ada: output.adb: fix newline being inserted when buffer is full
[official-gcc.git] / gcc / cp / init.cc
blobb49a7ca916994cbf5e92643ec9245d2f7c70641f
1 /* Handle initialization things in -*- C++ -*-
2 Copyright (C) 1987-2022 Free Software Foundation, Inc.
3 Contributed by Michael Tiemann (tiemann@cygnus.com)
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3, or (at your option)
10 any later version.
12 GCC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
21 /* High-level class interface. */
23 #include "config.h"
24 #include "system.h"
25 #include "coretypes.h"
26 #include "target.h"
27 #include "cp-tree.h"
28 #include "stringpool.h"
29 #include "varasm.h"
30 #include "gimplify.h"
31 #include "c-family/c-ubsan.h"
32 #include "intl.h"
33 #include "stringpool.h"
34 #include "attribs.h"
35 #include "asan.h"
36 #include "stor-layout.h"
37 #include "pointer-query.h"
39 static bool begin_init_stmts (tree *, tree *);
40 static tree finish_init_stmts (bool, tree, tree);
41 static void construct_virtual_base (tree, tree);
42 static bool expand_aggr_init_1 (tree, tree, tree, tree, int, tsubst_flags_t);
43 static bool expand_default_init (tree, tree, tree, tree, int, tsubst_flags_t);
44 static int member_init_ok_or_else (tree, tree, tree);
45 static void expand_virtual_init (tree, tree);
46 static tree sort_mem_initializers (tree, tree);
47 static tree initializing_context (tree);
48 static void expand_cleanup_for_base (tree, tree);
49 static tree dfs_initialize_vtbl_ptrs (tree, void *);
50 static tree build_field_list (tree, tree, int *);
51 static int diagnose_uninitialized_cst_or_ref_member_1 (tree, tree, bool, bool);
53 static GTY(()) tree fn;
55 /* We are about to generate some complex initialization code.
56 Conceptually, it is all a single expression. However, we may want
57 to include conditionals, loops, and other such statement-level
58 constructs. Therefore, we build the initialization code inside a
59 statement-expression. This function starts such an expression.
60 STMT_EXPR_P and COMPOUND_STMT_P are filled in by this function;
61 pass them back to finish_init_stmts when the expression is
62 complete. */
64 static bool
65 begin_init_stmts (tree *stmt_expr_p, tree *compound_stmt_p)
67 bool is_global = !building_stmt_list_p ();
69 *stmt_expr_p = begin_stmt_expr ();
70 *compound_stmt_p = begin_compound_stmt (BCS_NO_SCOPE);
72 return is_global;
75 /* Finish out the statement-expression begun by the previous call to
76 begin_init_stmts. Returns the statement-expression itself. */
78 static tree
79 finish_init_stmts (bool is_global, tree stmt_expr, tree compound_stmt)
81 finish_compound_stmt (compound_stmt);
83 stmt_expr = finish_stmt_expr (stmt_expr, true);
85 gcc_assert (!building_stmt_list_p () == is_global);
87 return stmt_expr;
90 /* Constructors */
92 /* Called from initialize_vtbl_ptrs via dfs_walk. BINFO is the base
93 which we want to initialize the vtable pointer for, DATA is
94 TREE_LIST whose TREE_VALUE is the this ptr expression. */
96 static tree
97 dfs_initialize_vtbl_ptrs (tree binfo, void *data)
99 if (!TYPE_CONTAINS_VPTR_P (BINFO_TYPE (binfo)))
100 return dfs_skip_bases;
102 if (!BINFO_PRIMARY_P (binfo) || BINFO_VIRTUAL_P (binfo))
104 tree base_ptr = TREE_VALUE ((tree) data);
106 base_ptr = build_base_path (PLUS_EXPR, base_ptr, binfo, /*nonnull=*/1,
107 tf_warning_or_error);
109 expand_virtual_init (binfo, base_ptr);
112 return NULL_TREE;
115 /* Initialize all the vtable pointers in the object pointed to by
116 ADDR. */
118 void
119 initialize_vtbl_ptrs (tree addr)
121 tree list;
122 tree type;
124 type = TREE_TYPE (TREE_TYPE (addr));
125 list = build_tree_list (type, addr);
127 /* Walk through the hierarchy, initializing the vptr in each base
128 class. We do these in pre-order because we can't find the virtual
129 bases for a class until we've initialized the vtbl for that
130 class. */
131 dfs_walk_once (TYPE_BINFO (type), dfs_initialize_vtbl_ptrs, NULL, list);
134 /* Return an expression for the zero-initialization of an object with
135 type T. This expression will either be a constant (in the case
136 that T is a scalar), or a CONSTRUCTOR (in the case that T is an
137 aggregate), or NULL (in the case that T does not require
138 initialization). In either case, the value can be used as
139 DECL_INITIAL for a decl of the indicated TYPE; it is a valid static
140 initializer. If NELTS is non-NULL, and TYPE is an ARRAY_TYPE, NELTS
141 is the number of elements in the array. If STATIC_STORAGE_P is
142 TRUE, initializers are only generated for entities for which
143 zero-initialization does not simply mean filling the storage with
144 zero bytes. FIELD_SIZE, if non-NULL, is the bit size of the field,
145 subfields with bit positions at or above that bit size shouldn't
146 be added. Note that this only works when the result is assigned
147 to a base COMPONENT_REF; if we only have a pointer to the base subobject,
148 expand_assignment will end up clearing the full size of TYPE. */
150 static tree
151 build_zero_init_1 (tree type, tree nelts, bool static_storage_p,
152 tree field_size)
154 tree init = NULL_TREE;
156 /* [dcl.init]
158 To zero-initialize an object of type T means:
160 -- if T is a scalar type, the storage is set to the value of zero
161 converted to T.
163 -- if T is a non-union class type, the storage for each non-static
164 data member and each base-class subobject is zero-initialized.
166 -- if T is a union type, the storage for its first data member is
167 zero-initialized.
169 -- if T is an array type, the storage for each element is
170 zero-initialized.
172 -- if T is a reference type, no initialization is performed. */
174 gcc_assert (nelts == NULL_TREE || TREE_CODE (nelts) == INTEGER_CST);
176 if (type == error_mark_node)
178 else if (static_storage_p && zero_init_p (type))
179 /* In order to save space, we do not explicitly build initializers
180 for items that do not need them. GCC's semantics are that
181 items with static storage duration that are not otherwise
182 initialized are initialized to zero. */
184 else if (TYPE_PTR_OR_PTRMEM_P (type))
185 init = fold (convert (type, nullptr_node));
186 else if (NULLPTR_TYPE_P (type))
187 init = build_int_cst (type, 0);
188 else if (SCALAR_TYPE_P (type))
189 init = build_zero_cst (type);
190 else if (RECORD_OR_UNION_CODE_P (TREE_CODE (type)))
192 tree field;
193 vec<constructor_elt, va_gc> *v = NULL;
195 /* Iterate over the fields, building initializations. */
196 for (field = TYPE_FIELDS (type); field; field = DECL_CHAIN (field))
198 if (TREE_CODE (field) != FIELD_DECL)
199 continue;
201 if (TREE_TYPE (field) == error_mark_node)
202 continue;
204 /* Don't add virtual bases for base classes if they are beyond
205 the size of the current field, that means it is present
206 somewhere else in the object. */
207 if (field_size)
209 tree bitpos = bit_position (field);
210 if (TREE_CODE (bitpos) == INTEGER_CST
211 && !tree_int_cst_lt (bitpos, field_size))
212 continue;
215 /* Note that for class types there will be FIELD_DECLs
216 corresponding to base classes as well. Thus, iterating
217 over TYPE_FIELDs will result in correct initialization of
218 all of the subobjects. */
219 if (!static_storage_p || !zero_init_p (TREE_TYPE (field)))
221 tree new_field_size
222 = (DECL_FIELD_IS_BASE (field)
223 && DECL_SIZE (field)
224 && TREE_CODE (DECL_SIZE (field)) == INTEGER_CST)
225 ? DECL_SIZE (field) : NULL_TREE;
226 tree value = build_zero_init_1 (TREE_TYPE (field),
227 /*nelts=*/NULL_TREE,
228 static_storage_p,
229 new_field_size);
230 if (value)
231 CONSTRUCTOR_APPEND_ELT(v, field, value);
234 /* For unions, only the first field is initialized. */
235 if (TREE_CODE (type) == UNION_TYPE)
236 break;
239 /* Build a constructor to contain the initializations. */
240 init = build_constructor (type, v);
242 else if (TREE_CODE (type) == ARRAY_TYPE)
244 tree max_index;
245 vec<constructor_elt, va_gc> *v = NULL;
247 /* Iterate over the array elements, building initializations. */
248 if (nelts)
249 max_index = fold_build2_loc (input_location, MINUS_EXPR,
250 TREE_TYPE (nelts), nelts,
251 build_one_cst (TREE_TYPE (nelts)));
252 /* Treat flexible array members like [0] arrays. */
253 else if (TYPE_DOMAIN (type) == NULL_TREE)
254 return NULL_TREE;
255 else
256 max_index = array_type_nelts (type);
258 /* If we have an error_mark here, we should just return error mark
259 as we don't know the size of the array yet. */
260 if (max_index == error_mark_node)
261 return error_mark_node;
262 gcc_assert (TREE_CODE (max_index) == INTEGER_CST);
264 /* A zero-sized array, which is accepted as an extension, will
265 have an upper bound of -1. */
266 if (!integer_minus_onep (max_index))
268 constructor_elt ce;
270 /* If this is a one element array, we just use a regular init. */
271 if (integer_zerop (max_index))
272 ce.index = size_zero_node;
273 else
274 ce.index = build2 (RANGE_EXPR, sizetype, size_zero_node,
275 max_index);
277 ce.value = build_zero_init_1 (TREE_TYPE (type), /*nelts=*/NULL_TREE,
278 static_storage_p, NULL_TREE);
279 if (ce.value)
281 vec_alloc (v, 1);
282 v->quick_push (ce);
286 /* Build a constructor to contain the initializations. */
287 init = build_constructor (type, v);
289 else if (VECTOR_TYPE_P (type))
290 init = build_zero_cst (type);
291 else
292 gcc_assert (TYPE_REF_P (type));
294 /* In all cases, the initializer is a constant. */
295 if (init)
296 TREE_CONSTANT (init) = 1;
298 return init;
301 /* Return an expression for the zero-initialization of an object with
302 type T. This expression will either be a constant (in the case
303 that T is a scalar), or a CONSTRUCTOR (in the case that T is an
304 aggregate), or NULL (in the case that T does not require
305 initialization). In either case, the value can be used as
306 DECL_INITIAL for a decl of the indicated TYPE; it is a valid static
307 initializer. If NELTS is non-NULL, and TYPE is an ARRAY_TYPE, NELTS
308 is the number of elements in the array. If STATIC_STORAGE_P is
309 TRUE, initializers are only generated for entities for which
310 zero-initialization does not simply mean filling the storage with
311 zero bytes. */
313 tree
314 build_zero_init (tree type, tree nelts, bool static_storage_p)
316 return build_zero_init_1 (type, nelts, static_storage_p, NULL_TREE);
319 /* Return a suitable initializer for value-initializing an object of type
320 TYPE, as described in [dcl.init]. */
322 tree
323 build_value_init (tree type, tsubst_flags_t complain)
325 /* [dcl.init]
327 To value-initialize an object of type T means:
329 - if T is a class type (clause 9) with either no default constructor
330 (12.1) or a default constructor that is user-provided or deleted,
331 then the object is default-initialized;
333 - if T is a (possibly cv-qualified) class type without a user-provided
334 or deleted default constructor, then the object is zero-initialized
335 and the semantic constraints for default-initialization are checked,
336 and if T has a non-trivial default constructor, the object is
337 default-initialized;
339 - if T is an array type, then each element is value-initialized;
341 - otherwise, the object is zero-initialized.
343 A program that calls for default-initialization or
344 value-initialization of an entity of reference type is ill-formed. */
346 if (CLASS_TYPE_P (type) && type_build_ctor_call (type))
348 tree ctor
349 = build_special_member_call (NULL_TREE, complete_ctor_identifier,
350 NULL, type, LOOKUP_NORMAL, complain);
351 if (ctor == error_mark_node || TREE_CONSTANT (ctor))
352 return ctor;
353 if (processing_template_decl)
354 /* The AGGR_INIT_EXPR tweaking below breaks in templates. */
355 return build_min (CAST_EXPR, type, NULL_TREE);
356 tree fn = NULL_TREE;
357 if (TREE_CODE (ctor) == CALL_EXPR)
358 fn = get_callee_fndecl (ctor);
359 ctor = build_aggr_init_expr (type, ctor);
360 if (fn && user_provided_p (fn))
361 return ctor;
362 else if (TYPE_HAS_COMPLEX_DFLT (type))
364 /* This is a class that needs constructing, but doesn't have
365 a user-provided constructor. So we need to zero-initialize
366 the object and then call the implicitly defined ctor.
367 This will be handled in simplify_aggr_init_expr. */
368 AGGR_INIT_ZERO_FIRST (ctor) = 1;
369 return ctor;
373 /* Discard any access checking during subobject initialization;
374 the checks are implied by the call to the ctor which we have
375 verified is OK (cpp0x/defaulted46.C). */
376 push_deferring_access_checks (dk_deferred);
377 tree r = build_value_init_noctor (type, complain);
378 pop_deferring_access_checks ();
379 return r;
382 /* Like build_value_init, but don't call the constructor for TYPE. Used
383 for base initializers. */
385 tree
386 build_value_init_noctor (tree type, tsubst_flags_t complain)
388 if (!COMPLETE_TYPE_P (type))
390 if (complain & tf_error)
391 error ("value-initialization of incomplete type %qT", type);
392 return error_mark_node;
394 /* FIXME the class and array cases should just use digest_init once it is
395 SFINAE-enabled. */
396 if (CLASS_TYPE_P (type))
398 gcc_assert (!TYPE_HAS_COMPLEX_DFLT (type)
399 || errorcount != 0);
401 if (TREE_CODE (type) != UNION_TYPE)
403 tree field;
404 vec<constructor_elt, va_gc> *v = NULL;
406 /* Iterate over the fields, building initializations. */
407 for (field = TYPE_FIELDS (type); field; field = DECL_CHAIN (field))
409 tree ftype, value;
411 if (TREE_CODE (field) != FIELD_DECL)
412 continue;
414 ftype = TREE_TYPE (field);
416 if (ftype == error_mark_node)
417 continue;
419 /* Ignore flexible array members for value initialization. */
420 if (TREE_CODE (ftype) == ARRAY_TYPE
421 && !COMPLETE_TYPE_P (ftype)
422 && !TYPE_DOMAIN (ftype)
423 && COMPLETE_TYPE_P (TREE_TYPE (ftype))
424 && (next_aggregate_field (DECL_CHAIN (field))
425 == NULL_TREE))
426 continue;
428 /* Ignore unnamed zero-width bitfields. */
429 if (DECL_UNNAMED_BIT_FIELD (field)
430 && integer_zerop (DECL_SIZE (field)))
431 continue;
433 /* We could skip vfields and fields of types with
434 user-defined constructors, but I think that won't improve
435 performance at all; it should be simpler in general just
436 to zero out the entire object than try to only zero the
437 bits that actually need it. */
439 /* Note that for class types there will be FIELD_DECLs
440 corresponding to base classes as well. Thus, iterating
441 over TYPE_FIELDs will result in correct initialization of
442 all of the subobjects. */
443 value = build_value_init (ftype, complain);
444 value = maybe_constant_init (value);
446 if (value == error_mark_node)
447 return error_mark_node;
449 CONSTRUCTOR_APPEND_ELT(v, field, value);
451 /* We shouldn't have gotten here for anything that would need
452 non-trivial initialization, and gimplify_init_ctor_preeval
453 would need to be fixed to allow it. */
454 gcc_assert (TREE_CODE (value) != TARGET_EXPR
455 && TREE_CODE (value) != AGGR_INIT_EXPR);
458 /* Build a constructor to contain the zero- initializations. */
459 return build_constructor (type, v);
462 else if (TREE_CODE (type) == ARRAY_TYPE)
464 vec<constructor_elt, va_gc> *v = NULL;
466 /* Iterate over the array elements, building initializations. */
467 tree max_index = array_type_nelts (type);
469 /* If we have an error_mark here, we should just return error mark
470 as we don't know the size of the array yet. */
471 if (max_index == error_mark_node)
473 if (complain & tf_error)
474 error ("cannot value-initialize array of unknown bound %qT",
475 type);
476 return error_mark_node;
478 gcc_assert (TREE_CODE (max_index) == INTEGER_CST);
480 /* A zero-sized array, which is accepted as an extension, will
481 have an upper bound of -1. */
482 if (!tree_int_cst_equal (max_index, integer_minus_one_node))
484 constructor_elt ce;
486 /* If this is a one element array, we just use a regular init. */
487 if (tree_int_cst_equal (size_zero_node, max_index))
488 ce.index = size_zero_node;
489 else
490 ce.index = build2 (RANGE_EXPR, sizetype, size_zero_node, max_index);
492 ce.value = build_value_init (TREE_TYPE (type), complain);
493 ce.value = maybe_constant_init (ce.value);
494 if (ce.value == error_mark_node)
495 return error_mark_node;
497 vec_alloc (v, 1);
498 v->quick_push (ce);
500 /* We shouldn't have gotten here for anything that would need
501 non-trivial initialization, and gimplify_init_ctor_preeval
502 would need to be fixed to allow it. */
503 gcc_assert (TREE_CODE (ce.value) != TARGET_EXPR
504 && TREE_CODE (ce.value) != AGGR_INIT_EXPR);
507 /* Build a constructor to contain the initializations. */
508 return build_constructor (type, v);
510 else if (TREE_CODE (type) == FUNCTION_TYPE)
512 if (complain & tf_error)
513 error ("value-initialization of function type %qT", type);
514 return error_mark_node;
516 else if (TYPE_REF_P (type))
518 if (complain & tf_error)
519 error ("value-initialization of reference type %qT", type);
520 return error_mark_node;
523 return build_zero_init (type, NULL_TREE, /*static_storage_p=*/false);
526 /* Initialize current class with INIT, a TREE_LIST of arguments for
527 a target constructor. If TREE_LIST is void_type_node, an empty
528 initializer list was given. Return the target constructor. */
530 static tree
531 perform_target_ctor (tree init)
533 tree decl = current_class_ref;
534 tree type = current_class_type;
536 init = build_aggr_init (decl, init, LOOKUP_NORMAL|LOOKUP_DELEGATING_CONS,
537 tf_warning_or_error);
538 finish_expr_stmt (init);
539 if (type_build_dtor_call (type))
541 tree expr = build_delete (input_location,
542 type, decl, sfk_complete_destructor,
543 LOOKUP_NORMAL
544 |LOOKUP_NONVIRTUAL
545 |LOOKUP_DESTRUCTOR,
546 0, tf_warning_or_error);
547 if (DECL_HAS_IN_CHARGE_PARM_P (current_function_decl))
549 tree base = build_delete (input_location,
550 type, decl, sfk_base_destructor,
551 LOOKUP_NORMAL
552 |LOOKUP_NONVIRTUAL
553 |LOOKUP_DESTRUCTOR,
554 0, tf_warning_or_error);
555 expr = build_if_in_charge (expr, base);
557 if (expr != error_mark_node
558 && TYPE_HAS_NONTRIVIAL_DESTRUCTOR (type))
559 finish_eh_cleanup (expr);
561 return init;
564 /* Return the non-static data initializer for FIELD_DECL MEMBER. */
566 static GTY((cache)) decl_tree_cache_map *nsdmi_inst;
568 tree
569 get_nsdmi (tree member, bool in_ctor, tsubst_flags_t complain)
571 tree init;
572 tree save_ccp = current_class_ptr;
573 tree save_ccr = current_class_ref;
575 if (DECL_LANG_SPECIFIC (member) && DECL_TEMPLATE_INFO (member))
577 init = DECL_INITIAL (DECL_TI_TEMPLATE (member));
578 location_t expr_loc
579 = cp_expr_loc_or_loc (init, DECL_SOURCE_LOCATION (member));
580 if (TREE_CODE (init) == DEFERRED_PARSE)
581 /* Unparsed. */;
582 else if (tree *slot = hash_map_safe_get (nsdmi_inst, member))
583 init = *slot;
584 /* Check recursive instantiation. */
585 else if (DECL_INSTANTIATING_NSDMI_P (member))
587 if (complain & tf_error)
588 error_at (expr_loc, "recursive instantiation of default member "
589 "initializer for %qD", member);
590 init = error_mark_node;
592 else
594 cp_evaluated ev;
596 location_t sloc = input_location;
597 input_location = expr_loc;
599 DECL_INSTANTIATING_NSDMI_P (member) = 1;
601 bool pushed = false;
602 tree ctx = DECL_CONTEXT (member);
604 processing_template_decl_sentinel ptds (/*reset*/false);
605 if (!currently_open_class (ctx))
607 if (!LOCAL_CLASS_P (ctx))
608 push_to_top_level ();
609 else
610 /* push_to_top_level would lose the necessary function context,
611 just reset processing_template_decl. */
612 processing_template_decl = 0;
613 push_nested_class (ctx);
614 push_deferring_access_checks (dk_no_deferred);
615 pushed = true;
618 inject_this_parameter (ctx, TYPE_UNQUALIFIED);
620 start_lambda_scope (member);
622 /* Do deferred instantiation of the NSDMI. */
623 init = tsubst_copy_and_build (init, DECL_TI_ARGS (member),
624 complain, member);
625 init = digest_nsdmi_init (member, init, complain);
627 finish_lambda_scope ();
629 DECL_INSTANTIATING_NSDMI_P (member) = 0;
631 if (init != error_mark_node)
632 hash_map_safe_put<hm_ggc> (nsdmi_inst, member, init);
634 if (pushed)
636 pop_deferring_access_checks ();
637 pop_nested_class ();
638 if (!LOCAL_CLASS_P (ctx))
639 pop_from_top_level ();
642 input_location = sloc;
645 else
646 init = DECL_INITIAL (member);
648 if (init && TREE_CODE (init) == DEFERRED_PARSE)
650 if (complain & tf_error)
652 error ("default member initializer for %qD required before the end "
653 "of its enclosing class", member);
654 inform (location_of (init), "defined here");
655 DECL_INITIAL (member) = error_mark_node;
657 init = error_mark_node;
660 if (in_ctor)
662 current_class_ptr = save_ccp;
663 current_class_ref = save_ccr;
665 else
667 /* Use a PLACEHOLDER_EXPR when we don't have a 'this' parameter to
668 refer to; constexpr evaluation knows what to do with it. */
669 current_class_ref = build0 (PLACEHOLDER_EXPR, DECL_CONTEXT (member));
670 current_class_ptr = build_address (current_class_ref);
673 /* Clear processing_template_decl for sake of break_out_target_exprs;
674 INIT is always non-templated. */
675 processing_template_decl_sentinel ptds;
677 /* Strip redundant TARGET_EXPR so we don't need to remap it, and
678 so the aggregate init code below will see a CONSTRUCTOR. */
679 bool simple_target = (init && SIMPLE_TARGET_EXPR_P (init));
680 if (simple_target)
681 init = TARGET_EXPR_INITIAL (init);
682 init = break_out_target_exprs (init, /*loc*/true);
683 if (init && TREE_CODE (init) == TARGET_EXPR)
684 /* In a constructor, this expresses the full initialization, prevent
685 perform_member_init from calling another constructor (58162). */
686 TARGET_EXPR_DIRECT_INIT_P (init) = in_ctor;
