENT_AGGR
);
13049 else if (TREE_CODE (t
) == ARRAY_TYPE
)
13050 verify_variant_match (TYPE_NONALIASED_COMPONENT
);
13051 /* During LTO we merge variant lists from diferent translation units
13052 that may differ BY TYPE_CONTEXT that in turn may point
13053 to TRANSLATION_UNIT_DECL.
13054 Ada also builds variants of types with different TYPE_CONTEXT. */
13055 if ((!in_lto_p
|| !TYPE_FILE_SCOPE_P (t
)) && 0)
13056 verify_variant_match (TYPE_CONTEXT
);
13057 verify_variant_match (TYPE_STRING_FLAG
);
13058 if (TYPE_ALIAS_SET_KNOWN_P (t
))
13060 error ("type variant with TYPE_ALIAS_SET_KNOWN_P");
13065 /* tree_type_non_common checks. */
13067 /* FIXME: C FE uses TYPE_VFIELD to record C_TYPE_INCOMPLETE_VARS
13068 and dangle the pointer from time to time. */
13069 if (RECORD_OR_UNION_TYPE_P (t
) && TYPE_VFIELD (t
) != TYPE_VFIELD (tv
)
13070 && (in_lto_p
|| !TYPE_VFIELD (tv
)
13071 || TREE_CODE (TYPE_VFIELD (tv
)) != TREE_LIST
))
13073 error ("type variant has different TYPE_VFIELD");
13077 if ((TREE_CODE (t
) == ENUMERAL_TYPE
&& COMPLETE_TYPE_P (t
))
13078 || TREE_CODE (t
) == INTEGER_TYPE
13079 || TREE_CODE (t
) == BOOLEAN_TYPE
13080 || TREE_CODE (t
) == REAL_TYPE
13081 || TREE_CODE (t
) == FIXED_POINT_TYPE
)
13083 verify_variant_match (TYPE_MAX_VALUE
);
13084 verify_variant_match (TYPE_MIN_VALUE
);
13086 if (TREE_CODE (t
) == METHOD_TYPE
)
13087 verify_variant_match (TYPE_METHOD_BASETYPE
);
13088 if (RECORD_OR_UNION_TYPE_P (t
) && TYPE_METHODS (t
))
13090 error ("type variant has TYPE_METHODS");
13094 if (TREE_CODE (t
) == OFFSET_TYPE
)
13095 verify_variant_match (TYPE_OFFSET_BASETYPE
);
13096 if (TREE_CODE (t
) == ARRAY_TYPE
)
13097 verify_variant_match (TYPE_ARRAY_MAX_SIZE
);
13098 /* FIXME: Be lax and allow TYPE_BINFO to be missing in variant types
13099 or even type's main variant. This is needed to make bootstrap pass
13100 and the bug seems new in GCC 5.
13101 C++ FE should be updated to make this consistent and we should check
13102 that TYPE_BINFO is always NULL for !COMPLETE_TYPE_P and otherwise there
13103 is a match with main variant.
13105 Also disable the check for Java for now because of parser hack that builds
13106 first an dummy BINFO and then sometimes replace it by real BINFO in some
13108 if (RECORD_OR_UNION_TYPE_P (t
) && TYPE_BINFO (t
) && TYPE_BINFO (tv
)
13109 && TYPE_BINFO (t
) != TYPE_BINFO (tv
)
13110 /* FIXME: Java sometimes keep dump TYPE_BINFOs on variant types.
13111 Since there is no cheap way to tell C++/Java type w/o LTO, do checking
13112 at LTO time only. */
13113 && (in_lto_p
&& odr_type_p (t
)))
13115 error ("type variant has different TYPE_BINFO");
13117 error ("type variant's TYPE_BINFO");
13118 debug_tree (TYPE_BINFO (tv
));
13119 error ("type's TYPE_BINFO");
13120 debug_tree (TYPE_BINFO (t
));
13124 /* Check various uses of TYPE_VALUES_RAW. */
13125 if (TREE_CODE (t
) == ENUMERAL_TYPE
)
13126 verify_variant_match (TYPE_VALUES
);
13127 else if (TREE_CODE (t
) == ARRAY_TYPE
)
13128 verify_variant_match (TYPE_DOMAIN
);
13129 /* Permit incomplete variants of complete type. While FEs may complete
13130 all variants, this does not happen for C++ templates in all cases. */
13131 else if (RECORD_OR_UNION_TYPE_P (t
)
13132 && COMPLETE_TYPE_P (t
)
13133 && TYPE_FIELDS (t
) != TYPE_FIELDS (tv
))
13137 /* Fortran builds qualified variants as new records with items of
13138 qualified type. Verify that they looks same. */
13139 for (f1
= TYPE_FIELDS (t
), f2
= TYPE_FIELDS (tv
);
13141 f1
= TREE_CHAIN (f1
), f2
= TREE_CHAIN (f2
))
13142 if (TREE_CODE (f1
) != FIELD_DECL
|| TREE_CODE (f2
) != FIELD_DECL
13143 || (TYPE_MAIN_VARIANT (TREE_TYPE (f1
))
13144 != TYPE_MAIN_VARIANT (TREE_TYPE (f2
))
13145 /* FIXME: gfc_nonrestricted_type builds all types as variants
13146 with exception of pointer types. It deeply copies the type
13147 which means that we may end up with a variant type
13148 referring non-variant pointer. We may change it to
13149 produce types as variants, too, like
13150 objc_get_protocol_qualified_type does. */
13151 && !POINTER_TYPE_P (TREE_TYPE (f1
)))
13152 || DECL_FIELD_OFFSET (f1
) != DECL_FIELD_OFFSET (f2
)
13153 || DECL_FIELD_BIT_OFFSET (f1
) != DECL_FIELD_BIT_OFFSET (f2
))
13157 error ("type variant has different TYPE_FIELDS");
13159 error ("first mismatch is field");
13161 error ("and field");
13166 else if ((TREE_CODE (t
) == FUNCTION_TYPE
|| TREE_CODE (t
) == METHOD_TYPE
))
13167 verify_variant_match (TYPE_ARG_TYPES
);
13168 /* For C++ the qualified variant of array type is really an array type
13169 of qualified TREE_TYPE.
