Fix cygwin performance loss on linpack.
[official-gcc.git] / gcc / tree-ssa-alias.c
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1 /* Alias analysis for trees.
2 Copyright (C) 2004-2015 Free Software Foundation, Inc.
3 Contributed by Diego Novillo <dnovillo@redhat.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 #include "config.h"
22 #include "system.h"
23 #include "coretypes.h"
24 #include "backend.h"
25 #include "target.h"
26 #include "rtl.h"
27 #include "tree.h"
28 #include "gimple.h"
29 #include "timevar.h" /* for TV_ALIAS_STMT_WALK */
30 #include "ssa.h"
31 #include "cgraph.h"
32 #include "tree-pretty-print.h"
33 #include "alias.h"
34 #include "fold-const.h"
36 #include "langhooks.h"
37 #include "dumpfile.h"
38 #include "tree-eh.h"
39 #include "tree-dfa.h"
40 #include "ipa-reference.h"
42 /* Broad overview of how alias analysis on gimple works:
44 Statements clobbering or using memory are linked through the
45 virtual operand factored use-def chain. The virtual operand
46 is unique per function, its symbol is accessible via gimple_vop (cfun).
47 Virtual operands are used for efficiently walking memory statements
48 in the gimple IL and are useful for things like value-numbering as
49 a generation count for memory references.
51 SSA_NAME pointers may have associated points-to information
52 accessible via the SSA_NAME_PTR_INFO macro. Flow-insensitive
53 points-to information is (re-)computed by the TODO_rebuild_alias
54 pass manager todo. Points-to information is also used for more
55 precise tracking of call-clobbered and call-used variables and
56 related disambiguations.
58 This file contains functions for disambiguating memory references,
59 the so called alias-oracle and tools for walking of the gimple IL.
61 The main alias-oracle entry-points are
63 bool stmt_may_clobber_ref_p (gimple *, tree)
65 This function queries if a statement may invalidate (parts of)
66 the memory designated by the reference tree argument.
68 bool ref_maybe_used_by_stmt_p (gimple *, tree)
70 This function queries if a statement may need (parts of) the
71 memory designated by the reference tree argument.
73 There are variants of these functions that only handle the call
74 part of a statement, call_may_clobber_ref_p and ref_maybe_used_by_call_p.
75 Note that these do not disambiguate against a possible call lhs.
77 bool refs_may_alias_p (tree, tree)
79 This function tries to disambiguate two reference trees.
81 bool ptr_deref_may_alias_global_p (tree)
83 This function queries if dereferencing a pointer variable may
84 alias global memory.
86 More low-level disambiguators are available and documented in
87 this file. Low-level disambiguators dealing with points-to
88 information are in tree-ssa-structalias.c. */
91 /* Query statistics for the different low-level disambiguators.
92 A high-level query may trigger multiple of them. */
94 static struct {
95 unsigned HOST_WIDE_INT refs_may_alias_p_may_alias;
96 unsigned HOST_WIDE_INT refs_may_alias_p_no_alias;
97 unsigned HOST_WIDE_INT ref_maybe_used_by_call_p_may_alias;
98 unsigned HOST_WIDE_INT ref_maybe_used_by_call_p_no_alias;
99 unsigned HOST_WIDE_INT call_may_clobber_ref_p_may_alias;
100 unsigned HOST_WIDE_INT call_may_clobber_ref_p_no_alias;
101 } alias_stats;
103 void
104 dump_alias_stats (FILE *s)
106 fprintf (s, "\nAlias oracle query stats:\n");
107 fprintf (s, " refs_may_alias_p: "
108 HOST_WIDE_INT_PRINT_DEC" disambiguations, "
109 HOST_WIDE_INT_PRINT_DEC" queries\n",
110 alias_stats.refs_may_alias_p_no_alias,
111 alias_stats.refs_may_alias_p_no_alias
112 + alias_stats.refs_may_alias_p_may_alias);
113 fprintf (s, " ref_maybe_used_by_call_p: "
114 HOST_WIDE_INT_PRINT_DEC" disambiguations, "
115 HOST_WIDE_INT_PRINT_DEC" queries\n",
116 alias_stats.ref_maybe_used_by_call_p_no_alias,
117 alias_stats.refs_may_alias_p_no_alias
118 + alias_stats.ref_maybe_used_by_call_p_may_alias);
119 fprintf (s, " call_may_clobber_ref_p: "
120 HOST_WIDE_INT_PRINT_DEC" disambiguations, "
121 HOST_WIDE_INT_PRINT_DEC" queries\n",
122 alias_stats.call_may_clobber_ref_p_no_alias,
123 alias_stats.call_may_clobber_ref_p_no_alias
124 + alias_stats.call_may_clobber_ref_p_may_alias);
125 dump_alias_stats_in_alias_c (s);
129 /* Return true, if dereferencing PTR may alias with a global variable. */
131 bool
132 ptr_deref_may_alias_global_p (tree ptr)
134 struct ptr_info_def *pi;
136 /* If we end up with a pointer constant here that may point
137 to global memory. */
138 if (TREE_CODE (ptr) != SSA_NAME)
139 return true;
141 pi = SSA_NAME_PTR_INFO (ptr);
143 /* If we do not have points-to information for this variable,
144 we have to punt. */
145 if (!pi)
146 return true;
148 /* ??? This does not use TBAA to prune globals ptr may not access. */
149 return pt_solution_includes_global (&pi->pt);
152 /* Return true if dereferencing PTR may alias DECL.
153 The caller is responsible for applying TBAA to see if PTR
154 may access DECL at all. */
156 static bool
157 ptr_deref_may_alias_decl_p (tree ptr, tree decl)
159 struct ptr_info_def *pi;
161 /* Conversions are irrelevant for points-to information and
162 data-dependence analysis can feed us those. */
163 STRIP_NOPS (ptr);
165 /* Anything we do not explicilty handle aliases. */
166 if ((TREE_CODE (ptr) != SSA_NAME
167 && TREE_CODE (ptr) != ADDR_EXPR
168 && TREE_CODE (ptr) != POINTER_PLUS_EXPR)
169 || !POINTER_TYPE_P (TREE_TYPE (ptr))
170 || (TREE_CODE (decl) != VAR_DECL
171 && TREE_CODE (decl) != PARM_DECL
172 && TREE_CODE (decl) != RESULT_DECL))
173 return true;
175 /* Disregard pointer offsetting. */
176 if (TREE_CODE (ptr) == POINTER_PLUS_EXPR)
180 ptr = TREE_OPERAND (ptr, 0);
182 while (TREE_CODE (ptr) == POINTER_PLUS_EXPR);
183 return ptr_deref_may_alias_decl_p (ptr, decl);
186 /* ADDR_EXPR pointers either just offset another pointer or directly
187 specify the pointed-to set. */
188 if (TREE_CODE (ptr) == ADDR_EXPR)
190 tree base = get_base_address (TREE_OPERAND (ptr, 0));
191 if (base
192 && (TREE_CODE (base) == MEM_REF
193 || TREE_CODE (base) == TARGET_MEM_REF))
194 ptr = TREE_OPERAND (base, 0);
195 else if (base
196 && DECL_P (base))
197 return base == decl;
198 else if (base
199 && CONSTANT_CLASS_P (base))
200 return false;
201 else
202 return true;
205 /* Non-aliased variables can not be pointed to. */
206 if (!may_be_aliased (decl))
207 return false;
209 /* If we do not have useful points-to information for this pointer
210 we cannot disambiguate anything else. */
211 pi = SSA_NAME_PTR_INFO (ptr);
212 if (!pi)
213 return true;
215 return pt_solution_includes (&pi->pt, decl);
218 /* Return true if dereferenced PTR1 and PTR2 may alias.