687 if (simple_target && TREE_CODE (init) != CONSTRUCTOR)
688 /* Now put it back so C++17 copy elision works. */
689 init = get_target_expr (init);
691 set_target_expr_eliding (init);
693 current_class_ptr = save_ccp;
694 current_class_ref = save_ccr;
695 return init;
698 /* Diagnose the flexible array MEMBER if its INITializer is non-null
699 and return true if so. Otherwise return false. */
701 bool
702 maybe_reject_flexarray_init (tree member, tree init)
704 tree type = TREE_TYPE (member);
706 if (!init
707 || TREE_CODE (type) != ARRAY_TYPE
708 || TYPE_DOMAIN (type))
709 return false;
711 /* Point at the flexible array member declaration if it's initialized
712 in-class, and at the ctor if it's initialized in a ctor member
713 initializer list. */
714 location_t loc;
715 if (DECL_INITIAL (member) == init
716 || !current_function_decl
717 || DECL_DEFAULTED_FN (current_function_decl))
718 loc = DECL_SOURCE_LOCATION (member);
719 else
720 loc = DECL_SOURCE_LOCATION (current_function_decl);
722 error_at (loc, "initializer for flexible array member %q#D", member);
723 return true;
726 /* If INIT's value can come from a call to std::initializer_list<T>::begin,
727 return that function. Otherwise, NULL_TREE. */
729 static tree
730 find_list_begin (tree init)
732 STRIP_NOPS (init);
733 while (TREE_CODE (init) == COMPOUND_EXPR)
734 init = TREE_OPERAND (init, 1);
735 STRIP_NOPS (init);
736 if (TREE_CODE (init) == COND_EXPR)
738 tree left = TREE_OPERAND (init, 1);
739 if (!left)
740 left = TREE_OPERAND (init, 0);
741 left = find_list_begin (left);
742 if (left)
743 return left;
744 return find_list_begin (TREE_OPERAND (init, 2));
746 if (TREE_CODE (init) == CALL_EXPR)
747 if (tree fn = get_callee_fndecl (init))
748 if (id_equal (DECL_NAME (fn), "begin")
749 && is_std_init_list (DECL_CONTEXT (fn)))
750 return fn;
751 return NULL_TREE;
754 /* If INIT initializing MEMBER is copying the address of the underlying array
755 of an initializer_list, warn. */
757 static void
758 maybe_warn_list_ctor (tree member, tree init)
760 tree memtype = TREE_TYPE (member);
761 if (!init || !TYPE_PTR_P (memtype)
762 || !is_list_ctor (current_function_decl))
763 return;
765 tree parm = FUNCTION_FIRST_USER_PARMTYPE (current_function_decl);
766 parm = TREE_VALUE (parm);
767 tree initlist = non_reference (parm);
769 /* Do not warn if the parameter is an lvalue reference to non-const. */
770 if (TYPE_REF_P (parm) && !TYPE_REF_IS_RVALUE (parm)
771 && !CP_TYPE_CONST_P (initlist))
772 return;
774 tree targs = CLASSTYPE_TI_ARGS (initlist);
775 tree elttype = TREE_VEC_ELT (targs, 0);
777 if (!same_type_ignoring_top_level_qualifiers_p
778 (TREE_TYPE (memtype), elttype))
779 return;
781 tree begin = find_list_begin (init);
782 if (!begin)
783 return;
785 location_t loc = cp_expr_loc_or_input_loc (init);
786 warning_at (loc, OPT_Winit_list_lifetime,
787 "initializing %qD from %qE does not extend the lifetime "
788 "of the underlying array", member, begin);
791 /* Data structure for find_uninit_fields_r, below. */
793 struct find_uninit_data {
794 /* The set tracking the yet-uninitialized members. */
795 hash_set<tree> *uninitialized;
796 /* The data member we are currently initializing. It can be either
797 a type (initializing a base class/delegating constructors), or
798 a COMPONENT_REF. */
799 tree member;
802 /* walk_tree callback that warns about using uninitialized data in
803 a member-initializer-list. */
805 static tree
806 find_uninit_fields_r (tree *tp, int *walk_subtrees, void *data)
808 find_uninit_data *d = static_cast<find_uninit_data *>(data);
809 hash_set<tree> *uninitialized = d->uninitialized;
810 tree init = *tp;
811 const tree_code code = TREE_CODE (init);
813 /* No need to look into types or unevaluated operands. */
814 if (TYPE_P (init) || unevaluated_p (code))
816 *walk_subtrees = false;
817 return NULL_TREE;
820 switch (code)
822 /* We'd need data flow info to avoid false positives. */
823 case COND_EXPR:
824 case VEC_COND_EXPR:
825 case BIND_EXPR:
826 /* We might see a MODIFY_EXPR in cases like S() : a((b = 42)), c(b) { }
827 where the initializer for 'a' surreptitiously initializes 'b'. Let's
828 not bother with these complicated scenarios in the front end. */
829 case MODIFY_EXPR:
830 /* Don't attempt to handle statement-expressions, either. */
831 case STATEMENT_LIST:
832 uninitialized->empty ();
833 gcc_fallthrough ();
834 /* If we're just taking the address of an object, it doesn't matter
835 whether it's been initialized. */
836 case ADDR_EXPR:
837 *walk_subtrees = false;
838 return NULL_TREE;
839 default:
840 break;
843 /* We'd need data flow info to avoid false positives. */
844 if (truth_value_p (code))
845 goto give_up;
846 /* Attempt to handle a simple a{b}, but no more. */
847 else if (BRACE_ENCLOSED_INITIALIZER_P (init))
849 if (CONSTRUCTOR_NELTS (init) == 1
850 && !BRACE_ENCLOSED_INITIALIZER_P (CONSTRUCTOR_ELT (init, 0)->value))
851 init = CONSTRUCTOR_ELT (init, 0)->value;
852 else
853 goto give_up;
855 /* Warn about uninitialized 'this'. */
856 else if (code == CALL_EXPR)
858 tree fn = get_callee_fndecl (init);
859 if (fn && DECL_NONSTATIC_MEMBER_FUNCTION_P (fn))
861 tree op = CALL_EXPR_ARG (init, 0);
862 if (TREE_CODE (op) == ADDR_EXPR)
863 op = TREE_OPERAND (op, 0);
864 temp_override<tree> ovr (d->member, DECL_ARGUMENTS (fn));
865 cp_walk_tree_without_duplicates (&op, find_uninit_fields_r, data);
867 /* Functions (whether static or nonstatic member) may have side effects
868 and initialize other members; it's not the front end's job to try to
869 figure it out. But don't give up for constructors: we still want to
870 warn when initializing base classes:
872 struct D : public B {
873 int x;
874 D() : B(x) {}
877 so carry on to detect that 'x' is used uninitialized. */
878 if (!fn || !DECL_CONSTRUCTOR_P (fn))
879 goto give_up;
882 /* If we find FIELD in the uninitialized set, we warn. */
883 if (code == COMPONENT_REF)
885 tree field = TREE_OPERAND (init, 1);
886 tree type = TYPE_P (d->member) ? d->member : TREE_TYPE (d->member);
888 /* We're initializing a reference member with itself. */
889 if (TYPE_REF_P (type) && cp_tree_equal (d->member, init))
890 warning_at (EXPR_LOCATION (init), OPT_Winit_self,
891 "%qD is initialized with itself", field);
892 else if (cp_tree_equal (TREE_OPERAND (init, 0), current_class_ref)
893 && uninitialized->contains (field))
895 if (TYPE_REF_P (TREE_TYPE (field)))
896 warning_at (EXPR_LOCATION (init), OPT_Wuninitialized,
897 "reference %qD is not yet bound to a value when used "
898 "here", field);
899 else if (!INDIRECT_TYPE_P (type) || is_this_parameter (d->member))
900 warning_at (EXPR_LOCATION (init), OPT_Wuninitialized,
901 "member %qD is used uninitialized", field);
902 *walk_subtrees = false;
906 return NULL_TREE;
908 give_up:
909 *walk_subtrees = false;
910 uninitialized->empty ();
911 return integer_zero_node;
914 /* Wrapper around find_uninit_fields_r above. */
916 static void
917 find_uninit_fields (tree *t, hash_set<tree> *uninitialized, tree member)
919 if (!uninitialized->is_empty ())
921 find_uninit_data data = { uninitialized, member };
922 cp_walk_tree_without_duplicates (t, find_uninit_fields_r, &data);
926 /* Initialize MEMBER, a FIELD_DECL, with INIT, a TREE_LIST of
927 arguments. If TREE_LIST is void_type_node, an empty initializer
928 list was given; if NULL_TREE no initializer was given. UNINITIALIZED
929 is the hash set that tracks uninitialized fields. */
931 static void
932 perform_member_init (tree member, tree init, hash_set<tree> &uninitialized)
934 tree decl;
935 tree type = TREE_TYPE (member);
937 /* Use the non-static data member initializer if there was no
938 mem-initializer for this field. */
939 if (init == NULL_TREE)
940 init = get_nsdmi (member, /*ctor*/true, tf_warning_or_error);
942 if (init == error_mark_node)
943 return;
945 /* Effective C++ rule 12 requires that all data members be
946 initialized. */
947 if (warn_ecpp && init == NULL_TREE && TREE_CODE (type) != ARRAY_TYPE)
948 warning_at (DECL_SOURCE_LOCATION (current_function_decl), OPT_Weffc__,
949 "%qD should be initialized in the member initialization list",
950 member);
952 /* Get an lvalue for the data member. */
953 decl = build_class_member_access_expr (current_class_ref, member,
954 /*access_path=*/NULL_TREE,
955 /*preserve_reference=*/true,
956 tf_warning_or_error);
957 if (decl == error_mark_node)
958 return;
960 if ((warn_init_self || warn_uninitialized)
961 && init
962 && TREE_CODE (init) == TREE_LIST
963 && TREE_CHAIN (init) == NULL_TREE)
965 tree val = TREE_VALUE (init);
966 /* Handle references. */
967 if (REFERENCE_REF_P (val))
968 val = TREE_OPERAND (val, 0);
969 if (TREE_CODE (val) == COMPONENT_REF && TREE_OPERAND (val, 1) == member
970 && TREE_OPERAND (val, 0) == current_class_ref)
971 warning_at (DECL_SOURCE_LOCATION (current_function_decl),
972 OPT_Winit_self, "%qD is initialized with itself",
973 member);
974 else
975 find_uninit_fields (&val, &uninitialized, decl);
978 if (array_of_unknown_bound_p (type))
980 maybe_reject_flexarray_init (member, init);
981 return;
984 if (init && TREE_CODE (init) == TREE_LIST)
986 /* A(): a{e} */
987 if (DIRECT_LIST_INIT_P (TREE_VALUE (init)))
988 init = build_x_compound_expr_from_list (init, ELK_MEM_INIT,
989 tf_warning_or_error);
990 /* We are trying to initialize an array from a ()-list. If we
991 should attempt to do so, conjure up a CONSTRUCTOR. */
992 else if (TREE_CODE (type) == ARRAY_TYPE
993 /* P0960 is a C++20 feature. */
994 && cxx_dialect >= cxx20)
995 init = do_aggregate_paren_init (init, type);
996 else if (!CLASS_TYPE_P (type))
997 init = build_x_compound_expr_from_list (init, ELK_MEM_INIT,
998 tf_warning_or_error);
999 /* If we're initializing a class from a ()-list, leave the TREE_LIST
1000 alone: we might call an appropriate constructor, or (in C++20)
1001 do aggregate-initialization. */
1004 /* Assume we are initializing the member. */
1005 bool member_initialized_p = true;
1007 if (init == void_type_node)
1009 /* mem() means value-initialization. */
1010 if (TREE_CODE (type) == ARRAY_TYPE)
1012 init = build_vec_init_expr (type, init, tf_warning_or_error);
1013 init = cp_build_init_expr (decl, init);
1014 finish_expr_stmt (init);
1016 else
1018 tree value = build_value_init (type, tf_warning_or_error);
1019 if (value == error_mark_node)
1020 return;
1021 init = cp_build_init_expr (decl, value);
1022 finish_expr_stmt (init);
1025 /* Deal with this here, as we will get confused if we try to call the
1026 assignment op for an anonymous union. This can happen in a
1027 synthesized copy constructor. */
1028 else if (ANON_AGGR_TYPE_P (type))
1030 if (init)
1032 init = cp_build_init_expr (decl, TREE_VALUE (init));
1033 finish_expr_stmt (init);
1036 else if (init
1037 && (TYPE_REF_P (type)
1038 || (TREE_CODE (init) == CONSTRUCTOR
1039 && (CP_AGGREGATE_TYPE_P (type)
1040 || is_std_init_list (type)))))
1042 /* With references and list-initialization, we need to deal with
1043 extending temporary lifetimes. 12.2p5: "A temporary bound to a
1044 reference member in a constructor’s ctor-initializer (12.6.2)
1045 persists until the constructor exits." */
1046 unsigned i; tree t;
1047 releasing_vec cleanups;
1048 if (!same_type_ignoring_top_level_qualifiers_p (TREE_TYPE (init), type))
1050 if (BRACE_ENCLOSED_INITIALIZER_P (init)
1051 && CP_AGGREGATE_TYPE_P (type))
1052 init = reshape_init (type, init, tf_warning_or_error);
1053 init = digest_init (type, init, tf_warning_or_error);
1055 if (init == error_mark_node)
1056 return;
1057 if (is_empty_field (member)
1058 && !TREE_SIDE_EFFECTS (init))
1059 /* Don't add trivial initialization of an empty base/field, as they
1060 might not be ordered the way the back-end expects. */
1061 return;
1062 /* A FIELD_DECL doesn't really have a suitable lifetime, but
1063 make_temporary_var_for_ref_to_temp will treat it as automatic and
1064 set_up_extended_ref_temp wants to use the decl in a warning. */
1065 init = extend_ref_init_temps (member, init, &cleanups);
1066 if (TREE_CODE (type) == ARRAY_TYPE
1067 && TYPE_HAS_NONTRIVIAL_DESTRUCTOR (TREE_TYPE (type)))
1068 init = build_vec_init_expr (type, init, tf_warning_or_error);
1069 init = cp_build_init_expr (decl, init);
1070 finish_expr_stmt (init);
1071 FOR_EACH_VEC_ELT (*cleanups, i, t)
1072 push_cleanup (NULL_TREE, t, false);
1074 else if (type_build_ctor_call (type)
1075 || (init && CLASS_TYPE_P (strip_array_types (type))))
1077 if (TREE_CODE (type) == ARRAY_TYPE)
1079 if (init == NULL_TREE
1080 || same_type_ignoring_top_level_qualifiers_p (type,
1081 TREE_TYPE (init)))
1083 if (TYPE_DOMAIN (type) && TYPE_MAX_VALUE (TYPE_DOMAIN (type)))
1085 /* Initialize the array only if it's not a flexible
1086 array member (i.e., if it has an upper bound). */
1087 init = build_vec_init_expr (type, init, tf_warning_or_error);
1088 init = cp_build_init_expr (decl, init);
1089 finish_expr_stmt (init);
1092 else
1093 error ("invalid initializer for array member %q#D", member);
1095 else
1097 int flags = LOOKUP_NORMAL;
1098 if (DECL_DEFAULTED_FN (current_function_decl))
1099 flags |= LOOKUP_DEFAULTED;
1100 if (CP_TYPE_CONST_P (type)
1101 && init == NULL_TREE
1102 && default_init_uninitialized_part (type))
1104 /* TYPE_NEEDS_CONSTRUCTING can be set just because we have a
1105 vtable; still give this diagnostic. */
1106 auto_diagnostic_group d;
1107 if (permerror (DECL_SOURCE_LOCATION (current_function_decl),
1108 "uninitialized const member in %q#T", type))
1109 inform (DECL_SOURCE_LOCATION (member),
1110 "%q#D should be initialized", member );
1112 finish_expr_stmt (build_aggr_init (decl, init, flags,
1113 tf_warning_or_error));
1116 else
1118 if (init == NULL_TREE)
1120 tree core_type;
1121 /* member traversal: note it leaves init NULL */
1122 if (TYPE_REF_P (type))
1124 auto_diagnostic_group d;
1125 if (permerror (DECL_SOURCE_LOCATION (current_function_decl),
1126 "uninitialized reference member in %q#T", type))
1127 inform (DECL_SOURCE_LOCATION (member),
1128 "%q#D should be initialized", member);
1130 else if (CP_TYPE_CONST_P (type))
1132 auto_diagnostic_group d;
1133 if (permerror (DECL_SOURCE_LOCATION (current_function_decl),
1134 "uninitialized const member in %q#T", type))
1135 inform (DECL_SOURCE_LOCATION (member),
1136 "%q#D should be initialized", member );
1139 core_type = strip_array_types (type);
1141 if (CLASS_TYPE_P (core_type)
1142 && (CLASSTYPE_READONLY_FIELDS_NEED_INIT (core_type)
1143 || CLASSTYPE_REF_FIELDS_NEED_INIT (core_type)))
1144 diagnose_uninitialized_cst_or_ref_member (core_type,
1145 /*using_new=*/false,
1146 /*complain=*/true);
1148 /* We left the member uninitialized. */
1149 member_initialized_p = false;
1152 maybe_warn_list_ctor (member, init);
1154 if (init)
1155 finish_expr_stmt (cp_build_modify_expr (input_location, decl,
1156 INIT_EXPR, init,
1157 tf_warning_or_error));
1160 if (member_initialized_p && warn_uninitialized)
1161 /* This member is now initialized, remove it from the uninitialized
1162 set. */
1163 uninitialized.remove (member);
1165 if (type_build_dtor_call (type))
1167 tree expr;
1169 expr = build_class_member_access_expr (current_class_ref, member,
1170 /*access_path=*/NULL_TREE,
1171 /*preserve_reference=*/false,
1172 tf_warning_or_error);
1173 expr = build_delete (input_location,
1174 type, expr, sfk_complete_destructor,
1175 LOOKUP_NONVIRTUAL|LOOKUP_DESTRUCTOR, 0,
1176 tf_warning_or_error);
1178 if (expr != error_mark_node
1179 && TYPE_HAS_NONTRIVIAL_DESTRUCTOR (type))
1180 finish_eh_cleanup (expr);
1184 /* Returns a TREE_LIST containing (as the TREE_PURPOSE of each node) all
1185 the FIELD_DECLs on the TYPE_FIELDS list for T, in reverse order. */
1187 static tree
1188 build_field_list (tree t, tree list, int *uses_unions_or_anon_p)
1190 tree fields;
1192 /* Note whether or not T is a union. */
1193 if (TREE_CODE (t) == UNION_TYPE)
1194 *uses_unions_or_anon_p = 1;
1196 for (fields = TYPE_FIELDS (t); fields; fields = DECL_CHAIN (fields))
1198 tree fieldtype;
1200 /* Skip CONST_DECLs for enumeration constants and so forth. */
1201 if (TREE_CODE (fields) != FIELD_DECL || DECL_ARTIFICIAL (fields))
1202 continue;
1204 fieldtype = TREE_TYPE (fields);
1206 /* For an anonymous struct or union, we must recursively
1207 consider the fields of the anonymous type. They can be
1208 directly initialized from the constructor. */
1209 if (ANON_AGGR_TYPE_P (fieldtype))
1211 /* Add this field itself. Synthesized copy constructors
1212 initialize the entire aggregate. */
1213 list = tree_cons (fields, NULL_TREE, list);
1214 /* And now add the fields in the anonymous aggregate. */
1215 list = build_field_list (fieldtype, list, uses_unions_or_anon_p);
1216 *uses_unions_or_anon_p = 1;
1218 /* Add this field. */
1219 else if (DECL_NAME (fields))
1220 list = tree_cons (fields, NULL_TREE, list);
1223 return list;
1226 /* Return the innermost aggregate scope for FIELD, whether that is
1227 the enclosing class or an anonymous aggregate within it. */
1229 static tree
1230 innermost_aggr_scope (tree field)
1232 if (ANON_AGGR_TYPE_P (TREE_TYPE (field)))
1233 return TREE_TYPE (field);
1234 else
1235 return DECL_CONTEXT (field);
1238 /* The MEM_INITS are a TREE_LIST. The TREE_PURPOSE of each list gives
1239 a FIELD_DECL or BINFO in T that needs initialization. The
1240 TREE_VALUE gives the initializer, or list of initializer arguments.
1242 Return a TREE_LIST containing all of the initializations required
1243 for T, in the order in which they should be performed. The output
1244 list has the same format as the input. */
1246 static tree
1247 sort_mem_initializers (tree t, tree mem_inits)
1249 tree init;
1250 tree base, binfo, base_binfo;
1251 tree sorted_inits;
1252 tree next_subobject;
1253 vec<tree, va_gc> *vbases;
1254 int i;
1255 int uses_unions_or_anon_p = 0;
1257 /* Build up a list of initializations. The TREE_PURPOSE of entry
1258 will be the subobject (a FIELD_DECL or BINFO) to initialize. The
1259 TREE_VALUE will be the constructor arguments, or NULL if no
1260 explicit initialization was provided. */
1261 sorted_inits = NULL_TREE;
1263 /* Process the virtual bases. */
1264 for (vbases = CLASSTYPE_VBASECLASSES (t), i = 0;
1265 vec_safe_iterate (vbases, i, &base); i++)
1266 sorted_inits = tree_cons (base, NULL_TREE, sorted_inits);
1268 /* Process the direct bases. */
1269 for (binfo = TYPE_BINFO (t), i = 0;
1270 BINFO_BASE_ITERATE (binfo, i, base_binfo); ++i)
1271 if (!BINFO_VIRTUAL_P (base_binfo))
1272 sorted_inits = tree_cons (base_binfo, NULL_TREE, sorted_inits);
1274 /* Process the non-static data members. */
1275 sorted_inits = build_field_list (t, sorted_inits, &uses_unions_or_anon_p);
1276 /* Reverse the entire list of initializations, so that they are in
1277 the order that they will actually be performed. */
1278 sorted_inits = nreverse (sorted_inits);
1280 /* If the user presented the initializers in an order different from
1281 that in which they will actually occur, we issue a warning. Keep
1282 track of the next subobject which can be explicitly initialized
1283 without issuing a warning. */
1284 next_subobject = sorted_inits;
1286 /* Go through the explicit initializers, filling in TREE_PURPOSE in
1287 the SORTED_INITS. */
1288 for (init = mem_inits; init; init = TREE_CHAIN (init))
1290 tree subobject;
1291 tree subobject_init;
1293 subobject = TREE_PURPOSE (init);
1295 /* If the explicit initializers are in sorted order, then
1296 SUBOBJECT will be NEXT_SUBOBJECT, or something following
1297 it. */
1298 for (subobject_init = next_subobject;
1299 subobject_init;
1300 subobject_init = TREE_CHAIN (subobject_init))
1301 if (TREE_PURPOSE (subobject_init) == subobject)
1302 break;
1304 /* Issue a warning if the explicit initializer order does not
1305 match that which will actually occur.
1306 ??? Are all these on the correct lines? */
1307 if (warn_reorder && !subobject_init)
1309 if (TREE_CODE (TREE_PURPOSE (next_subobject)) == FIELD_DECL)
1310 warning_at (DECL_SOURCE_LOCATION (TREE_PURPOSE (next_subobject)),
1311 OPT_Wreorder, "%qD will be initialized after",
1312 TREE_PURPOSE (next_subobject));
1313 else
1314 warning (OPT_Wreorder, "base %qT will be initialized after",
1315 TREE_PURPOSE (next_subobject));
1316 if (TREE_CODE (subobject) == FIELD_DECL)
1317 warning_at (DECL_SOURCE_LOCATION (subobject),
1318 OPT_Wreorder, " %q#D", subobject);
1319 else
1320 warning (OPT_Wreorder, " base %qT", subobject);
1321 warning_at (DECL_SOURCE_LOCATION (current_function_decl),
1322 OPT_Wreorder, " when initialized here");
1325 /* Look again, from the beginning of the list. */
1326 if (!subobject_init)
1328 subobject_init = sorted_inits;
1329 while (TREE_PURPOSE (subobject_init) != subobject)
1330 subobject_init = TREE_CHAIN (subobject_init);
1333 /* It is invalid to initialize the same subobject more than
1334 once. */
1335 if (TREE_VALUE (subobject_init))
1337 if (TREE_CODE (subobject) == FIELD_DECL)
1338 error_at (DECL_SOURCE_LOCATION (current_function_decl),
1339 "multiple initializations given for %qD",
1340 subobject);
1341 else
1342 error_at (DECL_SOURCE_LOCATION (current_function_decl),
1343 "multiple initializations given for base %qT",
1344 subobject);
1347 /* Record the initialization. */
1348 TREE_VALUE (subobject_init) = TREE_VALUE (init);
1349 /* Carry over the dummy TREE_TYPE node containing the source location. */
1350 TREE_TYPE (subobject_init) = TREE_TYPE (init);
1351 next_subobject = subobject_init;
1354 /* [class.base.init]
1356 If a ctor-initializer specifies more than one mem-initializer for
1357 multiple members of the same union (including members of
1358 anonymous unions), the ctor-initializer is ill-formed.
