1 /* Breadth-first and depth-first routines for
2 searching multiple-inheritance lattice for GNU C++.
3 Copyright (C) 1987-2024 Free Software Foundation, Inc.
4 Contributed by Michael Tiemann (tiemann@cygnus.com)
6 This file is part of GCC.
8 GCC is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3, or (at your option)
13 GCC is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
22 /* High-level class interface. */
26 #include "coretypes.h"
30 #include "spellcheck-tree.h"
31 #include "stringpool.h"
33 #include "tree-inline.h"
35 static int is_subobject_of_p (tree
, tree
);
36 static tree
dfs_lookup_base (tree
, void *);
37 static tree
dfs_dcast_hint_pre (tree
, void *);
38 static tree
dfs_dcast_hint_post (tree
, void *);
39 static tree
dfs_debug_mark (tree
, void *);
40 static int check_hidden_convs (tree
, int, int, tree
, tree
, tree
);
41 static tree
split_conversions (tree
, tree
, tree
, tree
);
42 static int lookup_conversions_r (tree
, int, int, tree
, tree
, tree
*);
43 static int look_for_overrides_r (tree
, tree
);
44 static tree
lookup_field_r (tree
, void *);
45 static tree
dfs_accessible_post (tree
, void *);
46 static tree
dfs_walk_once_accessible (tree
, bool,
47 tree (*pre_fn
) (tree
, void *),
48 tree (*post_fn
) (tree
, void *),
50 static tree
dfs_access_in_type (tree
, void *);
51 static access_kind
access_in_type (tree
, tree
);
52 static tree
dfs_get_pure_virtuals (tree
, void *);
55 /* Data for lookup_base and its workers. */
57 struct lookup_base_data_s
59 HOST_WIDE_INT offset
; /* Offset we want, or -1 if any. */
60 tree t
; /* type being searched. */
61 tree base
; /* The base type we're looking for. */
62 tree binfo
; /* Found binfo. */
63 bool via_virtual
; /* Found via a virtual path. */
64 bool ambiguous
; /* Found multiply ambiguous */
65 bool repeated_base
; /* Whether there are repeated bases in the
67 bool want_any
; /* Whether we want any matching binfo. */
70 /* Worker function for lookup_base. See if we've found the desired
71 base and update DATA_ (a pointer to LOOKUP_BASE_DATA_S). */
74 dfs_lookup_base (tree binfo
, void *data_
)
76 struct lookup_base_data_s
*data
= (struct lookup_base_data_s
*) data_
;
78 if (data
->offset
!= -1)
80 /* We're looking for the type at a particular offset. */
81 int comp
= compare_tree_int (BINFO_OFFSET (binfo
), data
->offset
);
83 /* Don't bother looking into bases laid out later; even if they
84 do virtually inherit from the base we want, we can get there
86 return dfs_skip_bases
;
88 && SAME_BINFO_TYPE_P (BINFO_TYPE (binfo
), data
->base
))
89 /* Right type, wrong offset. */
90 return dfs_skip_bases
;
94 if (SAME_BINFO_TYPE_P (BINFO_TYPE (binfo
), data
->base
))
100 = binfo_via_virtual (data
->binfo
, data
->t
) != NULL_TREE
;
102 if (!data
->repeated_base
)
103 /* If there are no repeated bases, we can stop now. */
106 if (data
->want_any
&& !data
->via_virtual
)
107 /* If this is a non-virtual base, then we can't do
111 return dfs_skip_bases
;
115 gcc_assert (binfo
!= data
->binfo
);
117 /* We've found more than one matching binfo. */
120 /* This is immediately ambiguous. */
121 data
->binfo
= NULL_TREE
;
122 data
->ambiguous
= true;
123 return error_mark_node
;
126 /* Prefer one via a non-virtual path. */
127 if (!binfo_via_virtual (binfo
, data
->t
))
130 data
->via_virtual
= false;
134 /* There must be repeated bases, otherwise we'd have stopped
135 on the first base we found. */
136 return dfs_skip_bases
;
143 /* This deals with bug PR17314.
145 DECL is a declaration and BINFO represents a class that has attempted (but
146 failed) to access DECL.
148 Examine the parent binfos of BINFO and determine whether any of them had
149 private access to DECL. If they did, return the parent binfo. This helps
150 in figuring out the correct error message to show (if the parents had
151 access, it's their fault for not giving sufficient access to BINFO).
153 If no parents had access, return NULL_TREE. */
156 get_parent_with_private_access (tree decl
, tree binfo
)
158 /* Only BINFOs should come through here. */
159 gcc_assert (TREE_CODE (binfo
) == TREE_BINFO
);
161 tree base_binfo
= NULL_TREE
;
163 /* Iterate through immediate parent classes. */
164 for (int i
= 0; BINFO_BASE_ITERATE (binfo
, i
, base_binfo
); i
++)
166 /* This parent had private access. Therefore that's why BINFO can't
168 if (access_in_type (BINFO_TYPE (base_binfo
), decl
) == ak_private
)
172 /* None of the parents had access. Note: it's impossible for one of the
173 parents to have had public or protected access to DECL, since then
174 BINFO would have been able to access DECL too. */
178 /* Returns true if type BASE is accessible in T. (BASE is known to be
179 a (possibly non-proper) base class of T.) If CONSIDER_LOCAL_P is
180 true, consider any special access of the current scope, or access
181 bestowed by friendship. */
184 accessible_base_p (tree t
, tree base
, bool consider_local_p
)
188 /* [class.access.base]
190 A base class is said to be accessible if an invented public
191 member of the base class is accessible.
193 If BASE is a non-proper base, this condition is trivially
195 if (same_type_p (t
, base
))
197 /* Rather than inventing a public member, we use the implicit
198 public typedef created in the scope of every class. */
199 decl
= TYPE_FIELDS (base
);
200 while (!DECL_SELF_REFERENCE_P (decl
))
201 decl
= DECL_CHAIN (decl
);
202 while (ANON_AGGR_TYPE_P (t
))
203 t
= TYPE_CONTEXT (t
);
204 return accessible_p (t
, decl
, consider_local_p
);
207 /* Lookup BASE in the hierarchy dominated by T. Do access checking as
208 ACCESS specifies. Return the binfo we discover. If KIND_PTR is
209 non-NULL, fill with information about what kind of base we
210 discovered. If OFFSET is other than -1, only match at that offset.
212 If the base is inaccessible, or ambiguous, then error_mark_node is
213 returned. If the tf_error bit of COMPLAIN is not set, no error
217 lookup_base (tree t
, tree base
, base_access access
,
218 base_kind
*kind_ptr
, tsubst_flags_t complain
,
219 HOST_WIDE_INT offset
/* = -1 */)
225 /* "Nothing" is definitely not derived from Base. */
229 *kind_ptr
= bk_not_base
;
233 if (t
== error_mark_node
|| base
== error_mark_node
)
236 *kind_ptr
= bk_not_base
;
237 return error_mark_node
;
239 gcc_assert (TYPE_P (base
));
248 t
= complete_type (TYPE_MAIN_VARIANT (t
));
249 if (dependent_type_p (t
))
250 if (tree open
= currently_open_class (t
))
252 t_binfo
= TYPE_BINFO (t
);
255 base
= TYPE_MAIN_VARIANT (base
);
257 /* If BASE is incomplete, it can't be a base of T--and instantiating it
258 might cause an error. */
259 if (t_binfo
&& CLASS_TYPE_P (base
) && COMPLETE_OR_OPEN_TYPE_P (base
))
261 struct lookup_base_data_s data
;
265 data
.binfo
= NULL_TREE
;
266 data
.ambiguous
= data
.via_virtual
= false;
267 data
.repeated_base
= (offset
== -1) && CLASSTYPE_REPEATED_BASE_P (t
);
268 data
.want_any
= access
== ba_any
;
269 data
.offset
= offset
;
271 dfs_walk_once (t_binfo
, dfs_lookup_base
, NULL
, &data
);
275 bk
= data
.ambiguous
? bk_ambig
: bk_not_base
;
276 else if (binfo
== t_binfo
)
278 else if (data
.via_virtual
)
289 /* Check that the base is unambiguous and accessible. */
290 if (access
!= ba_any
)
297 if (complain
& tf_error
)
298 error ("%qT is an ambiguous base of %qT", base
, t
);
299 binfo
= error_mark_node
;
303 if ((access
& ba_check_bit
)
304 /* If BASE is incomplete, then BASE and TYPE are probably
305 the same, in which case BASE is accessible. If they
306 are not the same, then TYPE is invalid. In that case,
307 there's no need to issue another error here, and
308 there's no implicit typedef to use in the code that
309 follows, so we skip the check. */
310 && COMPLETE_TYPE_P (base
)
311 && !accessible_base_p (t
, base
, !(access
& ba_ignore_scope
)))
313 if (complain
& tf_error
)
314 error ("%qT is an inaccessible base of %qT", base
, t
);
315 binfo
= error_mark_node
;
316 bk
= bk_inaccessible
;
327 /* Data for dcast_base_hint walker. */
331 tree subtype
; /* The base type we're looking for. */
332 int virt_depth
; /* Number of virtual bases encountered from most
334 tree offset
; /* Best hint offset discovered so far. */
335 bool repeated_base
; /* Whether there are repeated bases in the
339 /* Worker for dcast_base_hint. Search for the base type being cast
343 dfs_dcast_hint_pre (tree binfo
, void *data_
)
345 struct dcast_data_s
*data
= (struct dcast_data_s
*) data_
;
347 if (BINFO_VIRTUAL_P (binfo
))
350 if (SAME_BINFO_TYPE_P (BINFO_TYPE (binfo
), data
->subtype
))
352 if (data
->virt_depth
)
354 data
->offset
= ssize_int (-1);
358 data
->offset
= ssize_int (-3);
360 data
->offset
= BINFO_OFFSET (binfo
);
362 return data
->repeated_base
? dfs_skip_bases
: data
->offset
;
368 /* Worker for dcast_base_hint. Track the virtual depth. */
371 dfs_dcast_hint_post (tree binfo
, void *data_
)
373 struct dcast_data_s
*data
= (struct dcast_data_s
*) data_
;
375 if (BINFO_VIRTUAL_P (binfo
))
381 /* The dynamic cast runtime needs a hint about how the static SUBTYPE type
382 started from is related to the required TARGET type, in order to optimize
383 the inheritance graph search. This information is independent of the
384 current context, and ignores private paths, hence get_base_distance is
385 inappropriate. Return a TREE specifying the base offset, BOFF.
386 BOFF >= 0, there is only one public non-virtual SUBTYPE base at offset BOFF,
387 and there are no public virtual SUBTYPE bases.