13170 objc builds variants of pointer where pointer to type is a variant, too
13171 in objc_get_protocol_qualified_type. */
13172 if (TREE_TYPE (t
) != TREE_TYPE (tv
)
13173 && ((TREE_CODE (t
) != ARRAY_TYPE
13174 && !POINTER_TYPE_P (t
))
13175 || TYPE_MAIN_VARIANT (TREE_TYPE (t
))
13176 != TYPE_MAIN_VARIANT (TREE_TYPE (tv
))))
13178 error ("type variant has different TREE_TYPE");
13180 error ("type variant's TREE_TYPE");
13181 debug_tree (TREE_TYPE (tv
));
13182 error ("type's TREE_TYPE");
13183 debug_tree (TREE_TYPE (t
));
13186 if (type_with_alias_set_p (t
)
13187 && !gimple_canonical_types_compatible_p (t
, tv
, false))
13189 error ("type is not compatible with its vairant");
13191 error ("type variant's TREE_TYPE");
13192 debug_tree (TREE_TYPE (tv
));
13193 error ("type's TREE_TYPE");
13194 debug_tree (TREE_TYPE (t
));
13198 #undef verify_variant_match
13202 /* The TYPE_CANONICAL merging machinery. It should closely resemble
13203 the middle-end types_compatible_p function. It needs to avoid
13204 claiming types are different for types that should be treated
13205 the same with respect to TBAA. Canonical types are also used
13206 for IL consistency checks via the useless_type_conversion_p
13207 predicate which does not handle all type kinds itself but falls
13208 back to pointer-comparison of TYPE_CANONICAL for aggregates
13211 /* Return true if TYPE_UNSIGNED of TYPE should be ignored for canonical
13212 type calculation because we need to allow inter-operability between signed
13213 and unsigned variants. */
13216 type_with_interoperable_signedness (const_tree type
)
13218 /* Fortran standard require C_SIGNED_CHAR to be interoperable with both
13219 signed char and unsigned char. Similarly fortran FE builds
13220 C_SIZE_T as signed type, while C defines it unsigned. */
13222 return tree_code_for_canonical_type_merging (TREE_CODE (type
))
13224 && (TYPE_PRECISION (type
) == TYPE_PRECISION (signed_char_type_node
)
13225 || TYPE_PRECISION (type
) == TYPE_PRECISION (size_type_node
));
13228 /* Return true iff T1 and T2 are structurally identical for what
13230 This function is used both by lto.c canonical type merging and by the
13231 verifier. If TRUST_TYPE_CANONICAL we do not look into structure of types
13232 that have TYPE_CANONICAL defined and assume them equivalent. This is useful
13233 only for LTO because only in these cases TYPE_CANONICAL equivalence
13234 correspond to one defined by gimple_canonical_types_compatible_p. */
13237 gimple_canonical_types_compatible_p (const_tree t1
, const_tree t2
,
13238 bool trust_type_canonical
)
13240 /* Type variants should be same as the main variant. When not doing sanity
13241 checking to verify this fact, go to main variants and save some work. */
13242 if (trust_type_canonical
)
13244 t1
= TYPE_MAIN_VARIANT (t1
);
13245 t2
= TYPE_MAIN_VARIANT (t2
);
13248 /* Check first for the obvious case of pointer identity. */
13252 /* Check that we have two types to compare. */
13253 if (t1
== NULL_TREE
|| t2
== NULL_TREE
)
13256 /* We consider complete types always compatible with incomplete type.
13257 This does not make sense for canonical type calculation and thus we
13258 need to ensure that we are never called on it.