1360 Here we also splice out uninitialized union members. */
1361 if (uses_unions_or_anon_p)
1363 tree *last_p = NULL;
1364 tree *p;
1365 for (p = &sorted_inits; *p; )
1367 tree field;
1368 tree ctx;
1370 init = *p;
1372 field = TREE_PURPOSE (init);
1374 /* Skip base classes. */
1375 if (TREE_CODE (field) != FIELD_DECL)
1376 goto next;
1378 /* If this is an anonymous aggregate with no explicit initializer,
1379 splice it out. */
1380 if (!TREE_VALUE (init) && ANON_AGGR_TYPE_P (TREE_TYPE (field)))
1381 goto splice;
1383 /* See if this field is a member of a union, or a member of a
1384 structure contained in a union, etc. */
1385 ctx = innermost_aggr_scope (field);
1387 /* If this field is not a member of a union, skip it. */
1388 if (TREE_CODE (ctx) != UNION_TYPE
1389 && !ANON_AGGR_TYPE_P (ctx))
1390 goto next;
1392 /* If this union member has no explicit initializer and no NSDMI,
1393 splice it out. */
1394 if (TREE_VALUE (init) || DECL_INITIAL (field))
1395 /* OK. */;
1396 else
1397 goto splice;
1399 /* It's only an error if we have two initializers for the same
1400 union type. */
1401 if (!last_p)
1403 last_p = p;
1404 goto next;
1407 /* See if LAST_FIELD and the field initialized by INIT are
1408 members of the same union (or the union itself). If so, there's
1409 a problem, unless they're actually members of the same structure
1410 which is itself a member of a union. For example, given:
1412 union { struct { int i; int j; }; };
1414 initializing both `i' and `j' makes sense. */
1415 ctx = common_enclosing_class
1416 (innermost_aggr_scope (field),
1417 innermost_aggr_scope (TREE_PURPOSE (*last_p)));
1419 if (ctx && (TREE_CODE (ctx) == UNION_TYPE
1420 || ctx == TREE_TYPE (TREE_PURPOSE (*last_p))))
1422 /* A mem-initializer hides an NSDMI. */
1423 if (TREE_VALUE (init) && !TREE_VALUE (*last_p))
1424 *last_p = TREE_CHAIN (*last_p);
1425 else if (TREE_VALUE (*last_p) && !TREE_VALUE (init))
1426 goto splice;
1427 else
1429 error_at (DECL_SOURCE_LOCATION (current_function_decl),
1430 "initializations for multiple members of %qT",
1431 ctx);
1432 goto splice;
1436 last_p = p;
1438 next:
1439 p = &TREE_CHAIN (*p);
1440 continue;
1441 splice:
1442 *p = TREE_CHAIN (*p);
1446 return sorted_inits;
1449 /* Callback for cp_walk_tree to mark all PARM_DECLs in a tree as read. */
1451 static tree
1452 mark_exp_read_r (tree *tp, int *, void *)
1454 tree t = *tp;
1455 if (TREE_CODE (t) == PARM_DECL)
1456 mark_exp_read (t);
1457 return NULL_TREE;
1460 /* Initialize all bases and members of CURRENT_CLASS_TYPE. MEM_INITS
1461 is a TREE_LIST giving the explicit mem-initializer-list for the
1462 constructor. The TREE_PURPOSE of each entry is a subobject (a
1463 FIELD_DECL or a BINFO) of the CURRENT_CLASS_TYPE. The TREE_VALUE
1464 is a TREE_LIST giving the arguments to the constructor or
1465 void_type_node for an empty list of arguments. */
1467 void
1468 emit_mem_initializers (tree mem_inits)
1470 int flags = LOOKUP_NORMAL;
1472 /* We will already have issued an error message about the fact that
1473 the type is incomplete. */
1474 if (!COMPLETE_TYPE_P (current_class_type))
1475 return;
1477 /* Keep a set holding fields that are not initialized. */
1478 hash_set<tree> uninitialized;
1480 /* Initially that is all of them. */
1481 if (warn_uninitialized)
1482 for (tree f = next_aggregate_field (TYPE_FIELDS (current_class_type));
1483 f != NULL_TREE;
1484 f = next_aggregate_field (DECL_CHAIN (f)))
1485 if (!DECL_ARTIFICIAL (f)
1486 && !is_really_empty_class (TREE_TYPE (f), /*ignore_vptr*/false))
1487 uninitialized.add (f);
1489 if (mem_inits
1490 && TYPE_P (TREE_PURPOSE (mem_inits))
1491 && same_type_p (TREE_PURPOSE (mem_inits), current_class_type))
1493 /* Delegating constructor. */
1494 gcc_assert (TREE_CHAIN (mem_inits) == NULL_TREE);
1495 tree ctor = perform_target_ctor (TREE_VALUE (mem_inits));
1496 find_uninit_fields (&ctor, &uninitialized, current_class_type);
1497 return;
1500 if (DECL_DEFAULTED_FN (current_function_decl)
1501 && ! DECL_INHERITED_CTOR (current_function_decl))
1502 flags |= LOOKUP_DEFAULTED;
1504 /* Sort the mem-initializers into the order in which the
1505 initializations should be performed. */
1506 mem_inits = sort_mem_initializers (current_class_type, mem_inits);
1508 in_base_initializer = 1;
1510 /* Initialize base classes. */
1511 for (; (mem_inits
1512 && TREE_CODE (TREE_PURPOSE (mem_inits)) != FIELD_DECL);
1513 mem_inits = TREE_CHAIN (mem_inits))
1515 tree subobject = TREE_PURPOSE (mem_inits);
1516 tree arguments = TREE_VALUE (mem_inits);
1518 /* We already have issued an error message. */
1519 if (arguments == error_mark_node)
1520 continue;
1522 /* Suppress access control when calling the inherited ctor. */
1523 bool inherited_base = (DECL_INHERITED_CTOR (current_function_decl)
1524 && flag_new_inheriting_ctors
1525 && arguments);
1526 if (inherited_base)
1527 push_deferring_access_checks (dk_deferred);
1529 if (arguments == NULL_TREE)
1531 /* If these initializations are taking place in a copy constructor,
1532 the base class should probably be explicitly initialized if there
1533 is a user-defined constructor in the base class (other than the
1534 default constructor, which will be called anyway). */
1535 if (extra_warnings
1536 && DECL_COPY_CONSTRUCTOR_P (current_function_decl)
1537 && type_has_user_nondefault_constructor (BINFO_TYPE (subobject)))
1538 warning_at (DECL_SOURCE_LOCATION (current_function_decl),
1539 OPT_Wextra, "base class %q#T should be explicitly "
1540 "initialized in the copy constructor",
1541 BINFO_TYPE (subobject));
1544 /* Initialize the base. */
1545 if (!BINFO_VIRTUAL_P (subobject))
1547 tree base_addr;
1549 base_addr = build_base_path (PLUS_EXPR, current_class_ptr,
1550 subobject, 1, tf_warning_or_error);
1551 expand_aggr_init_1 (subobject, NULL_TREE,
1552 cp_build_fold_indirect_ref (base_addr),
1553 arguments,
1554 flags,
1555 tf_warning_or_error);
1556 expand_cleanup_for_base (subobject, NULL_TREE);
1557 if (STATEMENT_LIST_TAIL (cur_stmt_list))
1558 find_uninit_fields (&STATEMENT_LIST_TAIL (cur_stmt_list)->stmt,
1559 &uninitialized, BINFO_TYPE (subobject));
1561 else if (!ABSTRACT_CLASS_TYPE_P (current_class_type))
1562 /* C++14 DR1658 Means we do not have to construct vbases of
1563 abstract classes. */
1564 construct_virtual_base (subobject, arguments);
1565 else
1566 /* When not constructing vbases of abstract classes, at least mark
1567 the arguments expressions as read to avoid
1568 -Wunused-but-set-parameter false positives. */
1569 cp_walk_tree (&arguments, mark_exp_read_r, NULL, NULL);
1571 if (inherited_base)
1572 pop_deferring_access_checks ();
1574 in_base_initializer = 0;
1576 /* Initialize the vptrs. */
1577 initialize_vtbl_ptrs (current_class_ptr);
1579 /* Initialize the data members. */
1580 while (mem_inits)
1582 /* If this initializer was explicitly provided, then the dummy TREE_TYPE
1583 node contains the source location. */
1584 iloc_sentinel ils (EXPR_LOCATION (TREE_TYPE (mem_inits)));
1586 perform_member_init (TREE_PURPOSE (mem_inits),
1587 TREE_VALUE (mem_inits),
1588 uninitialized);
1590 mem_inits = TREE_CHAIN (mem_inits);
1594 /* Returns the address of the vtable (i.e., the value that should be
1595 assigned to the vptr) for BINFO. */
1597 tree
1598 build_vtbl_address (tree binfo)
1600 tree binfo_for = binfo;
1601 tree vtbl;
1603 if (BINFO_VPTR_INDEX (binfo) && BINFO_VIRTUAL_P (binfo))
1604 /* If this is a virtual primary base, then the vtable we want to store
1605 is that for the base this is being used as the primary base of. We
1606 can't simply skip the initialization, because we may be expanding the
1607 inits of a subobject constructor where the virtual base layout
1608 can be different. */
1609 while (BINFO_PRIMARY_P (binfo_for))
1610 binfo_for = BINFO_INHERITANCE_CHAIN (binfo_for);
1612 /* Figure out what vtable BINFO's vtable is based on, and mark it as
1613 used. */
1614 vtbl = get_vtbl_decl_for_binfo (binfo_for);
1615 TREE_USED (vtbl) = true;
1617 /* Now compute the address to use when initializing the vptr. */
1618 vtbl = unshare_expr (BINFO_VTABLE (binfo_for));
1619 if (VAR_P (vtbl))
1620 vtbl = build1 (ADDR_EXPR, build_pointer_type (TREE_TYPE (vtbl)), vtbl);
1622 return vtbl;
1625 /* This code sets up the virtual function tables appropriate for
1626 the pointer DECL. It is a one-ply initialization.
1628 BINFO is the exact type that DECL is supposed to be. In
1629 multiple inheritance, this might mean "C's A" if C : A, B. */
1631 static void
1632 expand_virtual_init (tree binfo, tree decl)
1634 tree vtbl, vtbl_ptr;
1635 tree vtt_index;
1637 /* Compute the initializer for vptr. */
1638 vtbl = build_vtbl_address (binfo);
1640 /* We may get this vptr from a VTT, if this is a subobject
1641 constructor or subobject destructor. */
1642 vtt_index = BINFO_VPTR_INDEX (binfo);
1643 if (vtt_index)
1645 tree vtbl2;
1646 tree vtt_parm;
1648 /* Compute the value to use, when there's a VTT. */
1649 vtt_parm = current_vtt_parm;
1650 vtbl2 = fold_build_pointer_plus (vtt_parm, vtt_index);
1651 vtbl2 = cp_build_fold_indirect_ref (vtbl2);
1652 vtbl2 = convert (TREE_TYPE (vtbl), vtbl2);
1654 /* The actual initializer is the VTT value only in the subobject
1655 constructor. In maybe_clone_body we'll substitute NULL for
1656 the vtt_parm in the case of the non-subobject constructor. */
1657 vtbl = build_if_in_charge (vtbl, vtbl2);
1660 /* Compute the location of the vtpr. */
1661 vtbl_ptr = build_vfield_ref (cp_build_fold_indirect_ref (decl),
1662 TREE_TYPE (binfo));
1663 gcc_assert (vtbl_ptr != error_mark_node);
1665 /* Assign the vtable to the vptr. */
1666 vtbl = convert_force (TREE_TYPE (vtbl_ptr), vtbl, 0, tf_warning_or_error);
1667 finish_expr_stmt (cp_build_modify_expr (input_location, vtbl_ptr, NOP_EXPR,
1668 vtbl, tf_warning_or_error));
1671 /* If an exception is thrown in a constructor, those base classes already
1672 constructed must be destroyed. This function creates the cleanup
1673 for BINFO, which has just been constructed. If FLAG is non-NULL,
1674 it is a DECL which is nonzero when this base needs to be
1675 destroyed. */
1677 static void
1678 expand_cleanup_for_base (tree binfo, tree flag)
1680 tree expr;
1682 if (!type_build_dtor_call (BINFO_TYPE (binfo)))
1683 return;
1685 /* Call the destructor. */
1686 expr = build_special_member_call (current_class_ref,
1687 base_dtor_identifier,
1688 NULL,
1689 binfo,
1690 LOOKUP_NORMAL | LOOKUP_NONVIRTUAL,
1691 tf_warning_or_error);
1693 if (TYPE_HAS_TRIVIAL_DESTRUCTOR (BINFO_TYPE (binfo)))
1694 return;
1696 if (flag)
1697 expr = fold_build3_loc (input_location,
1698 COND_EXPR, void_type_node,
1699 c_common_truthvalue_conversion (input_location, flag),
1700 expr, integer_zero_node);
1702 finish_eh_cleanup (expr);
1705 /* Construct the virtual base-class VBASE passing the ARGUMENTS to its
1706 constructor. */
1708 static void
1709 construct_virtual_base (tree vbase, tree arguments)
1711 tree inner_if_stmt;
1712 tree exp;
1713 tree flag;
1715 /* If there are virtual base classes with destructors, we need to
1716 emit cleanups to destroy them if an exception is thrown during
1717 the construction process. These exception regions (i.e., the
1718 period during which the cleanups must occur) begin from the time
1719 the construction is complete to the end of the function. If we
1720 create a conditional block in which to initialize the
1721 base-classes, then the cleanup region for the virtual base begins
1722 inside a block, and ends outside of that block. This situation
1723 confuses the sjlj exception-handling code. Therefore, we do not
1724 create a single conditional block, but one for each
1725 initialization. (That way the cleanup regions always begin
1726 in the outer block.) We trust the back end to figure out
1727 that the FLAG will not change across initializations, and
1728 avoid doing multiple tests. */
1729 flag = DECL_CHAIN (DECL_ARGUMENTS (current_function_decl));
1730 inner_if_stmt = begin_if_stmt ();
1731 finish_if_stmt_cond (flag, inner_if_stmt);
1733 /* Compute the location of the virtual base. If we're
1734 constructing virtual bases, then we must be the most derived
1735 class. Therefore, we don't have to look up the virtual base;
1736 we already know where it is. */
1737 exp = convert_to_base_statically (current_class_ref, vbase);
1739 expand_aggr_init_1 (vbase, current_class_ref, exp, arguments,
1740 0, tf_warning_or_error);
1741 finish_then_clause (inner_if_stmt);
1742 finish_if_stmt (inner_if_stmt);
1744 expand_cleanup_for_base (vbase, flag);
1747 /* Find the context in which this FIELD can be initialized. */
1749 static tree
1750 initializing_context (tree field)
1752 tree t = DECL_CONTEXT (field);
1754 /* Anonymous union members can be initialized in the first enclosing
1755 non-anonymous union context. */
1756 while (t && ANON_AGGR_TYPE_P (t))
1757 t = TYPE_CONTEXT (t);
1758 return t;
1761 /* Function to give error message if member initialization specification
1762 is erroneous. FIELD is the member we decided to initialize.
1763 TYPE is the type for which the initialization is being performed.
1764 FIELD must be a member of TYPE.
1766 MEMBER_NAME is the name of the member. */
1768 static int
1769 member_init_ok_or_else (tree field, tree type, tree member_name)
1771 if (field == error_mark_node)
1772 return 0;
1773 if (!field)
1775 error ("class %qT does not have any field named %qD", type,
1776 member_name);
1777 return 0;
1779 if (VAR_P (field))
1781 error ("%q#D is a static data member; it can only be "
1782 "initialized at its definition",
1783 field);
1784 return 0;
1786 if (TREE_CODE (field) != FIELD_DECL)
1788 error ("%q#D is not a non-static data member of %qT",
1789 field, type);
1790 return 0;
1792 if (initializing_context (field) != type)
1794 error ("class %qT does not have any field named %qD", type,
1795 member_name);
1796 return 0;
1799 return 1;
1802 /* NAME is a FIELD_DECL, an IDENTIFIER_NODE which names a field, or it
1803 is a _TYPE node or TYPE_DECL which names a base for that type.
1804 Check the validity of NAME, and return either the base _TYPE, base
1805 binfo, or the FIELD_DECL of the member. If NAME is invalid, return
1806 NULL_TREE and issue a diagnostic.
1808 An old style unnamed direct single base construction is permitted,
1809 where NAME is NULL. */
1811 tree
1812 expand_member_init (tree name)
1814 tree basetype;
1815 tree field;
1817 if (!current_class_ref)
1818 return NULL_TREE;
1820 if (!name)
1822 /* This is an obsolete unnamed base class initializer. The
1823 parser will already have warned about its use. */
1824 switch (BINFO_N_BASE_BINFOS (TYPE_BINFO (current_class_type)))
1826 case 0:
1827 error ("unnamed initializer for %qT, which has no base classes",
1828 current_class_type);
1829 return NULL_TREE;
1830 case 1:
1831 basetype = BINFO_TYPE
1832 (BINFO_BASE_BINFO (TYPE_BINFO (current_class_type), 0));
1833 break;
1834 default:
1835 error ("unnamed initializer for %qT, which uses multiple inheritance",
1836 current_class_type);
1837 return NULL_TREE;
1840 else if (TYPE_P (name))
1842 basetype = TYPE_MAIN_VARIANT (name);
1843 name = TYPE_NAME (name);
1845 else if (TREE_CODE (name) == TYPE_DECL)
1846 basetype = TYPE_MAIN_VARIANT (TREE_TYPE (name));
1847 else
1848 basetype = NULL_TREE;
1850 if (basetype)
1852 tree class_binfo;
1853 tree direct_binfo;
1854 tree virtual_binfo;
1855 int i;
1857 if (current_template_parms
1858 || same_type_p (basetype, current_class_type))
1859 return basetype;
1861 class_binfo = TYPE_BINFO (current_class_type);
1862 direct_binfo = NULL_TREE;
1863 virtual_binfo = NULL_TREE;
1865 /* Look for a direct base. */
1866 for (i = 0; BINFO_BASE_ITERATE (class_binfo, i, direct_binfo); ++i)
1867 if (SAME_BINFO_TYPE_P (BINFO_TYPE (direct_binfo), basetype))
1868 break;
1870 /* Look for a virtual base -- unless the direct base is itself
1871 virtual. */
1872 if (!direct_binfo || !BINFO_VIRTUAL_P (direct_binfo))
1873 virtual_binfo = binfo_for_vbase (basetype, current_class_type);
1875 /* [class.base.init]
1877 If a mem-initializer-id is ambiguous because it designates
1878 both a direct non-virtual base class and an inherited virtual
1879 base class, the mem-initializer is ill-formed. */
1880 if (direct_binfo && virtual_binfo)
1882 error ("%qD is both a direct base and an indirect virtual base",
1883 basetype);
1884 return NULL_TREE;
1887 if (!direct_binfo && !virtual_binfo)
1889 if (CLASSTYPE_VBASECLASSES (current_class_type))
1890 error ("type %qT is not a direct or virtual base of %qT",
1891 basetype, current_class_type);
1892 else
1893 error ("type %qT is not a direct base of %qT",
1894 basetype, current_class_type);
1895 return NULL_TREE;
1898 return direct_binfo ? direct_binfo : virtual_binfo;
1900 else
1902 if (identifier_p (name))
1903 field = lookup_field (current_class_type, name, 1, false);
1904 else
1905 field = name;
1907 if (member_init_ok_or_else (field, current_class_type, name))
1908 return field;
1911 return NULL_TREE;
1914 /* This is like `expand_member_init', only it stores one aggregate
1915 value into another.
1917 INIT comes in two flavors: it is either a value which
1918 is to be stored in EXP, or it is a parameter list
1919 to go to a constructor, which will operate on EXP.
1920 If INIT is not a parameter list for a constructor, then set
1921 LOOKUP_ONLYCONVERTING.
1922 If FLAGS is LOOKUP_ONLYCONVERTING then it is the = init form of
1923 the initializer, if FLAGS is 0, then it is the (init) form.
1924 If `init' is a CONSTRUCTOR, then we emit a warning message,
1925 explaining that such initializations are invalid.
1927 If INIT resolves to a CALL_EXPR which happens to return
1928 something of the type we are looking for, then we know
1929 that we can safely use that call to perform the
1930 initialization.
1932 The virtual function table pointer cannot be set up here, because
1933 we do not really know its type.
1935 This never calls operator=().
1937 When initializing, nothing is CONST.
1939 A default copy constructor may have to be used to perform the
1940 initialization.
1942 A constructor or a conversion operator may have to be used to
1943 perform the initialization, but not both, as it would be ambiguous. */
1945 tree
1946 build_aggr_init (tree exp, tree init, int flags, tsubst_flags_t complain)
1948 tree stmt_expr;
1949 tree compound_stmt;
1950 int destroy_temps;
1951 tree type = TREE_TYPE (exp);
1952 int was_const = TREE_READONLY (exp);
1953 int was_volatile = TREE_THIS_VOLATILE (exp);
1954 int is_global;
1956 if (init == error_mark_node)
1957 return error_mark_node;
1959 location_t init_loc = (init
1960 ? cp_expr_loc_or_input_loc (init)
1961 : location_of (exp));
1963 TREE_READONLY (exp) = 0;
1964 TREE_THIS_VOLATILE (exp) = 0;
1966 if (TREE_CODE (type) == ARRAY_TYPE)
1968 tree itype = init ? TREE_TYPE (init) : NULL_TREE;
1969 int from_array = 0;
1971 if (VAR_P (exp) && DECL_DECOMPOSITION_P (exp))
1973 from_array = 1;
1974 init = mark_rvalue_use (init);
1975 if (init
1976 && DECL_P (tree_strip_any_location_wrapper (init))
1977 && !(flags & LOOKUP_ONLYCONVERTING))
1979 /* Wrap the initializer in a CONSTRUCTOR so that build_vec_init
1980 recognizes it as direct-initialization. */
1981 init = build_constructor_single (init_list_type_node,
1982 NULL_TREE, init);
1983 CONSTRUCTOR_IS_DIRECT_INIT (init) = true;
1986 else
1988 /* Must arrange to initialize each element of EXP
1989 from elements of INIT. */
1990 if (cv_qualified_p (type))
1991 TREE_TYPE (exp) = cv_unqualified (type);
1992 if (itype && cv_qualified_p (itype))
1993 TREE_TYPE (init) = cv_unqualified (itype);
1994 from_array = (itype && same_type_p (TREE_TYPE (init),
1995 TREE_TYPE (exp)));
1997 if (init && !BRACE_ENCLOSED_INITIALIZER_P (init)
1998 && (!from_array
1999 || (TREE_CODE (init) != CONSTRUCTOR
2000 /* Can happen, eg, handling the compound-literals
2001 extension (ext/complit12.C). */
2002 && TREE_CODE (init) != TARGET_EXPR)))
2004 if (complain & tf_error)
2005 error_at (init_loc, "array must be initialized "
2006 "with a brace-enclosed initializer");
2007 return error_mark_node;
2011 stmt_expr = build_vec_init (exp, NULL_TREE, init,
2012 /*explicit_value_init_p=*/false,
2013 from_array,
2014 complain);
2015 TREE_READONLY (exp) = was_const;
2016 TREE_THIS_VOLATILE (exp) = was_volatile;
2017 TREE_TYPE (exp) = type;
2018 /* Restore the type of init unless it was used directly. */
2019 if (init && TREE_CODE (stmt_expr) != INIT_EXPR)
2020 TREE_TYPE (init) = itype;
2021 return stmt_expr;
2024 if (is_copy_initialization (init))
2025 flags |= LOOKUP_ONLYCONVERTING;
2027 is_global = begin_init_stmts (&stmt_expr, &compound_stmt);
2028 destroy_temps = stmts_are_full_exprs_p ();
2029 current_stmt_tree ()->stmts_are_full_exprs_p = 0;
2030 bool ok = expand_aggr_init_1 (TYPE_BINFO (type), exp, exp,
2031 init, LOOKUP_NORMAL|flags, complain);
2032 stmt_expr = finish_init_stmts (is_global, stmt_expr, compound_stmt);
2033 current_stmt_tree ()->stmts_are_full_exprs_p = destroy_temps;
2034 TREE_READONLY (exp) = was_const;
2035 TREE_THIS_VOLATILE (exp) = was_volatile;
2036 if (!ok)
2037 return error_mark_node;
2039 if ((VAR_P (exp) || TREE_CODE (exp) == PARM_DECL)
2040 && TREE_SIDE_EFFECTS (stmt_expr)
2041 && !lookup_attribute ("warn_unused", TYPE_ATTRIBUTES (type)))
2042 /* Just know that we've seen something for this node. */
2043 TREE_USED (exp) = 1;
2045 return stmt_expr;
2048 static bool
2049 expand_default_init (tree binfo, tree true_exp, tree exp, tree init, int flags,
2050 tsubst_flags_t complain)
2052 tree type = TREE_TYPE (exp);
2054 /* It fails because there may not be a constructor which takes
2055 its own type as the first (or only parameter), but which does
2056 take other types via a conversion. So, if the thing initializing
2057 the expression is a unit element of type X, first try X(X&),
2058 followed by initialization by X. If neither of these work
2059 out, then look hard. */
2060 tree rval;
2061 vec<tree, va_gc> *parms;
2063 /* If we have direct-initialization from an initializer list, pull
2064 it out of the TREE_LIST so the code below can see it. */
2065 if (init && TREE_CODE (init) == TREE_LIST
2066 && DIRECT_LIST_INIT_P (TREE_VALUE (init)))
2068 gcc_checking_assert ((flags & LOOKUP_ONLYCONVERTING) == 0
2069 && TREE_CHAIN (init) == NULL_TREE);
2070 init = TREE_VALUE (init);
2071 /* Only call reshape_init if it has not been called earlier
2072 by the callers. */
2073 if (BRACE_ENCLOSED_INITIALIZER_P (init) && CP_AGGREGATE_TYPE_P (type))
2074 init = reshape_init (type, init, complain);
2077 if (init && BRACE_ENCLOSED_INITIALIZER_P (init)
2078 && CP_AGGREGATE_TYPE_P (type))
2079 /* A brace-enclosed initializer for an aggregate. In C++0x this can
2080 happen for direct-initialization, too. */
2081 init = digest_init (type, init, complain);
2083 if (init == error_mark_node)
2084 return false;
2086 /* A CONSTRUCTOR of the target's type is a previously digested
2087 initializer, whether that happened just above or in
2088 cp_parser_late_parsing_nsdmi.