219 The caller is responsible for applying TBAA to see if accesses
220 through PTR1 and PTR2 may conflict at all. */
222 bool
223 ptr_derefs_may_alias_p (tree ptr1, tree ptr2)
225 struct ptr_info_def *pi1, *pi2;
227 /* Conversions are irrelevant for points-to information and
228 data-dependence analysis can feed us those. */
229 STRIP_NOPS (ptr1);
230 STRIP_NOPS (ptr2);
232 /* Disregard pointer offsetting. */
233 if (TREE_CODE (ptr1) == POINTER_PLUS_EXPR)
237 ptr1 = TREE_OPERAND (ptr1, 0);
239 while (TREE_CODE (ptr1) == POINTER_PLUS_EXPR);
240 return ptr_derefs_may_alias_p (ptr1, ptr2);
242 if (TREE_CODE (ptr2) == POINTER_PLUS_EXPR)
246 ptr2 = TREE_OPERAND (ptr2, 0);
248 while (TREE_CODE (ptr2) == POINTER_PLUS_EXPR);
249 return ptr_derefs_may_alias_p (ptr1, ptr2);
252 /* ADDR_EXPR pointers either just offset another pointer or directly
253 specify the pointed-to set. */
254 if (TREE_CODE (ptr1) == ADDR_EXPR)
256 tree base = get_base_address (TREE_OPERAND (ptr1, 0));
257 if (base
258 && (TREE_CODE (base) == MEM_REF
259 || TREE_CODE (base) == TARGET_MEM_REF))
260 return ptr_derefs_may_alias_p (TREE_OPERAND (base, 0), ptr2);
261 else if (base
262 && DECL_P (base))
263 return ptr_deref_may_alias_decl_p (ptr2, base);
264 else
265 return true;
267 if (TREE_CODE (ptr2) == ADDR_EXPR)
269 tree base = get_base_address (TREE_OPERAND (ptr2, 0));
270 if (base
271 && (TREE_CODE (base) == MEM_REF
272 || TREE_CODE (base) == TARGET_MEM_REF))
273 return ptr_derefs_may_alias_p (ptr1, TREE_OPERAND (base, 0));
274 else if (base
275 && DECL_P (base))
276 return ptr_deref_may_alias_decl_p (ptr1, base);
277 else
278 return true;
281 /* From here we require SSA name pointers. Anything else aliases. */
282 if (TREE_CODE (ptr1) != SSA_NAME
283 || TREE_CODE (ptr2) != SSA_NAME
284 || !POINTER_TYPE_P (TREE_TYPE (ptr1))
285 || !POINTER_TYPE_P (TREE_TYPE (ptr2)))
286 return true;
288 /* We may end up with two empty points-to solutions for two same pointers.
289 In this case we still want to say both pointers alias, so shortcut
290 that here. */
291 if (ptr1 == ptr2)
292 return true;
294 /* If we do not have useful points-to information for either pointer
295 we cannot disambiguate anything else. */
296 pi1 = SSA_NAME_PTR_INFO (ptr1);
297 pi2 = SSA_NAME_PTR_INFO (ptr2);
298 if (!pi1 || !pi2)
299 return true;
301 /* ??? This does not use TBAA to prune decls from the intersection
302 that not both pointers may access. */
303 return pt_solutions_intersect (&pi1->pt, &pi2->pt);
306 /* Return true if dereferencing PTR may alias *REF.
307 The caller is responsible for applying TBAA to see if PTR
308 may access *REF at all. */
310 static bool
311 ptr_deref_may_alias_ref_p_1 (tree ptr, ao_ref *ref)
313 tree base = ao_ref_base (ref);
315 if (TREE_CODE (base) == MEM_REF
316 || TREE_CODE (base) == TARGET_MEM_REF)
317 return ptr_derefs_may_alias_p (ptr, TREE_OPERAND (base, 0));
318 else if (DECL_P (base))
319 return ptr_deref_may_alias_decl_p (ptr, base);
321 return true;
324 /* Returns whether reference REF to BASE may refer to global memory. */
326 static bool
327 ref_may_alias_global_p_1 (tree base)
329 if (DECL_P (base))
330 return is_global_var (base);
331 else if (TREE_CODE (base) == MEM_REF
332 || TREE_CODE (base) == TARGET_MEM_REF)
333 return ptr_deref_may_alias_global_p (TREE_OPERAND (base, 0));
334 return true;
337 bool
338 ref_may_alias_global_p (ao_ref *ref)
340 tree base = ao_ref_base (ref);
341 return ref_may_alias_global_p_1 (base);
344 bool
345 ref_may_alias_global_p (tree ref)
347 tree base = get_base_address (ref);
348 return ref_may_alias_global_p_1 (base);
351 /* Return true whether STMT may clobber global memory. */
353 bool
354 stmt_may_clobber_global_p (gimple *stmt)
356 tree lhs;
358 if (!gimple_vdef (stmt))
359 return false;
361 /* ??? We can ask the oracle whether an artificial pointer
362 dereference with a pointer with points-to information covering
363 all global memory (what about non-address taken memory?) maybe
364 clobbered by this call. As there is at the moment no convenient
365 way of doing that without generating garbage do some manual
366 checking instead.