13260 FIXME: For more correctness the function probably should have three modes
13261 1) mode assuming that types are complete mathcing their structure
13262 2) mode allowing incomplete types but producing equivalence classes
13263 and thus ignoring all info from complete types
13264 3) mode allowing incomplete types to match complete but checking
13265 compatibility between complete types.
13267 1 and 2 can be used for canonical type calculation. 3 is the real
13268 definition of type compatibility that can be used i.e. for warnings during
13269 declaration merging. */
13271 gcc_assert (!trust_type_canonical
13272 || (type_with_alias_set_p (t1
) && type_with_alias_set_p (t2
)));
13273 /* If the types have been previously registered and found equal
13276 if (TYPE_CANONICAL (t1
) && TYPE_CANONICAL (t2
)
13277 && trust_type_canonical
)
13279 /* Do not use TYPE_CANONICAL of pointer types. For LTO streamed types
13280 they are always NULL, but they are set to non-NULL for types
13281 constructed by build_pointer_type and variants. In this case the
13282 TYPE_CANONICAL is more fine grained than the equivalnce we test (where
13283 all pointers are considered equal. Be sure to not return false
13285 gcc_checking_assert (canonical_type_used_p (t1
)
13286 && canonical_type_used_p (t2
));
13287 return TYPE_CANONICAL (t1
) == TYPE_CANONICAL (t2
);
13290 /* Can't be the same type if the types don't have the same code. */
13291 enum tree_code code
= tree_code_for_canonical_type_merging (TREE_CODE (t1
));
13292 if (code
!= tree_code_for_canonical_type_merging (TREE_CODE (t2
)))
13295 /* Qualifiers do not matter for canonical type comparison purposes. */
13297 /* Void types and nullptr types are always the same. */
13298 if (TREE_CODE (t1
) == VOID_TYPE
13299 || TREE_CODE (t1
) == NULLPTR_TYPE
)
13302 /* Can't be the same type if they have different mode. */
13303 if (TYPE_MODE (t1
) != TYPE_MODE (t2
))
13306 /* Non-aggregate types can be handled cheaply. */
13307 if (INTEGRAL_TYPE_P (t1
)
13308 || SCALAR_FLOAT_TYPE_P (t1
)
13309 || FIXED_POINT_TYPE_P (t1
)
13310 || TREE_CODE (t1
) == VECTOR_TYPE
13311 || TREE_CODE (t1
) == COMPLEX_TYPE
13312 || TREE_CODE (t1
) == OFFSET_TYPE
13313 || POINTER_TYPE_P (t1
))
13315 /* Can't be the same type if they have different recision. */
13316 if (TYPE_PRECISION (t1
) != TYPE_PRECISION (t2
))
13319 /* In some cases the signed and unsigned types are required to be
13321 if (TYPE_UNSIGNED (t1
) != TYPE_UNSIGNED (t2
)
13322 && !type_with_interoperable_signedness (t1
))
13325 /* Fortran's C_SIGNED_CHAR is !TYPE_STRING_FLAG but needs to be
13326 interoperable with "signed char". Unless all frontends are revisited
13327 to agree on these types, we must ignore the flag completely. */
13329 /* Fortran standard define C_PTR type that is compatible with every
13330 C pointer. For this reason we need to glob all pointers into one.
13331 Still pointers in different address spaces are not compatible. */
13332 if (POINTER_TYPE_P (t1
))
13334 if (TYPE_ADDR_SPACE (TREE_TYPE (t1
))
13335 != TYPE_ADDR_SPACE (TREE_TYPE (t2
)))
13339 /* Tail-recurse to components. */
13340 if (TREE_CODE (t1
) == VECTOR_TYPE
13341 || TREE_CODE (t1
) == COMPLEX_TYPE
)
13342 return gimple_canonical_types_compatible_p (TREE_TYPE (t1
),
13344 trust_type_canonical
);
13349 /* Do type-specific comparisons. */
13350 switch (TREE_CODE (t1
))
13353 /* Array types are the same if the element types are the same and
13354 the number of elements are the same. */