2090 A TARGET_EXPR with TARGET_EXPR_DIRECT_INIT_P or TARGET_EXPR_LIST_INIT_P
2091 set represents the whole initialization, so we shouldn't build up
2092 another ctor call. */
2093 if (init
2094 && (TREE_CODE (init) == CONSTRUCTOR
2095 || (TREE_CODE (init) == TARGET_EXPR
2096 && (TARGET_EXPR_DIRECT_INIT_P (init)
2097 || TARGET_EXPR_LIST_INIT_P (init))))
2098 && same_type_ignoring_top_level_qualifiers_p (TREE_TYPE (init), type))
2100 /* Early initialization via a TARGET_EXPR only works for
2101 complete objects. */
2102 gcc_assert (TREE_CODE (init) == CONSTRUCTOR || true_exp == exp);
2104 init = cp_build_init_expr (exp, init);
2105 TREE_SIDE_EFFECTS (init) = 1;
2106 finish_expr_stmt (init);
2107 return true;
2110 if (init && TREE_CODE (init) != TREE_LIST
2111 && (flags & LOOKUP_ONLYCONVERTING)
2112 && !unsafe_return_slot_p (exp))
2114 /* Base subobjects should only get direct-initialization. */
2115 gcc_assert (true_exp == exp);
2117 if (flags & DIRECT_BIND)
2118 /* Do nothing. We hit this in two cases: Reference initialization,
2119 where we aren't initializing a real variable, so we don't want
2120 to run a new constructor; and catching an exception, where we
2121 have already built up the constructor call so we could wrap it
2122 in an exception region. */;
2123 else
2125 init = ocp_convert (type, init, CONV_IMPLICIT|CONV_FORCE_TEMP,
2126 flags, complain | tf_no_cleanup);
2127 if (init == error_mark_node)
2128 return false;
2131 /* We need to protect the initialization of a catch parm with a
2132 call to terminate(), which shows up as a MUST_NOT_THROW_EXPR
2133 around the TARGET_EXPR for the copy constructor. See
2134 initialize_handler_parm. */
2135 tree *p = &init;
2136 while (TREE_CODE (*p) == MUST_NOT_THROW_EXPR
2137 || TREE_CODE (*p) == CLEANUP_POINT_EXPR)
2139 /* Avoid voidify_wrapper_expr making a temporary. */
2140 TREE_TYPE (*p) = void_type_node;
2141 p = &TREE_OPERAND (*p, 0);
2143 *p = cp_build_init_expr (exp, *p);
2144 finish_expr_stmt (init);
2145 return true;
2148 if (init == NULL_TREE)
2149 parms = NULL;
2150 else if (TREE_CODE (init) == TREE_LIST && !TREE_TYPE (init))
2152 parms = make_tree_vector ();
2153 for (; init != NULL_TREE; init = TREE_CHAIN (init))
2154 vec_safe_push (parms, TREE_VALUE (init));
2156 else
2157 parms = make_tree_vector_single (init);
2159 if (exp == current_class_ref && current_function_decl
2160 && DECL_HAS_IN_CHARGE_PARM_P (current_function_decl))
2162 /* Delegating constructor. */
2163 tree complete;
2164 tree base;
2165 tree elt; unsigned i;
2167 /* Unshare the arguments for the second call. */
2168 releasing_vec parms2;
2169 FOR_EACH_VEC_SAFE_ELT (parms, i, elt)
2171 elt = break_out_target_exprs (elt);
2172 vec_safe_push (parms2, elt);
2174 complete = build_special_member_call (exp, complete_ctor_identifier,
2175 &parms2, binfo, flags,
2176 complain);
2177 complete = fold_build_cleanup_point_expr (void_type_node, complete);
2179 base = build_special_member_call (exp, base_ctor_identifier,
2180 &parms, binfo, flags,
2181 complain);
2182 base = fold_build_cleanup_point_expr (void_type_node, base);
2183 if (complete == error_mark_node || base == error_mark_node)
2184 return false;
2185 rval = build_if_in_charge (complete, base);
2187 else
2189 tree ctor_name = (true_exp == exp
2190 ? complete_ctor_identifier : base_ctor_identifier);
2192 rval = build_special_member_call (exp, ctor_name, &parms, binfo, flags,
2193 complain);
2194 if (rval == error_mark_node)
2195 return false;
2198 if (parms != NULL)
2199 release_tree_vector (parms);
2201 if (exp == true_exp && TREE_CODE (rval) == CALL_EXPR)
2203 tree fn = get_callee_fndecl (rval);
2204 if (fn && DECL_DECLARED_CONSTEXPR_P (fn))
2206 tree e = maybe_constant_init (rval, exp);
2207 if (TREE_CONSTANT (e))
2208 rval = cp_build_init_expr (exp, e);
2212 /* FIXME put back convert_to_void? */
2213 if (TREE_SIDE_EFFECTS (rval))
2214 finish_expr_stmt (rval);
2216 return true;
2219 /* This function is responsible for initializing EXP with INIT
2220 (if any). Returns true on success, false on failure.
2222 BINFO is the binfo of the type for who we are performing the
2223 initialization. For example, if W is a virtual base class of A and B,
2224 and C : A, B.
2225 If we are initializing B, then W must contain B's W vtable, whereas
2226 were we initializing C, W must contain C's W vtable.
2228 TRUE_EXP is nonzero if it is the true expression being initialized.
2229 In this case, it may be EXP, or may just contain EXP. The reason we
2230 need this is because if EXP is a base element of TRUE_EXP, we
2231 don't necessarily know by looking at EXP where its virtual
2232 baseclass fields should really be pointing. But we do know
2233 from TRUE_EXP. In constructors, we don't know anything about
2234 the value being initialized.
2236 FLAGS is just passed to `build_new_method_call'. See that function
2237 for its description. */
2239 static bool
2240 expand_aggr_init_1 (tree binfo, tree true_exp, tree exp, tree init, int flags,
2241 tsubst_flags_t complain)
2243 tree type = TREE_TYPE (exp);
2245 gcc_assert (init != error_mark_node && type != error_mark_node);
2246 gcc_assert (building_stmt_list_p ());
2248 /* Use a function returning the desired type to initialize EXP for us.
2249 If the function is a constructor, and its first argument is
2250 NULL_TREE, know that it was meant for us--just slide exp on
2251 in and expand the constructor. Constructors now come
2252 as TARGET_EXPRs. */
2254 if (init && VAR_P (exp)
2255 && COMPOUND_LITERAL_P (init))
2257 vec<tree, va_gc> *cleanups = NULL;
2258 /* If store_init_value returns NULL_TREE, the INIT has been
2259 recorded as the DECL_INITIAL for EXP. That means there's
2260 nothing more we have to do. */
2261 init = store_init_value (exp, init, &cleanups, flags);
2262 if (init)
2263 finish_expr_stmt (init);
2264 gcc_assert (!cleanups);
2265 return true;
2268 /* List-initialization from {} becomes value-initialization for non-aggregate
2269 classes with default constructors. Handle this here when we're
2270 initializing a base, so protected access works. */
2271 if (exp != true_exp && init && TREE_CODE (init) == TREE_LIST)
2273 tree elt = TREE_VALUE (init);
2274 if (DIRECT_LIST_INIT_P (elt)
2275 && CONSTRUCTOR_ELTS (elt) == 0
2276 && CLASSTYPE_NON_AGGREGATE (type)
2277 && TYPE_HAS_DEFAULT_CONSTRUCTOR (type))
2278 init = void_type_node;
2281 /* If an explicit -- but empty -- initializer list was present,
2282 that's value-initialization. */
2283 if (init == void_type_node)
2285 /* If the type has data but no user-provided default ctor, we need to zero
2286 out the object. */
2287 if (type_has_non_user_provided_default_constructor (type)
2288 && !is_really_empty_class (type, /*ignore_vptr*/true))
2290 tree field_size = NULL_TREE;
2291 if (exp != true_exp && CLASSTYPE_AS_BASE (type) != type)
2292 /* Don't clobber already initialized virtual bases. */
2293 field_size = TYPE_SIZE (CLASSTYPE_AS_BASE (type));
2294 init = build_zero_init_1 (type, NULL_TREE, /*static_storage_p=*/false,
2295 field_size);
2296 init = cp_build_init_expr (exp, init);
2297 finish_expr_stmt (init);
2300 /* If we don't need to mess with the constructor at all,
2301 then we're done. */
2302 if (! type_build_ctor_call (type))
2303 return true;
2305 /* Otherwise fall through and call the constructor. */
2306 init = NULL_TREE;
2309 /* We know that expand_default_init can handle everything we want
2310 at this point. */
2311 return expand_default_init (binfo, true_exp, exp, init, flags, complain);
2314 /* Report an error if TYPE is not a user-defined, class type. If
2315 OR_ELSE is nonzero, give an error message. */
2318 is_class_type (tree type, int or_else)
2320 if (type == error_mark_node)
2321 return 0;
2323 if (! CLASS_TYPE_P (type))
2325 if (or_else)
2326 error ("%qT is not a class type", type);
2327 return 0;
2329 return 1;
2332 /* Returns true iff the initializer INIT represents copy-initialization
2333 (and therefore we must set LOOKUP_ONLYCONVERTING when processing it). */
2335 bool
2336 is_copy_initialization (tree init)
2338 return (init && init != void_type_node
2339 && TREE_CODE (init) != TREE_LIST
2340 && !(TREE_CODE (init) == TARGET_EXPR
2341 && TARGET_EXPR_DIRECT_INIT_P (init))
2342 && !DIRECT_LIST_INIT_P (init));
2345 /* Build a reference to a member of an aggregate. This is not a C++
2346 `&', but really something which can have its address taken, and
2347 then act as a pointer to member, for example TYPE :: FIELD can have
2348 its address taken by saying & TYPE :: FIELD. ADDRESS_P is true if
2349 this expression is the operand of "&".
2351 @@ Prints out lousy diagnostics for operator <typename>
2352 @@ fields.
2354 @@ This function should be rewritten and placed in search.cc. */
2356 tree
2357 build_offset_ref (tree type, tree member, bool address_p,
2358 tsubst_flags_t complain)
2360 tree decl;
2361 tree basebinfo = NULL_TREE;
2363 /* class templates can come in as TEMPLATE_DECLs here. */
2364 if (TREE_CODE (member) == TEMPLATE_DECL)
2365 return member;
2367 if (dependent_scope_p (type) || type_dependent_expression_p (member))
2368 return build_qualified_name (NULL_TREE, type, member,
2369 /*template_p=*/false);
2371 gcc_assert (TYPE_P (type));
2372 if (! is_class_type (type, 1))
2373 return error_mark_node;
2375 gcc_assert (DECL_P (member) || BASELINK_P (member));
2376 /* Callers should call mark_used before this point, except for functions. */
2377 gcc_assert (!DECL_P (member) || TREE_USED (member)
2378 || TREE_CODE (member) == FUNCTION_DECL);
2380 type = TYPE_MAIN_VARIANT (type);
2381 if (!COMPLETE_OR_OPEN_TYPE_P (complete_type (type)))
2383 if (complain & tf_error)
2384 error ("incomplete type %qT does not have member %qD", type, member);
2385 return error_mark_node;
2388 /* Entities other than non-static members need no further
2389 processing. */
2390 if (TREE_CODE (member) == TYPE_DECL)
2391 return member;
2392 if (VAR_P (member) || TREE_CODE (member) == CONST_DECL)
2393 return convert_from_reference (member);
2395 if (TREE_CODE (member) == FIELD_DECL && DECL_C_BIT_FIELD (member))
2397 if (complain & tf_error)
2398 error ("invalid pointer to bit-field %qD", member);
2399 return error_mark_node;
2402 /* Set up BASEBINFO for member lookup. */
2403 decl = maybe_dummy_object (type, &basebinfo);
2405 /* A lot of this logic is now handled in lookup_member. */
2406 if (BASELINK_P (member))
2408 /* Go from the TREE_BASELINK to the member function info. */
2409 tree t = BASELINK_FUNCTIONS (member);
2411 if (TREE_CODE (t) != TEMPLATE_ID_EXPR && !really_overloaded_fn (t))
2413 /* Get rid of a potential OVERLOAD around it. */
2414 t = OVL_FIRST (t);
2416 /* Unique functions are handled easily. */
2418 /* For non-static member of base class, we need a special rule
2419 for access checking [class.protected]:
2421 If the access is to form a pointer to member, the
2422 nested-name-specifier shall name the derived class
2423 (or any class derived from that class). */
2424 bool ok;
2425 if (address_p && DECL_P (t)
2426 && DECL_NONSTATIC_MEMBER_P (t))
2427 ok = perform_or_defer_access_check (TYPE_BINFO (type), t, t,
2428 complain);
2429 else
2430 ok = perform_or_defer_access_check (basebinfo, t, t,
2431 complain);
2432 if (!ok)
2433 return error_mark_node;
2434 if (DECL_STATIC_FUNCTION_P (t))
2435 return member;
2436 member = t;
2438 else
2439 TREE_TYPE (member) = unknown_type_node;
2441 else if (address_p && TREE_CODE (member) == FIELD_DECL)
2443 /* We need additional test besides the one in
2444 check_accessibility_of_qualified_id in case it is
2445 a pointer to non-static member. */
2446 if (!perform_or_defer_access_check (TYPE_BINFO (type), member, member,
2447 complain))
2448 return error_mark_node;
2451 if (!address_p)
2453 /* If MEMBER is non-static, then the program has fallen afoul of
2454 [expr.prim]:
2456 An id-expression that denotes a non-static data member or
2457 non-static member function of a class can only be used:
2459 -- as part of a class member access (_expr.ref_) in which the
2460 object-expression refers to the member's class or a class
2461 derived from that class, or
2463 -- to form a pointer to member (_expr.unary.op_), or
2465 -- in the body of a non-static member function of that class or
2466 of a class derived from that class (_class.mfct.non-static_), or
2468 -- in a mem-initializer for a constructor for that class or for
2469 a class derived from that class (_class.base.init_). */
2470 if (DECL_NONSTATIC_MEMBER_FUNCTION_P (member))
2472 /* Build a representation of the qualified name suitable
2473 for use as the operand to "&" -- even though the "&" is
2474 not actually present. */
2475 member = build2 (OFFSET_REF, TREE_TYPE (member), decl, member);
2476 /* In Microsoft mode, treat a non-static member function as if
2477 it were a pointer-to-member. */
2478 if (flag_ms_extensions)
2480 PTRMEM_OK_P (member) = 1;
2481 return cp_build_addr_expr (member, complain);
2483 if (complain & tf_error)
2484 error ("invalid use of non-static member function %qD",
2485 TREE_OPERAND (member, 1));
2486 return error_mark_node;
2488 else if (TREE_CODE (member) == FIELD_DECL)
2490 if (complain & tf_error)
2491 error ("invalid use of non-static data member %qD", member);
2492 return error_mark_node;
2494 return member;
2497 member = build2 (OFFSET_REF, TREE_TYPE (member), decl, member);
2498 PTRMEM_OK_P (member) = 1;
2499 return member;
2502 /* If DECL is a scalar enumeration constant or variable with a
2503 constant initializer, return the initializer (or, its initializers,
2504 recursively); otherwise, return DECL. If STRICT_P, the
2505 initializer is only returned if DECL is a
2506 constant-expression. If RETURN_AGGREGATE_CST_OK_P, it is ok to
2507 return an aggregate constant. If UNSHARE_P, return an unshared
2508 copy of the initializer. */
2510 static tree
2511 constant_value_1 (tree decl, bool strict_p, bool return_aggregate_cst_ok_p,
2512 bool unshare_p)
2514 while (TREE_CODE (decl) == CONST_DECL
2515 || decl_constant_var_p (decl)
2516 || (!strict_p && VAR_P (decl)
2517 && CP_TYPE_CONST_NON_VOLATILE_P (TREE_TYPE (decl))))
2519 tree init;
2520 /* If DECL is a static data member in a template
2521 specialization, we must instantiate it here. The
2522 initializer for the static data member is not processed
2523 until needed; we need it now. */
2524 mark_used (decl, tf_none);
2525 init = DECL_INITIAL (decl);
2526 if (init == error_mark_node)
2528 if (TREE_CODE (decl) == CONST_DECL
2529 || DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (decl))
2530 /* Treat the error as a constant to avoid cascading errors on
2531 excessively recursive template instantiation (c++/9335). */
2532 return init;
2533 else
2534 return decl;
2536 /* Initializers in templates are generally expanded during
2537 instantiation, so before that for const int i(2)
2538 INIT is a TREE_LIST with the actual initializer as
2539 TREE_VALUE. */
2540 if (processing_template_decl
2541 && init
2542 && TREE_CODE (init) == TREE_LIST
2543 && TREE_CHAIN (init) == NULL_TREE)
2544 init = TREE_VALUE (init);
2545 /* Instantiate a non-dependent initializer for user variables. We
2546 mustn't do this for the temporary for an array compound literal;
2547 trying to instatiate the initializer will keep creating new
2548 temporaries until we crash. Probably it's not useful to do it for
2549 other artificial variables, either. */
2550 if (!DECL_ARTIFICIAL (decl))
2551 init = instantiate_non_dependent_or_null (init);
2552 if (!init
2553 || !TREE_TYPE (init)
2554 || !TREE_CONSTANT (init)
2555 || (!return_aggregate_cst_ok_p
2556 /* Unless RETURN_AGGREGATE_CST_OK_P is true, do not
2557 return an aggregate constant (of which string
2558 literals are a special case), as we do not want
2559 to make inadvertent copies of such entities, and
2560 we must be sure that their addresses are the
2561 same everywhere. */
2562 && (TREE_CODE (init) == CONSTRUCTOR
2563 || TREE_CODE (init) == STRING_CST)))
2564 break;
2565 /* Don't return a CONSTRUCTOR for a variable with partial run-time
2566 initialization, since it doesn't represent the entire value.
2567 Similarly for VECTOR_CSTs created by cp_folding those
2568 CONSTRUCTORs. */
2569 if ((TREE_CODE (init) == CONSTRUCTOR
2570 || TREE_CODE (init) == VECTOR_CST)
2571 && !DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (decl))
2572 break;
2573 /* If the variable has a dynamic initializer, don't use its
2574 DECL_INITIAL which doesn't reflect the real value. */
2575 if (VAR_P (decl)
2576 && TREE_STATIC (decl)
2577 && !DECL_INITIALIZED_BY_CONSTANT_EXPRESSION_P (decl)
2578 && DECL_NONTRIVIALLY_INITIALIZED_P (decl))
2579 break;
2580 decl = init;
2582 return unshare_p ? unshare_expr (decl) : decl;
2585 /* If DECL is a CONST_DECL, or a constant VAR_DECL initialized by constant
2586 of integral or enumeration type, or a constexpr variable of scalar type,
2587 then return that value. These are those variables permitted in constant
2588 expressions by [5.19/1]. */
2590 tree
2591 scalar_constant_value (tree decl)
2593 return constant_value_1 (decl, /*strict_p=*/true,
2594 /*return_aggregate_cst_ok_p=*/false,
2595 /*unshare_p=*/true);
2598 /* Like scalar_constant_value, but can also return aggregate initializers.
2599 If UNSHARE_P, return an unshared copy of the initializer. */
2601 tree
2602 decl_really_constant_value (tree decl, bool unshare_p /*= true*/)
2604 return constant_value_1 (decl, /*strict_p=*/true,
2605 /*return_aggregate_cst_ok_p=*/true,
2606 /*unshare_p=*/unshare_p);
2609 /* A more relaxed version of decl_really_constant_value, used by the
2610 common C/C++ code. */
2612 tree
2613 decl_constant_value (tree decl, bool unshare_p)
2615 return constant_value_1 (decl, /*strict_p=*/processing_template_decl,
2616 /*return_aggregate_cst_ok_p=*/true,
2617 /*unshare_p=*/unshare_p);
2620 tree
2621 decl_constant_value (tree decl)
2623 return decl_constant_value (decl, /*unshare_p=*/true);
2626 /* Common subroutines of build_new and build_vec_delete. */
2628 /* Build and return a NEW_EXPR. If NELTS is non-NULL, TYPE[NELTS] is
2629 the type of the object being allocated; otherwise, it's just TYPE.
2630 INIT is the initializer, if any. USE_GLOBAL_NEW is true if the
2631 user explicitly wrote "::operator new". PLACEMENT, if non-NULL, is
2632 a vector of arguments to be provided as arguments to a placement
2633 new operator. This routine performs no semantic checks; it just
2634 creates and returns a NEW_EXPR. */
2636 static tree
2637 build_raw_new_expr (location_t loc, vec<tree, va_gc> *placement, tree type,
2638 tree nelts, vec<tree, va_gc> *init, int use_global_new)
2640 tree init_list;
2641 tree new_expr;
2643 /* If INIT is NULL, the we want to store NULL_TREE in the NEW_EXPR.
2644 If INIT is not NULL, then we want to store VOID_ZERO_NODE. This
2645 permits us to distinguish the case of a missing initializer "new
2646 int" from an empty initializer "new int()". */
2647 if (init == NULL)
2648 init_list = NULL_TREE;
2649 else if (init->is_empty ())
2650 init_list = void_node;
2651 else
2652 init_list = build_tree_list_vec (init);
2654 new_expr = build4_loc (loc, NEW_EXPR, build_pointer_type (type),
2655 build_tree_list_vec (placement), type, nelts,
2656 init_list);
2657 NEW_EXPR_USE_GLOBAL (new_expr) = use_global_new;
2658 TREE_SIDE_EFFECTS (new_expr) = 1;
2660 return new_expr;
2663 /* Diagnose uninitialized const members or reference members of type
2664 TYPE. USING_NEW is used to disambiguate the diagnostic between a
2665 new expression without a new-initializer and a declaration. Returns
2666 the error count. */
2668 static int
2669 diagnose_uninitialized_cst_or_ref_member_1 (tree type, tree origin,
2670 bool using_new, bool complain)
2672 tree field;
2673 int error_count = 0;
2675 if (type_has_user_provided_constructor (type))
2676 return 0;
2678 for (field = TYPE_FIELDS (type); field; field = DECL_CHAIN (field))
2680 tree field_type;
2682 if (TREE_CODE (field) != FIELD_DECL)
2683 continue;
2685 field_type = strip_array_types (TREE_TYPE (field));
2687 if (type_has_user_provided_constructor (field_type))
2688 continue;
2690 if (TYPE_REF_P (field_type))
2692 ++ error_count;
2693 if (complain)
2695 if (DECL_CONTEXT (field) == origin)
2697 if (using_new)
2698 error ("uninitialized reference member in %q#T "
2699 "using %<new%> without new-initializer", origin);
2700 else
2701 error ("uninitialized reference member in %q#T", origin);
2703 else
2705 if (using_new)
2706 error ("uninitialized reference member in base %q#T "
2707 "of %q#T using %<new%> without new-initializer",
2708 DECL_CONTEXT (field), origin);
2709 else
2710 error ("uninitialized reference member in base %q#T "
2711 "of %q#T", DECL_CONTEXT (field), origin);
2713 inform (DECL_SOURCE_LOCATION (field),
2714 "%q#D should be initialized", field);
2718 if (CP_TYPE_CONST_P (field_type))
2720 ++ error_count;
2721 if (complain)
2723 if (DECL_CONTEXT (field) == origin)
2725 if (using_new)
2726 error ("uninitialized const member in %q#T "
2727 "using %<new%> without new-initializer", origin);
2728 else
2729 error ("uninitialized const member in %q#T", origin);
2731 else
2733 if (using_new)
2734 error ("uninitialized const member in base %q#T "
2735 "of %q#T using %<new%> without new-initializer",
2736 DECL_CONTEXT (field), origin);
2737 else
2738 error ("uninitialized const member in base %q#T "
2739 "of %q#T", DECL_CONTEXT (field), origin);
2741 inform (DECL_SOURCE_LOCATION (field),
2742 "%q#D should be initialized", field);
2746 if (CLASS_TYPE_P (field_type))
2747 error_count
2748 += diagnose_uninitialized_cst_or_ref_member_1 (field_type, origin,
2749 using_new, complain);
2751 return error_count;
2755 diagnose_uninitialized_cst_or_ref_member (tree type, bool using_new, bool complain)
2757 return diagnose_uninitialized_cst_or_ref_member_1 (type, type, using_new, complain);
2760 /* Call __cxa_bad_array_new_length to indicate that the size calculation
2761 overflowed. Pretend it returns sizetype so that it plays nicely in the
2762 COND_EXPR. */
2764 tree
2765 throw_bad_array_new_length (void)
2767 if (!fn)
2769 tree name = get_identifier ("__cxa_throw_bad_array_new_length");
2771 fn = get_global_binding (name);
2772 if (!fn)
2773 fn = push_throw_library_fn
2774 (name, build_function_type_list (sizetype, NULL_TREE));
2777 return build_cxx_call (fn, 0, NULL, tf_warning_or_error);
2780 /* Attempt to verify that the argument, OPER, of a placement new expression
2781 refers to an object sufficiently large for an object of TYPE or an array
2782 of NELTS of such objects when NELTS is non-null, and issue a warning when
2783 it does not. SIZE specifies the size needed to construct the object or
2784 array and captures the result of NELTS * sizeof (TYPE). (SIZE could be
2785 greater when the array under construction requires a cookie to store
2786 NELTS. GCC's placement new expression stores the cookie when invoking
2787 a user-defined placement new operator function but not the default one.