388 BOFF == -1, SUBTYPE occurs as multiple public virtual or non-virtual bases.
389 BOFF == -2, SUBTYPE is not a public base.
390 BOFF == -3, SUBTYPE occurs as multiple public non-virtual bases. */
393 dcast_base_hint (tree subtype
, tree target
)
395 struct dcast_data_s data
;
397 data
.subtype
= subtype
;
399 data
.offset
= NULL_TREE
;
400 data
.repeated_base
= CLASSTYPE_REPEATED_BASE_P (target
);
402 dfs_walk_once_accessible (TYPE_BINFO (target
), /*friends=*/false,
403 dfs_dcast_hint_pre
, dfs_dcast_hint_post
, &data
);
404 return data
.offset
? data
.offset
: ssize_int (-2);
407 /* Search for a member with name NAME in a multiple inheritance
408 lattice specified by TYPE. If it does not exist, return NULL_TREE.
409 If the member is ambiguously referenced, return `error_mark_node'.
410 Otherwise, return a DECL with the indicated name. If WANT_TYPE is
411 true, type declarations are preferred. */
413 /* Return the FUNCTION_DECL, RECORD_TYPE, UNION_TYPE, or
414 NAMESPACE_DECL corresponding to the innermost non-block scope. */
419 /* There are a number of cases we need to be aware of here:
420 current_class_type current_function_decl
427 Those last two make life interesting. If we're in a function which is
428 itself inside a class, we need decls to go into the fn's decls (our
429 second case below). But if we're in a class and the class itself is
430 inside a function, we need decls to go into the decls for the class. To
431 achieve this last goal, we must see if, when both current_class_ptr and
432 current_function_decl are set, the class was declared inside that
433 function. If so, we know to put the decls into the class's scope. */
434 if (current_function_decl
&& current_class_type
435 && ((DECL_FUNCTION_MEMBER_P (current_function_decl
)
436 && same_type_p (DECL_CONTEXT (current_function_decl
),
438 || (DECL_FRIEND_CONTEXT (current_function_decl
)
439 && same_type_p (DECL_FRIEND_CONTEXT (current_function_decl
),
440 current_class_type
))))
441 return current_function_decl
;
443 if (current_class_type
)
444 return current_class_type
;
446 if (current_function_decl
)
447 return current_function_decl
;
449 return current_namespace
;
452 /* Returns nonzero if we are currently in a function scope. Note
453 that this function returns zero if we are within a local class, but
454 not within a member function body of the local class. */
457 at_function_scope_p (void)
459 tree cs
= current_scope ();
460 /* Also check cfun to make sure that we're really compiling
461 this function (as opposed to having set current_function_decl
462 for access checking or some such). */
463 return (cs
&& TREE_CODE (cs
) == FUNCTION_DECL
464 && cfun
&& cfun
->decl
== current_function_decl
);
467 /* Returns true if the innermost active scope is a class scope. */
470 at_class_scope_p (void)
472 tree cs
= current_scope ();
473 return cs
&& TYPE_P (cs
);
476 /* Returns true if the innermost active scope is a namespace scope. */
479 at_namespace_scope_p (void)
481 tree cs
= current_scope ();
482 return cs
&& TREE_CODE (cs
) == NAMESPACE_DECL
;
485 /* Return the scope of DECL, as appropriate when doing name-lookup. */
488 context_for_name_lookup (tree decl
)
492 For the purposes of name lookup, after the anonymous union
493 definition, the members of the anonymous union are considered to
494 have been defined in the scope in which the anonymous union is
496 tree context
= DECL_CONTEXT (decl
);
498 while (context
&& TYPE_P (context
)
499 && (ANON_AGGR_TYPE_P (context
) || UNSCOPED_ENUM_P (context
)))
500 context
= TYPE_CONTEXT (context
);
502 context
= global_namespace
;
507 /* Like the above, but always return a type, because it's simpler for member
508 handling to refer to the anonymous aggr rather than a function. */
511 type_context_for_name_lookup (tree decl
)
513 tree context
= DECL_P (decl
) ? DECL_CONTEXT (decl
) : decl
;
514 gcc_checking_assert (CLASS_TYPE_P (context
));
516 while (context
&& TYPE_P (context
) && ANON_AGGR_TYPE_P (context
))
518 tree next
= TYPE_CONTEXT (context
);
526 /* Returns true iff DECL is declared in TYPE. */
529 member_declared_in_type (tree decl
, tree type
)
531 /* A normal declaration obviously counts. */
532 if (context_for_name_lookup (decl
) == type
)
534 /* So does a using or access declaration. */
535 if (DECL_LANG_SPECIFIC (decl
) && !DECL_DISCRIMINATOR_P (decl
)
536 && purpose_member (type
, DECL_ACCESS (decl
)))
541 /* The accessibility routines use BINFO_ACCESS for scratch space
542 during the computation of the accessibility of some declaration. */
544 /* Avoid walking up past a declaration of the member. */
547 dfs_access_in_type_pre (tree binfo
, void *data
)
549 tree decl
= (tree
) data
;
550 tree type
= BINFO_TYPE (binfo
);
551 if (member_declared_in_type (decl
, type
))
552 return dfs_skip_bases
;
556 #define BINFO_ACCESS(NODE) \
557 ((access_kind) ((TREE_PUBLIC (NODE) << 1) | TREE_PRIVATE (NODE)))
559 /* Set the access associated with NODE to ACCESS. */
561 #define SET_BINFO_ACCESS(NODE, ACCESS) \
562 ((TREE_PUBLIC (NODE) = ((ACCESS) & 2) != 0), \
563 (TREE_PRIVATE (NODE) = ((ACCESS) & 1) != 0))
565 /* Called from access_in_type via dfs_walk. Calculate the access to
566 DATA (which is really a DECL) in BINFO. */
569 dfs_access_in_type (tree binfo
, void *data
)
571 tree decl
= (tree
) data
;
572 tree type
= BINFO_TYPE (binfo
);
573 access_kind access
= ak_none
;
575 if (context_for_name_lookup (decl
) == type
)
577 /* If we have descended to the scope of DECL, just note the
578 appropriate access. */
579 if (TREE_PRIVATE (decl
))
581 else if (TREE_PROTECTED (decl
))
582 access
= ak_protected
;
588 /* First, check for an access-declaration that gives us more
589 access to the DECL. */
590 if (DECL_LANG_SPECIFIC (decl
) && !DECL_DISCRIMINATOR_P (decl
))
592 tree decl_access
= purpose_member (type
, DECL_ACCESS (decl
));
596 decl_access
= TREE_VALUE (decl_access
);
598 if (decl_access
== access_public_node
)
600 else if (decl_access
== access_protected_node
)
601 access
= ak_protected
;
602 else if (decl_access
== access_private_node
)
613 vec
<tree
, va_gc
> *accesses
;
615 /* Otherwise, scan our baseclasses, and pick the most favorable
617 accesses
= BINFO_BASE_ACCESSES (binfo
);
618 for (i
= 0; BINFO_BASE_ITERATE (binfo
, i
, base_binfo
); i
++)
620 tree base_access
= (*accesses
)[i
];
621 access_kind base_access_now
= BINFO_ACCESS (base_binfo
);
623 if (base_access_now
== ak_none
|| base_access_now
== ak_private
)
624 /* If it was not accessible in the base, or only
625 accessible as a private member, we can't access it
627 base_access_now
= ak_none
;
628 else if (base_access
== access_protected_node
)
629 /* Public and protected members in the base become
631 base_access_now
= ak_protected
;
632 else if (base_access
== access_private_node
)
633 /* Public and protected members in the base become
635 base_access_now
= ak_private
;
637 /* See if the new access, via this base, gives more
638 access than our previous best access. */
639 if (base_access_now
!= ak_none
640 && (access
== ak_none
|| base_access_now
< access
))
642 access
= base_access_now
;
644 /* If the new access is public, we can't do better. */
645 if (access
== ak_public
)
652 /* Note the access to DECL in TYPE. */
653 SET_BINFO_ACCESS (binfo
, access
);
658 /* Return the access to DECL in TYPE. */
661 access_in_type (tree type
, tree decl
)
663 tree binfo
= TYPE_BINFO (type
);
665 /* We must take into account
669 If a name can be reached by several paths through a multiple
670 inheritance graph, the access is that of the path that gives
673 The algorithm we use is to make a post-order depth-first traversal
674 of the base-class hierarchy. As we come up the tree, we annotate
675 each node with the most lenient access. */
676 dfs_walk_once (binfo
, dfs_access_in_type_pre
, dfs_access_in_type
, decl
);
678 return BINFO_ACCESS (binfo
);
681 /* Returns nonzero if it is OK to access DECL named in TYPE through an object
682 of OTYPE in the context of DERIVED. */
685 protected_accessible_p (tree decl
, tree derived
, tree type
, tree otype
)
687 /* We're checking this clause from [class.access.base]
689 m as a member of N is protected, and the reference occurs in a
690 member or friend of class N, or in a member or friend of a
691 class P derived from N, where m as a member of P is public, private
694 Here DERIVED is a possible P, DECL is m and TYPE is N. */
696 /* If DERIVED isn't derived from N, then it can't be a P. */
697 if (!DERIVED_FROM_P (type
, derived
))
700 /* DECL_NONSTATIC_MEMBER_P won't work for USING_DECLs. */
701 decl
= strip_using_decl (decl
);
702 /* We don't expect or support dependent decls. */
703 gcc_assert (TREE_CODE (decl
) != USING_DECL
);
707 When a friend or a member function of a derived class references
708 a protected non-static member of a base class, an access check
709 applies in addition to those described earlier in clause
710 _class.access_) Except when forming a pointer to member
711 (_expr.unary.op_), the access must be through a pointer to,
712 reference to, or object of the derived class itself (or any class
713 derived from that class) (_expr.ref_). If the access is to form
714 a pointer to member, the nested-name-specifier shall name the
715 derived class (or any class derived from that class). */
716 if (DECL_NONSTATIC_MEMBER_P (decl
)
717 && !DERIVED_FROM_P (derived
, otype
))
723 /* Returns nonzero if SCOPE is a type or a friend of a type which would be able
724 to access DECL through TYPE. OTYPE is the type of the object. */
727 friend_accessible_p (tree scope
, tree decl
, tree type
, tree otype
)
729 /* We're checking this clause from [class.access.base]
731 m as a member of N is protected, and the reference occurs in a
732 member or friend of class N, or in a member or friend of a
733 class P derived from N, where m as a member of P is public, private
736 Here DECL is m and TYPE is N. SCOPE is the current context,
737 and we check all its possible Ps. */
738 tree befriending_classes
;
744 if (is_global_friend (scope
))
747 /* Is SCOPE itself a suitable P? */
748 if (TYPE_P (scope
) && protected_accessible_p (decl
, scope
, type
, otype
))
751 if (DECL_DECLARES_FUNCTION_P (scope
))
752 befriending_classes
= DECL_BEFRIENDING_CLASSES (scope
);
753 else if (TYPE_P (scope