13355 if (!gimple_canonical_types_compatible_p (TREE_TYPE (t1
), TREE_TYPE (t2
),
13356 trust_type_canonical
)
13357 || TYPE_STRING_FLAG (t1
) != TYPE_STRING_FLAG (t2
)
13358 || TYPE_REVERSE_STORAGE_ORDER (t1
) != TYPE_REVERSE_STORAGE_ORDER (t2
)
13359 || TYPE_NONALIASED_COMPONENT (t1
) != TYPE_NONALIASED_COMPONENT (t2
))
13363 tree i1
= TYPE_DOMAIN (t1
);
13364 tree i2
= TYPE_DOMAIN (t2
);
13366 /* For an incomplete external array, the type domain can be
13367 NULL_TREE. Check this condition also. */
13368 if (i1
== NULL_TREE
&& i2
== NULL_TREE
)
13370 else if (i1
== NULL_TREE
|| i2
== NULL_TREE
)
13374 tree min1
= TYPE_MIN_VALUE (i1
);
13375 tree min2
= TYPE_MIN_VALUE (i2
);
13376 tree max1
= TYPE_MAX_VALUE (i1
);
13377 tree max2
= TYPE_MAX_VALUE (i2
);
13379 /* The minimum/maximum values have to be the same. */
13382 && ((TREE_CODE (min1
) == PLACEHOLDER_EXPR
13383 && TREE_CODE (min2
) == PLACEHOLDER_EXPR
)
13384 || operand_equal_p (min1
, min2
, 0))))
13387 && ((TREE_CODE (max1
) == PLACEHOLDER_EXPR
13388 && TREE_CODE (max2
) == PLACEHOLDER_EXPR
)
13389 || operand_equal_p (max1
, max2
, 0)))))
13397 case FUNCTION_TYPE
:
13398 /* Function types are the same if the return type and arguments types
13400 if (!gimple_canonical_types_compatible_p (TREE_TYPE (t1
), TREE_TYPE (t2
),
13401 trust_type_canonical
))
13404 if (TYPE_ARG_TYPES (t1
) == TYPE_ARG_TYPES (t2
))
13408 tree parms1
, parms2
;
13410 for (parms1
= TYPE_ARG_TYPES (t1
), parms2
= TYPE_ARG_TYPES (t2
);
13412 parms1
= TREE_CHAIN (parms1
), parms2
= TREE_CHAIN (parms2
))
13414 if (!gimple_canonical_types_compatible_p
13415 (TREE_VALUE (parms1
), TREE_VALUE (parms2
),
13416 trust_type_canonical
))
13420 if (parms1
|| parms2
)
13428 case QUAL_UNION_TYPE
:
13432 /* Don't try to compare variants of an incomplete type, before
13433 TYPE_FIELDS has been copied around. */
13434 if (!COMPLETE_TYPE_P (t1
) && !COMPLETE_TYPE_P (t2
))
13438 if (TYPE_REVERSE_STORAGE_ORDER (t1
) != TYPE_REVERSE_STORAGE_ORDER (t2
))
13441 /* For aggregate types, all the fields must be the same. */
13442 for (f1
= TYPE_FIELDS (t1
), f2
= TYPE_FIELDS (t2
);
13444 f1
= TREE_CHAIN (f1
), f2
= TREE_CHAIN (f2
))
13446 /* Skip non-fields. */
13447 while (f1
&& TREE_CODE (f1
) != FIELD_DECL
)
13448 f1
= TREE_CHAIN (f1
);
13449 while (f2
&& TREE_CODE (f2
) != FIELD_DECL
)
13450 f2
= TREE_CHAIN (f2
);
13453 /* The fields must have the same name, offset and type. */
13454 if (DECL_NONADDRESSABLE_P (f1
) != DECL_NONADDRESSABLE_P (f2
)
13455 || !gimple_compare_field_offset (f1
, f2
)
13456 || !gimple_canonical_types_compatible_p
13457 (TREE_TYPE (f1
), TREE_TYPE (f2
),
13458 trust_type_canonical
))
13462 /* If one aggregate has more fields than the other, they
13463 are not the same. */
13471 /* Consider all types with language specific trees in them mutually
13472 compatible. This is executed only from verify_type and false
13473 positives can be tolerated. */
13474 gcc_assert (!in_lto_p
);
13479 /* Verify type T. */
13482 verify_type (const_tree t
)
13484 bool error_found
= false;
13485 tree mv
= TYPE_MAIN_VARIANT (t
);
13488 error ("Main variant is not defined");
13489 error_found
= true;
13491 else if (mv
!= TYPE_MAIN_VARIANT (mv
))
13493 error ("TYPE_MAIN_VARIANT has different TYPE_MAIN_VARIANT");
13495 error_found
= true;
13497 else if (t
!= mv
&& !verify_type_variant (t
, mv
))
13498 error_found
= true;
13500 tree ct
= TYPE_CANONICAL (t
);
13503 else if (TYPE_CANONICAL (t
) != ct
)
13505 error ("TYPE_CANONICAL has different TYPE_CANONICAL");
13507 error_found
= true;