2788 Placement new expressions with user-defined placement new operator are
2789 not diagnosed since we don't know how they use the buffer (this could
2790 be a future extension). */
2791 static void
2792 warn_placement_new_too_small (tree type, tree nelts, tree size, tree oper)
2794 location_t loc = cp_expr_loc_or_input_loc (oper);
2796 STRIP_NOPS (oper);
2798 /* Using a function argument or a (non-array) variable as an argument
2799 to placement new is not checked since it's unknown what it might
2800 point to. */
2801 if (TREE_CODE (oper) == PARM_DECL
2802 || VAR_P (oper)
2803 || TREE_CODE (oper) == COMPONENT_REF)
2804 return;
2806 /* Evaluate any constant expressions. */
2807 size = fold_non_dependent_expr (size);
2809 access_ref ref;
2810 ref.eval = [](tree x){ return fold_non_dependent_expr (x); };
2811 ref.trail1special = warn_placement_new < 2;
2812 tree objsize = compute_objsize (oper, 1, &ref);
2813 if (!objsize)
2814 return;
2816 /* We can only draw conclusions if ref.deref == -1,
2817 i.e. oper is the address of the object. */
2818 if (ref.deref != -1)
2819 return;
2821 offset_int bytes_avail = wi::to_offset (objsize);
2822 offset_int bytes_need;
2824 if (CONSTANT_CLASS_P (size))
2825 bytes_need = wi::to_offset (size);
2826 else if (nelts && CONSTANT_CLASS_P (nelts))
2827 bytes_need = (wi::to_offset (nelts)
2828 * wi::to_offset (TYPE_SIZE_UNIT (type)));
2829 else if (tree_fits_uhwi_p (TYPE_SIZE_UNIT (type)))
2830 bytes_need = wi::to_offset (TYPE_SIZE_UNIT (type));
2831 else
2833 /* The type is a VLA. */
2834 return;
2837 if (bytes_avail >= bytes_need)
2838 return;
2840 /* True when the size to mention in the warning is exact as opposed
2841 to "at least N". */
2842 const bool exact_size = (ref.offrng[0] == ref.offrng[1]
2843 || ref.sizrng[1] - ref.offrng[0] == 0);
2845 tree opertype = ref.ref ? TREE_TYPE (ref.ref) : TREE_TYPE (oper);
2846 bool warned = false;
2847 if (nelts)
2848 nelts = fold_for_warn (nelts);
2849 if (nelts)
2850 if (CONSTANT_CLASS_P (nelts))
2851 warned = warning_at (loc, OPT_Wplacement_new_,
2852 (exact_size
2853 ? G_("placement new constructing an object "
2854 "of type %<%T [%wu]%> and size %qwu "
2855 "in a region of type %qT and size %qwi")
2856 : G_("placement new constructing an object "
2857 "of type %<%T [%wu]%> and size %qwu "
2858 "in a region of type %qT and size "
2859 "at most %qwu")),
2860 type, tree_to_uhwi (nelts),
2861 bytes_need.to_uhwi (),
2862 opertype, bytes_avail.to_uhwi ());
2863 else
2864 warned = warning_at (loc, OPT_Wplacement_new_,
2865 (exact_size
2866 ? G_("placement new constructing an array "
2867 "of objects of type %qT and size %qwu "
2868 "in a region of type %qT and size %qwi")
2869 : G_("placement new constructing an array "
2870 "of objects of type %qT and size %qwu "
2871 "in a region of type %qT and size "
2872 "at most %qwu")),
2873 type, bytes_need.to_uhwi (), opertype,
2874 bytes_avail.to_uhwi ());
2875 else
2876 warned = warning_at (loc, OPT_Wplacement_new_,
2877 (exact_size
2878 ? G_("placement new constructing an object "
2879 "of type %qT and size %qwu in a region "
2880 "of type %qT and size %qwi")
2881 : G_("placement new constructing an object "
2882 "of type %qT "
2883 "and size %qwu in a region of type %qT "
2884 "and size at most %qwu")),
2885 type, bytes_need.to_uhwi (), opertype,
2886 bytes_avail.to_uhwi ());
2888 if (!warned || !ref.ref)
2889 return;
2891 if (ref.offrng[0] == 0 || !ref.offset_bounded ())
2892 /* Avoid mentioning the offset when its lower bound is zero
2893 or when it's impossibly large. */
2894 inform (DECL_SOURCE_LOCATION (ref.ref),
2895 "%qD declared here", ref.ref);
2896 else if (ref.offrng[0] == ref.offrng[1])
2897 inform (DECL_SOURCE_LOCATION (ref.ref),
2898 "at offset %wi from %qD declared here",
2899 ref.offrng[0].to_shwi (), ref.ref);
2900 else
2901 inform (DECL_SOURCE_LOCATION (ref.ref),
2902 "at offset [%wi, %wi] from %qD declared here",
2903 ref.offrng[0].to_shwi (), ref.offrng[1].to_shwi (), ref.ref);
2906 /* True if alignof(T) > __STDCPP_DEFAULT_NEW_ALIGNMENT__. */
2908 bool
2909 type_has_new_extended_alignment (tree t)
2911 return (aligned_new_threshold
2912 && TYPE_ALIGN_UNIT (t) > (unsigned)aligned_new_threshold);
2915 /* Return the alignment we expect malloc to guarantee. This should just be
2916 MALLOC_ABI_ALIGNMENT, but that macro defaults to only BITS_PER_WORD for some
2917 reason, so don't let the threshold be smaller than max_align_t_align. */
2919 unsigned
2920 malloc_alignment ()
2922 return MAX (max_align_t_align(), MALLOC_ABI_ALIGNMENT);
2925 /* Determine whether an allocation function is a namespace-scope
2926 non-replaceable placement new function. See DR 1748. */
2927 static bool
2928 std_placement_new_fn_p (tree alloc_fn)
2930 if (DECL_NAMESPACE_SCOPE_P (alloc_fn))
2932 tree first_arg = TREE_CHAIN (TYPE_ARG_TYPES (TREE_TYPE (alloc_fn)));
2933 if ((TREE_VALUE (first_arg) == ptr_type_node)
2934 && TREE_CHAIN (first_arg) == void_list_node)
2935 return true;
2937 return false;
2940 /* For element type ELT_TYPE, return the appropriate type of the heap object
2941 containing such element(s). COOKIE_SIZE is the size of cookie in bytes.
2942 Return
2943 struct { size_t[COOKIE_SIZE/sizeof(size_t)]; ELT_TYPE[N]; }
2944 where N is nothing (flexible array member) if ITYPE2 is NULL, otherwise
2945 the array has ITYPE2 as its TYPE_DOMAIN. */
2947 tree
2948 build_new_constexpr_heap_type (tree elt_type, tree cookie_size, tree itype2)
2950 gcc_assert (tree_fits_uhwi_p (cookie_size));
2951 unsigned HOST_WIDE_INT csz = tree_to_uhwi (cookie_size);
2952 csz /= int_size_in_bytes (sizetype);
2953 tree itype1 = build_index_type (size_int (csz - 1));
2954 tree atype1 = build_cplus_array_type (sizetype, itype1);
2955 tree atype2 = build_cplus_array_type (elt_type, itype2);
2956 tree rtype = cxx_make_type (RECORD_TYPE);
2957 TYPE_NAME (rtype) = heap_identifier;
2958 tree fld1 = build_decl (UNKNOWN_LOCATION, FIELD_DECL, NULL_TREE, atype1);
2959 tree fld2 = build_decl (UNKNOWN_LOCATION, FIELD_DECL, NULL_TREE, atype2);
2960 DECL_FIELD_CONTEXT (fld1) = rtype;
2961 DECL_FIELD_CONTEXT (fld2) = rtype;
2962 DECL_ARTIFICIAL (fld1) = true;
2963 DECL_ARTIFICIAL (fld2) = true;
2964 TYPE_FIELDS (rtype) = fld1;
2965 DECL_CHAIN (fld1) = fld2;
2966 layout_type (rtype);
2967 return rtype;
2970 /* Help the constexpr code to find the right type for the heap variable
2971 by adding a NOP_EXPR around ALLOC_CALL if needed for cookie_size.
2972 Return ALLOC_CALL or ALLOC_CALL cast to a pointer to
2973 struct { size_t[cookie_size/sizeof(size_t)]; elt_type[]; }. */
2975 static tree
2976 maybe_wrap_new_for_constexpr (tree alloc_call, tree elt_type, tree cookie_size)
2978 if (cxx_dialect < cxx20)
2979 return alloc_call;
2981 if (current_function_decl != NULL_TREE
2982 && !DECL_DECLARED_CONSTEXPR_P (current_function_decl))
2983 return alloc_call;
2985 tree call_expr = extract_call_expr (alloc_call);
2986 if (call_expr == error_mark_node)
2987 return alloc_call;
2989 tree alloc_call_fndecl = cp_get_callee_fndecl_nofold (call_expr);
2990 if (alloc_call_fndecl == NULL_TREE
2991 || !IDENTIFIER_NEW_OP_P (DECL_NAME (alloc_call_fndecl))
2992 || CP_DECL_CONTEXT (alloc_call_fndecl) != global_namespace)
2993 return alloc_call;
2995 tree rtype = build_new_constexpr_heap_type (elt_type, cookie_size,
2996 NULL_TREE);
2997 return build_nop (build_pointer_type (rtype), alloc_call);
3000 /* Generate code for a new-expression, including calling the "operator
3001 new" function, initializing the object, and, if an exception occurs
3002 during construction, cleaning up. The arguments are as for
3003 build_raw_new_expr. This may change PLACEMENT and INIT.
3004 TYPE is the type of the object being constructed, possibly an array
3005 of NELTS elements when NELTS is non-null (in "new T[NELTS]", T may
3006 be an array of the form U[inner], with the whole expression being
3007 "new U[NELTS][inner]"). */
3009 static tree
3010 build_new_1 (vec<tree, va_gc> **placement, tree type, tree nelts,
3011 vec<tree, va_gc> **init, bool globally_qualified_p,
3012 tsubst_flags_t complain)
3014 tree size, rval;
3015 /* True iff this is a call to "operator new[]" instead of just
3016 "operator new". */
3017 bool array_p = false;
3018 /* If ARRAY_P is true, the element type of the array. This is never
3019 an ARRAY_TYPE; for something like "new int[3][4]", the
3020 ELT_TYPE is "int". If ARRAY_P is false, this is the same type as
3021 TYPE. */
3022 tree elt_type;
3023 /* The type of the new-expression. (This type is always a pointer
3024 type.) */
3025 tree pointer_type;
3026 tree non_const_pointer_type;
3027 /* The most significant array bound in int[OUTER_NELTS][inner]. */
3028 tree outer_nelts = NULL_TREE;
3029 /* For arrays with a non-constant number of elements, a bounds checks
3030 on the NELTS parameter to avoid integer overflow at runtime. */
3031 tree outer_nelts_check = NULL_TREE;
3032 bool outer_nelts_from_type = false;
3033 /* Number of the "inner" elements in "new T[OUTER_NELTS][inner]". */
3034 offset_int inner_nelts_count = 1;
3035 tree alloc_call, alloc_expr;
3036 /* Size of the inner array elements (those with constant dimensions). */
3037 offset_int inner_size;
3038 /* The address returned by the call to "operator new". This node is
3039 a VAR_DECL and is therefore reusable. */
3040 tree alloc_node;
3041 tree alloc_fn;
3042 tree cookie_expr, init_expr;
3043 int nothrow, check_new;
3044 /* If non-NULL, the number of extra bytes to allocate at the
3045 beginning of the storage allocated for an array-new expression in
3046 order to store the number of elements. */
3047 tree cookie_size = NULL_TREE;
3048 tree placement_first;
3049 tree placement_expr = NULL_TREE;
3050 /* True if the function we are calling is a placement allocation
3051 function. */
3052 bool placement_allocation_fn_p;
3053 /* True if the storage must be initialized, either by a constructor
3054 or due to an explicit new-initializer. */
3055 bool is_initialized;
3056 /* The address of the thing allocated, not including any cookie. In
3057 particular, if an array cookie is in use, DATA_ADDR is the
3058 address of the first array element. This node is a VAR_DECL, and
3059 is therefore reusable. */
3060 tree data_addr;
3061 tree orig_type = type;
3063 if (nelts)
3065 outer_nelts = nelts;
3066 array_p = true;
3068 else if (TREE_CODE (type) == ARRAY_TYPE)
3070 /* Transforms new (T[N]) to new T[N]. The former is a GNU
3071 extension for variable N. (This also covers new T where T is
3072 a VLA typedef.) */
3073 array_p = true;
3074 nelts = array_type_nelts_top (type);
3075 outer_nelts = nelts;
3076 type = TREE_TYPE (type);
3077 outer_nelts_from_type = true;
3080 /* Lots of logic below depends on whether we have a constant number of
3081 elements, so go ahead and fold it now. */
3082 const_tree cst_outer_nelts = fold_non_dependent_expr (outer_nelts, complain);
3084 /* If our base type is an array, then make sure we know how many elements
3085 it has. */
3086 for (elt_type = type;
3087 TREE_CODE (elt_type) == ARRAY_TYPE;
3088 elt_type = TREE_TYPE (elt_type))
3090 tree inner_nelts = array_type_nelts_top (elt_type);
3091 tree inner_nelts_cst = maybe_constant_value (inner_nelts);
3092 if (TREE_CODE (inner_nelts_cst) == INTEGER_CST)
3094 wi::overflow_type overflow;
3095 offset_int result = wi::mul (wi::to_offset (inner_nelts_cst),
3096 inner_nelts_count, SIGNED, &overflow);
3097 if (overflow)
3099 if (complain & tf_error)
3100 error ("integer overflow in array size");
3101 nelts = error_mark_node;
3103 inner_nelts_count = result;
3105 else
3107 if (complain & tf_error)
3109 error_at (cp_expr_loc_or_input_loc (inner_nelts),
3110 "array size in new-expression must be constant");
3111 cxx_constant_value(inner_nelts);
3113 nelts = error_mark_node;
3115 if (nelts != error_mark_node)
3116 nelts = cp_build_binary_op (input_location,
3117 MULT_EXPR, nelts,
3118 inner_nelts_cst,
3119 complain);
3122 if (!verify_type_context (input_location, TCTX_ALLOCATION, elt_type,
3123 !(complain & tf_error)))
3124 return error_mark_node;
3126 if (variably_modified_type_p (elt_type, NULL_TREE) && (complain & tf_error))
3128 error ("variably modified type not allowed in new-expression");
3129 return error_mark_node;
3132 if (nelts == error_mark_node)
3133 return error_mark_node;
3135 /* Warn if we performed the (T[N]) to T[N] transformation and N is
3136 variable. */
3137 if (outer_nelts_from_type
3138 && !TREE_CONSTANT (cst_outer_nelts))
3140 if (complain & tf_warning_or_error)
3142 pedwarn (cp_expr_loc_or_input_loc (outer_nelts), OPT_Wvla,
3143 typedef_variant_p (orig_type)
3144 ? G_("non-constant array new length must be specified "
3145 "directly, not by %<typedef%>")
3146 : G_("non-constant array new length must be specified "
3147 "without parentheses around the type-id"));
3149 else
3150 return error_mark_node;
3153 if (VOID_TYPE_P (elt_type))
3155 if (complain & tf_error)
3156 error ("invalid type %<void%> for %<new%>");
3157 return error_mark_node;
3160 if (is_std_init_list (elt_type) && !cp_unevaluated_operand)
3161 warning (OPT_Winit_list_lifetime,
3162 "%<new%> of %<initializer_list%> does not "
3163 "extend the lifetime of the underlying array");
3165 if (abstract_virtuals_error (ACU_NEW, elt_type, complain))
3166 return error_mark_node;
3168 is_initialized = (type_build_ctor_call (elt_type) || *init != NULL);
3170 if (*init == NULL && cxx_dialect < cxx11)
3172 bool maybe_uninitialized_error = false;
3173 /* A program that calls for default-initialization [...] of an
3174 entity of reference type is ill-formed. */
3175 if (CLASSTYPE_REF_FIELDS_NEED_INIT (elt_type))
3176 maybe_uninitialized_error = true;
3178 /* A new-expression that creates an object of type T initializes
3179 that object as follows:
3180 - If the new-initializer is omitted:
3181 -- If T is a (possibly cv-qualified) non-POD class type
3182 (or array thereof), the object is default-initialized (8.5).
3183 [...]
3184 -- Otherwise, the object created has indeterminate
3185 value. If T is a const-qualified type, or a (possibly
3186 cv-qualified) POD class type (or array thereof)
3187 containing (directly or indirectly) a member of
3188 const-qualified type, the program is ill-formed; */
3190 if (CLASSTYPE_READONLY_FIELDS_NEED_INIT (elt_type))
3191 maybe_uninitialized_error = true;
3193 if (maybe_uninitialized_error
3194 && diagnose_uninitialized_cst_or_ref_member (elt_type,
3195 /*using_new=*/true,
3196 complain & tf_error))
3197 return error_mark_node;
3200 if (CP_TYPE_CONST_P (elt_type) && *init == NULL
3201 && default_init_uninitialized_part (elt_type))
3203 if (complain & tf_error)
3204 error ("uninitialized const in %<new%> of %q#T", elt_type);
3205 return error_mark_node;
3208 size = size_in_bytes (elt_type);
3209 if (array_p)
3211 /* Maximum available size in bytes. Half of the address space
3212 minus the cookie size. */
3213 offset_int max_size
3214 = wi::set_bit_in_zero <offset_int> (TYPE_PRECISION (sizetype) - 1);
3215 /* Maximum number of outer elements which can be allocated. */
3216 offset_int max_outer_nelts;
3217 tree max_outer_nelts_tree;
3219 gcc_assert (TREE_CODE (size) == INTEGER_CST);
3220 cookie_size = targetm.cxx.get_cookie_size (elt_type);
3221 gcc_assert (TREE_CODE (cookie_size) == INTEGER_CST);
3222 gcc_checking_assert (wi::ltu_p (wi::to_offset (cookie_size), max_size));
3223 /* Unconditionally subtract the cookie size. This decreases the
3224 maximum object size and is safe even if we choose not to use
3225 a cookie after all. */
3226 max_size -= wi::to_offset (cookie_size);
3227 wi::overflow_type overflow;
3228 inner_size = wi::mul (wi::to_offset (size), inner_nelts_count, SIGNED,
3229 &overflow);
3230 if (overflow || wi::gtu_p (inner_size, max_size))
3232 if (complain & tf_error)
3234 cst_size_error error;
3235 if (overflow)
3236 error = cst_size_overflow;
3237 else
3239 error = cst_size_too_big;
3240 size = size_binop (MULT_EXPR, size,
3241 wide_int_to_tree (sizetype,
3242 inner_nelts_count));
3243 size = cp_fully_fold (size);
3245 invalid_array_size_error (input_location, error, size,
3246 /*name=*/NULL_TREE);
3248 return error_mark_node;
3251 max_outer_nelts = wi::udiv_trunc (max_size, inner_size);
3252 max_outer_nelts_tree = wide_int_to_tree (sizetype, max_outer_nelts);
3254 size = size_binop (MULT_EXPR, size, fold_convert (sizetype, nelts));
3256 if (TREE_CODE (cst_outer_nelts) == INTEGER_CST)
3258 if (tree_int_cst_lt (max_outer_nelts_tree, cst_outer_nelts))
3260 /* When the array size is constant, check it at compile time
3261 to make sure it doesn't exceed the implementation-defined
3262 maximum, as required by C++ 14 (in C++ 11 this requirement
3263 isn't explicitly stated but it's enforced anyway -- see
3264 grokdeclarator in cp/decl.cc). */
3265 if (complain & tf_error)
3267 size = cp_fully_fold (size);
3268 invalid_array_size_error (input_location, cst_size_too_big,
3269 size, NULL_TREE);
3271 return error_mark_node;
3274 else
3276 /* When a runtime check is necessary because the array size
3277 isn't constant, keep only the top-most seven bits (starting
3278 with the most significant non-zero bit) of the maximum size
3279 to compare the array size against, to simplify encoding the
3280 constant maximum size in the instruction stream. */
3282 unsigned shift = (max_outer_nelts.get_precision ()) - 7
3283 - wi::clz (max_outer_nelts);
3284 max_outer_nelts = (max_outer_nelts >> shift) << shift;
3286 outer_nelts_check = fold_build2 (LE_EXPR, boolean_type_node,
3287 outer_nelts,
3288 max_outer_nelts_tree);
3292 tree align_arg = NULL_TREE;
3293 if (type_has_new_extended_alignment (elt_type))
3295 unsigned align = TYPE_ALIGN_UNIT (elt_type);
3296 /* Also consider the alignment of the cookie, if any. */
3297 if (array_p && TYPE_VEC_NEW_USES_COOKIE (elt_type))
3298 align = MAX (align, TYPE_ALIGN_UNIT (size_type_node));
3299 align_arg = build_int_cst (align_type_node, align);
3302 alloc_fn = NULL_TREE;
3304 /* If PLACEMENT is a single simple pointer type not passed by
3305 reference, prepare to capture it in a temporary variable. Do
3306 this now, since PLACEMENT will change in the calls below. */
3307 placement_first = NULL_TREE;
3308 if (vec_safe_length (*placement) == 1
3309 && (TYPE_PTR_P (TREE_TYPE ((**placement)[0]))))
3310 placement_first = (**placement)[0];
3312 bool member_new_p = false;
3314 /* Allocate the object. */
3315 tree fnname;
3316 tree fns;
3318 fnname = ovl_op_identifier (false, array_p ? VEC_NEW_EXPR : NEW_EXPR);
3320 member_new_p = !globally_qualified_p
3321 && CLASS_TYPE_P (elt_type)
3322 && (array_p
3323 ? TYPE_HAS_ARRAY_NEW_OPERATOR (elt_type)
3324 : TYPE_HAS_NEW_OPERATOR (elt_type));
3326 bool member_delete_p = (!globally_qualified_p
3327 && CLASS_TYPE_P (elt_type)
3328 && (array_p
3329 ? TYPE_GETS_VEC_DELETE (elt_type)
3330 : TYPE_GETS_REG_DELETE (elt_type)));
3332 if (member_new_p)
3334 /* Use a class-specific operator new. */
3335 /* If a cookie is required, add some extra space. */
3336 if (array_p && TYPE_VEC_NEW_USES_COOKIE (elt_type))
3337 size = size_binop (PLUS_EXPR, size, cookie_size);
3338 else
3340 cookie_size = NULL_TREE;
3341 /* No size arithmetic necessary, so the size check is
3342 not needed. */
3343 if (outer_nelts_check != NULL && inner_size == 1)
3344 outer_nelts_check = NULL_TREE;
3346 /* Perform the overflow check. */
3347 tree errval = TYPE_MAX_VALUE (sizetype);
3348 if (cxx_dialect >= cxx11 && flag_exceptions)
3349 errval = throw_bad_array_new_length ();
3350 if (outer_nelts_check != NULL_TREE)
3351 size = fold_build3 (COND_EXPR, sizetype, outer_nelts_check,
3352 size, errval);
3353 /* Create the argument list. */
3354 vec_safe_insert (*placement, 0, size);
3355 /* Do name-lookup to find the appropriate operator. */
3356 fns = lookup_fnfields (elt_type, fnname, /*protect=*/2, complain);
3357 if (fns == NULL_TREE)
3359 if (complain & tf_error)
3360 error ("no suitable %qD found in class %qT", fnname, elt_type);
3361 return error_mark_node;
3363 if (TREE_CODE (fns) == TREE_LIST)
3365 if (complain & tf_error)
3367 error ("request for member %qD is ambiguous", fnname);
3368 print_candidates (fns);
3370 return error_mark_node;
3372 tree dummy = build_dummy_object (elt_type);
3373 alloc_call = NULL_TREE;
3374 if (align_arg)
3376 vec<tree, va_gc> *align_args
3377 = vec_copy_and_insert (*placement, align_arg, 1);
3378 alloc_call
3379 = build_new_method_call (dummy, fns, &align_args,
3380 /*conversion_path=*/NULL_TREE,
3381 LOOKUP_NORMAL, &alloc_fn, tf_none);
3382 /* If no matching function is found and the allocated object type
3383 has new-extended alignment, the alignment argument is removed
3384 from the argument list, and overload resolution is performed
3385 again. */
3386 if (alloc_call == error_mark_node)
3387 alloc_call = NULL_TREE;
3389 if (!alloc_call)
3390 alloc_call = build_new_method_call (dummy, fns, placement,
3391 /*conversion_path=*/NULL_TREE,
3392 LOOKUP_NORMAL,
3393 &alloc_fn, complain);
3395 else
3397 /* Use a global operator new. */
3398 /* See if a cookie might be required. */
3399 if (!(array_p && TYPE_VEC_NEW_USES_COOKIE (elt_type)))
3401 cookie_size = NULL_TREE;
3402 /* No size arithmetic necessary, so the size check is
3403 not needed. */
3404 if (outer_nelts_check != NULL && inner_size == 1)
3405 outer_nelts_check = NULL_TREE;
3408 /* If size is zero e.g. due to type having zero size, try to
3409 preserve outer_nelts for constant expression evaluation
3410 purposes. */
3411 if (integer_zerop (size) && outer_nelts)
3412 size = build2 (MULT_EXPR, TREE_TYPE (size), size, outer_nelts);
3414 alloc_call = build_operator_new_call (fnname, placement,
3415 &size, &cookie_size,
3416 align_arg, outer_nelts_check,
3417 &alloc_fn, complain);
3420 if (alloc_call == error_mark_node)
3421 return error_mark_node;
3423 gcc_assert (alloc_fn != NULL_TREE);
3425 /* Now, check to see if this function is actually a placement
3426 allocation function. This can happen even when PLACEMENT is NULL
3427 because we might have something like:
3429 struct S { void* operator new (size_t, int i = 0); };
3431 A call to `new S' will get this allocation function, even though
3432 there is no explicit placement argument. If there is more than
3433 one argument, or there are variable arguments, then this is a
3434 placement allocation function. */
3435 placement_allocation_fn_p
3436 = (type_num_arguments (TREE_TYPE (alloc_fn)) > 1
3437 || varargs_function_p (alloc_fn));
3439 if (complain & tf_warning_or_error
3440 && warn_aligned_new
3441 && !placement_allocation_fn_p
3442 && TYPE_ALIGN (elt_type) > malloc_alignment ()
3443 && (warn_aligned_new > 1
3444 || CP_DECL_CONTEXT (alloc_fn) == global_namespace)
3445 && !aligned_allocation_fn_p (alloc_fn))
3447 auto_diagnostic_group d;
3448 if (warning (OPT_Waligned_new_, "%<new%> of type %qT with extended "
3449 "alignment %d", elt_type, TYPE_ALIGN_UNIT (elt_type)))
3451 inform (input_location, "uses %qD, which does not have an alignment "
3452 "parameter", alloc_fn);
3453 if (!aligned_new_threshold)
3454 inform (input_location, "use %<-faligned-new%> to enable C++17 "
3455 "over-aligned new support");
3459 /* If we found a simple case of PLACEMENT_EXPR above, then copy it
3460 into a temporary variable. */
3461 if (!processing_template_decl
3462 && TREE_CODE (alloc_call) == CALL_EXPR
3463 && call_expr_nargs (alloc_call) == 2
3464 && TREE_CODE (TREE_TYPE (CALL_EXPR_ARG (alloc_call, 0))) == INTEGER_TYPE
3465 && TYPE_PTR_P (TREE_TYPE (CALL_EXPR_ARG (alloc_call, 1))))
3467 tree placement = CALL_EXPR_ARG (alloc_call, 1);
3469 if (placement_first != NULL_TREE
3470 && (INTEGRAL_OR_ENUMERATION_TYPE_P (TREE_TYPE (TREE_TYPE (placement)))
3471 || VOID_TYPE_P (TREE_TYPE (TREE_TYPE (placement)))))
3473 placement_expr = get_target_expr (placement_first);
3474 CALL_EXPR_ARG (alloc_call, 1)
3475 = fold_convert (TREE_TYPE (placement), placement_expr);
3478 if (!member_new_p
3479 && VOID_TYPE_P (TREE_TYPE (TREE_TYPE (CALL_EXPR_ARG (alloc_call, 1)))))
3481 /* Attempt to make the warning point at the operator new argument. */
3482 if (placement_first)
3483 placement = placement_first;
3485 warn_placement_new_too_small (orig_type, nelts, size, placement);
3489 alloc_expr = alloc_call;
3490 if (cookie_size)
3491 alloc_expr = maybe_wrap_new_for_constexpr (alloc_expr, type,
3492 cookie_size);
3494 /* In the simple case, we can stop now. */
3495 pointer_type = build_pointer_type (type);
3496 if (!cookie_size && !is_initialized && !member_delete_p)
3497 return build_nop (pointer_type, alloc_expr);
3499 /* Store the result of the allocation call in a variable so that we can
3500 use it more than once. */
3501 alloc_expr = get_target_expr (alloc_expr);
3502 alloc_node = TARGET_EXPR_SLOT (alloc_expr);
3504 /* Strip any COMPOUND_EXPRs from ALLOC_CALL. */
3505 while (TREE_CODE (alloc_call) == COMPOUND_EXPR)
3506 alloc_call = TREE_OPERAND (alloc_call, 1);
3508 /* Preevaluate the placement args so that we don't reevaluate them for a
3509 placement delete. */
3510 if (placement_allocation_fn_p)
3512 tree inits;
3513 stabilize_call (alloc_call, &inits);
3514 if (inits)
3515 alloc_expr = build2 (COMPOUND_EXPR, TREE_TYPE (alloc_expr), inits,
3516 alloc_expr);
3519 /* unless an allocation function is declared with an empty excep-
3520 tion-specification (_except.spec_), throw(), it indicates failure to
3521 allocate storage by throwing a bad_alloc exception (clause _except_,
3522 _lib.bad.alloc_); it returns a non-null pointer otherwise If the allo-
3523 cation function is declared with an empty exception-specification,
3524 throw(), it returns null to indicate failure to allocate storage and a
3525 non-null pointer otherwise.