))
754 befriending_classes
= CLASSTYPE_BEFRIENDING_CLASSES (scope
);
758 for (t
= befriending_classes
; t
; t
= TREE_CHAIN (t
))
759 if (protected_accessible_p (decl
, TREE_VALUE (t
), type
, otype
))
762 /* Nested classes have the same access as their enclosing types, as
763 per DR 45 (this is a change from C++98). */
765 if (friend_accessible_p (TYPE_CONTEXT (scope
), decl
, type
, otype
))
768 if (DECL_DECLARES_FUNCTION_P (scope
))
770 /* Perhaps this SCOPE is a member of a class which is a
772 if (DECL_CLASS_SCOPE_P (scope
)
773 && friend_accessible_p (DECL_CONTEXT (scope
), decl
, type
, otype
))
775 /* Perhaps SCOPE is a friend function defined inside a class from which
776 DECL is accessible. */
777 if (tree fctx
= DECL_FRIEND_CONTEXT (scope
))
778 if (friend_accessible_p (fctx
, decl
, type
, otype
))
782 /* Maybe scope's template is a friend. */
783 if (tree tinfo
= get_template_info (scope
))
785 tree tmpl
= TI_TEMPLATE (tinfo
);
786 if (DECL_CLASS_TEMPLATE_P (tmpl
))
787 tmpl
= TREE_TYPE (tmpl
);
789 tmpl
= DECL_TEMPLATE_RESULT (tmpl
);
792 /* Increment processing_template_decl to make sure that
793 dependent_type_p works correctly. */
794 ++processing_template_decl
;
795 int ret
= friend_accessible_p (tmpl
, decl
, type
, otype
);
796 --processing_template_decl
;
802 /* If is_friend is true, we should have found a befriending class. */
803 gcc_checking_assert (!is_friend (type
, scope
));
808 struct dfs_accessible_data
814 /* Avoid walking up past a declaration of the member. */
817 dfs_accessible_pre (tree binfo
, void *data
)
819 dfs_accessible_data
*d
= (dfs_accessible_data
*)data
;
820 tree type
= BINFO_TYPE (binfo
);
821 if (member_declared_in_type (d
->decl
, type
))
822 return dfs_skip_bases
;
826 /* Called via dfs_walk_once_accessible from accessible_p */
829 dfs_accessible_post (tree binfo
, void *data
)
831 /* access_in_type already set BINFO_ACCESS for us. */
832 access_kind access
= BINFO_ACCESS (binfo
);
833 tree N
= BINFO_TYPE (binfo
);
834 dfs_accessible_data
*d
= (dfs_accessible_data
*)data
;
836 tree scope
= current_nonlambda_scope ();
838 /* A member m is accessible at the point R when named in class N if */
845 /* m as a member of N is public, or */
850 /* m as a member of N is private, and R occurs in a member or friend of
852 if (scope
&& TREE_CODE (scope
) != NAMESPACE_DECL
853 && is_friend (N
, scope
))
860 /* m as a member of N is protected, and R occurs in a member or friend
861 of class N, or in a member or friend of a class P derived from N,
862 where m as a member of P is public, private, or protected */
863 if (friend_accessible_p (scope
, decl
, N
, d
->object_type
))
873 /* Like accessible_p below, but within a template returns true iff DECL is
874 accessible in TYPE to all possible instantiations of the template. */
877 accessible_in_template_p (tree type
, tree decl
)
879 int save_ptd
= processing_template_decl
;
880 processing_template_decl
= 0;
881 int val
= accessible_p (type
, decl
, false);
882 processing_template_decl
= save_ptd
;
886 /* DECL is a declaration from a base class of TYPE, which was the
887 class used to name DECL. Return nonzero if, in the current
888 context, DECL is accessible. If TYPE is actually a BINFO node,
889 then we can tell in what context the access is occurring by looking
890 at the most derived class along the path indicated by BINFO. If
891 CONSIDER_LOCAL is true, do consider special access the current
892 scope or friendship thereof we might have. */
895 accessible_p (tree type
, tree decl
, bool consider_local_p
)
900 /* If this declaration is in a block or namespace scope, there's no
902 if (!TYPE_P (context_for_name_lookup (decl
)))
905 /* There is no need to perform access checks inside a thunk. */
906 if (current_function_decl
&& DECL_THUNK_P (current_function_decl
))
909 tree otype
= NULL_TREE
;
912 /* When accessing a non-static member, the most derived type in the
913 binfo chain is the type of the object; remember that type for
914 protected_accessible_p. */
915 for (tree b
= type
; b
; b
= BINFO_INHERITANCE_CHAIN (b
))
916 otype
= BINFO_TYPE (b
);
917 type
= BINFO_TYPE (type
);
922 /* Anonymous unions don't have their own access. */
923 if (ANON_AGGR_TYPE_P (type
))
924 type
= type_context_for_name_lookup (type
);
926 /* [class.access.base]
928 A member m is accessible when named in class N if
930 --m as a member of N is public, or
932 --m as a member of N is private, and the reference occurs in a
933 member or friend of class N, or
935 --m as a member of N is protected, and the reference occurs in a
936 member or friend of class N, or in a member or friend of a
937 class P derived from N, where m as a member of P is public, private or
940 --there exists a base class B of N that is accessible at the point
941 of reference, and m is accessible when named in class B.
943 We walk the base class hierarchy, checking these conditions. */
945 /* We walk using TYPE_BINFO (type) because access_in_type will set
946 BINFO_ACCESS on it and its bases. */
947 binfo
= TYPE_BINFO (type
);
949 /* Compute the accessibility of DECL in the class hierarchy
950 dominated by type. */
951 access
= access_in_type (type
, decl
);
952 if (access
== ak_public
)
955 /* If we aren't considering the point of reference, only the first bullet
957 if (!consider_local_p
)
960 dfs_accessible_data d
= { decl
, otype
};
962 /* Walk the hierarchy again, looking for a base class that allows
964 return dfs_walk_once_accessible (binfo
, /*friends=*/true,
966 dfs_accessible_post
, &d
)
970 struct lookup_field_info
{
971 /* The type in which we're looking. */
973 /* The name of the field for which we're looking. */
975 /* If non-NULL, the current result of the lookup. */
977 /* The path to RVAL. */
979 /* If non-NULL, the lookup was ambiguous, and this is a list of the
982 /* If nonzero, we are looking for types, not data members. */
986 /* True for a class member means that it is shared between all objects
989 [class.member.lookup]:If the resulting set of declarations are not all
990 from sub-objects of the same type, or the set has a non-static member
991 and includes members from distinct sub-objects, there is an ambiguity
992 and the program is ill-formed.
994 This function checks that T contains no non-static members. */
997 shared_member_p (tree t
)
999 if (VAR_P (t
) || TREE_CODE (t
) == TYPE_DECL
1000 || TREE_CODE (t
) == CONST_DECL
)
1002 if (is_overloaded_fn (t
))
1004 for (ovl_iterator
iter (get_fns (t
)); iter
; ++iter
)
1006 tree decl
= strip_using_decl (*iter
);
1007 if (TREE_CODE (decl
) == USING_DECL
)
1008 /* Conservatively assume a dependent using-declaration
1009 might resolve to a non-static member. */
1011 if (DECL_OBJECT_MEMBER_FUNCTION_P (decl
))
1019 /* Routine to see if the sub-object denoted by the binfo PARENT can be
1020 found as a base class and sub-object of the object denoted by
1024 is_subobject_of_p (tree parent
, tree binfo
)
1028 for (probe
= parent
; probe
; probe
= BINFO_INHERITANCE_CHAIN (probe
))
1032 if (BINFO_VIRTUAL_P (probe
))
1033 return (binfo_for_vbase (BINFO_TYPE (probe
), BINFO_TYPE (binfo
))
1039 /* DATA is really a struct lookup_field_info. Look for a field with
1040 the name indicated there in BINFO. If this function returns a
1041 non-NULL value it is the result of the lookup. Called from
1042 lookup_field via breadth_first_search. */
1045 lookup_field_r (tree binfo
, void *data
)
1047 struct lookup_field_info
*lfi
= (struct lookup_field_info
*) data
;
1048 tree type
= BINFO_TYPE (binfo
);
1049 tree nval
= NULL_TREE
;
1051 /* If this is a dependent base, don't look in it. */
1052 if (BINFO_DEPENDENT_BASE_P (binfo
))
1055 /* If this base class is hidden by the best-known value so far, we
1056 don't need to look. */
1057 if (lfi
->rval_binfo
&& BINFO_INHERITANCE_CHAIN (binfo
) == lfi
->rval_binfo
1058 && !BINFO_VIRTUAL_P (binfo
))
1059 return dfs_skip_bases
;
1061 nval
= get_class_binding (type
, lfi
->name
, lfi
->want_type
);
1063 /* If there is no declaration with the indicated name in this type,
1064 then there's nothing to do. */
1068 /* If the lookup already found a match, and the new value doesn't
1069 hide the old one, we might have an ambiguity. */
1071 && !is_subobject_of_p (lfi
->rval_binfo
, binfo
))
1074 if (nval
== lfi
->rval
&& shared_member_p (nval
))
1075 /* The two things are really the same. */
1077 else if (is_subobject_of_p (binfo
, lfi
->rval_binfo
))
1078 /* The previous value hides the new one. */
1082 /* We have a real ambiguity. We keep a chain of all the
1084 if (!lfi
->ambiguous
&& lfi
->rval
)
1086 /* This is the first time we noticed an ambiguity. Add
1087 what we previously thought was a reasonable candidate
1089 lfi
->ambiguous
= tree_cons (NULL_TREE
, lfi
->rval
, NULL_TREE
);
1090 TREE_TYPE (lfi
->ambiguous
) = error_mark_node
;
1093 /* Add the new value. */
1094 if (TREE_CODE (nval
) == TREE_LIST
)
1095 lfi
->ambiguous
= chainon (nval
, lfi
->ambiguous
);
1098 lfi
->ambiguous
= tree_cons (NULL_TREE
, nval
, lfi
->ambiguous
);
1099 TREE_TYPE (lfi
->ambiguous
) = error_mark_node
;
1105 if (TREE_CODE (nval
) == TREE_LIST
)
1107 lfi
->ambiguous
= chainon (nval
, lfi
->ambiguous
);
1108 lfi
->rval
= TREE_VALUE (nval
);
1112 lfi
->rval_binfo
= binfo
;
1116 /* Don't look for constructors or destructors in base classes. */
1117 if (IDENTIFIER_CDTOR_P (lfi
->name
))
1118 return dfs_skip_bases
;
1122 /* Return a "baselink" with BASELINK_BINFO, BASELINK_ACCESS_BINFO,
1123 BASELINK_FUNCTIONS, and BASELINK_OPTYPE set to BINFO, ACCESS_BINFO,
1124 FUNCTIONS, and OPTYPE respectively. */
1127 build_baselink (tree binfo
, tree access_binfo
, tree functions
, tree optype
)
1131 gcc_assert (OVL_P (functions
) || TREE_CODE (functions
) == TEMPLATE_ID_EXPR
);
1132 gcc_assert (!optype
|| TYPE_P (optype
));
1133 gcc_assert (TREE_TYPE (functions
));
1135 baselink
= make_node (BASELINK
);
1136 TREE_TYPE (baselink
) = TREE_TYPE (functions
);
1137 BASELINK_BINFO (baselink
) = binfo
;
1138 BASELINK_ACCESS_BINFO (baselink
) = access_binfo
;
1139 BASELINK_FUNCTIONS (baselink
) = functions
;
1140 BASELINK_OPTYPE (baselink
) = optype
;
1142 if (binfo
== access_binfo
1143 && TYPE_BEING_DEFINED (BINFO_TYPE (access_binfo
)))
1144 BASELINK_FUNCTIONS_MAYBE_INCOMPLETE_P (baselink
) = true;