13509 /* Method and function types can not be used to address memory and thus
13510 TYPE_CANONICAL really matters only for determining useless conversions.
13512 FIXME: C++ FE produce declarations of builtin functions that are not
13513 compatible with main variants. */
13514 else if (TREE_CODE (t
) == FUNCTION_TYPE
)
13517 /* FIXME: gimple_canonical_types_compatible_p can not compare types
13518 with variably sized arrays because their sizes possibly
13519 gimplified to different variables. */
13520 && !variably_modified_type_p (ct
, NULL
)
13521 && !gimple_canonical_types_compatible_p (t
, ct
, false))
13523 error ("TYPE_CANONICAL is not compatible");
13525 error_found
= true;
13528 if (COMPLETE_TYPE_P (t
) && TYPE_CANONICAL (t
)
13529 && TYPE_MODE (t
) != TYPE_MODE (TYPE_CANONICAL (t
)))
13531 error ("TYPE_MODE of TYPE_CANONICAL is not compatible");
13533 error_found
= true;
13535 if (TYPE_MAIN_VARIANT (t
) == t
&& ct
&& TYPE_MAIN_VARIANT (ct
) != ct
)
13537 error ("TYPE_CANONICAL of main variant is not main variant");
13539 debug_tree (TYPE_MAIN_VARIANT (ct
));
13540 error_found
= true;
13544 /* Check various uses of TYPE_MINVAL. */
13545 if (RECORD_OR_UNION_TYPE_P (t
))
13547 /* FIXME: C FE uses TYPE_VFIELD to record C_TYPE_INCOMPLETE_VARS
13548 and danagle the pointer from time to time. */
13549 if (TYPE_VFIELD (t
)
13550 && TREE_CODE (TYPE_VFIELD (t
)) != FIELD_DECL
13551 && TREE_CODE (TYPE_VFIELD (t
)) != TREE_LIST
)
13553 error ("TYPE_VFIELD is not FIELD_DECL nor TREE_LIST");
13554 debug_tree (TYPE_VFIELD (t
));
13555 error_found
= true;
13558 else if (TREE_CODE (t
) == POINTER_TYPE
)
13560 if (TYPE_NEXT_PTR_TO (t
)
13561 && TREE_CODE (TYPE_NEXT_PTR_TO (t
)) != POINTER_TYPE
)
13563 error ("TYPE_NEXT_PTR_TO is not POINTER_TYPE");
13564 debug_tree (TYPE_NEXT_PTR_TO (t
));
13565 error_found
= true;
13568 else if (TREE_CODE (t
) == REFERENCE_TYPE
)
13570 if (TYPE_NEXT_REF_TO (t
)
13571 && TREE_CODE (TYPE_NEXT_REF_TO (t
)) != REFERENCE_TYPE
)
13573 error ("TYPE_NEXT_REF_TO is not REFERENCE_TYPE");
13574 debug_tree (TYPE_NEXT_REF_TO (t
));
13575 error_found
= true;
13578 else if (INTEGRAL_TYPE_P (t
) || TREE_CODE (t
) == REAL_TYPE
13579 || TREE_CODE (t
) == FIXED_POINT_TYPE
)
13581 /* FIXME: The following check should pass:
13582 useless_type_conversion_p (const_cast <tree> (t),
13583 TREE_TYPE (TYPE_MIN_VALUE (t))
13584 but does not for C sizetypes in LTO. */
13586 /* Java uses TYPE_MINVAL for TYPE_ARGUMENT_SIGNATURE. */
13587 else if (TYPE_MINVAL (t
)
13588 && ((TREE_CODE (t
) != METHOD_TYPE
&& TREE_CODE (t
) != FUNCTION_TYPE
)
13591 error ("TYPE_MINVAL non-NULL");
13592 debug_tree (TYPE_MINVAL (t
));
13593 error_found
= true;
13596 /* Check various uses of TYPE_MAXVAL. */
13597 if (RECORD_OR_UNION_TYPE_P (t
))
13599 if (TYPE_METHODS (t
) && TREE_CODE (TYPE_METHODS (t
)) != FUNCTION_DECL
13600 && TREE_CODE (TYPE_METHODS (t
)) != TEMPLATE_DECL
13601 && TYPE_METHODS (t
) != error_mark_node
)
13603 error ("TYPE_METHODS is not FUNCTION_DECL, TEMPLATE_DECL nor error_mark_node");
13604 debug_tree (TYPE_METHODS (t
));
13605 error_found
= true;
13608 else if (TREE_CODE (t
) == FUNCTION_TYPE
|| TREE_CODE (t
) == METHOD_TYPE
)
13610 if (TYPE_METHOD_BASETYPE (t
)
13611 && TREE_CODE (TYPE_METHOD_BASETYPE (t
)) != RECORD_TYPE
13612 && TREE_CODE (TYPE_METHOD_BASETYPE (t
)) != UNION_TYPE
)
13614 error ("TYPE_METHOD_BASETYPE is not record nor union");
13615 debug_tree (TYPE_METHOD_BASETYPE (t
));
13616 error_found
= true;
13619 else if (TREE_CODE (t
) == OFFSET_TYPE
)
13621 if (TYPE_OFFSET_BASETYPE (t
)
13622 && TREE_CODE (TYPE_OFFSET_BASETYPE (t
)) != RECORD_TYPE
13623 && TREE_CODE (TYPE_OFFSET_BASETYPE (t
)) != UNION_TYPE
)
13625 error ("TYPE_OFFSET_BASETYPE is not record nor union");
13626 debug_tree (TYPE_OFFSET_BASETYPE (t
));
13627 error_found
= true;
13630 else if (INTEGRAL_TYPE_P (t
) || TREE_CODE (t
) == REAL_TYPE
13631 || TREE_CODE (t
) == FIXED_POINT_TYPE
)
13633 /* FIXME: The following check should pass:
13634 useless_type_conversion_p (const_cast <tree> (t),
13635 TREE_TYPE (TYPE_MAX_VALUE (t))
13636 but does not for C sizetypes in LTO. */
13638 else if (TREE_CODE (t
) == ARRAY_TYPE
)
13640 if (TYPE_ARRAY_MAX_SIZE (t
)
13641 && TREE_CODE (TYPE_ARRAY_MAX_SIZE (t
)) != INTEGER_CST
)
13643 error ("TYPE_ARRAY_MAX_SIZE not INTEGER_CST");
13644 debug_tree (TYPE_ARRAY_MAX_SIZE (t
));
13645 error_found
= true;
13648 else if (TYPE_MAXVAL (t
))
13650 error ("TYPE_MAXVAL non-NULL");
13651 debug_tree (TYPE_MAXVAL (t
));
13652 error_found
= true;
13655 /* Check various uses of TYPE_BINFO. */
13656 if (RECORD_OR_UNION_TYPE_P (t
))
13658 if (!TYPE_BINFO (t
))
13660 else if (TREE_CODE (TYPE_BINFO (t
)) != TREE_BINFO
)
13662 error ("TYPE_BINFO is not TREE_BINFO");
13663 debug_tree (TYPE_BINFO (t
));
13664 error_found
= true;
13666 /* FIXME: Java builds invalid empty binfos that do not have
13668 else if (TREE_TYPE (TYPE_BINFO (t
)) != TYPE_MAIN_VARIANT (t
) && 0)
13670 error ("TYPE_BINFO type is not TYPE_MAIN_VARIANT");
13671 debug_tree (TREE_TYPE (TYPE_BINFO (t
)));
13672 error_found
= true;
13675 else if (TYPE_LANG_SLOT_1 (t
) && in_lto_p
)
13677 error ("TYPE_LANG_SLOT_1 (binfo) field is non-NULL");
13678 debug_tree (TYPE_LANG_SLOT_1 (t
));
13679 error_found
= true;
13682 /* Check various uses of TYPE_VALUES_RAW. */
13683 if (TREE_CODE (t
) == ENUMERAL_TYPE
)
13684 for (tree l
= TYPE_VALUES (t
); l
; l
= TREE_CHAIN (l
))
13686 tree value
= TREE_VALUE (l
);
13687 tree name
= TREE_PURPOSE (l
);
13689 /* C FE porduce INTEGER_CST of INTEGER_TYPE, while C++ FE uses
13690 CONST_DECL of ENUMERAL TYPE. */
13691 if (TREE_CODE (value
) != INTEGER_CST
&& TREE_CODE (value
) != CONST_DECL
)
13693 error ("Enum value is not CONST_DECL or INTEGER_CST");
13694 debug_tree (value
);
13696 error_found
= true;
13698 if (TREE_CODE (TREE_TYPE (value
)) != INTEGER_TYPE
13699 && !useless_type_conversion_p (const_cast <tree
> (t
), TREE_TYPE (value
)))
13701 error ("Enum value type is not INTEGER_TYPE nor convertible to the enum");
13702 debug_tree (value
);
13704 error_found
= true;
13706 if (TREE_CODE (name
) != IDENTIFIER_NODE
)
13708 error ("Enum value name is not IDENTIFIER_NODE");
13709 debug_tree (value
);
13711 error_found
= true;
13714 else if (TREE_CODE (t
) == ARRAY_TYPE
)
13716 if (TYPE_DOMAIN (t
) && TREE_CODE (TYPE_DOMAIN (t
)) != INTEGER_TYPE
)
13718 error ("Array TYPE_DOMAIN is not integer type");
13719 debug_tree (TYPE_DOMAIN (t
));
13720 error_found
= true;
13723 else if (RECORD_OR_UNION_TYPE_P (t
))
13725 if (TYPE_FIELDS (t
) && !COMPLETE_TYPE_P (t
) && in_lto_p
)
13727 error ("TYPE_FIELDS defined in incomplete type");
13728 error_found
= true;
13730 for (tree fld
= TYPE_FIELDS (t
); fld
; fld
= TREE_CHAIN (fld
))
13732 /* TODO: verify properties of decls. */
13733 if (TREE_CODE (fld
) == FIELD_DECL
)
13735 else if (TREE_CODE (fld
) == TYPE_DECL
)
13737 else if (TREE_CODE (fld
) == CONST_DECL
)
13739 else if (TREE_CODE (fld
) == VAR_DECL
)
13741 else if (TREE_CODE (fld
) == TEMPLATE_DECL
)
13743 else if (TREE_CODE (fld
) == USING_DECL
)
13747 error ("Wrong tree in TYPE_FIELDS list");
13749 error_found
= true;
13753 else if (TREE_CODE (t
) == INTEGER_TYPE
13754 || TREE_CODE (t
) == BOOLEAN_TYPE
13755 || TREE_CODE (t
) == OFFSET_TYPE
13756 || TREE_CODE (t
) == REFERENCE_TYPE
13757 || TREE_CODE (t
) == NULLPTR_TYPE
13758 || TREE_CODE (t
) == POINTER_TYPE
)
13760 if (TYPE_CACHED_VALUES_P (t
) != (TYPE_CACHED_VALUES (t
) != NULL
))
13762 error ("TYPE_CACHED_VALUES_P is %i while TYPE_CACHED_VALUES is %p",
13763 TYPE_CACHED_VALUES_P (t
), (void *)TYPE_CACHED_VALUES (t
));
13764 error_found
= true;
13766 else if (TYPE_CACHED_VALUES_P (t
) && TREE_CODE (TYPE_CACHED_VALUES (t
)) != TREE_VEC
)
13768 error ("TYPE_CACHED_VALUES is not TREE_VEC");
13769 debug_tree (TYPE_CACHED_VALUES (t
));
13770 error_found
= true;
13772 /* Verify just enough of cache to ensure that no one copied it to new type.