3527 So check for a null exception spec on the op new we just called. */
3529 nothrow = TYPE_NOTHROW_P (TREE_TYPE (alloc_fn));
3530 check_new
3531 = flag_check_new || (nothrow && !std_placement_new_fn_p (alloc_fn));
3533 if (cookie_size)
3535 tree cookie;
3536 tree cookie_ptr;
3537 tree size_ptr_type;
3539 /* Adjust so we're pointing to the start of the object. */
3540 data_addr = fold_build_pointer_plus (alloc_node, cookie_size);
3542 /* Store the number of bytes allocated so that we can know how
3543 many elements to destroy later. We use the last sizeof
3544 (size_t) bytes to store the number of elements. */
3545 cookie_ptr = size_binop (MINUS_EXPR, cookie_size, size_in_bytes (sizetype));
3546 cookie_ptr = fold_build_pointer_plus_loc (input_location,
3547 alloc_node, cookie_ptr);
3548 size_ptr_type = build_pointer_type (sizetype);
3549 cookie_ptr = fold_convert (size_ptr_type, cookie_ptr);
3550 cookie = cp_build_fold_indirect_ref (cookie_ptr);
3552 cookie_expr = build2 (MODIFY_EXPR, sizetype, cookie, nelts);
3554 if (targetm.cxx.cookie_has_size ())
3556 /* Also store the element size. */
3557 cookie_ptr = fold_build_pointer_plus (cookie_ptr,
3558 fold_build1_loc (input_location,
3559 NEGATE_EXPR, sizetype,
3560 size_in_bytes (sizetype)));
3562 cookie = cp_build_fold_indirect_ref (cookie_ptr);
3563 cookie = build2 (MODIFY_EXPR, sizetype, cookie,
3564 size_in_bytes (elt_type));
3565 cookie_expr = build2 (COMPOUND_EXPR, TREE_TYPE (cookie_expr),
3566 cookie, cookie_expr);
3569 else
3571 cookie_expr = NULL_TREE;
3572 data_addr = alloc_node;
3575 /* Now use a pointer to the type we've actually allocated. */
3577 /* But we want to operate on a non-const version to start with,
3578 since we'll be modifying the elements. */
3579 non_const_pointer_type = build_pointer_type
3580 (cp_build_qualified_type (type, cp_type_quals (type) & ~TYPE_QUAL_CONST));
3582 data_addr = fold_convert (non_const_pointer_type, data_addr);
3583 /* Any further uses of alloc_node will want this type, too. */
3584 alloc_node = fold_convert (non_const_pointer_type, alloc_node);
3586 /* Now initialize the allocated object. Note that we preevaluate the
3587 initialization expression, apart from the actual constructor call or
3588 assignment--we do this because we want to delay the allocation as long
3589 as possible in order to minimize the size of the exception region for
3590 placement delete. */
3591 if (is_initialized)
3593 bool explicit_value_init_p = false;
3595 if (*init != NULL && (*init)->is_empty ())
3597 *init = NULL;
3598 explicit_value_init_p = true;
3601 if (processing_template_decl)
3603 /* Avoid an ICE when converting to a base in build_simple_base_path.
3604 We'll throw this all away anyway, and build_new will create
3605 a NEW_EXPR. */
3606 tree t = fold_convert (build_pointer_type (elt_type), data_addr);
3607 /* build_value_init doesn't work in templates, and we don't need
3608 the initializer anyway since we're going to throw it away and
3609 rebuild it at instantiation time, so just build up a single
3610 constructor call to get any appropriate diagnostics. */
3611 init_expr = cp_build_fold_indirect_ref (t);
3612 if (type_build_ctor_call (elt_type))
3613 init_expr = build_special_member_call (init_expr,
3614 complete_ctor_identifier,
3615 init, elt_type,
3616 LOOKUP_NORMAL,
3617 complain);
3619 else if (array_p)
3621 tree vecinit = NULL_TREE;
3622 const size_t len = vec_safe_length (*init);
3623 if (len == 1 && DIRECT_LIST_INIT_P ((**init)[0]))
3625 vecinit = (**init)[0];
3626 if (CONSTRUCTOR_NELTS (vecinit) == 0)
3627 /* List-value-initialization, leave it alone. */;
3628 else
3630 tree arraytype, domain;
3631 if (TREE_CONSTANT (nelts))
3632 domain = compute_array_index_type (NULL_TREE, nelts,
3633 complain);
3634 else
3635 /* We'll check the length at runtime. */
3636 domain = NULL_TREE;
3637 arraytype = build_cplus_array_type (type, domain);
3638 /* If we have new char[4]{"foo"}, we have to reshape
3639 so that the STRING_CST isn't wrapped in { }. */
3640 vecinit = reshape_init (arraytype, vecinit, complain);
3641 /* The middle end doesn't cope with the location wrapper
3642 around a STRING_CST. */
3643 STRIP_ANY_LOCATION_WRAPPER (vecinit);
3644 vecinit = digest_init (arraytype, vecinit, complain);
3647 else if (*init)
3649 if (complain & tf_error)
3650 error ("parenthesized initializer in array new");
3651 return error_mark_node;
3653 init_expr
3654 = build_vec_init (data_addr,
3655 cp_build_binary_op (input_location,
3656 MINUS_EXPR, outer_nelts,
3657 integer_one_node,
3658 complain),
3659 vecinit,
3660 explicit_value_init_p,
3661 /*from_array=*/0,
3662 complain);
3664 else
3666 init_expr = cp_build_fold_indirect_ref (data_addr);
3668 if (type_build_ctor_call (type) && !explicit_value_init_p)
3670 init_expr = build_special_member_call (init_expr,
3671 complete_ctor_identifier,
3672 init, elt_type,
3673 LOOKUP_NORMAL,
3674 complain|tf_no_cleanup);
3676 else if (explicit_value_init_p)
3678 /* Something like `new int()'. NO_CLEANUP is needed so
3679 we don't try and build a (possibly ill-formed)
3680 destructor. */
3681 tree val = build_value_init (type, complain | tf_no_cleanup);
3682 if (val == error_mark_node)
3683 return error_mark_node;
3684 init_expr = cp_build_init_expr (init_expr, val);
3686 else
3688 tree ie;
3690 /* We are processing something like `new int (10)', which
3691 means allocate an int, and initialize it with 10.
3693 In C++20, also handle `new A(1, 2)'. */
3694 if (cxx_dialect >= cxx20
3695 && AGGREGATE_TYPE_P (type)
3696 && (*init)->length () > 1)
3698 ie = build_constructor_from_vec (init_list_type_node, *init);
3699 CONSTRUCTOR_IS_DIRECT_INIT (ie) = true;
3700 CONSTRUCTOR_IS_PAREN_INIT (ie) = true;
3701 ie = digest_init (type, ie, complain);
3703 else
3704 ie = build_x_compound_expr_from_vec (*init, "new initializer",
3705 complain);
3706 init_expr = cp_build_modify_expr (input_location, init_expr,
3707 INIT_EXPR, ie, complain);
3709 /* If the initializer uses C++14 aggregate NSDMI that refer to the
3710 object being initialized, replace them now and don't try to
3711 preevaluate. */
3712 bool had_placeholder = false;
3713 if (!processing_template_decl
3714 && TREE_CODE (init_expr) == INIT_EXPR)
3715 TREE_OPERAND (init_expr, 1)
3716 = replace_placeholders (TREE_OPERAND (init_expr, 1),
3717 TREE_OPERAND (init_expr, 0),
3718 &had_placeholder);
3721 if (init_expr == error_mark_node)
3722 return error_mark_node;
3724 else
3725 init_expr = NULL_TREE;
3727 /* If any part of the object initialization terminates by throwing an
3728 exception and a suitable deallocation function can be found, the
3729 deallocation function is called to free the memory in which the
3730 object was being constructed, after which the exception continues
3731 to propagate in the context of the new-expression. If no
3732 unambiguous matching deallocation function can be found,
3733 propagating the exception does not cause the object's memory to be
3734 freed. */
3735 if (flag_exceptions && (init_expr || member_delete_p))
3737 enum tree_code dcode = array_p ? VEC_DELETE_EXPR : DELETE_EXPR;
3738 tree cleanup;
3740 /* The Standard is unclear here, but the right thing to do
3741 is to use the same method for finding deallocation
3742 functions that we use for finding allocation functions. */
3743 cleanup = (build_op_delete_call
3744 (dcode,
3745 alloc_node,
3746 size,
3747 globally_qualified_p,
3748 placement_allocation_fn_p ? alloc_call : NULL_TREE,
3749 alloc_fn,
3750 complain));
3752 if (cleanup && init_expr && !processing_template_decl)
3753 /* Ack! First we allocate the memory. Then we set our sentry
3754 variable to true, and expand a cleanup that deletes the
3755 memory if sentry is true. Then we run the constructor, and
3756 finally clear the sentry.
3758 We need to do this because we allocate the space first, so
3759 if there are any temporaries with cleanups in the
3760 constructor args, we need this EH region to extend until
3761 end of full-expression to preserve nesting.
3763 We used to try to evaluate the args first to avoid this, but
3764 since C++17 [expr.new] says that "The invocation of the
3765 allocation function is sequenced before the evaluations of
3766 expressions in the new-initializer." */
3768 tree end, sentry, begin;
3770 begin = get_target_expr (boolean_true_node);
3771 CLEANUP_EH_ONLY (begin) = 1;
3773 sentry = TARGET_EXPR_SLOT (begin);
3775 /* CLEANUP is compiler-generated, so no diagnostics. */
3776 suppress_warning (cleanup);
3778 TARGET_EXPR_CLEANUP (begin)
3779 = build3 (COND_EXPR, void_type_node, sentry,
3780 cleanup, void_node);
3782 end = build2 (MODIFY_EXPR, TREE_TYPE (sentry),
3783 sentry, boolean_false_node);
3785 init_expr
3786 = build2 (COMPOUND_EXPR, void_type_node, begin,
3787 build2 (COMPOUND_EXPR, void_type_node, init_expr,
3788 end));
3789 /* Likewise, this is compiler-generated. */
3790 suppress_warning (init_expr);
3794 /* Now build up the return value in reverse order. */
3796 rval = data_addr;
3798 if (init_expr)
3799 rval = build2 (COMPOUND_EXPR, TREE_TYPE (rval), init_expr, rval);
3800 if (cookie_expr)
3801 rval = build2 (COMPOUND_EXPR, TREE_TYPE (rval), cookie_expr, rval);
3803 if (rval == data_addr && TREE_CODE (alloc_expr) == TARGET_EXPR)
3804 /* If we don't have an initializer or a cookie, strip the TARGET_EXPR
3805 and return the call (which doesn't need to be adjusted). */
3806 rval = TARGET_EXPR_INITIAL (alloc_expr);
3807 else
3809 if (check_new)
3811 tree ifexp = cp_build_binary_op (input_location,
3812 NE_EXPR, alloc_node,
3813 nullptr_node,
3814 complain);
3815 rval = build_conditional_expr (input_location, ifexp, rval,
3816 alloc_node, complain);
3819 /* Perform the allocation before anything else, so that ALLOC_NODE
3820 has been initialized before we start using it. */
3821 rval = build2 (COMPOUND_EXPR, TREE_TYPE (rval), alloc_expr, rval);
3824 /* A new-expression is never an lvalue. */
3825 gcc_assert (!obvalue_p (rval));
3827 return convert (pointer_type, rval);
3830 /* Generate a representation for a C++ "new" expression. *PLACEMENT
3831 is a vector of placement-new arguments (or NULL if none). If NELTS
3832 is NULL, TYPE is the type of the storage to be allocated. If NELTS
3833 is not NULL, then this is an array-new allocation; TYPE is the type
3834 of the elements in the array and NELTS is the number of elements in
3835 the array. *INIT, if non-NULL, is the initializer for the new
3836 object, or an empty vector to indicate an initializer of "()". If
3837 USE_GLOBAL_NEW is true, then the user explicitly wrote "::new"
3838 rather than just "new". This may change PLACEMENT and INIT. */
3840 tree
3841 build_new (location_t loc, vec<tree, va_gc> **placement, tree type,
3842 tree nelts, vec<tree, va_gc> **init, int use_global_new,
3843 tsubst_flags_t complain)
3845 tree rval;
3846 vec<tree, va_gc> *orig_placement = NULL;
3847 tree orig_nelts = NULL_TREE;
3848 vec<tree, va_gc> *orig_init = NULL;
3850 if (type == error_mark_node)
3851 return error_mark_node;
3853 if (nelts == NULL_TREE
3854 /* Don't do auto deduction where it might affect mangling. */
3855 && (!processing_template_decl || at_function_scope_p ()))
3857 tree auto_node = type_uses_auto (type);
3858 if (auto_node)
3860 tree d_init = NULL_TREE;
3861 const size_t len = vec_safe_length (*init);
3862 /* E.g. new auto(x) must have exactly one element, or
3863 a {} initializer will have one element. */
3864 if (len == 1)
3866 d_init = (**init)[0];
3867 d_init = resolve_nondeduced_context (d_init, complain);
3869 /* For the rest, e.g. new A(1, 2, 3), create a list. */
3870 else if (len > 1)
3872 unsigned int n;
3873 tree t;
3874 tree *pp = &d_init;
3875 FOR_EACH_VEC_ELT (**init, n, t)
3877 t = resolve_nondeduced_context (t, complain);
3878 *pp = build_tree_list (NULL_TREE, t);
3879 pp = &TREE_CHAIN (*pp);
3882 type = do_auto_deduction (type, d_init, auto_node, complain);
3886 if (processing_template_decl)
3888 if (dependent_type_p (type)
3889 || any_type_dependent_arguments_p (*placement)
3890 || (nelts && type_dependent_expression_p (nelts))
3891 || (nelts && *init)
3892 || any_type_dependent_arguments_p (*init))
3893 return build_raw_new_expr (loc, *placement, type, nelts, *init,
3894 use_global_new);
3896 orig_placement = make_tree_vector_copy (*placement);
3897 orig_nelts = nelts;
3898 if (*init)
3900 orig_init = make_tree_vector_copy (*init);
3901 /* Also copy any CONSTRUCTORs in *init, since reshape_init and
3902 digest_init clobber them in place. */
3903 for (unsigned i = 0; i < orig_init->length(); ++i)
3905 tree e = (**init)[i];
3906 if (TREE_CODE (e) == CONSTRUCTOR)
3907 (**init)[i] = copy_node (e);
3911 make_args_non_dependent (*placement);
3912 if (nelts)
3913 nelts = build_non_dependent_expr (nelts);
3914 make_args_non_dependent (*init);
3917 if (nelts)
3919 location_t nelts_loc = cp_expr_loc_or_loc (nelts, loc);
3920 if (!build_expr_type_conversion (WANT_INT | WANT_ENUM, nelts, false))
3922 if (complain & tf_error)
3923 permerror (nelts_loc,
3924 "size in array new must have integral type");
3925 else
3926 return error_mark_node;
3929 /* Try to determine the constant value only for the purposes
3930 of the diagnostic below but continue to use the original
3931 value and handle const folding later. */
3932 const_tree cst_nelts = fold_non_dependent_expr (nelts, complain);
3934 /* The expression in a noptr-new-declarator is erroneous if it's of
3935 non-class type and its value before converting to std::size_t is
3936 less than zero. ... If the expression is a constant expression,
3937 the program is ill-fomed. */
3938 if (TREE_CODE (cst_nelts) == INTEGER_CST
3939 && !valid_array_size_p (nelts_loc, cst_nelts, NULL_TREE,
3940 complain & tf_error))
3941 return error_mark_node;
3943 nelts = mark_rvalue_use (nelts);
3944 nelts = cp_save_expr (cp_convert (sizetype, nelts, complain));
3947 /* ``A reference cannot be created by the new operator. A reference
3948 is not an object (8.2.2, 8.4.3), so a pointer to it could not be
3949 returned by new.'' ARM 5.3.3 */
3950 if (TYPE_REF_P (type))
3952 if (complain & tf_error)
3953 error_at (loc, "new cannot be applied to a reference type");
3954 else
3955 return error_mark_node;
3956 type = TREE_TYPE (type);
3959 if (TREE_CODE (type) == FUNCTION_TYPE)
3961 if (complain & tf_error)
3962 error_at (loc, "new cannot be applied to a function type");
3963 return error_mark_node;
3966 /* P1009: Array size deduction in new-expressions. */
3967 const bool array_p = TREE_CODE (type) == ARRAY_TYPE;
3968 if (*init
3969 /* If ARRAY_P, we have to deduce the array bound. For C++20 paren-init,
3970 we have to process the parenthesized-list. But don't do it for (),
3971 which is value-initialization, and INIT should stay empty. */
3972 && (array_p || (cxx_dialect >= cxx20 && nelts && !(*init)->is_empty ())))
3974 /* This means we have 'new T[]()'. */
3975 if ((*init)->is_empty ())
3977 tree ctor = build_constructor (init_list_type_node, NULL);
3978 CONSTRUCTOR_IS_DIRECT_INIT (ctor) = true;
3979 vec_safe_push (*init, ctor);
3981 tree &elt = (**init)[0];
3982 /* The C++20 'new T[](e_0, ..., e_k)' case allowed by P0960. */
3983 if (!DIRECT_LIST_INIT_P (elt) && cxx_dialect >= cxx20)
3985 tree ctor = build_constructor_from_vec (init_list_type_node, *init);
3986 CONSTRUCTOR_IS_DIRECT_INIT (ctor) = true;
3987 CONSTRUCTOR_IS_PAREN_INIT (ctor) = true;
3988 elt = ctor;
3989 /* We've squashed all the vector elements into the first one;
3990 truncate the rest. */
3991 (*init)->truncate (1);
3993 /* Otherwise we should have 'new T[]{e_0, ..., e_k}'. */
3994 if (array_p && !TYPE_DOMAIN (type))
3996 /* We need to reshape before deducing the bounds to handle code like
3998 struct S { int x, y; };
3999 new S[]{1, 2, 3, 4};
4001 which should deduce S[2]. But don't change ELT itself: we want to
4002 pass a list-initializer to build_new_1, even for STRING_CSTs. */
4003 tree e = elt;
4004 if (BRACE_ENCLOSED_INITIALIZER_P (e))
4005 e = reshape_init (type, e, complain);
4006 cp_complete_array_type (&type, e, /*do_default*/false);
4010 /* The type allocated must be complete. If the new-type-id was
4011 "T[N]" then we are just checking that "T" is complete here, but
4012 that is equivalent, since the value of "N" doesn't matter. */
4013 if (!complete_type_or_maybe_complain (type, NULL_TREE, complain))
4014 return error_mark_node;
4016 rval = build_new_1 (placement, type, nelts, init, use_global_new, complain);
4017 if (rval == error_mark_node)
4018 return error_mark_node;
4020 if (processing_template_decl)
4022 tree ret = build_raw_new_expr (loc, orig_placement, type, orig_nelts,
4023 orig_init, use_global_new);
4024 release_tree_vector (orig_placement);
4025 release_tree_vector (orig_init);
4026 return ret;
4029 /* Wrap it in a NOP_EXPR so warn_if_unused_value doesn't complain. */
4030 rval = build1_loc (loc, NOP_EXPR, TREE_TYPE (rval), rval);
4031 suppress_warning (rval, OPT_Wunused_value);
4033 return rval;
4036 static tree
4037 build_vec_delete_1 (location_t loc, tree base, tree maxindex, tree type,
4038 special_function_kind auto_delete_vec,
4039 int use_global_delete, tsubst_flags_t complain,
4040 bool in_cleanup = false)
4042 tree virtual_size;
4043 tree ptype = build_pointer_type (type = complete_type (type));
4044 tree size_exp;
4046 /* Temporary variables used by the loop. */
4047 tree tbase, tbase_init;
4049 /* This is the body of the loop that implements the deletion of a
4050 single element, and moves temp variables to next elements. */
4051 tree body;
4053 /* This is the LOOP_EXPR that governs the deletion of the elements. */
4054 tree loop = 0;
4056 /* This is the thing that governs what to do after the loop has run. */
4057 tree deallocate_expr = 0;
4059 /* This is the BIND_EXPR which holds the outermost iterator of the
4060 loop. It is convenient to set this variable up and test it before
4061 executing any other code in the loop.