1149 /* Look for a member named NAME in an inheritance lattice dominated by
1150 XBASETYPE. If PROTECT is 0 or two, we do not check access. If it
1151 is 1, we enforce accessibility. If PROTECT is zero, then, for an
1152 ambiguous lookup, we return NULL. If PROTECT is 1, we issue error
1153 messages about inaccessible or ambiguous lookup. If PROTECT is 2,
1154 we return a TREE_LIST whose TREE_TYPE is error_mark_node and whose
1155 TREE_VALUEs are the list of ambiguous candidates.
1157 WANT_TYPE is 1 when we should only return TYPE_DECLs.
1159 If nothing can be found return NULL_TREE and do not issue an error.
1161 If non-NULL, failure information is written back to AFI. */
1164 lookup_member (tree xbasetype
, tree name
, int protect
, bool want_type
,
1165 tsubst_flags_t complain
, access_failure_info
*afi
/* = NULL */)
1167 tree rval
, rval_binfo
= NULL_TREE
;
1168 tree type
= NULL_TREE
, basetype_path
= NULL_TREE
;
1169 struct lookup_field_info lfi
;
1171 /* rval_binfo is the binfo associated with the found member, note,
1172 this can be set with useful information, even when rval is not
1173 set, because it must deal with ALL members, not just non-function
1174 members. It is used for ambiguity checking and the hidden
1175 checks. Whereas rval is only set if a proper (not hidden)
1176 non-function member is found. */
1178 if (name
== error_mark_node
1179 || xbasetype
== NULL_TREE
1180 || xbasetype
== error_mark_node
)
1183 gcc_assert (identifier_p (name
));
1185 if (TREE_CODE (xbasetype
) == TREE_BINFO
)
1187 type
= BINFO_TYPE (xbasetype
);
1188 basetype_path
= xbasetype
;
1192 if (!RECORD_OR_UNION_CODE_P (TREE_CODE (xbasetype
)))
1195 xbasetype
= NULL_TREE
;
1198 type
= complete_type (type
);
1200 /* Make sure we're looking for a member of the current instantiation in the
1201 right partial specialization. */
1202 if (dependent_type_p (type
))
1203 if (tree t
= currently_open_class (type
))
1207 basetype_path
= TYPE_BINFO (type
);
1212 memset (&lfi
, 0, sizeof (lfi
));
1215 lfi
.want_type
= want_type
;
1216 dfs_walk_all (basetype_path
, &lookup_field_r
, NULL
, &lfi
);
1218 rval_binfo
= lfi
.rval_binfo
;
1220 type
= BINFO_TYPE (rval_binfo
);
1226 else if (protect
== 1)
1228 if (complain
& tf_error
)
1230 error ("request for member %qD is ambiguous", name
);
1231 print_candidates (lfi
.ambiguous
);
1233 return error_mark_node
;
1235 else if (protect
== 2)
1236 return lfi
.ambiguous
;
1244 In the case of overloaded function names, access control is
1245 applied to the function selected by overloaded resolution.
1247 We cannot check here, even if RVAL is only a single non-static
1248 member function, since we do not know what the "this" pointer
1251 class A { protected: void f(); };
1252 class B : public A {
1259 only the first call to "f" is valid. However, if the function is
1260 static, we can check. */
1261 if (protect
== 1 && !really_overloaded_fn (rval
))
1263 tree decl
= is_overloaded_fn (rval
) ? get_first_fn (rval
) : rval
;
1264 decl
= strip_using_decl (decl
);
1265 /* A dependent USING_DECL will be checked after tsubsting. */
1266 if (TREE_CODE (decl
) != USING_DECL
1267 && !DECL_IOBJ_MEMBER_FUNCTION_P (decl
)
1268 && !perform_or_defer_access_check (basetype_path
, decl
, decl
,
1270 return error_mark_node
;
1273 if (is_overloaded_fn (rval
)
1274 /* Don't use a BASELINK for class-scope deduction guides since
1275 they're not actually member functions. */
1276 && !dguide_name_p (name
))
1277 rval
= build_baselink (rval_binfo
, basetype_path
, rval
,
1278 (IDENTIFIER_CONV_OP_P (name
)
1279 ? TREE_TYPE (name
): NULL_TREE
));
1283 /* Helper class for lookup_member_fuzzy. */
1285 class lookup_field_fuzzy_info
1288 lookup_field_fuzzy_info (bool want_type_p
) :
1289 m_want_type_p (want_type_p
), m_candidates () {}
1291 void fuzzy_lookup_field (tree type
);
1293 /* If true, we are looking for types, not data members. */
1295 /* The result: a vec of identifiers. */
1296 auto_vec
<tree
> m_candidates
;
1299 /* Locate all fields within TYPE, append them to m_candidates. */
1302 lookup_field_fuzzy_info::fuzzy_lookup_field (tree type
)
1304 if (!CLASS_TYPE_P (type
))
1307 for (tree field
= TYPE_FIELDS (type
); field
; field
= DECL_CHAIN (field
))
1309 if (m_want_type_p
&& !DECL_DECLARES_TYPE_P (field
))
1312 if (!DECL_NAME (field
))
1315 if (is_lambda_ignored_entity (field
))
1318 /* Ignore special identifiers with space at the end like cdtor or
1319 conversion op identifiers. */
1320 if (TREE_CODE (DECL_NAME (field
)) == IDENTIFIER_NODE
)
1321 if (unsigned int len
= IDENTIFIER_LENGTH (DECL_NAME (field
)))
1322 if (IDENTIFIER_POINTER (DECL_NAME (field
))[len
- 1] == ' ')
1325 m_candidates
.safe_push (DECL_NAME (field
));
1330 /* Helper function for lookup_member_fuzzy, called via dfs_walk_all
1331 DATA is really a lookup_field_fuzzy_info. Look for a field with
1332 the name indicated there in BINFO. Gathers pertinent identifiers into
1336 lookup_field_fuzzy_r (tree binfo
, void *data
)
1338 lookup_field_fuzzy_info
*lffi
= (lookup_field_fuzzy_info
*) data
;
1339 tree type
= BINFO_TYPE (binfo
);
1341 lffi
->fuzzy_lookup_field (type
);
1346 /* Like lookup_member, but try to find the closest match for NAME,
1347 rather than an exact match, and return an identifier (or NULL_TREE).
1351 lookup_member_fuzzy (tree xbasetype
, tree name
, bool want_type_p
)
1353 tree type
= NULL_TREE
, basetype_path
= NULL_TREE
;
1354 class lookup_field_fuzzy_info
lffi (want_type_p
);
1356 /* rval_binfo is the binfo associated with the found member, note,
1357 this can be set with useful information, even when rval is not
1358 set, because it must deal with ALL members, not just non-function
1359 members. It is used for ambiguity checking and the hidden
1360 checks. Whereas rval is only set if a proper (not hidden)
1361 non-function member is found. */
1363 if (name
== error_mark_node
1364 || xbasetype
== NULL_TREE
1365 || xbasetype
== error_mark_node
)
1368 gcc_assert (identifier_p (name
));
1370 if (TREE_CODE (xbasetype
) == TREE_BINFO
)
1372 type
= BINFO_TYPE (xbasetype
);
1373 basetype_path
= xbasetype
;
1377 if (!RECORD_OR_UNION_CODE_P (TREE_CODE (xbasetype
)))
1380 xbasetype
= NULL_TREE
;
1383 type
= complete_type (type
);
1385 /* Make sure we're looking for a member of the current instantiation in the
1386 right partial specialization. */
1387 if (flag_concepts
&& dependent_type_p (type
))
1388 type
= currently_open_class (type
);
1391 basetype_path
= TYPE_BINFO (type
);
1396 /* Populate lffi.m_candidates. */
1397 dfs_walk_all (basetype_path
, &lookup_field_fuzzy_r
, NULL
, &lffi
);
1399 return find_closest_identifier (name
, &lffi
.m_candidates
);
1402 /* Like lookup_member, except that if we find a function member we
1403 return NULL_TREE. */
1406 lookup_field (tree xbasetype
, tree name
, int protect
, bool want_type
)
1408 tree rval
= lookup_member (xbasetype
, name
, protect
, want_type
,
1409 tf_warning_or_error
);
1411 /* Ignore functions, but propagate the ambiguity list. */
1412 if (!error_operand_p (rval
)
1413 && (rval
&& BASELINK_P (rval
)))
1419 /* Like lookup_member, except that if we find a non-function member we
1420 return NULL_TREE. */
1423 lookup_fnfields (tree xbasetype
, tree name
, int protect
,
1424 tsubst_flags_t complain
)
1426 tree rval
= lookup_member (xbasetype
, name
, protect
, /*want_type=*/false,
1429 /* Ignore non-functions, but propagate the ambiguity list. */
1430 if (!error_operand_p (rval
)
1431 && (rval
&& !BASELINK_P (rval
)))
1437 /* DECL is the result of a qualified name lookup. QUALIFYING_SCOPE is
1438 the class or namespace used to qualify the name. CONTEXT_CLASS is
1439 the class corresponding to the object in which DECL will be used.
1440 Return a possibly modified version of DECL that takes into account
1443 In particular, consider an expression like `B::m' in the context of
1444 a derived class `D'. If `B::m' has been resolved to a BASELINK,
1445 then the most derived class indicated by the BASELINK_BINFO will be
1446 `B', not `D'. This function makes that adjustment. */
1449 adjust_result_of_qualified_name_lookup (tree decl
,
1450 tree qualifying_scope
,
1453 if (context_class
&& context_class
!= error_mark_node
1454 && CLASS_TYPE_P (context_class
)
1455 && CLASS_TYPE_P (qualifying_scope
)
1456 && DERIVED_FROM_P (qualifying_scope
, context_class
)
1457 && BASELINK_P (decl
))
1461 /* Look for the QUALIFYING_SCOPE as a base of the CONTEXT_CLASS.
1462 Because we do not yet know which function will be chosen by
1463 overload resolution, we cannot yet check either accessibility
1464 or ambiguity -- in either case, the choice of a static member
1465 function might make the usage valid. */
1466 base
= lookup_base (context_class
, qualifying_scope
,
1467 ba_unique
, NULL
, tf_none
);
1468 if (base
&& base
!= error_mark_node
)
1470 BASELINK_ACCESS_BINFO (decl
) = base
;
1472 = lookup_base (base
, BINFO_TYPE (BASELINK_BINFO (decl
)),
1473 ba_unique
, NULL
, tf_none
);
1474 if (decl_binfo
&& decl_binfo
!= error_mark_node
)
1475 BASELINK_BINFO (decl
) = decl_binfo
;
1479 if (BASELINK_P (decl
))
1480 BASELINK_QUALIFIED_P (decl
) = true;
1486 /* Walk the class hierarchy within BINFO, in a depth-first traversal.