367 ??? We could make a NULL ao_ref argument to the various
368 predicates special, meaning any global memory. */
370 switch (gimple_code (stmt))
372 case GIMPLE_ASSIGN:
373 lhs = gimple_assign_lhs (stmt);
374 return (TREE_CODE (lhs) != SSA_NAME
375 && ref_may_alias_global_p (lhs));
376 case GIMPLE_CALL:
377 return true;
378 default:
379 return true;
384 /* Dump alias information on FILE. */
386 void
387 dump_alias_info (FILE *file)
389 unsigned i;
390 const char *funcname
391 = lang_hooks.decl_printable_name (current_function_decl, 2);
392 tree var;
394 fprintf (file, "\n\nAlias information for %s\n\n", funcname);
396 fprintf (file, "Aliased symbols\n\n");
398 FOR_EACH_LOCAL_DECL (cfun, i, var)
400 if (may_be_aliased (var))
401 dump_variable (file, var);
404 fprintf (file, "\nCall clobber information\n");
406 fprintf (file, "\nESCAPED");
407 dump_points_to_solution (file, &cfun->gimple_df->escaped);
409 fprintf (file, "\n\nFlow-insensitive points-to information\n\n");
411 for (i = 1; i < num_ssa_names; i++)
413 tree ptr = ssa_name (i);
414 struct ptr_info_def *pi;
416 if (ptr == NULL_TREE
417 || !POINTER_TYPE_P (TREE_TYPE (ptr))
418 || SSA_NAME_IN_FREE_LIST (ptr))
419 continue;
421 pi = SSA_NAME_PTR_INFO (ptr);
422 if (pi)
423 dump_points_to_info_for (file, ptr);
426 fprintf (file, "\n");
430 /* Dump alias information on stderr. */
432 DEBUG_FUNCTION void
433 debug_alias_info (void)
435 dump_alias_info (stderr);
439 /* Dump the points-to set *PT into FILE. */
441 void
442 dump_points_to_solution (FILE *file, struct pt_solution *pt)
444 if (pt->anything)
445 fprintf (file, ", points-to anything");
447 if (pt->nonlocal)
448 fprintf (file, ", points-to non-local");
450 if (pt->escaped)
451 fprintf (file, ", points-to escaped");
453 if (pt->ipa_escaped)
454 fprintf (file, ", points-to unit escaped");
456 if (pt->null)
457 fprintf (file, ", points-to NULL");
459 if (pt->vars)
461 fprintf (file, ", points-to vars: ");
462 dump_decl_set (file, pt->vars);
463 if (pt->vars_contains_nonlocal
464 && pt->vars_contains_escaped_heap)
465 fprintf (file, " (nonlocal, escaped heap)");
466 else if (pt->vars_contains_nonlocal
467 && pt->vars_contains_escaped)
468 fprintf (file, " (nonlocal, escaped)");
469 else if (pt->vars_contains_nonlocal)
470 fprintf (file, " (nonlocal)");
471 else if (pt->vars_contains_escaped_heap)
472 fprintf (file, " (escaped heap)");
473 else if (pt->vars_contains_escaped)
474 fprintf (file, " (escaped)");
479 /* Unified dump function for pt_solution. */
481 DEBUG_FUNCTION void
482 debug (pt_solution &ref)
484 dump_points_to_solution (stderr, &ref);
487 DEBUG_FUNCTION void
488 debug (pt_solution *ptr)
490 if (ptr)
491 debug (*ptr);
492 else
493 fprintf (stderr, "<nil>\n");
497 /* Dump points-to information for SSA_NAME PTR into FILE. */
499 void
500 dump_points_to_info_for (FILE *file, tree ptr)
502 struct ptr_info_def *pi = SSA_NAME_PTR_INFO (ptr);
504 print_generic_expr (file, ptr, dump_flags);
506 if (pi)
507 dump_points_to_solution (file, &pi->pt);
508 else
509 fprintf (file, ", points-to anything");
511 fprintf (file, "\n");
515 /* Dump points-to information for VAR into stderr. */
517 DEBUG_FUNCTION void
518 debug_points_to_info_for (tree var)
520 dump_points_to_info_for (stderr, var);
524 /* Initializes the alias-oracle reference representation *R from REF. */
526 void
527 ao_ref_init (ao_ref *r, tree ref)
529 r->ref = ref;
530 r->base = NULL_TREE;
531 r->offset = 0;
532 r->size = -1;
533 r->max_size = -1;
534 r->ref_alias_set = -1;
535 r->base_alias_set = -1;
536 r->volatile_p = ref ? TREE_THIS_VOLATILE (ref) : false;
539 /* Returns the base object of the memory reference *REF. */
541 tree
542 ao_ref_base (ao_ref *ref)
544 bool reverse;
546 if (ref->base)
547 return ref->base;
548 ref->base = get_ref_base_and_extent (ref->ref, &ref->offset, &ref->size,
549 &ref->max_size, &reverse);
550 return ref->base;
553 /* Returns the base object alias set of the memory reference *REF. */
555 alias_set_type
556 ao_ref_base_alias_set (ao_ref *ref)
558 tree base_ref;
559 if (ref->base_alias_set != -1)
560 return ref->base_alias_set;
561 if (!ref->ref)
562 return 0;
563 base_ref = ref->ref;
564 while (handled_component_p (base_ref))
565 base_ref = TREE_OPERAND (base_ref, 0);
566 ref->base_alias_set = get_alias_set (base_ref);
567 return ref->base_alias_set;
570 /* Returns the reference alias set of the memory reference *REF. */
572 alias_set_type
573 ao_ref_alias_set (ao_ref *ref)
575 if (ref->ref_alias_set != -1)
576 return ref->ref_alias_set;
577 ref->ref_alias_set = get_alias_set (ref->ref);
578 return ref->ref_alias_set;
581 /* Init an alias-oracle reference representation from a gimple pointer
582 PTR and a gimple size SIZE in bytes. If SIZE is NULL_TREE then the
583 size is assumed to be unknown. The access is assumed to be only
584 to or after of the pointer target, not before it. */
586 void
587 ao_ref_init_from_ptr_and_size (ao_ref *ref, tree ptr, tree size)
589 HOST_WIDE_INT t, size_hwi, extra_offset = 0;
590 ref->ref = NULL_TREE;
591 if (TREE_CODE (ptr) == SSA_NAME)
593 gimple *stmt = SSA_NAME_DEF_STMT (ptr);
594 if (gimple_assign_single_p (stmt)
595 && gimple_assign_rhs_code (stmt) == ADDR_EXPR)
596 ptr = gimple_assign_rhs1 (stmt);
597 else if (is_gimple_assign (stmt)
598 && gimple_assign_rhs_code (stmt) == POINTER_PLUS_EXPR
599 && TREE_CODE (gimple_assign_rhs2 (stmt)) == INTEGER_CST)
601 ptr = gimple_assign_rhs1 (stmt);
602 extra_offset = BITS_PER_UNIT
603 * int_cst_value (gimple_assign_rhs2 (stmt));
607 if (TREE_CODE (ptr) == ADDR_EXPR)
609 ref->base = get_addr_base_and_unit_offset (TREE_OPERAND (ptr, 0), &t);
610 if (ref->base)
611 ref->offset = BITS_PER_UNIT * t;
612 else
614 size = NULL_TREE;
615 ref->offset = 0;
616 ref->base = get_base_address (TREE_OPERAND (ptr, 0));
619 else
621 ref->base = build2 (MEM_REF, char_type_node,
622 ptr, null_pointer_node);
623 ref->offset = 0;
625 ref->offset += extra_offset;
626 if (size
627 && tree_fits_shwi_p (size)
628 && (size_hwi = tree_to_shwi (size)) <= HOST_WIDE_INT_MAX / BITS_PER_UNIT)
629 ref->max_size = ref->size = size_hwi * BITS_PER_UNIT;
630 else
631 ref->max_size = ref->size = -1;
632 ref->ref_alias_set = 0;
633 ref->base_alias_set = 0;
634 ref->volatile_p = false;
637 /* Return 1 if TYPE1 and TYPE2 are to be considered equivalent for the
638 purpose of TBAA. Return 0 if they are distinct and -1 if we cannot
639 decide. */
641 static inline int
642 same_type_for_tbaa (tree type1, tree type2)
644 type1 = TYPE_MAIN_VARIANT (type1);
645 type2 = TYPE_MAIN_VARIANT (type2);
647 /* If we would have to do structural comparison bail out. */
648 if (TYPE_STRUCTURAL_EQUALITY_P (type1)
649 || TYPE_STRUCTURAL_EQUALITY_P (type2))
650 return -1;
652 /* Compare the canonical types. */
653 if (TYPE_CANONICAL (type1) == TYPE_CANONICAL (type2))
654 return 1;
656 /* ??? Array types are not properly unified in all cases as we have
657 spurious changes in the index types for example. Removing this
658 causes all sorts of problems with the Fortran frontend. */
659 if (TREE_CODE (type1) == ARRAY_TYPE
660 && TREE_CODE (type2) == ARRAY_TYPE)
661 return -1;
663 /* ??? In Ada, an lvalue of an unconstrained type can be used to access an
664 object of one of its constrained subtypes, e.g. when a function with an
665 unconstrained parameter passed by reference is called on an object and
666 inlined. But, even in the case of a fixed size, type and subtypes are
667 not equivalent enough as to share the same TYPE_CANONICAL, since this
668 would mean that conversions between them are useless, whereas they are
669 not (e.g. type and subtypes can have different modes). So, in the end,
670 they are only guaranteed to have the same alias set. */
671 if (get_alias_set (type1) == get_alias_set (type2))
672 return -1;
674 /* The types are known to be not equal. */
675 return 0;
678 /* Determine if the two component references REF1 and REF2 which are
679 based on access types TYPE1 and TYPE2 and of which at least one is based
680 on an indirect reference may alias. REF2 is the only one that can
681 be a decl in which case REF2_IS_DECL is true.