4062 This is also the containing expression returned by this function. */
4063 tree controller = NULL_TREE;
4064 tree tmp;
4066 /* We should only have 1-D arrays here. */
4067 gcc_assert (TREE_CODE (type) != ARRAY_TYPE);
4069 if (base == error_mark_node || maxindex == error_mark_node)
4070 return error_mark_node;
4072 if (!verify_type_context (loc, TCTX_DEALLOCATION, type,
4073 !(complain & tf_error)))
4074 return error_mark_node;
4076 if (!COMPLETE_TYPE_P (type))
4078 if (complain & tf_warning)
4080 auto_diagnostic_group d;
4081 if (warning_at (loc, OPT_Wdelete_incomplete,
4082 "possible problem detected in invocation of "
4083 "operator %<delete []%>"))
4085 cxx_incomplete_type_diagnostic (base, type, DK_WARNING);
4086 inform (loc, "neither the destructor nor the "
4087 "class-specific operator %<delete []%> will be called, "
4088 "even if they are declared when the class is defined");
4091 /* This size won't actually be used. */
4092 size_exp = size_one_node;
4093 goto no_destructor;
4096 size_exp = size_in_bytes (type);
4098 if (! MAYBE_CLASS_TYPE_P (type))
4099 goto no_destructor;
4100 else if (TYPE_HAS_TRIVIAL_DESTRUCTOR (type))
4102 /* Make sure the destructor is callable. */
4103 if (type_build_dtor_call (type))
4105 tmp = build_delete (loc, ptype, base, sfk_complete_destructor,
4106 LOOKUP_NORMAL|LOOKUP_DESTRUCTOR, 1,
4107 complain);
4108 if (tmp == error_mark_node)
4109 return error_mark_node;
4111 goto no_destructor;
4114 /* The below is short by the cookie size. */
4115 virtual_size = size_binop (MULT_EXPR, size_exp,
4116 fold_convert (sizetype, maxindex));
4118 tbase = create_temporary_var (ptype);
4119 DECL_INITIAL (tbase)
4120 = fold_build_pointer_plus_loc (loc, fold_convert (ptype, base),
4121 virtual_size);
4122 tbase_init = build_stmt (loc, DECL_EXPR, tbase);
4123 controller = build3 (BIND_EXPR, void_type_node, tbase, NULL_TREE, NULL_TREE);
4124 TREE_SIDE_EFFECTS (controller) = 1;
4125 BIND_EXPR_VEC_DTOR (controller) = true;
4127 body = build1 (EXIT_EXPR, void_type_node,
4128 build2 (EQ_EXPR, boolean_type_node, tbase,
4129 fold_convert (ptype, base)));
4130 tmp = fold_build1_loc (loc, NEGATE_EXPR, sizetype, size_exp);
4131 tmp = fold_build_pointer_plus (tbase, tmp);
4132 tmp = cp_build_modify_expr (loc, tbase, NOP_EXPR, tmp, complain);
4133 if (tmp == error_mark_node)
4134 return error_mark_node;
4135 body = build_compound_expr (loc, body, tmp);
4136 tmp = build_delete (loc, ptype, tbase, sfk_complete_destructor,
4137 LOOKUP_NORMAL|LOOKUP_DESTRUCTOR, 1,
4138 complain);
4139 if (tmp == error_mark_node)
4140 return error_mark_node;
4141 body = build_compound_expr (loc, body, tmp);
4143 loop = build1 (LOOP_EXPR, void_type_node, body);
4145 /* If one destructor throws, keep trying to clean up the rest, unless we're
4146 already in a build_vec_init cleanup. */
4147 if (flag_exceptions && !in_cleanup && !expr_noexcept_p (tmp, tf_none))
4149 loop = build2 (TRY_CATCH_EXPR, void_type_node, loop,
4150 unshare_expr (loop));
4151 /* Tell honor_protect_cleanup_actions to discard this on the
4152 exceptional path. */
4153 TRY_CATCH_IS_CLEANUP (loop) = true;
4156 loop = build_compound_expr (loc, tbase_init, loop);
4158 no_destructor:
4159 /* Delete the storage if appropriate. */
4160 if (auto_delete_vec == sfk_deleting_destructor)
4162 tree base_tbd;
4164 /* The below is short by the cookie size. */
4165 virtual_size = size_binop (MULT_EXPR, size_exp,
4166 fold_convert (sizetype, maxindex));
4168 if (! TYPE_VEC_NEW_USES_COOKIE (type))
4169 /* no header */
4170 base_tbd = base;
4171 else
4173 tree cookie_size;
4175 cookie_size = targetm.cxx.get_cookie_size (type);
4176 base_tbd = cp_build_binary_op (loc,
4177 MINUS_EXPR,
4178 cp_convert (string_type_node,
4179 base, complain),
4180 cookie_size,
4181 complain);
4182 if (base_tbd == error_mark_node)
4183 return error_mark_node;
4184 base_tbd = cp_convert (ptype, base_tbd, complain);
4185 /* True size with header. */
4186 virtual_size = size_binop (PLUS_EXPR, virtual_size, cookie_size);
4189 deallocate_expr = build_op_delete_call (VEC_DELETE_EXPR,
4190 base_tbd, virtual_size,
4191 use_global_delete & 1,
4192 /*placement=*/NULL_TREE,
4193 /*alloc_fn=*/NULL_TREE,
4194 complain);
4197 body = loop;
4198 if (deallocate_expr == error_mark_node)
4199 return error_mark_node;
4200 else if (!deallocate_expr)
4202 else if (!body)
4203 body = deallocate_expr;
4204 else
4205 /* The delete operator must be called, even if a destructor
4206 throws. */
4207 body = build2 (TRY_FINALLY_EXPR, void_type_node, body, deallocate_expr);
4209 if (!body)
4210 body = integer_zero_node;
4212 /* Outermost wrapper: If pointer is null, punt. */
4213 tree cond = build2_loc (loc, NE_EXPR, boolean_type_node, base,
4214 fold_convert (TREE_TYPE (base), nullptr_node));
4215 /* This is a compiler generated comparison, don't emit
4216 e.g. -Wnonnull-compare warning for it. */
4217 suppress_warning (cond, OPT_Wnonnull_compare);
4218 body = build3_loc (loc, COND_EXPR, void_type_node,
4219 cond, body, integer_zero_node);
4220 COND_EXPR_IS_VEC_DELETE (body) = true;
4221 body = build1 (NOP_EXPR, void_type_node, body);
4223 if (controller)
4225 TREE_OPERAND (controller, 1) = body;
4226 body = controller;
4229 if (TREE_CODE (base) == SAVE_EXPR)
4230 /* Pre-evaluate the SAVE_EXPR outside of the BIND_EXPR. */
4231 body = build2 (COMPOUND_EXPR, void_type_node, base, body);
4233 return convert_to_void (body, ICV_CAST, complain);
4236 /* Create an unnamed variable of the indicated TYPE. */
4238 tree
4239 create_temporary_var (tree type)
4241 tree decl;
4243 decl = build_decl (input_location,
4244 VAR_DECL, NULL_TREE, type);
4245 TREE_USED (decl) = 1;
4246 DECL_ARTIFICIAL (decl) = 1;
4247 DECL_IGNORED_P (decl) = 1;
4248 DECL_CONTEXT (decl) = current_function_decl;
4250 return decl;
4253 /* Create a new temporary variable of the indicated TYPE, initialized
4254 to INIT.
4256 It is not entered into current_binding_level, because that breaks
4257 things when it comes time to do final cleanups (which take place
4258 "outside" the binding contour of the function). */
4260 tree
4261 get_temp_regvar (tree type, tree init)
4263 tree decl;
4265 decl = create_temporary_var (type);
4266 add_decl_expr (decl);
4268 finish_expr_stmt (cp_build_modify_expr (input_location, decl, INIT_EXPR,
4269 init, tf_warning_or_error));
4271 return decl;
4274 /* Subroutine of build_vec_init. Returns true if assigning to an array of
4275 INNER_ELT_TYPE from INIT is trivial. */
4277 static bool
4278 vec_copy_assign_is_trivial (tree inner_elt_type, tree init)
4280 tree fromtype = inner_elt_type;
4281 if (lvalue_p (init))
4282 fromtype = cp_build_reference_type (fromtype, /*rval*/false);
4283 return is_trivially_xible (MODIFY_EXPR, inner_elt_type, fromtype);
4286 /* Subroutine of build_vec_init: Check that the array has at least N
4287 elements. Other parameters are local variables in build_vec_init. */
4289 void
4290 finish_length_check (tree atype, tree iterator, tree obase, unsigned n)
4292 tree nelts = build_int_cst (ptrdiff_type_node, n - 1);
4293 if (TREE_CODE (atype) != ARRAY_TYPE)
4295 if (flag_exceptions)
4297 tree c = fold_build2 (LT_EXPR, boolean_type_node, iterator,
4298 nelts);
4299 c = build3 (COND_EXPR, void_type_node, c,
4300 throw_bad_array_new_length (), void_node);
4301 finish_expr_stmt (c);
4303 /* Don't check an array new when -fno-exceptions. */
4305 else if (sanitize_flags_p (SANITIZE_BOUNDS)
4306 && current_function_decl != NULL_TREE)
4308 /* Make sure the last element of the initializer is in bounds. */
4309 finish_expr_stmt
4310 (ubsan_instrument_bounds
4311 (input_location, obase, &nelts, /*ignore_off_by_one*/false));
4315 /* walk_tree callback to collect temporaries in an expression. */
4317 tree
4318 find_temps_r (tree *tp, int *walk_subtrees, void *data)
4320 vec<tree*> &temps = *static_cast<auto_vec<tree*> *>(data);
4321 tree t = *tp;
4322 if (TREE_CODE (t) == TARGET_EXPR
4323 && !TARGET_EXPR_ELIDING_P (t))
4324 temps.safe_push (tp);
4325 else if (TYPE_P (t))
4326 *walk_subtrees = 0;
4328 return NULL_TREE;
4331 /* If INIT initializes a standard library class, and involves a temporary
4332 std::allocator<T>, return a pointer to the temp.
4334 Used by build_vec_init when initializing an array of e.g. strings to reuse
4335 the same temporary allocator for all of the strings. We can do this because
4336 std::allocator has no data and the standard library doesn't care about the
4337 address of allocator objects.
4339 ??? Add an attribute to allow users to assert the same property for other
4340 classes, i.e. one object of the type is interchangeable with any other? */
4342 static tree*
4343 find_allocator_temp (tree init)
4345 if (TREE_CODE (init) == EXPR_STMT)
4346 init = EXPR_STMT_EXPR (init);
4347 if (TREE_CODE (init) == CONVERT_EXPR)
4348 init = TREE_OPERAND (init, 0);
4349 tree type = TREE_TYPE (init);
4350 if (!CLASS_TYPE_P (type) || !decl_in_std_namespace_p (TYPE_NAME (type)))
4351 return NULL;
4352 auto_vec<tree*> temps;
4353 cp_walk_tree_without_duplicates (&init, find_temps_r, &temps);
4354 for (tree *p : temps)
4355 if (is_std_allocator (TREE_TYPE (*p)))
4356 return p;
4357 return NULL;
4360 /* `build_vec_init' returns tree structure that performs
4361 initialization of a vector of aggregate types.
4363 BASE is a reference to the vector, of ARRAY_TYPE, or a pointer
4364 to the first element, of POINTER_TYPE.
4365 MAXINDEX is the maximum index of the array (one less than the
4366 number of elements). It is only used if BASE is a pointer or
4367 TYPE_DOMAIN (TREE_TYPE (BASE)) == NULL_TREE.
4369 INIT is the (possibly NULL) initializer.
4371 If EXPLICIT_VALUE_INIT_P is true, then INIT must be NULL. All
4372 elements in the array are value-initialized.
4374 FROM_ARRAY is 0 if we should init everything with INIT
4375 (i.e., every element initialized from INIT).
4376 FROM_ARRAY is 1 if we should index into INIT in parallel
4377 with initialization of DECL.
4378 FROM_ARRAY is 2 if we should index into INIT in parallel,
4379 but use assignment instead of initialization. */
4381 tree
4382 build_vec_init (tree base, tree maxindex, tree init,
4383 bool explicit_value_init_p,
4384 int from_array,
4385 tsubst_flags_t complain,
4386 vec<tree, va_gc>** cleanup_flags /* = nullptr */)
4388 tree rval;
4389 tree base2 = NULL_TREE;
4390 tree itype = NULL_TREE;
4391 tree iterator;
4392 /* The type of BASE. */
4393 tree atype = TREE_TYPE (base);
4394 /* The type of an element in the array. */
4395 tree type = TREE_TYPE (atype);
4396 /* The element type reached after removing all outer array
4397 types. */
4398 tree inner_elt_type;
4399 /* The type of a pointer to an element in the array. */
4400 tree ptype;
4401 tree stmt_expr;
4402 tree compound_stmt;
4403 int destroy_temps;
4404 HOST_WIDE_INT num_initialized_elts = 0;
4405 bool is_global;
4406 tree obase = base;
4407 bool xvalue = false;
4408 bool errors = false;
4409 location_t loc = (init ? cp_expr_loc_or_input_loc (init)
4410 : location_of (base));
4412 if (TREE_CODE (atype) == ARRAY_TYPE && TYPE_DOMAIN (atype))
4413 maxindex = array_type_nelts (atype);
4415 if (maxindex == NULL_TREE || maxindex == error_mark_node)
4416 return error_mark_node;
4418 maxindex = maybe_constant_value (maxindex);
4419 if (explicit_value_init_p)
4420 gcc_assert (!init);
4422 inner_elt_type = strip_array_types (type);
4424 /* Look through the TARGET_EXPR around a compound literal. */
4425 if (init && TREE_CODE (init) == TARGET_EXPR
4426 && TREE_CODE (TARGET_EXPR_INITIAL (init)) == CONSTRUCTOR
4427 && from_array != 2)
4428 init = TARGET_EXPR_INITIAL (init);
4430 if (tree vi = get_vec_init_expr (init))
4431 init = VEC_INIT_EXPR_INIT (vi);
4433 bool direct_init = false;
4434 if (from_array && init && BRACE_ENCLOSED_INITIALIZER_P (init)
4435 && CONSTRUCTOR_NELTS (init) == 1)
4437 tree elt = CONSTRUCTOR_ELT (init, 0)->value;
4438 if (TREE_CODE (TREE_TYPE (elt)) == ARRAY_TYPE
4439 && TREE_CODE (elt) != VEC_INIT_EXPR)
4441 direct_init = DIRECT_LIST_INIT_P (init);
4442 init = elt;
4446 /* from_array doesn't apply to initialization from CONSTRUCTOR. */
4447 if (init && TREE_CODE (init) == CONSTRUCTOR)
4448 from_array = 0;
4450 /* If we have a braced-init-list or string constant, make sure that the array
4451 is big enough for all the initializers. */
4452 bool length_check = (init
4453 && (TREE_CODE (init) == STRING_CST
4454 || (TREE_CODE (init) == CONSTRUCTOR
4455 && CONSTRUCTOR_NELTS (init) > 0))
4456 && !TREE_CONSTANT (maxindex));
4458 if (init
4459 && TREE_CODE (atype) == ARRAY_TYPE
4460 && TREE_CONSTANT (maxindex)
4461 && !vla_type_p (type)
4462 && (from_array == 2
4463 ? vec_copy_assign_is_trivial (inner_elt_type, init)
4464 : !TYPE_NEEDS_CONSTRUCTING (type))
4465 && ((TREE_CODE (init) == CONSTRUCTOR
4466 && (BRACE_ENCLOSED_INITIALIZER_P (init)
4467 || (same_type_ignoring_top_level_qualifiers_p
4468 (atype, TREE_TYPE (init))))
4469 /* Don't do this if the CONSTRUCTOR might contain something
4470 that might throw and require us to clean up. */
4471 && (vec_safe_is_empty (CONSTRUCTOR_ELTS (init))
4472 || ! TYPE_HAS_NONTRIVIAL_DESTRUCTOR (inner_elt_type)))
4473 || from_array))
4475 /* Do non-default initialization of trivial arrays resulting from
4476 brace-enclosed initializers. In this case, digest_init and
4477 store_constructor will handle the semantics for us. */
4479 if (BRACE_ENCLOSED_INITIALIZER_P (init))
4480 init = digest_init (atype, init, complain);
4481 stmt_expr = cp_build_init_expr (base, init);
4482 return stmt_expr;
4485 maxindex = cp_convert (ptrdiff_type_node, maxindex, complain);
4486 maxindex = fold_simple (maxindex);
4488 if (TREE_CODE (atype) == ARRAY_TYPE)
4490 ptype = build_pointer_type (type);
4491 base = decay_conversion (base, complain);
4492 if (base == error_mark_node)
4493 return error_mark_node;
4494 base = cp_convert (ptype, base, complain);
4496 else
4497 ptype = atype;
4499 if (integer_all_onesp (maxindex))
4501 /* Shortcut zero element case to avoid unneeded constructor synthesis. */
4502 if (init && TREE_SIDE_EFFECTS (init))
4503 base = build2 (COMPOUND_EXPR, ptype, init, base);
4504 return base;
4507 /* The code we are generating looks like:
4509 T* t1 = (T*) base;
4510 T* rval = t1;
4511 ptrdiff_t iterator = maxindex;
4512 try {
4513 for (; iterator != -1; --iterator) {
4514 ... initialize *t1 ...
4515 ++t1;
4517 } catch (...) {
4518 ... destroy elements that were constructed ...
4520 rval;
4523 We can omit the try and catch blocks if we know that the
4524 initialization will never throw an exception, or if the array
4525 elements do not have destructors. We can omit the loop completely if
4526 the elements of the array do not have constructors.
4528 We actually wrap the entire body of the above in a STMT_EXPR, for
4529 tidiness.
4531 When copying from array to another, when the array elements have
4532 only trivial copy constructors, we should use __builtin_memcpy
4533 rather than generating a loop. That way, we could take advantage
4534 of whatever cleverness the back end has for dealing with copies
4535 of blocks of memory. */
4537 is_global = begin_init_stmts (&stmt_expr, &compound_stmt);
4538 destroy_temps = stmts_are_full_exprs_p ();
4539 current_stmt_tree ()->stmts_are_full_exprs_p = 0;
4540 rval = get_temp_regvar (ptype, base);
4541 base = get_temp_regvar (ptype, rval);
4542 tree iterator_targ = get_target_expr (maxindex);
4543 add_stmt (iterator_targ);
4544 iterator = TARGET_EXPR_SLOT (iterator_targ);
4546 /* If initializing one array from another, initialize element by
4547 element. We rely upon the below calls to do the argument
4548 checking. Evaluate the initializer before entering the try block. */
4549 if (from_array)
4551 if (lvalue_kind (init) & clk_rvalueref)
4552 xvalue = true;
4553 base2 = decay_conversion (init, complain);
4554 if (base2 == error_mark_node)
4555 return error_mark_node;
4556 itype = TREE_TYPE (base2);
4557 base2 = get_temp_regvar (itype, base2);
4558 itype = TREE_TYPE (itype);
4561 /* Protect the entire array initialization so that we can destroy
4562 the partially constructed array if an exception is thrown.
4563 But don't do this if we're assigning. */
4564 if (flag_exceptions && TYPE_HAS_NONTRIVIAL_DESTRUCTOR (type)
4565 && from_array != 2)
4567 tree e;
4568 tree m = cp_build_binary_op (input_location,
4569 MINUS_EXPR, maxindex, iterator,
4570 complain);
4572 /* Flatten multi-dimensional array since build_vec_delete only
4573 expects one-dimensional array. */
4574 if (TREE_CODE (type) == ARRAY_TYPE)
4575 m = cp_build_binary_op (input_location,
4576 MULT_EXPR, m,
4577 /* Avoid mixing signed and unsigned. */
4578 convert (TREE_TYPE (m),
4579 array_type_nelts_total (type)),
4580 complain);
4582 e = build_vec_delete_1 (input_location, rval, m,
4583 inner_elt_type, sfk_complete_destructor,
4584 /*use_global_delete=*/0, complain,
4585 /*in_cleanup*/true);
4586 if (e == error_mark_node)
4587 errors = true;
4588 TARGET_EXPR_CLEANUP (iterator_targ) = e;
4589 CLEANUP_EH_ONLY (iterator_targ) = true;
4591 /* Since we push this cleanup before doing any initialization, cleanups
4592 for any temporaries in the initialization are naturally within our
4593 cleanup region, so we don't want wrap_temporary_cleanups to do
4594 anything for arrays. But if the array is a subobject, we need to
4595 tell split_nonconstant_init how to turn off this cleanup in favor of
4596 the cleanup for the complete object. */
4597 if (cleanup_flags)
4598 vec_safe_push (*cleanup_flags, build_tree_list (iterator, maxindex));
4601 /* Should we try to create a constant initializer? */
4602 bool try_const = (TREE_CODE (atype) == ARRAY_TYPE
4603 && TREE_CONSTANT (maxindex)
4604 && (init ? TREE_CODE (init) == CONSTRUCTOR
4605 : (type_has_constexpr_default_constructor
4606 (inner_elt_type)))
4607 && (literal_type_p (inner_elt_type)
4608 || TYPE_HAS_CONSTEXPR_CTOR (inner_elt_type)));
4609 vec<constructor_elt, va_gc> *const_vec = NULL;
4610 bool saw_non_const = false;
4611 /* If we're initializing a static array, we want to do static
4612 initialization of any elements with constant initializers even if
4613 some are non-constant. */
4614 bool do_static_init = (DECL_P (obase) && TREE_STATIC (obase));
4616 bool empty_list = false;
4617 if (init && BRACE_ENCLOSED_INITIALIZER_P (init)
4618 && CONSTRUCTOR_NELTS (init) == 0)
4619 /* Skip over the handling of non-empty init lists. */
4620 empty_list = true;
4622 /* Maybe pull out constant value when from_array? */
4624 else if (init != NULL_TREE && TREE_CODE (init) == CONSTRUCTOR)
4626 /* Do non-default initialization of non-trivial arrays resulting from
4627 brace-enclosed initializers. */
4628 unsigned HOST_WIDE_INT idx;
4629 tree field, elt;
4630 /* If the constructor already has the array type, it's been through
4631 digest_init, so we shouldn't try to do anything more. */
4632 bool digested = same_type_p (atype, TREE_TYPE (init));
4633 from_array = 0;
4635 if (length_check)
4636 finish_length_check (atype, iterator, obase, CONSTRUCTOR_NELTS (init));
4638 if (try_const)
4639 vec_alloc (const_vec, CONSTRUCTOR_NELTS (init));
4641 tree alloc_obj = NULL_TREE;
4643 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (init), idx, field, elt)
4645 tree baseref = build1 (INDIRECT_REF, type, base);
4646 tree one_init;
4648 num_initialized_elts++;
4650 /* We need to see sub-array TARGET_EXPR before cp_fold_r so we can
4651 handle cleanup flags properly. */
4652 gcc_checking_assert (!target_expr_needs_replace (elt));
4654 if (digested)
4655 one_init = cp_build_init_expr (baseref, elt);
4656 else if (tree vi = get_vec_init_expr (elt))
4657 one_init = expand_vec_init_expr (baseref, vi, complain,
4658 cleanup_flags);
4659 else if (MAYBE_CLASS_TYPE_P (type) || TREE_CODE (type) == ARRAY_TYPE)
4660 one_init = build_aggr_init (baseref, elt, 0, complain);
4661 else
4662 one_init = cp_build_modify_expr (input_location, baseref,
4663 NOP_EXPR, elt, complain);
4664 if (one_init == error_mark_node)
4665 errors = true;
4666 if (try_const)
4668 if (!field)
4669 field = size_int (idx);
4670 tree e = maybe_constant_init (one_init);
4671 if (reduced_constant_expression_p (e))
4673 CONSTRUCTOR_APPEND_ELT (const_vec, field, e);
4674 if (do_static_init)
4675 one_init = NULL_TREE;
4676 else
4677 one_init = cp_build_init_expr (baseref, e);
4679 else
4681 if (do_static_init)
4683 tree value = build_zero_init (TREE_TYPE (e), NULL_TREE,
4684 true);
4685 if (value)
4686 CONSTRUCTOR_APPEND_ELT (const_vec, field, value);
4688 saw_non_const = true;
4692 if (one_init)
4694 /* Only create one std::allocator temporary. */
4695 if (tree *this_alloc = find_allocator_temp (one_init))
4697 if (alloc_obj)
4698 *this_alloc = alloc_obj;
4699 else
4700 alloc_obj = TARGET_EXPR_SLOT (*this_alloc);
4702 finish_expr_stmt (one_init);
4705 one_init = cp_build_unary_op (PREINCREMENT_EXPR, base, false,
4706 complain);
4707 if (one_init == error_mark_node)
4708 errors = true;
4709 else
4710 finish_expr_stmt (one_init);
4712 one_init = cp_build_unary_op (PREDECREMENT_EXPR, iterator, false,
4713 complain);
4714 if (one_init == error_mark_node)
4715 errors = true;
4716 else
4717 finish_expr_stmt (one_init);
4720 /* Any elements without explicit initializers get T{}. */
4721 empty_list = true;
4723 else if (init && TREE_CODE (init) == STRING_CST)
4725 /* Check that the array is at least as long as the string. */
4726 if (length_check)
4727 finish_length_check (atype, iterator, obase,
4728 TREE_STRING_LENGTH (init));
4729 tree length = build_int_cst (ptrdiff_type_node,
4730 TREE_STRING_LENGTH (init));
4732 /* Copy the string to the first part of the array. */
4733 tree alias_set = build_int_cst (build_pointer_type (type), 0);
4734 tree lhs = build2 (MEM_REF, TREE_TYPE (init), base, alias_set);
4735 tree stmt = build2 (MODIFY_EXPR, void_type_node, lhs, init);
4736 finish_expr_stmt (stmt);
4738 /* Adjust the counter and pointer. */
4739 stmt = cp_build_binary_op (loc, MINUS_EXPR, iterator, length, complain);
4740 stmt = build2 (MODIFY_EXPR, void_type_node, iterator, stmt);
4741 finish_expr_stmt (stmt);
4743 stmt = cp_build_binary_op (loc, PLUS_EXPR, base, length, complain);
4744 stmt = build2 (MODIFY_EXPR, void_type_node, base, stmt);
4745 finish_expr_stmt (stmt);
4747 /* And set the rest of the array to NUL. */
4748 from_array = 0;
4749 explicit_value_init_p = true;
4751 else if (from_array)
4753 if (init)
4754 /* OK, we set base2 above. */;
4755 else if (CLASS_TYPE_P (type)
4756 && ! TYPE_HAS_DEFAULT_CONSTRUCTOR (type))
4758 if (complain & tf_error)
4759 error ("initializer ends prematurely");
4760 errors = true;
4764 /* Now, default-initialize any remaining elements. We don't need to
4765 do that if a) the type does not need constructing, or b) we've
4766 already initialized all the elements.