1487 PRE_FN is called in preorder, while POST_FN is called in postorder.
1488 If PRE_FN returns DFS_SKIP_BASES, child binfos will not be
1489 walked. If PRE_FN or POST_FN returns a different non-NULL value,
1490 that value is immediately returned and the walk is terminated. One
1491 of PRE_FN and POST_FN can be NULL. At each node, PRE_FN and
1492 POST_FN are passed the binfo to examine and the caller's DATA
1493 value. All paths are walked, thus virtual and morally virtual
1494 binfos can be multiply walked. */
1497 dfs_walk_all (tree binfo
, tree (*pre_fn
) (tree
, void *),
1498 tree (*post_fn
) (tree
, void *), void *data
)
1504 /* Call the pre-order walking function. */
1507 rval
= pre_fn (binfo
, data
);
1510 if (rval
== dfs_skip_bases
)
1516 /* Find the next child binfo to walk. */
1517 for (ix
= 0; BINFO_BASE_ITERATE (binfo
, ix
, base_binfo
); ix
++)
1519 rval
= dfs_walk_all (base_binfo
, pre_fn
, post_fn
, data
);
1525 /* Call the post-order walking function. */
1528 rval
= post_fn (binfo
, data
);
1529 gcc_assert (rval
!= dfs_skip_bases
);
1536 /* Worker for dfs_walk_once. This behaves as dfs_walk_all, except
1537 that binfos are walked at most once. */
1540 dfs_walk_once_r (tree binfo
, tree (*pre_fn
) (tree
, void *),
1541 tree (*post_fn
) (tree
, void *), hash_set
<tree
> *pset
,
1548 /* Call the pre-order walking function. */
1551 rval
= pre_fn (binfo
, data
);
1554 if (rval
== dfs_skip_bases
)
1561 /* Find the next child binfo to walk. */
1562 for (ix
= 0; BINFO_BASE_ITERATE (binfo
, ix
, base_binfo
); ix
++)
1564 if (BINFO_VIRTUAL_P (base_binfo
))
1565 if (pset
->add (base_binfo
))
1568 rval
= dfs_walk_once_r (base_binfo
, pre_fn
, post_fn
, pset
, data
);
1574 /* Call the post-order walking function. */
1577 rval
= post_fn (binfo
, data
);
1578 gcc_assert (rval
!= dfs_skip_bases
);
1585 /* Like dfs_walk_all, except that binfos are not multiply walked. For
1586 non-diamond shaped hierarchies this is the same as dfs_walk_all.
1587 For diamond shaped hierarchies we must mark the virtual bases, to
1588 avoid multiple walks. */
1591 dfs_walk_once (tree binfo
, tree (*pre_fn
) (tree
, void *),
1592 tree (*post_fn
) (tree
, void *), void *data
)
1594 static int active
= 0; /* We must not be called recursively. */
1597 gcc_assert (pre_fn
|| post_fn
);
1598 gcc_assert (!active
);
1601 if (!CLASSTYPE_DIAMOND_SHAPED_P (BINFO_TYPE (binfo
)))
1602 /* We are not diamond shaped, and therefore cannot encounter the
1603 same binfo twice. */
1604 rval
= dfs_walk_all (binfo
, pre_fn
, post_fn
, data
);
1607 hash_set
<tree
> pset
;
1608 rval
= dfs_walk_once_r (binfo
, pre_fn
, post_fn
, &pset
, data
);
1616 /* Worker function for dfs_walk_once_accessible. Behaves like
1617 dfs_walk_once_r, except (a) FRIENDS_P is true if special
1618 access given by the current context should be considered, (b) ONCE
1619 indicates whether bases should be marked during traversal. */
1622 dfs_walk_once_accessible_r (tree binfo
, bool friends_p
, hash_set
<tree
> *pset
,
1623 tree (*pre_fn
) (tree
, void *),
1624 tree (*post_fn
) (tree
, void *), void *data
)
1626 tree rval
= NULL_TREE
;
1630 /* Call the pre-order walking function. */
1633 rval
= pre_fn (binfo
, data
);
1636 if (rval
== dfs_skip_bases
)
1643 /* Find the next child binfo to walk. */
1644 for (ix
= 0; BINFO_BASE_ITERATE (binfo
, ix
, base_binfo
); ix
++)
1646 bool mark
= pset
&& BINFO_VIRTUAL_P (base_binfo
);
1648 if (mark
&& pset
->contains (base_binfo
))
1651 /* If the base is inherited via private or protected
1652 inheritance, then we can't see it, unless we are a friend of
1653 the current binfo. */
1654 if (BINFO_BASE_ACCESS (binfo
, ix
) != access_public_node
)
1659 scope
= current_scope ();
1661 || TREE_CODE (scope
) == NAMESPACE_DECL
1662 || !is_friend (BINFO_TYPE (binfo
), scope
))
1667 pset
->add (base_binfo
);
1669 rval
= dfs_walk_once_accessible_r (base_binfo
, friends_p
, pset
,
1670 pre_fn
, post_fn
, data
);
1676 /* Call the post-order walking function. */
1679 rval
= post_fn (binfo
, data
);
1680 gcc_assert (rval
!= dfs_skip_bases
);
1687 /* Like dfs_walk_once except that only accessible bases are walked.
1688 FRIENDS_P indicates whether friendship of the local context
1689 should be considered when determining accessibility. */
1692 dfs_walk_once_accessible (tree binfo
, bool friends_p
,
1693 tree (*pre_fn
) (tree
, void *),
1694 tree (*post_fn
) (tree
, void *), void *data
)
1696 hash_set
<tree
> *pset
= NULL
;
1697 if (CLASSTYPE_DIAMOND_SHAPED_P (BINFO_TYPE (binfo
)))
1698 pset
= new hash_set
<tree
>;
1699 tree rval
= dfs_walk_once_accessible_r (binfo
, friends_p
, pset
,
1700 pre_fn
, post_fn
, data
);
1707 /* Return true iff the code of T is CODE, and it has compatible
1711 matches_code_and_type_p (tree t
, enum tree_code code
, tree type
)
1713 if (TREE_CODE (t
) != code
)
1715 if (!cxx_types_compatible_p (TREE_TYPE (t
), type
))
1720 /* Subroutine of direct_accessor_p and reference_accessor_p.
1721 Determine if COMPONENT_REF is a simple field lookup of this->FIELD_DECL.
1722 We expect a tree of the form:
1727 <field_decl (FIELD_DECL)>>>. */
1730 field_access_p (tree component_ref
, tree field_decl
, tree field_type
)
1732 if (!matches_code_and_type_p (component_ref
, COMPONENT_REF
, field_type
))
1735 tree indirect_ref
= TREE_OPERAND (component_ref
, 0);
1736 if (!INDIRECT_REF_P (indirect_ref
))
1739 tree ptr
= STRIP_NOPS (TREE_OPERAND (indirect_ref
, 0));
1740 if (!is_object_parameter (ptr
))
1743 /* Must access the correct field. */
1744 if (TREE_OPERAND (component_ref
, 1) != field_decl
)
1749 /* Subroutine of field_accessor_p.
1751 Assuming that INIT_EXPR has already had its code and type checked,
1752 determine if it is a simple accessor for FIELD_DECL
1753 (of type FIELD_TYPE).
1755 Specifically, a simple accessor within struct S of the form:
1756 T get_field () { return m_field; }
1757 should have a constexpr_fn_retval (saved_tree) of the form:
1765 <field_decl (FIELD_DECL)>>>>>. */
1768 direct_accessor_p (tree init_expr
, tree field_decl
, tree field_type
)
1770 tree result_decl
= TREE_OPERAND (init_expr
, 0);
1771 if (!matches_code_and_type_p (result_decl
, RESULT_DECL
, field_type
))
1774 tree component_ref
= STRIP_NOPS (TREE_OPERAND (init_expr
, 1));
1775 if (!field_access_p (component_ref
, field_decl
, field_type
))
1781 /* Subroutine of field_accessor_p.
1783 Assuming that INIT_EXPR has already had its code and type checked,
1784 determine if it is a "reference" accessor for FIELD_DECL
1785 (of type FIELD_REFERENCE_TYPE).
1787 Specifically, a simple accessor within struct S of the form:
1788 T& get_field () { return m_field; }
1789 should have a constexpr_fn_retval (saved_tree) of the form:
1798 <field (FIELD_DECL)>>>>>>. */
1800 reference_accessor_p (tree init_expr
, tree field_decl
, tree field_type
,
1801 tree field_reference_type
)
1803 tree result_decl
= TREE_OPERAND (init_expr
, 0);
1804 if (!matches_code_and_type_p (result_decl
, RESULT_DECL
, field_reference_type
))
1807 tree field_pointer_type
= build_pointer_type (field_type
);
1808 tree addr_expr
= STRIP_NOPS (TREE_OPERAND (init_expr
, 1));
1809 if (!matches_code_and_type_p (addr_expr
, ADDR_EXPR
, field_pointer_type
))
1812 tree component_ref
= STRIP_NOPS (TREE_OPERAND (addr_expr
, 0));
1814 if (!field_access_p (component_ref
, field_decl
, field_type
))
1820 /* Return the class of the `this' or explicit object parameter of FN. */
1823 class_of_object_parm (const_tree fn
)
1825 tree fntype
= TREE_TYPE (fn
);
1826 if (DECL_XOBJ_MEMBER_FUNCTION_P (fn
))
1827 return non_reference (TREE_VALUE (TYPE_ARG_TYPES (fntype
)));
1828 return class_of_this_parm (fntype
);
1831 /* Return true if FN is an accessor method for FIELD_DECL.