682 REF1_ALIAS_SET, BASE1_ALIAS_SET, REF2_ALIAS_SET and BASE2_ALIAS_SET
683 are the respective alias sets. */
685 static bool
686 aliasing_component_refs_p (tree ref1,
687 alias_set_type ref1_alias_set,
688 alias_set_type base1_alias_set,
689 HOST_WIDE_INT offset1, HOST_WIDE_INT max_size1,
690 tree ref2,
691 alias_set_type ref2_alias_set,
692 alias_set_type base2_alias_set,
693 HOST_WIDE_INT offset2, HOST_WIDE_INT max_size2,
694 bool ref2_is_decl)
696 /* If one reference is a component references through pointers try to find a
697 common base and apply offset based disambiguation. This handles
698 for example
699 struct A { int i; int j; } *q;
700 struct B { struct A a; int k; } *p;
701 disambiguating q->i and p->a.j. */
702 tree base1, base2;
703 tree type1, type2;
704 tree *refp;
705 int same_p;
707 /* Choose bases and base types to search for. */
708 base1 = ref1;
709 while (handled_component_p (base1))
710 base1 = TREE_OPERAND (base1, 0);
711 type1 = TREE_TYPE (base1);
712 base2 = ref2;
713 while (handled_component_p (base2))
714 base2 = TREE_OPERAND (base2, 0);
715 type2 = TREE_TYPE (base2);
717 /* Now search for the type1 in the access path of ref2. This
718 would be a common base for doing offset based disambiguation on. */
719 refp = &ref2;
720 while (handled_component_p (*refp)
721 && same_type_for_tbaa (TREE_TYPE (*refp), type1) == 0)
722 refp = &TREE_OPERAND (*refp, 0);
723 same_p = same_type_for_tbaa (TREE_TYPE (*refp), type1);
724 /* If we couldn't compare types we have to bail out. */
725 if (same_p == -1)
726 return true;
727 else if (same_p == 1)
729 HOST_WIDE_INT offadj, sztmp, msztmp;
730 bool reverse;
731 get_ref_base_and_extent (*refp, &offadj, &sztmp, &msztmp, &reverse);
732 offset2 -= offadj;
733 get_ref_base_and_extent (base1, &offadj, &sztmp, &msztmp, &reverse);
734 offset1 -= offadj;
735 return ranges_overlap_p (offset1, max_size1, offset2, max_size2);
737 /* If we didn't find a common base, try the other way around. */
738 refp = &ref1;
739 while (handled_component_p (*refp)
740 && same_type_for_tbaa (TREE_TYPE (*refp), type2) == 0)
741 refp = &TREE_OPERAND (*refp, 0);
742 same_p = same_type_for_tbaa (TREE_TYPE (*refp), type2);
743 /* If we couldn't compare types we have to bail out. */
744 if (same_p == -1)
745 return true;
746 else if (same_p == 1)
748 HOST_WIDE_INT offadj, sztmp, msztmp;
749 bool reverse;
750 get_ref_base_and_extent (*refp, &offadj, &sztmp, &msztmp, &reverse);
751 offset1 -= offadj;
752 get_ref_base_and_extent (base2, &offadj, &sztmp, &msztmp, &reverse);
753 offset2 -= offadj;
754 return ranges_overlap_p (offset1, max_size1, offset2, max_size2);
757 /* If we have two type access paths B1.path1 and B2.path2 they may
758 only alias if either B1 is in B2.path2 or B2 is in B1.path1.
759 But we can still have a path that goes B1.path1...B2.path2 with
760 a part that we do not see. So we can only disambiguate now
761 if there is no B2 in the tail of path1 and no B1 on the
762 tail of path2. */
763 if (base1_alias_set == ref2_alias_set
764 || alias_set_subset_of (base1_alias_set, ref2_alias_set))
765 return true;
766 /* If this is ptr vs. decl then we know there is no ptr ... decl path. */
767 if (!ref2_is_decl)
768 return (base2_alias_set == ref1_alias_set
769 || alias_set_subset_of (base2_alias_set, ref1_alias_set));
770 return false;
773 /* Return true if we can determine that component references REF1 and REF2,
774 that are within a common DECL, cannot overlap. */
776 static bool
777 nonoverlapping_component_refs_of_decl_p (tree ref1, tree ref2)
779 auto_vec<tree, 16> component_refs1;
780 auto_vec<tree, 16> component_refs2;
782 /* Create the stack of handled components for REF1. */
783 while (handled_component_p (ref1))
785 component_refs1.safe_push (ref1);
786 ref1 = TREE_OPERAND (ref1, 0);
788 if (TREE_CODE (ref1) == MEM_REF)
790 if (!integer_zerop (TREE_OPERAND (ref1, 1)))
791 goto may_overlap;
792 ref1 = TREE_OPERAND (TREE_OPERAND (ref1, 0), 0);
795 /* Create the stack of handled components for REF2. */
796 while (handled_component_p (ref2))
798 component_refs2.safe_push (ref2);
799 ref2 = TREE_OPERAND (ref2, 0);
801 if (TREE_CODE (ref2) == MEM_REF)
803 if (!integer_zerop (TREE_OPERAND (ref2, 1)))
804 goto may_overlap;
805 ref2 = TREE_OPERAND (TREE_OPERAND (ref2, 0), 0);
808 /* We must have the same base DECL. */
809 gcc_assert (ref1 == ref2);
811 /* Pop the stacks in parallel and examine the COMPONENT_REFs of the same
812 rank. This is sufficient because we start from the same DECL and you
813 cannot reference several fields at a time with COMPONENT_REFs (unlike
814 with ARRAY_RANGE_REFs for arrays) so you always need the same number
815 of them to access a sub-component, unless you're in a union, in which
816 case the return value will precisely be false. */
817 while (true)
821 if (component_refs1.is_empty ())
822 goto may_overlap;
823 ref1 = component_refs1.pop ();
825 while (!RECORD_OR_UNION_TYPE_P (TREE_TYPE (TREE_OPERAND (ref1, 0))));
829 if (component_refs2.is_empty ())
830 goto may_overlap;
831 ref2 = component_refs2.pop ();
833 while (!RECORD_OR_UNION_TYPE_P (TREE_TYPE (TREE_OPERAND (ref2, 0))));
835 /* Beware of BIT_FIELD_REF. */
836 if (TREE_CODE (ref1) != COMPONENT_REF
837 || TREE_CODE (ref2) != COMPONENT_REF)
838 goto may_overlap;
840 tree field1 = TREE_OPERAND (ref1, 1);
841 tree field2 = TREE_OPERAND (ref2, 1);
843 /* ??? We cannot simply use the type of operand #0 of the refs here
844 as the Fortran compiler smuggles type punning into COMPONENT_REFs
845 for common blocks instead of using unions like everyone else. */
846 tree type1 = DECL_CONTEXT (field1);
847 tree type2 = DECL_CONTEXT (field2);
849 /* We cannot disambiguate fields in a union or qualified union. */
850 if (type1 != type2 || TREE_CODE (type1) != RECORD_TYPE)
851 goto may_overlap;
853 /* Different fields of the same record type cannot overlap.