4768 We do need to keep going if we're copying an array. */
4770 if (try_const && !init
4771 && (cxx_dialect < cxx20
4772 || !default_init_uninitialized_part (inner_elt_type)))
4773 /* With a constexpr default constructor, which we checked for when
4774 setting try_const above, default-initialization is equivalent to
4775 value-initialization, and build_value_init gives us something more
4776 friendly to maybe_constant_init. Except in C++20 and up a constexpr
4777 constructor need not initialize all the members. */
4778 explicit_value_init_p = true;
4779 if (from_array
4780 || ((type_build_ctor_call (type) || init || explicit_value_init_p)
4781 && ! (tree_fits_shwi_p (maxindex)
4782 && (num_initialized_elts
4783 == tree_to_shwi (maxindex) + 1))))
4785 /* If the ITERATOR is lesser or equal to -1, then we don't have to loop;
4786 we've already initialized all the elements. */
4787 tree for_stmt;
4788 tree elt_init;
4789 tree to;
4791 for_stmt = begin_for_stmt (NULL_TREE, NULL_TREE);
4792 finish_init_stmt (for_stmt);
4793 finish_for_cond (build2 (GT_EXPR, boolean_type_node, iterator,
4794 build_int_cst (TREE_TYPE (iterator), -1)),
4795 for_stmt, false, 0);
4796 /* We used to pass this decrement to finish_for_expr; now we add it to
4797 elt_init below so it's part of the same full-expression as the
4798 initialization, and thus happens before any potentially throwing
4799 temporary cleanups. */
4800 tree decr = cp_build_unary_op (PREDECREMENT_EXPR, iterator, false,
4801 complain);
4804 to = build1 (INDIRECT_REF, type, base);
4806 /* If the initializer is {}, then all elements are initialized from T{}.
4807 But for non-classes, that's the same as value-initialization. */
4808 if (empty_list)
4810 if (cxx_dialect >= cxx11 && AGGREGATE_TYPE_P (type))
4812 init = build_constructor (init_list_type_node, NULL);
4814 else
4816 init = NULL_TREE;
4817 explicit_value_init_p = true;
4821 if (from_array)
4823 tree from;
4825 if (base2)
4827 from = build1 (INDIRECT_REF, itype, base2);
4828 if (xvalue)
4829 from = move (from);
4830 if (direct_init)
4831 from = build_tree_list (NULL_TREE, from);
4833 else
4834 from = NULL_TREE;
4836 if (TREE_CODE (type) == ARRAY_TYPE)
4837 elt_init = build_vec_init (to, NULL_TREE, from, /*val_init*/false,
4838 from_array, complain);
4839 else if (from_array == 2)
4840 elt_init = cp_build_modify_expr (input_location, to, NOP_EXPR,
4841 from, complain);
4842 else if (type_build_ctor_call (type))
4843 elt_init = build_aggr_init (to, from, 0, complain);
4844 else if (from)
4845 elt_init = cp_build_modify_expr (input_location, to, NOP_EXPR, from,
4846 complain);
4847 else
4848 gcc_unreachable ();
4850 else if (TREE_CODE (type) == ARRAY_TYPE)
4852 if (init && !BRACE_ENCLOSED_INITIALIZER_P (init))
4854 if ((complain & tf_error))
4855 error_at (loc, "array must be initialized "
4856 "with a brace-enclosed initializer");
4857 elt_init = error_mark_node;
4859 else
4860 elt_init = build_vec_init (build1 (INDIRECT_REF, type, base),
4861 0, init,
4862 explicit_value_init_p,
4863 0, complain);
4865 else if (explicit_value_init_p)
4867 elt_init = build_value_init (type, complain);
4868 if (elt_init != error_mark_node)
4869 elt_init = cp_build_init_expr (to, elt_init);
4871 else
4873 gcc_assert (type_build_ctor_call (type) || init);
4874 if (CLASS_TYPE_P (type))
4875 elt_init = build_aggr_init (to, init, 0, complain);
4876 else
4878 if (TREE_CODE (init) == TREE_LIST)
4879 init = build_x_compound_expr_from_list (init, ELK_INIT,
4880 complain);
4881 elt_init = (init == error_mark_node
4882 ? error_mark_node
4883 : build2 (INIT_EXPR, type, to, init));
4887 if (elt_init == error_mark_node)
4888 errors = true;
4890 if (try_const)
4892 /* FIXME refs to earlier elts */
4893 tree e = maybe_constant_init (elt_init);
4894 if (reduced_constant_expression_p (e))
4896 if (initializer_zerop (e))
4897 /* Don't fill the CONSTRUCTOR with zeros. */
4898 e = NULL_TREE;
4899 if (do_static_init)
4900 elt_init = NULL_TREE;
4902 else
4904 saw_non_const = true;
4905 if (do_static_init)
4906 e = build_zero_init (TREE_TYPE (e), NULL_TREE, true);
4907 else
4908 e = NULL_TREE;
4911 if (e)
4913 HOST_WIDE_INT last = tree_to_shwi (maxindex);
4914 if (num_initialized_elts <= last)
4916 tree field = size_int (num_initialized_elts);
4917 if (num_initialized_elts != last)
4918 field = build2 (RANGE_EXPR, sizetype, field,
4919 size_int (last));
4920 CONSTRUCTOR_APPEND_ELT (const_vec, field, e);
4925 /* [class.temporary]: "There are three contexts in which temporaries are
4926 destroyed at a different point than the end of the full-
4927 expression. The first context is when a default constructor is called
4928 to initialize an element of an array with no corresponding
4929 initializer. The second context is when a copy constructor is called
4930 to copy an element of an array while the entire array is copied. In
4931 either case, if the constructor has one or more default arguments, the
4932 destruction of every temporary created in a default argument is
4933 sequenced before the construction of the next array element, if any."
4935 So, for this loop, statements are full-expressions. */
4936 current_stmt_tree ()->stmts_are_full_exprs_p = 1;
4937 if (elt_init && !errors)
4938 elt_init = build2 (COMPOUND_EXPR, void_type_node, elt_init, decr);
4939 else
4940 elt_init = decr;
4941 finish_expr_stmt (elt_init);
4942 current_stmt_tree ()->stmts_are_full_exprs_p = 0;
4944 finish_expr_stmt (cp_build_unary_op (PREINCREMENT_EXPR, base, false,
4945 complain));
4946 if (base2)
4947 finish_expr_stmt (cp_build_unary_op (PREINCREMENT_EXPR, base2, false,
4948 complain));
4950 finish_for_stmt (for_stmt);
4953 /* The value of the array initialization is the array itself, RVAL
4954 is a pointer to the first element. */
4955 finish_stmt_expr_expr (rval, stmt_expr);
4957 stmt_expr = finish_init_stmts (is_global, stmt_expr, compound_stmt);
4959 current_stmt_tree ()->stmts_are_full_exprs_p = destroy_temps;
4961 if (errors)
4962 return error_mark_node;
4964 if (try_const)
4966 if (!saw_non_const)
4968 tree const_init = build_constructor (atype, const_vec);
4969 return build2 (INIT_EXPR, atype, obase, const_init);
4971 else if (do_static_init && !vec_safe_is_empty (const_vec))
4972 DECL_INITIAL (obase) = build_constructor (atype, const_vec);
4973 else
4974 vec_free (const_vec);
4977 /* Now make the result have the correct type. */
4978 if (TREE_CODE (atype) == ARRAY_TYPE)
4980 atype = build_reference_type (atype);
4981 stmt_expr = build1 (NOP_EXPR, atype, stmt_expr);
4982 stmt_expr = convert_from_reference (stmt_expr);
4985 return stmt_expr;
4988 /* Call the DTOR_KIND destructor for EXP. FLAGS are as for
4989 build_delete. */
4991 static tree
4992 build_dtor_call (tree exp, special_function_kind dtor_kind, int flags,
4993 tsubst_flags_t complain)
4995 tree name;
4996 switch (dtor_kind)
4998 case sfk_complete_destructor:
4999 name = complete_dtor_identifier;
5000 break;
5002 case sfk_base_destructor:
5003 name = base_dtor_identifier;
5004 break;
5006 case sfk_deleting_destructor:
5007 name = deleting_dtor_identifier;
5008 break;
5010 default:
5011 gcc_unreachable ();
5014 return build_special_member_call (exp, name,
5015 /*args=*/NULL,
5016 /*binfo=*/TREE_TYPE (exp),
5017 flags,
5018 complain);
5021 /* Generate a call to a destructor. TYPE is the type to cast ADDR to.
5022 ADDR is an expression which yields the store to be destroyed.
5023 AUTO_DELETE is the name of the destructor to call, i.e., either
5024 sfk_complete_destructor, sfk_base_destructor, or
5025 sfk_deleting_destructor.
5027 FLAGS is the logical disjunction of zero or more LOOKUP_
5028 flags. See cp-tree.h for more info. */
5030 tree
5031 build_delete (location_t loc, tree otype, tree addr,
5032 special_function_kind auto_delete,
5033 int flags, int use_global_delete, tsubst_flags_t complain)
5035 tree expr;
5037 if (addr == error_mark_node)
5038 return error_mark_node;
5040 tree type = TYPE_MAIN_VARIANT (otype);
5042 /* Can happen when CURRENT_EXCEPTION_OBJECT gets its type
5043 set to `error_mark_node' before it gets properly cleaned up. */
5044 if (type == error_mark_node)
5045 return error_mark_node;
5047 if (TYPE_PTR_P (type))
5048 type = TYPE_MAIN_VARIANT (TREE_TYPE (type));
5050 if (TREE_CODE (type) == ARRAY_TYPE)
5052 if (TYPE_DOMAIN (type) == NULL_TREE)
5054 if (complain & tf_error)
5055 error_at (loc, "unknown array size in delete");
5056 return error_mark_node;
5058 return build_vec_delete (loc, addr, array_type_nelts (type),
5059 auto_delete, use_global_delete, complain);
5062 bool deleting = (auto_delete == sfk_deleting_destructor);
5063 gcc_assert (deleting == !(flags & LOOKUP_DESTRUCTOR));
5065 if (TYPE_PTR_P (otype))
5067 addr = mark_rvalue_use (addr);
5069 /* We don't want to warn about delete of void*, only other
5070 incomplete types. Deleting other incomplete types
5071 invokes undefined behavior, but it is not ill-formed, so
5072 compile to something that would even do The Right Thing
5073 (TM) should the type have a trivial dtor and no delete
5074 operator. */
5075 if (!VOID_TYPE_P (type))
5077 complete_type (type);
5078 if (deleting
5079 && !verify_type_context (loc, TCTX_DEALLOCATION, type,
5080 !(complain & tf_error)))
5081 return error_mark_node;
5083 if (!COMPLETE_TYPE_P (type))
5085 if (complain & tf_warning)
5087 auto_diagnostic_group d;
5088 if (warning_at (loc, OPT_Wdelete_incomplete,
5089 "possible problem detected in invocation of "
5090 "%<operator delete%>"))
5092 cxx_incomplete_type_diagnostic (addr, type, DK_WARNING);
5093 inform (loc,
5094 "neither the destructor nor the class-specific "
5095 "%<operator delete%> will be called, even if "
5096 "they are declared when the class is defined");
5100 else if (deleting && warn_delnonvdtor
5101 && MAYBE_CLASS_TYPE_P (type) && !CLASSTYPE_FINAL (type)
5102 && TYPE_POLYMORPHIC_P (type))
5104 tree dtor = CLASSTYPE_DESTRUCTOR (type);
5105 if (!dtor || !DECL_VINDEX (dtor))
5107 if (CLASSTYPE_PURE_VIRTUALS (type))
5108 warning_at (loc, OPT_Wdelete_non_virtual_dtor,
5109 "deleting object of abstract class type %qT"
5110 " which has non-virtual destructor"
5111 " will cause undefined behavior", type);
5112 else
5113 warning_at (loc, OPT_Wdelete_non_virtual_dtor,
5114 "deleting object of polymorphic class type %qT"
5115 " which has non-virtual destructor"
5116 " might cause undefined behavior", type);
5121 /* Throw away const and volatile on target type of addr. */
5122 addr = convert_force (build_pointer_type (type), addr, 0, complain);
5124 else
5126 /* Don't check PROTECT here; leave that decision to the
5127 destructor. If the destructor is accessible, call it,
5128 else report error. */
5129 addr = cp_build_addr_expr (addr, complain);
5130 if (addr == error_mark_node)
5131 return error_mark_node;
5133 addr = convert_force (build_pointer_type (type), addr, 0, complain);
5136 if (deleting)
5137 /* We will use ADDR multiple times so we must save it. */
5138 addr = save_expr (addr);
5140 bool virtual_p = false;
5141 if (type_build_dtor_call (type))
5143 if (CLASSTYPE_LAZY_DESTRUCTOR (type))
5144 lazily_declare_fn (sfk_destructor, type);
5145 virtual_p = DECL_VIRTUAL_P (CLASSTYPE_DESTRUCTOR (type));
5148 tree head = NULL_TREE;
5149 tree do_delete = NULL_TREE;
5150 bool destroying_delete = false;
5152 if (!deleting)
5154 /* Leave do_delete null. */
5156 /* For `::delete x', we must not use the deleting destructor
5157 since then we would not be sure to get the global `operator
5158 delete'. */
5159 else if (use_global_delete)
5161 head = get_target_expr (build_headof (addr));
5162 /* Delete the object. */
5163 do_delete = build_op_delete_call (DELETE_EXPR,
5164 head,
5165 cxx_sizeof_nowarn (type),
5166 /*global_p=*/true,
5167 /*placement=*/NULL_TREE,
5168 /*alloc_fn=*/NULL_TREE,
5169 complain);
5170 /* Otherwise, treat this like a complete object destructor
5171 call. */
5172 auto_delete = sfk_complete_destructor;
5174 /* If the destructor is non-virtual, there is no deleting
5175 variant. Instead, we must explicitly call the appropriate
5176 `operator delete' here. */
5177 else if (!virtual_p)
5179 /* Build the call. */
5180 do_delete = build_op_delete_call (DELETE_EXPR,
5181 addr,
5182 cxx_sizeof_nowarn (type),
5183 /*global_p=*/false,
5184 /*placement=*/NULL_TREE,
5185 /*alloc_fn=*/NULL_TREE,
5186 complain);
5187 /* Call the complete object destructor. */
5188 auto_delete = sfk_complete_destructor;
5189 if (do_delete != error_mark_node)
5191 tree fn = get_callee_fndecl (do_delete);
5192 destroying_delete = destroying_delete_p (fn);
5195 else if (TYPE_GETS_REG_DELETE (type))
5197 /* Make sure we have access to the member op delete, even though
5198 we'll actually be calling it from the destructor. */
5199 build_op_delete_call (DELETE_EXPR, addr, cxx_sizeof_nowarn (type),
5200 /*global_p=*/false,
5201 /*placement=*/NULL_TREE,
5202 /*alloc_fn=*/NULL_TREE,
5203 complain);
5206 if (destroying_delete)
5207 /* The operator delete will call the destructor. */
5208 expr = addr;
5209 else if (type_build_dtor_call (type))
5210 expr = build_dtor_call (cp_build_fold_indirect_ref (addr),
5211 auto_delete, flags, complain);
5212 else
5213 expr = build_trivial_dtor_call (addr);
5214 if (expr == error_mark_node)
5215 return error_mark_node;
5217 if (!deleting)
5219 protected_set_expr_location (expr, loc);
5220 return expr;
5223 if (do_delete == error_mark_node)
5224 return error_mark_node;
5226 if (do_delete && !TREE_SIDE_EFFECTS (expr))
5227 expr = do_delete;
5228 else if (do_delete)
5229 /* The delete operator must be called, regardless of whether
5230 the destructor throws.
5232 [expr.delete]/7 The deallocation function is called
5233 regardless of whether the destructor for the object or some
5234 element of the array throws an exception. */
5235 expr = build2 (TRY_FINALLY_EXPR, void_type_node, expr, do_delete);
5237 /* We need to calculate this before the dtor changes the vptr. */
5238 if (head)
5239 expr = build2 (COMPOUND_EXPR, void_type_node, head, expr);
5241 /* Handle deleting a null pointer. */
5242 warning_sentinel s (warn_address);
5243 tree ifexp = cp_build_binary_op (loc, NE_EXPR, addr,
5244 nullptr_node, complain);
5245 ifexp = cp_fully_fold (ifexp);
5247 if (ifexp == error_mark_node)
5248 return error_mark_node;
5249 /* This is a compiler generated comparison, don't emit
5250 e.g. -Wnonnull-compare warning for it. */
5251 else if (TREE_CODE (ifexp) == NE_EXPR)
5252 suppress_warning (ifexp, OPT_Wnonnull_compare);
5254 if (!integer_nonzerop (ifexp))
5255 expr = build3 (COND_EXPR, void_type_node, ifexp, expr, void_node);
5257 protected_set_expr_location (expr, loc);
5258 return expr;
5261 /* At the beginning of a destructor, push cleanups that will call the
5262 destructors for our base classes and members.
5264 Called from begin_destructor_body. */
5266 void
5267 push_base_cleanups (void)
5269 tree binfo, base_binfo;
5270 int i;
5271 tree member;
5272 tree expr;
5273 vec<tree, va_gc> *vbases;
5275 /* Run destructors for all virtual baseclasses. */
5276 if (!ABSTRACT_CLASS_TYPE_P (current_class_type)
5277 && CLASSTYPE_VBASECLASSES (current_class_type))
5279 tree cond = (condition_conversion
5280 (build2 (BIT_AND_EXPR, integer_type_node,
5281 current_in_charge_parm,
5282 integer_two_node)));
5284 /* The CLASSTYPE_VBASECLASSES vector is in initialization
5285 order, which is also the right order for pushing cleanups. */
5286 for (vbases = CLASSTYPE_VBASECLASSES (current_class_type), i = 0;
5287 vec_safe_iterate (vbases, i, &base_binfo); i++)
5289 if (type_build_dtor_call (BINFO_TYPE (base_binfo)))
5291 expr = build_special_member_call (current_class_ref,
5292 base_dtor_identifier,
5293 NULL,
5294 base_binfo,
5295 (LOOKUP_NORMAL
5296 | LOOKUP_NONVIRTUAL),
5297 tf_warning_or_error);
5298 if (TYPE_HAS_NONTRIVIAL_DESTRUCTOR (BINFO_TYPE (base_binfo)))
5300 expr = build3 (COND_EXPR, void_type_node, cond,
5301 expr, void_node);
5302 finish_decl_cleanup (NULL_TREE, expr);
5308 /* Take care of the remaining baseclasses. */
5309 for (binfo = TYPE_BINFO (current_class_type), i = 0;
5310 BINFO_BASE_ITERATE (binfo, i, base_binfo); i++)
5312 if (BINFO_VIRTUAL_P (base_binfo)
5313 || !type_build_dtor_call (BINFO_TYPE (base_binfo)))
5314 continue;
5316 expr = build_special_member_call (current_class_ref,
5317 base_dtor_identifier,
5318 NULL, base_binfo,
5319 LOOKUP_NORMAL | LOOKUP_NONVIRTUAL,
5320 tf_warning_or_error);
5321 if (TYPE_HAS_NONTRIVIAL_DESTRUCTOR (BINFO_TYPE (base_binfo)))
5322 finish_decl_cleanup (NULL_TREE, expr);
5325 /* Don't automatically destroy union members. */
5326 if (TREE_CODE (current_class_type) == UNION_TYPE)
5327 return;
5329 for (member = TYPE_FIELDS (current_class_type); member;
5330 member = DECL_CHAIN (member))
5332 tree this_type = TREE_TYPE (member);
5333 if (this_type == error_mark_node
5334 || TREE_CODE (member) != FIELD_DECL
5335 || DECL_ARTIFICIAL (member))
5336 continue;
5337 if (ANON_AGGR_TYPE_P (this_type))
5338 continue;
5339 if (type_build_dtor_call (this_type))
5341 tree this_member = (build_class_member_access_expr
5342 (current_class_ref, member,
5343 /*access_path=*/NULL_TREE,
5344 /*preserve_reference=*/false,
5345 tf_warning_or_error));
5346 expr = build_delete (input_location, this_type, this_member,
5347 sfk_complete_destructor,
5348 LOOKUP_NONVIRTUAL|LOOKUP_DESTRUCTOR|LOOKUP_NORMAL,
5349 0, tf_warning_or_error);
5350 if (TYPE_HAS_NONTRIVIAL_DESTRUCTOR (this_type))
5351 finish_decl_cleanup (NULL_TREE, expr);
5356 /* Build a C++ vector delete expression.
5357 MAXINDEX is the number of elements to be deleted.
5358 ELT_SIZE is the nominal size of each element in the vector.
5359 BASE is the expression that should yield the store to be deleted.
5360 This function expands (or synthesizes) these calls itself.
5361 AUTO_DELETE_VEC says whether the container (vector) should be deallocated.
5363 This also calls delete for virtual baseclasses of elements of the vector.
5365 Update: MAXINDEX is no longer needed. The size can be extracted from the
5366 start of the vector for pointers, and from the type for arrays. We still
5367 use MAXINDEX for arrays because it happens to already have one of the
5368 values we'd have to extract. (We could use MAXINDEX with pointers to
5369 confirm the size, and trap if the numbers differ; not clear that it'd
5370 be worth bothering.) */
5372 tree
5373 build_vec_delete (location_t loc, tree base, tree maxindex,
5374 special_function_kind auto_delete_vec,
5375 int use_global_delete, tsubst_flags_t complain)
5377 tree type;
5378 tree rval;
5379 tree base_init = NULL_TREE;
5381 type = TREE_TYPE (base);
5383 if (TYPE_PTR_P (type))
5385 /* Step back one from start of vector, and read dimension. */
5386 tree cookie_addr;
5387 tree size_ptr_type = build_pointer_type (sizetype);
5389 base = mark_rvalue_use (base);
5390 if (TREE_SIDE_EFFECTS (base))
5392 base_init = get_target_expr (base);
5393 base = TARGET_EXPR_SLOT (base_init);
5395 type = strip_array_types (TREE_TYPE (type));
5396 cookie_addr = fold_build1_loc (loc, NEGATE_EXPR,
5397 sizetype, TYPE_SIZE_UNIT (sizetype));
5398 cookie_addr = fold_build_pointer_plus (fold_convert (size_ptr_type, base),
5399 cookie_addr);
5400 maxindex = cp_build_fold_indirect_ref (cookie_addr);
5402 else if (TREE_CODE (type) == ARRAY_TYPE)
5404 /* Get the total number of things in the array, maxindex is a
5405 bad name. */
5406 maxindex = array_type_nelts_total (type);
5407 type = strip_array_types (type);
5408 base = decay_conversion (base, complain);
5409 if (base == error_mark_node)
5410 return error_mark_node;
5411 if (TREE_SIDE_EFFECTS (base))
5413 base_init = get_target_expr (base);
5414 base = TARGET_EXPR_SLOT (base_init);
5417 else
5419 if (base != error_mark_node && !(complain & tf_error))
5420 error_at (loc,
5421 "type to vector delete is neither pointer or array type");
5422 return error_mark_node;
5425 rval = build_vec_delete_1 (loc, base, maxindex, type, auto_delete_vec,
5426 use_global_delete, complain);
5427 if (base_init && rval != error_mark_node)
5428 rval = build2 (COMPOUND_EXPR, TREE_TYPE (rval), base_init, rval);
5430 protected_set_expr_location (rval, loc);
5431 return rval;
5434 #include "gt-cp-init.h"