1832 i.e. a method of the form { return FIELD; }, with no
1835 If CONST_P, then additionally require that FN be a const
1839 field_accessor_p (tree fn
, tree field_decl
, bool const_p
)
1841 if (TREE_CODE (fn
) != FUNCTION_DECL
)
1844 /* We don't yet support looking up static data, just fields. */
1845 if (TREE_CODE (field_decl
) != FIELD_DECL
)
1848 if (!DECL_OBJECT_MEMBER_FUNCTION_P (fn
))
1851 /* If the field is accessed via a const "this" argument, verify
1852 that the "this" parameter is const. */
1855 tree this_class
= class_of_object_parm (fn
);
1856 if (!TYPE_READONLY (this_class
))
1860 tree saved_tree
= DECL_SAVED_TREE (fn
);
1862 if (saved_tree
== NULL_TREE
)
1865 /* Attempt to extract a single return value from the function,
1867 tree retval
= constexpr_fn_retval (saved_tree
);
1868 if (retval
== NULL_TREE
|| retval
== error_mark_node
)
1870 /* Require an INIT_EXPR. */
1871 if (TREE_CODE (retval
) != INIT_EXPR
)
1873 tree init_expr
= retval
;
1875 /* Determine if this is a simple accessor within struct S of the form:
1876 T get_field () { return m_field; }. */
1877 tree field_type
= TREE_TYPE (field_decl
);
1878 if (cxx_types_compatible_p (TREE_TYPE (init_expr
), field_type
))
1879 return direct_accessor_p (init_expr
, field_decl
, field_type
);
1881 /* Failing that, determine if it is an accessor of the form:
1882 T& get_field () { return m_field; }. */
1883 tree field_reference_type
= cp_build_reference_type (field_type
, false);
1884 if (cxx_types_compatible_p (TREE_TYPE (init_expr
), field_reference_type
))
1885 return reference_accessor_p (init_expr
, field_decl
, field_type
,
1886 field_reference_type
);
1891 /* Callback data for dfs_locate_field_accessor_pre. */
1893 class locate_field_data
1896 locate_field_data (tree field_decl_
, bool const_p_
)
1897 : field_decl (field_decl_
), const_p (const_p_
) {}
1903 /* Return a FUNCTION_DECL that is an "accessor" method for DATA, a FIELD_DECL,
1904 callable via binfo, if one exists, otherwise return NULL_TREE.
1906 Callback for dfs_walk_once_accessible for use within
1907 locate_field_accessor. */
1910 dfs_locate_field_accessor_pre (tree binfo
, void *data
)
1912 locate_field_data
*lfd
= (locate_field_data
*)data
;
1913 tree type
= BINFO_TYPE (binfo
);
1915 vec
<tree
, va_gc
> *member_vec
;
1919 if (!CLASS_TYPE_P (type
))
1922 member_vec
= CLASSTYPE_MEMBER_VEC (type
);
1926 for (i
= 0; vec_safe_iterate (member_vec
, i
, &fn
); ++i
)
1928 if (field_accessor_p (fn
, lfd
->field_decl
, lfd
->const_p
))
1934 /* Return a FUNCTION_DECL that is an "accessor" method for FIELD_DECL,
1935 callable via BASETYPE_PATH, if one exists, otherwise return NULL_TREE. */
1938 locate_field_accessor (tree basetype_path
, tree field_decl
, bool const_p
)
1940 if (TREE_CODE (basetype_path
) != TREE_BINFO
)
1943 /* Walk the hierarchy, looking for a method of some base class that allows
1944 access to the field. */
1945 locate_field_data
lfd (field_decl
, const_p
);
1946 return dfs_walk_once_accessible (basetype_path
, /*friends=*/true,
1947 dfs_locate_field_accessor_pre
,
1951 /* Check throw specifier of OVERRIDER is at least as strict as
1952 the one of BASEFN. This is due to [except.spec]: "If a virtual function
1953 has a non-throwing exception specification, all declarations, including
1954 the definition, of any function that overrides that virtual function in
1955 any derived class shall have a non-throwing exception specification,
1956 unless the overriding function is defined as deleted." */
1959 maybe_check_overriding_exception_spec (tree overrider
, tree basefn
)
1961 maybe_instantiate_noexcept (basefn
);
1962 maybe_instantiate_noexcept (overrider
);
1963 tree base_throw
= TYPE_RAISES_EXCEPTIONS (TREE_TYPE (basefn
));
1964 tree over_throw
= TYPE_RAISES_EXCEPTIONS (TREE_TYPE (overrider
));
1966 if (DECL_INVALID_OVERRIDER_P (overrider
)
1967 /* CWG 1351 added the "unless the overriding function is defined as
1968 deleted" wording. */
1969 || DECL_DELETED_FN (overrider
))
1972 /* Can't check this yet. Pretend this is fine and let
1973 noexcept_override_late_checks check this later. */
1974 if (UNPARSED_NOEXCEPT_SPEC_P (base_throw
)
1975 || UNPARSED_NOEXCEPT_SPEC_P (over_throw
))
1978 /* We also have to defer checking when we're in a template and couldn't
1979 instantiate & evaluate the noexcept to true/false. */
1980 if (processing_template_decl
)
1982 && base_throw
!= noexcept_true_spec
1983 && base_throw
!= noexcept_false_spec
)
1985 && over_throw
!= noexcept_true_spec
1986 && over_throw
!= noexcept_false_spec
))
1989 if (!comp_except_specs (base_throw
, over_throw
, ce_derived
))
1991 auto_diagnostic_group d
;
1992 error ("looser exception specification on overriding virtual function "
1993 "%q+#F", overrider
);
1994 inform (DECL_SOURCE_LOCATION (basefn
),
1995 "overridden function is %q#F", basefn
);
1996 DECL_INVALID_OVERRIDER_P (overrider
) = 1;
2002 /* Check that virtual overrider OVERRIDER is acceptable for base function
2003 BASEFN. Issue diagnostic, and return zero, if unacceptable. */
2006 check_final_overrider (tree overrider
, tree basefn
)
2008 tree over_type
= TREE_TYPE (overrider
);
2009 tree base_type
= TREE_TYPE (basefn
);
2010 tree over_return
= fndecl_declared_return_type (overrider
);
2011 tree base_return
= fndecl_declared_return_type (basefn
);
2015 if (DECL_INVALID_OVERRIDER_P (overrider
))
2018 if (same_type_p (base_return
, over_return
))
2020 else if ((CLASS_TYPE_P (over_return
) && CLASS_TYPE_P (base_return
))
2021 || (TREE_CODE (base_return
) == TREE_CODE (over_return
)
2022 && INDIRECT_TYPE_P (base_return
)))
2024 /* Potentially covariant. */
2025 unsigned base_quals
, over_quals
;
2027 fail
= !INDIRECT_TYPE_P (base_return
);
2030 if (cp_type_quals (base_return
) != cp_type_quals (over_return
))
2033 if (TYPE_REF_P (base_return
)
2034 && (TYPE_REF_IS_RVALUE (base_return
)
2035 != TYPE_REF_IS_RVALUE (over_return
)))
2038 base_return
= TREE_TYPE (base_return
);
2039 over_return
= TREE_TYPE (over_return
);
2041 base_quals
= cp_type_quals (base_return
);
2042 over_quals
= cp_type_quals (over_return
);
2044 if ((base_quals
& over_quals
) != over_quals
)
2047 if (CLASS_TYPE_P (base_return
) && CLASS_TYPE_P (over_return
))
2049 /* Strictly speaking, the standard requires the return type to be
2050 complete even if it only differs in cv-quals, but that seems
2051 like a bug in the wording. */
2052 if (!same_type_ignoring_top_level_qualifiers_p (base_return
,
2055 tree binfo
= lookup_base (over_return
, base_return
,
2056 ba_check
, NULL
, tf_none
);
2058 if (!binfo
|| binfo
== error_mark_node
)
2062 else if (can_convert_standard (TREE_TYPE (base_type
),
2063 TREE_TYPE (over_type
),
2064 tf_warning_or_error
))
2065 /* GNU extension, allow trivial pointer conversions such as
2066 converting to void *, or qualification conversion. */
2068 auto_diagnostic_group d
;
2069 if (pedwarn (DECL_SOURCE_LOCATION (overrider
), 0,
2070 "invalid covariant return type for %q#D", overrider
))
2071 inform (DECL_SOURCE_LOCATION (basefn
),
2072 "overridden function is %q#D", basefn
);
2083 auto_diagnostic_group d
;
2085 error ("invalid covariant return type for %q+#D", overrider
);
2087 error ("conflicting return type specified for %q+#D", overrider
);
2088 inform (DECL_SOURCE_LOCATION (basefn
),
2089 "overridden function is %q#D", basefn
);
2090 DECL_INVALID_OVERRIDER_P (overrider
) = 1;
2094 if (!maybe_check_overriding_exception_spec (overrider
, basefn
))
2097 /* Check for conflicting type attributes. But leave transaction_safe for
2098 set_one_vmethod_tm_attributes. */
2099 if (!comp_type_attributes (over_type
, base_type
)
2100 && !tx_safe_fn_type_p (base_type
)
2101 && !tx_safe_fn_type_p (over_type
))
2103 auto_diagnostic_group d
;
2104 error ("conflicting type attributes specified for %q+#D", overrider
);
2105 inform (DECL_SOURCE_LOCATION (basefn
),
2106 "overridden function is %q#D", basefn
);
2107 DECL_INVALID_OVERRIDER_P (overrider
) = 1;
2111 /* A consteval virtual function shall not override a virtual function that is
2112 not consteval. A consteval virtual function shall not be overridden by a
2113 virtual function that is not consteval. */
2114 if (DECL_IMMEDIATE_FUNCTION_P (overrider
)
2115 != DECL_IMMEDIATE_FUNCTION_P (basefn
))
2117 auto_diagnostic_group d
;
2118 if (DECL_IMMEDIATE_FUNCTION_P (overrider
))
2119 error ("%<consteval%> function %q+D overriding non-%<consteval%> "
2120 "function", overrider
);
2122 error ("non-%<consteval%> function %q+D overriding %<consteval%> "
2123 "function", overrider
);
2124 inform (DECL_SOURCE_LOCATION (basefn
),
2125 "overridden function is %qD", basefn
);
2126 DECL_INVALID_OVERRIDER_P (overrider
) = 1;
2130 /* A function declared transaction_safe_dynamic that overrides a function
2131 declared transaction_safe (but not transaction_safe_dynamic) is
2133 if (tx_safe_fn_type_p (base_type
)
2134 && lookup_attribute ("transaction_safe_dynamic",
2135 DECL_ATTRIBUTES (overrider
))
2136 && !lookup_attribute ("transaction_safe_dynamic",
2137 DECL_ATTRIBUTES (basefn
)))
2139 auto_diagnostic_group d
;
2140 error_at (DECL_SOURCE_LOCATION (overrider
),
2141 "%qD declared %<transaction_safe_dynamic%>", overrider
);
2142 inform (DECL_SOURCE_LOCATION (basefn
),
2143 "overriding %qD declared %<transaction_safe%>", basefn
);
2146 if (DECL_DELETED_FN (basefn
) != DECL_DELETED_FN (overrider
))
2148 if (DECL_DELETED_FN (overrider
))
2150 auto_diagnostic_group d
;
2151 error ("deleted function %q+D overriding non-deleted function",
2153 inform (DECL_SOURCE_LOCATION (basefn
),
2154 "overridden function is %qD", basefn
);
2155 maybe_explain_implicit_delete (overrider
);
2159 auto_diagnostic_group d
;
2160 error ("non-deleted function %q+D overriding deleted function",
2162 inform (DECL_SOURCE_LOCATION (basefn
),
2163 "overridden function is %qD", basefn
);
2168 if (!DECL_HAS_CONTRACTS_P (basefn
) && DECL_HAS_CONTRACTS_P (overrider
))
2170 auto_diagnostic_group d
;
2171 error ("function with contracts %q+D overriding contractless function",
2173 inform (DECL_SOURCE_LOCATION (basefn
),
2174 "overridden function is %qD", basefn
);
2177 else if (DECL_HAS_CONTRACTS_P (basefn
) && !DECL_HAS_CONTRACTS_P (overrider
))
2179 /* We're inheriting basefn's contracts; create a copy of them but
2180 replace references to their parms to our parms. */
2181 inherit_base_contracts (overrider
, basefn
);
2183 else if (DECL_HAS_CONTRACTS_P (basefn
) && DECL_HAS_CONTRACTS_P (overrider
))
2185 /* We're in the process of completing the overrider's class, which means
2186 our conditions definitely are not parsed so simply chain on the
2187 basefn for later checking.