854 ??? Bitfields can overlap at RTL level so punt on them. */
855 if (field1 != field2)
857 component_refs1.release ();
858 component_refs2.release ();
859 return !(DECL_BIT_FIELD (field1) && DECL_BIT_FIELD (field2));
863 may_overlap:
864 component_refs1.release ();
865 component_refs2.release ();
866 return false;
869 /* qsort compare function to sort FIELD_DECLs after their
870 DECL_FIELD_CONTEXT TYPE_UID. */
872 static inline int
873 ncr_compar (const void *field1_, const void *field2_)
875 const_tree field1 = *(const_tree *) const_cast <void *>(field1_);
876 const_tree field2 = *(const_tree *) const_cast <void *>(field2_);
877 unsigned int uid1 = TYPE_UID (DECL_FIELD_CONTEXT (field1));
878 unsigned int uid2 = TYPE_UID (DECL_FIELD_CONTEXT (field2));
879 if (uid1 < uid2)
880 return -1;
881 else if (uid1 > uid2)
882 return 1;
883 return 0;
886 /* Return true if we can determine that the fields referenced cannot
887 overlap for any pair of objects. */
889 static bool
890 nonoverlapping_component_refs_p (const_tree x, const_tree y)
892 if (!flag_strict_aliasing
893 || !x || !y
894 || TREE_CODE (x) != COMPONENT_REF
895 || TREE_CODE (y) != COMPONENT_REF)
896 return false;
898 auto_vec<const_tree, 16> fieldsx;
899 while (TREE_CODE (x) == COMPONENT_REF)
901 tree field = TREE_OPERAND (x, 1);
902 tree type = DECL_FIELD_CONTEXT (field);
903 if (TREE_CODE (type) == RECORD_TYPE)
904 fieldsx.safe_push (field);
905 x = TREE_OPERAND (x, 0);
907 if (fieldsx.length () == 0)
908 return false;
909 auto_vec<const_tree, 16> fieldsy;
910 while (TREE_CODE (y) == COMPONENT_REF)
912 tree field = TREE_OPERAND (y, 1);
913 tree type = DECL_FIELD_CONTEXT (field);
914 if (TREE_CODE (type) == RECORD_TYPE)
915 fieldsy.safe_push (TREE_OPERAND (y, 1));
916 y = TREE_OPERAND (y, 0);
918 if (fieldsy.length () == 0)
919 return false;
921 /* Most common case first. */
922 if (fieldsx.length () == 1
923 && fieldsy.length () == 1)
924 return ((DECL_FIELD_CONTEXT (fieldsx[0])
925 == DECL_FIELD_CONTEXT (fieldsy[0]))
926 && fieldsx[0] != fieldsy[0]
927 && !(DECL_BIT_FIELD (fieldsx[0]) && DECL_BIT_FIELD (fieldsy[0])));
929 if (fieldsx.length () == 2)
931 if (ncr_compar (&fieldsx[0], &fieldsx[1]) == 1)
932 std::swap (fieldsx[0], fieldsx[1]);
934 else
935 fieldsx.qsort (ncr_compar);
937 if (fieldsy.length () == 2)
939 if (ncr_compar (&fieldsy[0], &fieldsy[1]) == 1)
940 std::swap (fieldsy[0], fieldsy[1]);
942 else
943 fieldsy.qsort (ncr_compar);
945 unsigned i = 0, j = 0;
948 const_tree fieldx = fieldsx[i];
949 const_tree fieldy = fieldsy[j];
950 tree typex = DECL_FIELD_CONTEXT (fieldx);
951 tree typey = DECL_FIELD_CONTEXT (fieldy);
952 if (typex == typey)
954 /* We're left with accessing different fields of a structure,
955 no possible overlap, unless they are both bitfields. */
956 if (fieldx != fieldy)
957 return !(DECL_BIT_FIELD (fieldx) && DECL_BIT_FIELD (fieldy));
959 if (TYPE_UID (typex) < TYPE_UID (typey))
961 i++;
962 if (i == fieldsx.length ())
963 break;
965 else
967 j++;
968 if (j == fieldsy.length ())
969 break;
972 while (1);
974 return false;
978 /* Return true if two memory references based on the variables BASE1
979 and BASE2 constrained to [OFFSET1, OFFSET1 + MAX_SIZE1) and
980 [OFFSET2, OFFSET2 + MAX_SIZE2) may alias. REF1 and REF2
981 if non-NULL are the complete memory reference trees. */
983 static bool
984 decl_refs_may_alias_p (tree ref1, tree base1,
985 HOST_WIDE_INT offset1, HOST_WIDE_INT max_size1,
986 tree ref2, tree base2,
987 HOST_WIDE_INT offset2, HOST_WIDE_INT max_size2)
989 gcc_checking_assert (DECL_P (base1) && DECL_P (base2));
991 /* If both references are based on different variables, they cannot alias. */
992 if (base1 != base2)
993 return false;
995 /* If both references are based on the same variable, they cannot alias if
996 the accesses do not overlap. */
997 if (!ranges_overlap_p (offset1, max_size1, offset2, max_size2))
998 return false;
1000 /* For components with variable position, the above test isn't sufficient,
1001 so we disambiguate component references manually. */
1002 if (ref1 && ref2
1003 && handled_component_p (ref1) && handled_component_p (ref2)
1004 && nonoverlapping_component_refs_of_decl_p (ref1, ref2))
1005 return false;
1007 return true;
1010 /* Return true if an indirect reference based on *PTR1 constrained
1011 to [OFFSET1, OFFSET1 + MAX_SIZE1) may alias a variable based on BASE2
1012 constrained to [OFFSET2, OFFSET2 + MAX_SIZE2). *PTR1 and BASE2 have
1013 the alias sets BASE1_ALIAS_SET and BASE2_ALIAS_SET which can be -1
1014 in which case they are computed on-demand. REF1 and REF2
1015 if non-NULL are the complete memory reference trees. */
1017 static bool
1018 indirect_ref_may_alias_decl_p (tree ref1 ATTRIBUTE_UNUSED, tree base1,
1019 HOST_WIDE_INT offset1,
1020 HOST_WIDE_INT max_size1 ATTRIBUTE_UNUSED,
1021 alias_set_type ref1_alias_set,
1022 alias_set_type base1_alias_set,
1023 tree ref2 ATTRIBUTE_UNUSED, tree base2,
1024 HOST_WIDE_INT offset2, HOST_WIDE_INT max_size2,
1025 alias_set_type ref2_alias_set,
1026 alias_set_type base2_alias_set, bool tbaa_p)
1028 tree ptr1;
1029 tree ptrtype1, dbase2;
1030 HOST_WIDE_INT offset1p = offset1, offset2p = offset2;
1031 HOST_WIDE_INT doffset1, doffset2;
1033 gcc_checking_assert ((TREE_CODE (base1) == MEM_REF
1034 || TREE_CODE (base1) == TARGET_MEM_REF)
1035 && DECL_P (base2));
1037 ptr1 = TREE_OPERAND (base1, 0);
1039 /* The offset embedded in MEM_REFs can be negative. Bias them
1040 so that the resulting offset adjustment is positive. */
1041 offset_int moff = mem_ref_offset (base1);
1042 moff = wi::lshift (moff, LOG2_BITS_PER_UNIT);
1043 if (wi::neg_p (moff))
1044 offset2p += (-moff).to_short_addr ();
1045 else
1046 offset1p += moff.to_short_addr ();
1048 /* If only one reference is based on a variable, they cannot alias if
1049 the pointer access is beyond the extent of the variable access.
1050 (the pointer base cannot validly point to an offset less than zero
1051 of the variable).