13773 All copying should go by copy_node that should clear it. */
13774 else if (TYPE_CACHED_VALUES_P (t
))
13777 for (i
= 0; i
< TREE_VEC_LENGTH (TYPE_CACHED_VALUES (t
)); i
++)
13778 if (TREE_VEC_ELT (TYPE_CACHED_VALUES (t
), i
)
13779 && TREE_TYPE (TREE_VEC_ELT (TYPE_CACHED_VALUES (t
), i
)) != t
)
13781 error ("wrong TYPE_CACHED_VALUES entry");
13782 debug_tree (TREE_VEC_ELT (TYPE_CACHED_VALUES (t
), i
));
13783 error_found
= true;
13788 else if (TREE_CODE (t
) == FUNCTION_TYPE
|| TREE_CODE (t
) == METHOD_TYPE
)
13789 for (tree l
= TYPE_ARG_TYPES (t
); l
; l
= TREE_CHAIN (l
))
13791 /* C++ FE uses TREE_PURPOSE to store initial values. */
13792 if (TREE_PURPOSE (l
) && in_lto_p
)
13794 error ("TREE_PURPOSE is non-NULL in TYPE_ARG_TYPES list");
13796 error_found
= true;
13798 if (!TYPE_P (TREE_VALUE (l
)))
13800 error ("Wrong entry in TYPE_ARG_TYPES list");
13802 error_found
= true;
13805 else if (!is_lang_specific (t
) && TYPE_VALUES_RAW (t
))
13807 error ("TYPE_VALUES_RAW field is non-NULL");
13808 debug_tree (TYPE_VALUES_RAW (t
));
13809 error_found
= true;
13811 if (TREE_CODE (t
) != INTEGER_TYPE
13812 && TREE_CODE (t
) != BOOLEAN_TYPE
13813 && TREE_CODE (t
) != OFFSET_TYPE
13814 && TREE_CODE (t
) != REFERENCE_TYPE
13815 && TREE_CODE (t
) != NULLPTR_TYPE
13816 && TREE_CODE (t
) != POINTER_TYPE
13817 && TYPE_CACHED_VALUES_P (t
))
13819 error ("TYPE_CACHED_VALUES_P is set while it should not");
13820 error_found
= true;
13822 if (TYPE_STRING_FLAG (t
)
13823 && TREE_CODE (t
) != ARRAY_TYPE
&& TREE_CODE (t
) != INTEGER_TYPE
)
13825 error ("TYPE_STRING_FLAG is set on wrong type code");
13826 error_found
= true;
13828 else if (TYPE_STRING_FLAG (t
))
13831 if (TREE_CODE (b
) == ARRAY_TYPE
)
13833 /* Java builds arrays with TYPE_STRING_FLAG of promoted_char_type
13835 if (TREE_CODE (b
) != INTEGER_TYPE
)
13837 error ("TYPE_STRING_FLAG is set on type that does not look like "
13838 "char nor array of chars");
13839 error_found
= true;
13843 /* ipa-devirt makes an assumption that TYPE_METHOD_BASETYPE is always
13844 TYPE_MAIN_VARIANT and it would be odd to add methods only to variatns
13846 if (TREE_CODE (t
) == METHOD_TYPE
13847 && TYPE_MAIN_VARIANT (TYPE_METHOD_BASETYPE (t
)) != TYPE_METHOD_BASETYPE (t
))
13849 error ("TYPE_METHOD_BASETYPE is not main variant");
13850 error_found
= true;
13855 debug_tree (const_cast <tree
> (t
));
13856 internal_error ("verify_type failed");
13861 /* Return true if ARG is marked with the nonnull attribute in the
13862 current function signature. */
13865 nonnull_arg_p (const_tree arg
)
13867 tree t
, attrs
, fntype
;
13868 unsigned HOST_WIDE_INT arg_num
;
13870 gcc_assert (TREE_CODE (arg
) == PARM_DECL
13871 && (POINTER_TYPE_P (TREE_TYPE (arg
))
13872 || TREE_CODE (TREE_TYPE (arg
)) == OFFSET_TYPE
));
13874 /* The static chain decl is always non null. */
13875 if (arg
== cfun
->static_chain_decl
)
13878 /* THIS argument of method is always non-NULL. */
13879 if (TREE_CODE (TREE_TYPE (cfun
->decl
)) == METHOD_TYPE
13880 && arg
== DECL_ARGUMENTS (cfun
->decl
)
13881 && flag_delete_null_pointer_checks