2189 Note that OVERRIDER's contracts will have been fully parsed at the
2190 point the deferred match is run. */
2191 defer_guarded_contract_match (overrider
, basefn
, DECL_CONTRACTS (basefn
));
2194 if (DECL_FINAL_P (basefn
))
2196 auto_diagnostic_group d
;
2197 error ("virtual function %q+D overriding final function", overrider
);
2198 inform (DECL_SOURCE_LOCATION (basefn
),
2199 "overridden function is %qD", basefn
);
2205 /* Given a class TYPE, and a function decl FNDECL, look for
2206 virtual functions in TYPE's hierarchy which FNDECL overrides.
2207 We do not look in TYPE itself, only its bases.
2209 Returns nonzero, if we find any. Set FNDECL's DECL_VIRTUAL_P, if we
2210 find that it overrides anything.
2212 We check that every function which is overridden, is correctly
2216 look_for_overrides (tree type
, tree fndecl
)
2218 tree binfo
= TYPE_BINFO (type
);
2223 /* A constructor for a class T does not override a function T
2225 if (DECL_CONSTRUCTOR_P (fndecl
))
2228 for (ix
= 0; BINFO_BASE_ITERATE (binfo
, ix
, base_binfo
); ix
++)
2230 tree basetype
= BINFO_TYPE (base_binfo
);
2232 if (TYPE_POLYMORPHIC_P (basetype
))
2233 found
+= look_for_overrides_r (basetype
, fndecl
);
2238 /* Look in TYPE for virtual functions with the same signature as
2242 look_for_overrides_here (tree type
, tree fndecl
)
2244 tree ovl
= get_class_binding (type
, DECL_NAME (fndecl
));
2246 for (ovl_iterator
iter (ovl
); iter
; ++iter
)
2250 if (!DECL_VIRTUAL_P (fn
))
2251 /* Not a virtual. */;
2252 else if (DECL_CONTEXT (fn
) != type
)
2253 /* Introduced with a using declaration. */;
2254 else if (DECL_STATIC_FUNCTION_P (fndecl
)
2255 || DECL_XOBJ_MEMBER_FUNCTION_P (fndecl
))
2257 tree btypes
= TYPE_ARG_TYPES (TREE_TYPE (fn
));
2258 tree dtypes
= TYPE_ARG_TYPES (TREE_TYPE (fndecl
));
2259 dtypes
= DECL_XOBJ_MEMBER_FUNCTION_P (fndecl
) ? TREE_CHAIN (dtypes
)
2261 if (compparms (TREE_CHAIN (btypes
), dtypes
))
2264 else if (same_signature_p (fndecl
, fn
))
2271 /* Look in TYPE for virtual functions overridden by FNDECL. Check both
2272 TYPE itself and its bases. */
2275 look_for_overrides_r (tree type
, tree fndecl
)
2277 tree fn
= look_for_overrides_here (type
, fndecl
);
2280 if (DECL_STATIC_FUNCTION_P (fndecl
))
2282 /* A static member function cannot match an inherited
2283 virtual member function. */
2284 auto_diagnostic_group d
;
2285 error ("%q+#D cannot be declared", fndecl
);
2286 error (" since %q+#D declared in base class", fn
);
2288 else if (DECL_XOBJ_MEMBER_FUNCTION_P (fndecl
))
2290 auto_diagnostic_group d
;
2291 error_at (DECL_SOURCE_LOCATION (fndecl
),
2292 "explicit object member function "
2293 "overrides virtual function");
2294 inform (DECL_SOURCE_LOCATION (fn
),
2295 "virtual function declared here");
2299 /* It's definitely virtual, even if not explicitly set. */
2300 DECL_VIRTUAL_P (fndecl
) = 1;
2301 check_final_overrider (fndecl
, fn
);
2306 /* We failed to find one declared in this class. Look in its bases. */
2307 return look_for_overrides (type
, fndecl
);
2310 /* Called via dfs_walk from dfs_get_pure_virtuals. */
2313 dfs_get_pure_virtuals (tree binfo
, void *data
)
2315 tree type
= (tree
) data
;
2317 /* We're not interested in primary base classes; the derived class
2318 of which they are a primary base will contain the information we
2320 if (!BINFO_PRIMARY_P (binfo
))
2324 for (virtuals
= BINFO_VIRTUALS (binfo
);
2326 virtuals
= TREE_CHAIN (virtuals
))
2327 if (DECL_PURE_VIRTUAL_P (BV_FN (virtuals
)))
2328 vec_safe_push (CLASSTYPE_PURE_VIRTUALS (type
), BV_FN (virtuals
));
2334 /* Set CLASSTYPE_PURE_VIRTUALS for TYPE. */
2337 get_pure_virtuals (tree type
)
2339 /* Clear the CLASSTYPE_PURE_VIRTUALS list; whatever is already there
2340 is going to be overridden. */
2341 CLASSTYPE_PURE_VIRTUALS (type
) = NULL
;
2342 /* Now, run through all the bases which are not primary bases, and
2343 collect the pure virtual functions. We look at the vtable in
2344 each class to determine what pure virtual functions are present.
2345 (A primary base is not interesting because the derived class of
2346 which it is a primary base will contain vtable entries for the
2347 pure virtuals in the base class. */
2348 dfs_walk_once (TYPE_BINFO (type
), NULL
, dfs_get_pure_virtuals
, type
);
2351 /* Debug info for C++ classes can get very large; try to avoid
2352 emitting it everywhere.
2354 Note that this optimization wins even when the target supports
2355 BINCL (if only slightly), and reduces the amount of work for the
2359 maybe_suppress_debug_info (tree t
)
2361 if (write_symbols
== NO_DEBUG
)
2364 /* We might have set this earlier in cp_finish_decl. */
2365 TYPE_DECL_SUPPRESS_DEBUG (TYPE_MAIN_DECL (t
)) = 0;
2367 /* Always emit the information for each class every time. */
2368 if (flag_emit_class_debug_always
)
2371 /* If we already know how we're handling this class, handle debug info
2373 if (CLASSTYPE_INTERFACE_KNOWN (t
))
2375 if (CLASSTYPE_INTERFACE_ONLY (t
))
2376 TYPE_DECL_SUPPRESS_DEBUG (TYPE_MAIN_DECL (t
)) = 1;
2377 /* else don't set it. */
2379 /* If the class has a vtable, write out the debug info along with
2381 else if (TYPE_CONTAINS_VPTR_P (t
))
2382 TYPE_DECL_SUPPRESS_DEBUG (TYPE_MAIN_DECL (t
)) = 1;
2384 /* Otherwise, just emit the debug info normally. */
2387 /* Note that we want debugging information for a base class of a class
2388 whose vtable is being emitted. Normally, this would happen because
2389 calling the constructor for a derived class implies calling the
2390 constructors for all bases, which involve initializing the
2391 appropriate vptr with the vtable for the base class; but in the
2392 presence of optimization, this initialization may be optimized
2393 away, so we tell finish_vtable_vardecl that we want the debugging
2394 information anyway. */
2397 dfs_debug_mark (tree binfo
, void * /*data*/)
2399 tree t
= BINFO_TYPE (binfo
);
2401 if (CLASSTYPE_DEBUG_REQUESTED (t
))
2402 return dfs_skip_bases
;
2404 CLASSTYPE_DEBUG_REQUESTED (t
) = 1;
2409 /* Write out the debugging information for TYPE, whose vtable is being
2410 emitted. Also walk through our bases and note that we want to
2411 write out information for them. This avoids the problem of not
2412 writing any debug info for intermediate basetypes whose
2413 constructors, and thus the references to their vtables, and thus
2414 the vtables themselves, were optimized away. */
2417 note_debug_info_needed (tree type
)
2419 if (TYPE_DECL_SUPPRESS_DEBUG (TYPE_NAME (type
)))
2421 TYPE_DECL_SUPPRESS_DEBUG (TYPE_NAME (type
)) = 0;
2422 rest_of_type_compilation (type
, namespace_bindings_p ());
2425 dfs_walk_all (TYPE_BINFO (type
), dfs_debug_mark
, NULL
, 0);
2428 /* Helper for lookup_conversions_r. TO_TYPE is the type converted to
2429 by a conversion op in base BINFO. VIRTUAL_DEPTH is nonzero if
2430 BINFO is morally virtual, and VIRTUALNESS is nonzero if virtual
2431 bases have been encountered already in the tree walk. PARENT_CONVS
2432 is the list of lists of conversion functions that could hide CONV
2433 and OTHER_CONVS is the list of lists of conversion functions that
2434 could hide or be hidden by CONV, should virtualness be involved in
2435 the hierarchy. Merely checking the conversion op's name is not
2436 enough because two conversion operators to the same type can have
2437 different names. Return nonzero if we are visible. */
2440 check_hidden_convs (tree binfo
, int virtual_depth
, int virtualness
,
2441 tree to_type
, tree parent_convs
, tree other_convs
)
2445 /* See if we are hidden by a parent conversion. */
2446 for (level
= parent_convs
; level
; level
= TREE_CHAIN (level
))
2447 for (probe
= TREE_VALUE (level
); probe
; probe
= TREE_CHAIN (probe
))
2448 if (same_type_p (to_type
, TREE_TYPE (probe
)))
2451 if (virtual_depth
|| virtualness
)
2453 /* In a virtual hierarchy, we could be hidden, or could hide a
2454 conversion function on the other_convs list. */
2455 for (level
= other_convs
; level
; level
= TREE_CHAIN (level
))
2461 if (!(virtual_depth
|| TREE_STATIC (level
)))
2462 /* Neither is morally virtual, so cannot hide each other. */
2465 if (!TREE_VALUE (level
))
2466 /* They evaporated away already. */
2469 they_hide_us
= (virtual_depth
2470 && original_binfo (binfo
, TREE_PURPOSE (level
)));
2471 we_hide_them
= (!they_hide_us
&& TREE_STATIC (level
)
2472 && original_binfo (TREE_PURPOSE (level
), binfo
));
2474 if (!(we_hide_them
|| they_hide_us
))
2475 /* Neither is within the other, so no hiding can occur. */
2478 for (prev
= &TREE_VALUE (level
), other
= *prev
; other
;)
2480 if (same_type_p (to_type
, TREE_TYPE (other
)))
2483 /* We are hidden. */
2488 /* We hide the other one. */
2489 other
= TREE_CHAIN (other
);
2494 prev
= &TREE_CHAIN (other
);
2502 /* Helper for lookup_conversions_r. PARENT_CONVS is a list of lists
2503 of conversion functions, the first slot will be for the current
2504 binfo, if MY_CONVS is non-NULL. CHILD_CONVS is the list of lists
2505 of conversion functions from children of the current binfo,
2506 concatenated with conversions from elsewhere in the hierarchy --
2507 that list begins with OTHER_CONVS. Return a single list of lists
2508 containing only conversions from the current binfo and its
2512 split_conversions (tree my_convs
, tree parent_convs
,
2513 tree child_convs
, tree other_convs
)
2518 /* Remove the original other_convs portion from child_convs. */
2519 for (prev
= NULL
, t
= child_convs
;
2520 t
!= other_convs
; prev
= t
, t
= TREE_CHAIN (t
))
2524 TREE_CHAIN (prev
) = NULL_TREE
;
2526 child_convs
= NULL_TREE
;
2528 /* Attach the child convs to any we had at this level. */
2531 my_convs
= parent_convs
;
2532 TREE_CHAIN (my_convs
) = child_convs
;
2535 my_convs
= child_convs
;
2540 /* Worker for lookup_conversions. Lookup conversion functions in
2541 BINFO and its children. VIRTUAL_DEPTH is nonzero, if BINFO is in a
2542 morally virtual base, and VIRTUALNESS is nonzero, if we've
2543 encountered virtual bases already in the tree walk. PARENT_CONVS
2544 is a list of conversions within parent binfos. OTHER_CONVS are
2545 conversions found elsewhere in the tree. Return the conversions
2546 found within this portion of the graph in CONVS. Return nonzero if
2547 we encountered virtualness. We keep template and non-template
2548 conversions separate, to avoid unnecessary type comparisons.