1052 ??? IVOPTs creates bases that do not honor this restriction,
1053 so do not apply this optimization for TARGET_MEM_REFs. */
1054 if (TREE_CODE (base1) != TARGET_MEM_REF
1055 && !ranges_overlap_p (MAX (0, offset1p), -1, offset2p, max_size2))
1056 return false;
1057 /* They also cannot alias if the pointer may not point to the decl. */
1058 if (!ptr_deref_may_alias_decl_p (ptr1, base2))
1059 return false;
1061 /* Disambiguations that rely on strict aliasing rules follow. */
1062 if (!flag_strict_aliasing || !tbaa_p)
1063 return true;
1065 ptrtype1 = TREE_TYPE (TREE_OPERAND (base1, 1));
1067 /* If the alias set for a pointer access is zero all bets are off. */
1068 if (base1_alias_set == -1)
1069 base1_alias_set = get_deref_alias_set (ptrtype1);
1070 if (base1_alias_set == 0)
1071 return true;
1072 if (base2_alias_set == -1)
1073 base2_alias_set = get_alias_set (base2);
1075 /* When we are trying to disambiguate an access with a pointer dereference
1076 as base versus one with a decl as base we can use both the size
1077 of the decl and its dynamic type for extra disambiguation.
1078 ??? We do not know anything about the dynamic type of the decl
1079 other than that its alias-set contains base2_alias_set as a subset
1080 which does not help us here. */
1081 /* As we know nothing useful about the dynamic type of the decl just
1082 use the usual conflict check rather than a subset test.
1083 ??? We could introduce -fvery-strict-aliasing when the language
1084 does not allow decls to have a dynamic type that differs from their
1085 static type. Then we can check
1086 !alias_set_subset_of (base1_alias_set, base2_alias_set) instead. */
1087 if (base1_alias_set != base2_alias_set
1088 && !alias_sets_conflict_p (base1_alias_set, base2_alias_set))
1089 return false;
1090 /* If the size of the access relevant for TBAA through the pointer
1091 is bigger than the size of the decl we can't possibly access the
1092 decl via that pointer. */
1093 if (DECL_SIZE (base2) && COMPLETE_TYPE_P (TREE_TYPE (ptrtype1))
1094 && TREE_CODE (DECL_SIZE (base2)) == INTEGER_CST
1095 && TREE_CODE (TYPE_SIZE (TREE_TYPE (ptrtype1))) == INTEGER_CST
1096 /* ??? This in turn may run afoul when a decl of type T which is
1097 a member of union type U is accessed through a pointer to
1098 type U and sizeof T is smaller than sizeof U. */
1099 && TREE_CODE (TREE_TYPE (ptrtype1)) != UNION_TYPE
1100 && TREE_CODE (TREE_TYPE (ptrtype1)) != QUAL_UNION_TYPE
1101 && tree_int_cst_lt (DECL_SIZE (base2), TYPE_SIZE (TREE_TYPE (ptrtype1))))
1102 return false;
1104 if (!ref2)
1105 return true;
1107 /* If the decl is accessed via a MEM_REF, reconstruct the base
1108 we can use for TBAA and an appropriately adjusted offset. */
1109 dbase2 = ref2;
1110 while (handled_component_p (dbase2))
1111 dbase2 = TREE_OPERAND (dbase2, 0);
1112 doffset1 = offset1;
1113 doffset2 = offset2;
1114 if (TREE_CODE (dbase2) == MEM_REF
1115 || TREE_CODE (dbase2) == TARGET_MEM_REF)
1117 offset_int moff = mem_ref_offset (dbase2);
1118 moff = wi::lshift (moff, LOG2_BITS_PER_UNIT);
1119 if (wi::neg_p (moff))
1120 doffset1 -= (-moff).to_short_addr ();
1121 else
1122 doffset2 -= moff.to_short_addr ();
1125 /* If either reference is view-converted, give up now. */
1126 if (same_type_for_tbaa (TREE_TYPE (base1), TREE_TYPE (ptrtype1)) != 1
1127 || same_type_for_tbaa (TREE_TYPE (dbase2), TREE_TYPE (base2)) != 1)
1128 return true;
1130 /* If both references are through the same type, they do not alias
1131 if the accesses do not overlap. This does extra disambiguation
1132 for mixed/pointer accesses but requires strict aliasing.
1133 For MEM_REFs we require that the component-ref offset we computed
1134 is relative to the start of the type which we ensure by
1135 comparing rvalue and access type and disregarding the constant
1136 pointer offset. */
1137 if ((TREE_CODE (base1) != TARGET_MEM_REF
1138 || (!TMR_INDEX (base1) && !TMR_INDEX2 (base1)))
1139 && same_type_for_tbaa (TREE_TYPE (base1), TREE_TYPE (dbase2)) == 1)
1140 return ranges_overlap_p (doffset1, max_size1, doffset2, max_size2);
1142 if (ref1 && ref2
1143 && nonoverlapping_component_refs_p (ref1, ref2))
1144 return false;
1146 /* Do access-path based disambiguation. */
1147 if (ref1 && ref2
1148 && (handled_component_p (ref1) || handled_component_p (ref2)))
1149 return aliasing_component_refs_p (ref1,
1150 ref1_alias_set, base1_alias_set,
1151 offset1, max_size1,
1152 ref2,
1153 ref2_alias_set, base2_alias_set,
1154 offset2, max_size2, true);
1156 return true;
1159 /* Return true if two indirect references based on *PTR1
1160 and *PTR2 constrained to [OFFSET1, OFFSET1 + MAX_SIZE1) and
1161 [OFFSET2, OFFSET2 + MAX_SIZE2) may alias. *PTR1 and *PTR2 have
1162 the alias sets BASE1_ALIAS_SET and BASE2_ALIAS_SET which can be -1
1163 in which case they are computed on-demand. REF1 and REF2
1164 if non-NULL are the complete memory reference trees. */
1166 static bool
1167 indirect_refs_may_alias_p (tree ref1 ATTRIBUTE_UNUSED, tree base1,
1168 HOST_WIDE_INT offset1, HOST_WIDE_INT max_size1,
1169 alias_set_type ref1_alias_set,
1170 alias_set_type base1_alias_set,
1171 tree ref2 ATTRIBUTE_UNUSED, tree base2,
1172 HOST_WIDE_INT offset2, HOST_WIDE_INT max_size2,
1173 alias_set_type ref2_alias_set,
1174 alias_set_type base2_alias_set, bool tbaa_p)
1176 tree ptr1;
1177 tree ptr2;
1178 tree ptrtype1, ptrtype2;
1180 gcc_checking_assert ((TREE_CODE (base1) == MEM_REF
1181 || TREE_CODE (base1) == TARGET_MEM_REF)
1182 && (TREE_CODE (base2) == MEM_REF
1183 || TREE_CODE (base2) == TARGET_MEM_REF));
1185 ptr1 = TREE_OPERAND (base1, 0);
1186 ptr2 = TREE_OPERAND (base2, 0);
1188 /* If both bases are based on pointers they cannot alias if they may not
1189 point to the same memory object or if they point to the same object
1190 and the accesses do not overlap. */
1191 if ((!cfun || gimple_in_ssa_p (cfun))
1192 && operand_equal_p (ptr1, ptr2, 0)
1193 && (((TREE_CODE (base1) != TARGET_MEM_REF
1194 || (!TMR_INDEX (base1) && !TMR_INDEX2 (base1)))
1195 && (TREE_CODE (base2) != TARGET_MEM_REF
1196 || (!TMR_INDEX (base2) && !TMR_INDEX2 (base2))))