)
13884 /* Values passed by reference are always non-NULL. */
13885 if (TREE_CODE (TREE_TYPE (arg
)) == REFERENCE_TYPE
13886 && flag_delete_null_pointer_checks
)
13889 fntype
= TREE_TYPE (cfun
->decl
);
13890 for (attrs
= TYPE_ATTRIBUTES (fntype
); attrs
; attrs
= TREE_CHAIN (attrs
))
13892 attrs
= lookup_attribute ("nonnull", attrs
);
13894 /* If "nonnull" wasn't specified, we know nothing about the argument. */
13895 if (attrs
== NULL_TREE
)
13898 /* If "nonnull" applies to all the arguments, then ARG is non-null. */
13899 if (TREE_VALUE (attrs
) == NULL_TREE
)
13902 /* Get the position number for ARG in the function signature. */
13903 for (arg_num
= 1, t
= DECL_ARGUMENTS (cfun
->decl
);
13905 t
= DECL_CHAIN (t
), arg_num
++)
13911 gcc_assert (t
== arg
);
13913 /* Now see if ARG_NUM is mentioned in the nonnull list. */
13914 for (t
= TREE_VALUE (attrs
); t
; t
= TREE_CHAIN (t
))
13916 if (compare_tree_int (TREE_VALUE (t
), arg_num
) == 0)
13924 /* Given location LOC, strip away any packed range information
13925 or ad-hoc information. */
13928 get_pure_location (location_t loc
)
13930 if (IS_ADHOC_LOC (loc
))
13932 = line_table
->location_adhoc_data_map
.data
[loc
& MAX_SOURCE_LOCATION
].locus
;
13934 if (loc
>= LINEMAPS_MACRO_LOWEST_LOCATION (line_table
))
13937 if (loc
< RESERVED_LOCATION_COUNT
)
13940 const line_map
*map
= linemap_lookup (line_table
, loc
);
13941 const line_map_ordinary
*ordmap
= linemap_check_ordinary (map
);
13943 return loc
& ~((1 << ordmap
->m_range_bits
) - 1);
13946 /* Combine LOC and BLOCK to a combined adhoc loc, retaining any range
13950 set_block (location_t loc
, tree block
)
13952 location_t pure_loc
= get_pure_location (loc
);
13953 source_range src_range
= get_range_from_loc (line_table
, loc
);
13954 return COMBINE_LOCATION_DATA (line_table
, pure_loc
, src_range
, block
);
13958 set_source_range (tree expr
, location_t start
, location_t finish
)
13960 source_range src_range
;
13961 src_range
.m_start
= start
;
13962 src_range
.m_finish
= finish
;
13963 return set_source_range (expr
, src_range
);
13967 set_source_range (tree expr
, source_range src_range
)
13969 if (!EXPR_P (expr
))
13970 return UNKNOWN_LOCATION
;
13972 location_t pure_loc
= get_pure_location (EXPR_LOCATION (expr
));
13973 location_t adhoc
= COMBINE_LOCATION_DATA (line_table
,
13977 SET_EXPR_LOCATION (expr
, adhoc
);
13982 make_location (location_t caret
, location_t start
, location_t finish
)
13984 location_t pure_loc
= get_pure_location (caret
);
13985 source_range src_range
;
13986 src_range
.m_start
= start
;
13987 src_range
.m_finish
= finish
;
13988 location_t combined_loc
= COMBINE_LOCATION_DATA (line_table
,
13992 return combined_loc
;
13995 /* Return the name of combined function FN, for debugging purposes. */
13998 combined_fn_name (combined_fn fn
)
14000 if (builtin_fn_p (fn
))
14002 tree fndecl
= builtin_decl_explicit (as_builtin_fn (fn
));
14003 return IDENTIFIER_POINTER (DECL_NAME (fndecl
));
14006 return internal_fn_name (as_internal_fn (fn
));
14009 #include "gt-tree.h"