2550 The located conversion functions are held in lists of lists. The
2551 TREE_VALUE of the outer list is the list of conversion functions
2552 found in a particular binfo. The TREE_PURPOSE of both the outer
2553 and inner lists is the binfo at which those conversions were
2554 found. TREE_STATIC is set for those lists within of morally
2555 virtual binfos. The TREE_VALUE of the inner list is the conversion
2556 function or overload itself. The TREE_TYPE of each inner list node
2557 is the converted-to type. */
2560 lookup_conversions_r (tree binfo
, int virtual_depth
, int virtualness
,
2561 tree parent_convs
, tree other_convs
, tree
*convs
)
2563 int my_virtualness
= 0;
2564 tree my_convs
= NULL_TREE
;
2565 tree child_convs
= NULL_TREE
;
2567 /* If we have no conversion operators, then don't look. */
2568 if (!TYPE_HAS_CONVERSION (BINFO_TYPE (binfo
)))
2575 if (BINFO_VIRTUAL_P (binfo
))
2578 /* First, locate the unhidden ones at this level. */
2579 if (tree conv
= get_class_binding (BINFO_TYPE (binfo
), conv_op_identifier
))
2580 for (ovl_iterator
iter (conv
); iter
; ++iter
)
2583 tree type
= DECL_CONV_FN_TYPE (fn
);
2585 if (TREE_CODE (fn
) != TEMPLATE_DECL
&& type_uses_auto (type
))
2588 type
= DECL_CONV_FN_TYPE (fn
);
2591 if (check_hidden_convs (binfo
, virtual_depth
, virtualness
,
2592 type
, parent_convs
, other_convs
))
2594 my_convs
= tree_cons (binfo
, fn
, my_convs
);
2595 TREE_TYPE (my_convs
) = type
;
2598 TREE_STATIC (my_convs
) = 1;
2606 parent_convs
= tree_cons (binfo
, my_convs
, parent_convs
);
2608 TREE_STATIC (parent_convs
) = 1;
2611 child_convs
= other_convs
;
2613 /* Now iterate over each base, looking for more conversions. */
2616 for (i
= 0; BINFO_BASE_ITERATE (binfo
, i
, base_binfo
); i
++)
2619 unsigned base_virtualness
;
2621 base_virtualness
= lookup_conversions_r (base_binfo
,
2622 virtual_depth
, virtualness
,
2623 parent_convs
, child_convs
,
2625 if (base_virtualness
)
2626 my_virtualness
= virtualness
= 1;
2627 child_convs
= chainon (base_convs
, child_convs
);
2630 *convs
= split_conversions (my_convs
, parent_convs
,
2631 child_convs
, other_convs
);
2633 return my_virtualness
;
2636 /* Return a TREE_LIST containing all the non-hidden user-defined
2637 conversion functions for TYPE (and its base-classes). The
2638 TREE_VALUE of each node is the FUNCTION_DECL of the conversion
2639 function. The TREE_PURPOSE is the BINFO from which the conversion
2640 functions in this node were selected. This function is effectively
2641 performing a set of member lookups as lookup_fnfield does, but
2642 using the type being converted to as the unique key, rather than the
2646 lookup_conversions (tree type
)
2650 complete_type (type
);
2651 if (!CLASS_TYPE_P (type
) || !TYPE_BINFO (type
))
2654 lookup_conversions_r (TYPE_BINFO (type
), 0, 0, NULL_TREE
, NULL_TREE
, &convs
);
2656 tree list
= NULL_TREE
;
2658 /* Flatten the list-of-lists */
2659 for (; convs
; convs
= TREE_CHAIN (convs
))
2663 for (probe
= TREE_VALUE (convs
); probe
; probe
= next
)
2665 next
= TREE_CHAIN (probe
);
2667 TREE_CHAIN (probe
) = list
;
2675 /* Returns the binfo of the first direct or indirect virtual base derived
2676 from BINFO, or NULL if binfo is not via virtual. */
2679 binfo_from_vbase (tree binfo
)
2681 for (; binfo
; binfo
= BINFO_INHERITANCE_CHAIN (binfo
))
2683 if (BINFO_VIRTUAL_P (binfo
))
2689 /* Returns the binfo of the first direct or indirect virtual base derived
2690 from BINFO up to the TREE_TYPE, LIMIT, or NULL if binfo is not
2694 binfo_via_virtual (tree binfo
, tree limit
)
2696 if (limit
&& !CLASSTYPE_VBASECLASSES (limit
))
2697 /* LIMIT has no virtual bases, so BINFO cannot be via one. */
2700 for (; binfo
&& !SAME_BINFO_TYPE_P (BINFO_TYPE (binfo
), limit
);
2701 binfo
= BINFO_INHERITANCE_CHAIN (binfo
))
2703 if (BINFO_VIRTUAL_P (binfo
))
2709 /* BINFO is for a base class in some hierarchy. Return true iff it is a
2713 binfo_direct_p (tree binfo
)
2715 tree d_binfo
= BINFO_INHERITANCE_CHAIN (binfo
);
2716 if (BINFO_INHERITANCE_CHAIN (d_binfo
))
2717 /* A second inheritance chain means indirect. */
2719 if (!BINFO_VIRTUAL_P (binfo
))
2720 /* Non-virtual, so only one inheritance chain means direct. */
2722 /* A virtual base looks like a direct base, so we need to look through the
2723 direct bases to see if it's there. */
2725 for (int i
= 0; BINFO_BASE_ITERATE (d_binfo
, i
, b_binfo
); ++i
)
2726 if (b_binfo
== binfo
)
2731 /* BINFO is a base binfo in the complete type BINFO_TYPE (HERE).
2732 Find the equivalent binfo within whatever graph HERE is located.
2733 This is the inverse of original_binfo. */
2736 copied_binfo (tree binfo
, tree here
)
2738 tree result
= NULL_TREE
;
2740 if (BINFO_VIRTUAL_P (binfo
))
2744 for (t
= here
; BINFO_INHERITANCE_CHAIN (t
);
2745 t
= BINFO_INHERITANCE_CHAIN (t
))
2748 result
= binfo_for_vbase (BINFO_TYPE (binfo
), BINFO_TYPE (t
));
2750 else if (BINFO_INHERITANCE_CHAIN (binfo
))
2756 cbinfo
= copied_binfo (BINFO_INHERITANCE_CHAIN (binfo
), here
);
2757 for (ix
= 0; BINFO_BASE_ITERATE (cbinfo
, ix
, base_binfo
); ix
++)
2758 if (SAME_BINFO_TYPE_P (BINFO_TYPE (base_binfo
), BINFO_TYPE (binfo
)))
2760 result
= base_binfo
;
2766 gcc_assert (SAME_BINFO_TYPE_P (BINFO_TYPE (here
), BINFO_TYPE (binfo
)));
2770 gcc_assert (result
);
2775 binfo_for_vbase (tree base
, tree t
)
2779 vec
<tree
, va_gc
> *vbases
;
2781 for (vbases
= CLASSTYPE_VBASECLASSES (t
), ix
= 0;
2782 vec_safe_iterate (vbases
, ix
, &binfo
); ix
++)
2783 if (SAME_BINFO_TYPE_P (BINFO_TYPE (binfo
), base
))
2788 /* BINFO is some base binfo of HERE, within some other
2789 hierarchy. Return the equivalent binfo, but in the hierarchy
2790 dominated by HERE. This is the inverse of copied_binfo. If BINFO
2791 is not a base binfo of HERE, returns NULL_TREE. */
2794 original_binfo (tree binfo
, tree here
)
2798 if (SAME_BINFO_TYPE_P (BINFO_TYPE (binfo
), BINFO_TYPE (here
)))
2800 else if (BINFO_VIRTUAL_P (binfo
))
2801 result
= (CLASSTYPE_VBASECLASSES (BINFO_TYPE (here
))
2802 ? binfo_for_vbase (BINFO_TYPE (binfo
), BINFO_TYPE (here
))
2804 else if (BINFO_INHERITANCE_CHAIN (binfo
))
2808 base_binfos
= original_binfo (BINFO_INHERITANCE_CHAIN (binfo
), here
);
2814 for (ix
= 0; (base_binfo
= BINFO_BASE_BINFO (base_binfos
, ix
)); ix
++)
2815 if (SAME_BINFO_TYPE_P (BINFO_TYPE (base_binfo
),
2816 BINFO_TYPE (binfo
)))
2818 result
= base_binfo
;
2827 /* True iff TYPE has any dependent bases (and therefore we can't say
2828 definitively that another class is not a base of an instantiation of
2832 any_dependent_bases_p (tree type
)
2834 if (!type
|| !CLASS_TYPE_P (type
) || !uses_template_parms (type
))
2837 /* If we haven't set TYPE_BINFO yet, we don't know anything about the bases.
2838 Return false because in this situation we aren't actually looking up names
2839 in the scope of the class, so it doesn't matter whether it has dependent
2841 if (!TYPE_BINFO (type
))
2846 FOR_EACH_VEC_SAFE_ELT (BINFO_BASE_BINFOS (TYPE_BINFO (type
)), i
, base_binfo
)
2847 if (BINFO_DEPENDENT_BASE_P (base_binfo
))