1197 || (TREE_CODE (base1) == TARGET_MEM_REF
1198 && TREE_CODE (base2) == TARGET_MEM_REF
1199 && (TMR_STEP (base1) == TMR_STEP (base2)
1200 || (TMR_STEP (base1) && TMR_STEP (base2)
1201 && operand_equal_p (TMR_STEP (base1),
1202 TMR_STEP (base2), 0)))
1203 && (TMR_INDEX (base1) == TMR_INDEX (base2)
1204 || (TMR_INDEX (base1) && TMR_INDEX (base2)
1205 && operand_equal_p (TMR_INDEX (base1),
1206 TMR_INDEX (base2), 0)))
1207 && (TMR_INDEX2 (base1) == TMR_INDEX2 (base2)
1208 || (TMR_INDEX2 (base1) && TMR_INDEX2 (base2)
1209 && operand_equal_p (TMR_INDEX2 (base1),
1210 TMR_INDEX2 (base2), 0))))))
1212 offset_int moff;
1213 /* The offset embedded in MEM_REFs can be negative. Bias them
1214 so that the resulting offset adjustment is positive. */
1215 moff = mem_ref_offset (base1);
1216 moff = wi::lshift (moff, LOG2_BITS_PER_UNIT);
1217 if (wi::neg_p (moff))
1218 offset2 += (-moff).to_short_addr ();
1219 else
1220 offset1 += moff.to_shwi ();
1221 moff = mem_ref_offset (base2);
1222 moff = wi::lshift (moff, LOG2_BITS_PER_UNIT);
1223 if (wi::neg_p (moff))
1224 offset1 += (-moff).to_short_addr ();
1225 else
1226 offset2 += moff.to_short_addr ();
1227 return ranges_overlap_p (offset1, max_size1, offset2, max_size2);
1229 if (!ptr_derefs_may_alias_p (ptr1, ptr2))
1230 return false;
1232 /* Disambiguations that rely on strict aliasing rules follow. */
1233 if (!flag_strict_aliasing || !tbaa_p)
1234 return true;
1236 ptrtype1 = TREE_TYPE (TREE_OPERAND (base1, 1));
1237 ptrtype2 = TREE_TYPE (TREE_OPERAND (base2, 1));
1239 /* If the alias set for a pointer access is zero all bets are off. */
1240 if (base1_alias_set == -1)
1241 base1_alias_set = get_deref_alias_set (ptrtype1);
1242 if (base1_alias_set == 0)
1243 return true;
1244 if (base2_alias_set == -1)
1245 base2_alias_set = get_deref_alias_set (ptrtype2);
1246 if (base2_alias_set == 0)
1247 return true;
1249 /* If both references are through the same type, they do not alias
1250 if the accesses do not overlap. This does extra disambiguation
1251 for mixed/pointer accesses but requires strict aliasing. */
1252 if ((TREE_CODE (base1) != TARGET_MEM_REF
1253 || (!TMR_INDEX (base1) && !TMR_INDEX2 (base1)))
1254 && (TREE_CODE (base2) != TARGET_MEM_REF
1255 || (!TMR_INDEX (base2) && !TMR_INDEX2 (base2)))
1256 && same_type_for_tbaa (TREE_TYPE (base1), TREE_TYPE (ptrtype1)) == 1
1257 && same_type_for_tbaa (TREE_TYPE (base2), TREE_TYPE (ptrtype2)) == 1
1258 && same_type_for_tbaa (TREE_TYPE (ptrtype1),
1259 TREE_TYPE (ptrtype2)) == 1)
1260 return ranges_overlap_p (offset1, max_size1, offset2, max_size2);
1262 /* Do type-based disambiguation. */
1263 if (base1_alias_set != base2_alias_set
1264 && !alias_sets_conflict_p (base1_alias_set, base2_alias_set))
1265 return false;
1267 /* If either reference is view-converted, give up now. */
1268 if (same_type_for_tbaa (TREE_TYPE (base1), TREE_TYPE (ptrtype1)) != 1
1269 || same_type_for_tbaa (TREE_TYPE (base2), TREE_TYPE (ptrtype2)) != 1)
1270 return true;
1272 if (ref1 && ref2
1273 && nonoverlapping_component_refs_p (ref1, ref2))
1274 return false;
1276 /* Do access-path based disambiguation. */
1277 if (ref1 && ref2
1278 && (handled_component_p (ref1) || handled_component_p (ref2)))
1279 return aliasing_component_refs_p (ref1,
1280 ref1_alias_set, base1_alias_set,
1281 offset1, max_size1,
1282 ref2,
1283 ref2_alias_set, base2_alias_set,
1284 offset2, max_size2, false);
1286 return true;
1289 /* Return true, if the two memory references REF1 and REF2 may alias. */
1291 bool
1292 refs_may_alias_p_1 (ao_ref *ref1, ao_ref *ref2, bool tbaa_p)
1294 tree base1, base2;
1295 HOST_WIDE_INT offset1 = 0, offset2 = 0;
1296 HOST_WIDE_INT max_size1 = -1, max_size2 = -1;
1297 bool var1_p, var2_p, ind1_p, ind2_p;
1299 gcc_checking_assert ((!ref1->ref
1300 || TREE_CODE (ref1->ref) == SSA_NAME
1301 || DECL_P (ref1->ref)
1302 || TREE_CODE (ref1->ref) == STRING_CST
1303 || handled_component_p (ref1->ref)
1304 || TREE_CODE (ref1->ref) == MEM_REF
1305 || TREE_CODE (ref1->ref) == TARGET_MEM_REF)
1306 && (!ref2->ref
1307 || TREE_CODE (ref2->ref) == SSA_NAME
1308 || DECL_P (ref2->ref)
1309 || TREE_CODE (ref2->ref) == STRING_CST
1310 || handled_component_p (ref2->ref)
1311 || TREE_CODE (ref2->ref) == MEM_REF
1312 || TREE_CODE (ref2->ref) == TARGET_MEM_REF));
1314 /* Decompose the references into their base objects and the access. */
1315 base1 = ao_ref_base (ref1);
1316 offset1 = ref1->offset;
1317 max_size1 = ref1->max_size;
1318 base2 = ao_ref_base (ref2);
1319 offset2 = ref2->offset;
1320 max_size2 = ref2->max_size;
1322 /* We can end up with registers or constants as bases for example from
1323 *D.1663_44 = VIEW_CONVERT_EXPR<struct DB_LSN>(__tmp$B0F64_59);
1324 which is seen as a struct copy. */
1325 if (TREE_CODE (base1) == SSA_NAME
1326 || TREE_CODE (base1) == CONST_DECL
1327 || TREE_CODE (base1) == CONSTRUCTOR
1328 || TREE_CODE (base1) == ADDR_EXPR
1329 || CONSTANT_CLASS_P (base1)
1330 || TREE_CODE (base2) == SSA_NAME
1331 || TREE_CODE (base2) == CONST_DECL
1332 || TREE_CODE (base2) == CONSTRUCTOR
1333 || TREE_CODE (base2) == ADDR_EXPR
1334 || CONSTANT_CLASS_P (base2))
1335 return false;
1337 /* We can end up referring to code via function and label decls.
1338 As we likely do not properly track code aliases conservatively
1339 bail out. */
1340 if (TREE_CODE (base1) == FUNCTION_DECL
1341 || TREE_CODE (base1) == LABEL_DECL
1342 || TREE_CODE (base2) == FUNCTION_DECL
1343 || TREE_CODE (base2) == LABEL_DECL)
1344 return true;
1346 /* Two volatile accesses always conflict. */
1347 if (ref1->volatile_p
1348 && ref2->volatile_p)
1349 return true;
1351 /* Defer to simple offset based disambiguation if we have
1352 references based on two decls. Do this before defering to
1353 TBAA to handle must-alias cases in conformance with the
1354 GCC extension of allowing type-punning through unions. */
1355 var1_p = DECL_P (base1);
1356 var2_p = DECL_P (base2);
1357 if (var1_p && var2_p)
1358 return decl_refs_may_alias_p (ref1->ref, base1, offset1, max_size1,
1359 ref2->ref, base2, offset2, max_size2);
1361 /* Handle restrict based accesses.
1362 ??? ao_ref_base strips inner MEM_REF [&decl], recover from that
1363 here. */
1364 tree rbase1 = base1;
1365 tree rbase2 = base2;
1366 if (var1_p)
1368 rbase1 = ref1->ref;
1369 if (rbase1)
1370 while (handled_component_p (rbase1))
1371 rbase1 = TREE_OPERAND (rbase1, 0);
1373 if (var2_p)
1375 rbase2 = ref2->ref;
1376 if (rbase2)
1377 while (handled_component_p (rbase2))
1378 rbase2 = TREE_OPERAND (rbase2, 0);
1380 if (rbase1 && rbase2
1381 && (TREE_CODE (base1) == MEM_REF || TREE_CODE (base1) == TARGET_MEM_REF)
1382 && (TREE_CODE (base2) == MEM_REF || TREE_CODE (base2) == TARGET_MEM_REF)
1383 /* If the accesses are in the same restrict clique... */
1384 && MR_DEPENDENCE_CLIQUE (base1) == MR_DEPENDENCE_CLIQUE (base2)
1385 /* But based on different pointers they do not alias. */
1386 && MR_DEPENDENCE_BASE (base1) != MR_DEPENDENCE_BASE (base2))
1387 return false;
1389 ind1_p = (TREE_CODE (base1) == MEM_REF
1390 || TREE_CODE (base1) == TARGET_MEM_REF);
1391 ind2_p = (TREE_CODE (base2) == MEM_REF
1392 || TREE_CODE (base2) == TARGET_MEM_REF);
1394 /* Canonicalize the pointer-vs-decl case. */
1395 if (ind1_p && var2_p)
1397 std::swap (offset1, offset2);
1398 std::swap (max_size1, max_size2);
1399 std::swap (base1, base2);
1400 std::swap (ref1, ref2);
1401 var1_p = true;
1402 ind1_p = false;
1403 var2_p = false;
1404 ind2_p = true;
1407 /* First defer to TBAA if possible. */
1408 if (tbaa_p
1409 && flag_strict_aliasing
1410 && !alias_sets_conflict_p (ao_ref_alias_set (ref1),
1411 ao_ref_alias_set (ref2)))
1412 return false;
1414 /* Dispatch to the pointer-vs-decl or pointer-vs-pointer disambiguators. */
1415 if (var1_p && ind2_p)
1416 return indirect_ref_may_alias_decl_p (ref2->ref, base2,
1417 offset2, max_size2,
1418 ao_ref_alias_set (ref2), -1,
1419 ref1->ref, base1,
1420 offset1, max_size1,
1421 ao_ref_alias_set (ref1),
1422 ao_ref_base_alias_set (ref1),
1423 tbaa_p);
1424 else if (ind1_p && ind2_p)
1425 return indirect_refs_may_alias_p (ref1->ref, base1,
1426 offset1, max_size1,
1427 ao_ref_alias_set (ref1), -1,
1428 ref2->ref, base2,
1429 offset2, max_size2,
1430 ao_ref_alias_set (ref2), -1,
1431 tbaa_p);
1433 gcc_unreachable ();
1436 static bool
1437 refs_may_alias_p (tree ref1, ao_ref *ref2)
1439 ao_ref r1;
1440 ao_ref_init (&r1, ref1);
1441 return refs_may_alias_p_1 (&r1, ref2, true);
1444 bool
1445 refs_may_alias_p (tree ref1, tree ref2)
1447 ao_ref r1, r2;
1448 bool res;
1449 ao_ref_init (&r1, ref1);
1450 ao_ref_init (&r2, ref2);
1451 res = refs_may_alias_p_1 (&r1, &r2, true);
1452 if (res)
1453 ++alias_stats.refs_may_alias_p_may_alias;
1454 else
1455 ++alias_stats.refs_may_alias_p_no_alias;
1456 return res;
1459 /* Returns true if there is a anti-dependence for the STORE that
1460 executes after the LOAD. */
1462 bool
1463 refs_anti_dependent_p (tree load, tree store)
1465 ao_ref r1, r2;
1466 ao_ref_init (&r1, load);
1467 ao_ref_init (&r2, store);
1468 return refs_may_alias_p_1 (&r1, &r2, false);
1471 /* Returns true if there is a output dependence for the stores
1472 STORE1 and STORE2. */
1474 bool
1475 refs_output_dependent_p (tree store1, tree store2)
1477 ao_ref r1, r2;
1478 ao_ref_init (&r1, store1);
1479 ao_ref_init (&r2, store2);
1480 return refs_may_alias_p_1 (&r1, &r2, false);
1483 /* If the call CALL may use the memory reference REF return true,
1484 otherwise return false. */
1486 static bool
1487 ref_maybe_used_by_call_p_1 (gcall *call, ao_ref *ref)
1489 tree base, callee;
1490 unsigned i;
1491 int flags = gimple_call_flags (call);
1493 /* Const functions without a static chain do not implicitly use memory. */
1494 if (!gimple_call_chain (call)
1495 && (flags & (ECF_CONST|ECF_NOVOPS)))
1496 goto process_args;
1498 base = ao_ref_base (ref);
1499 if (!base)
1500 return true;
1502 /* A call that is not without side-effects might involve volatile
1503 accesses and thus conflicts with all other volatile accesses. */
1504 if (ref->volatile_p)
1505 return true;
1507 /* If the reference is based on a decl that is not aliased the call
1508 cannot possibly use it. */
1509 if (DECL_P (base)
1510 && !may_be_aliased (base)
1511 /* But local statics can be used through recursion. */
1512 && !is_global_var (base))
1513 goto process_args;
1515 callee = gimple_call_fndecl (call);
1517 /* Handle those builtin functions explicitly that do not act as
1518 escape points. See tree-ssa-structalias.c:find_func_aliases
1519 for the list of builtins we might need to handle here. */
1520 if (callee != NULL_TREE
1521 && gimple_call_builtin_p (call, BUILT_IN_NORMAL))
1522 switch (DECL_FUNCTION_CODE (callee))
1524 /* All the following functions read memory pointed to by
1525 their second argument. strcat/strncat additionally
1526 reads memory pointed to by the first argument. */
1527 case BUILT_IN_STRCAT:
1528 case BUILT_IN_STRNCAT:
1530 ao_ref dref;
1531 ao_ref_init_from_ptr_and_size (&dref,
1532 gimple_call_arg (call, 0),
1533 NULL_TREE);
1534 if (refs_may_alias_p_1 (&dref, ref, false))
1535 return true;
1537 /* FALLTHRU */
1538 case BUILT_IN_STRCPY:
1539 case BUILT_IN_STRNCPY:
1540 case BUILT_IN_MEMCPY:
1541 case BUILT_IN_MEMMOVE:
1542 case BUILT_IN_MEMPCPY:
1543 case BUILT_IN_STPCPY:
1544 case BUILT_IN_STPNCPY:
1545 case BUILT_IN_TM_MEMCPY:
1546 case BUILT_IN_TM_MEMMOVE:
1548 ao_ref dref;
1549 tree size = NULL_TREE;
1550 if (gimple_call_num_args (call) == 3)
1551 size = gimple_call_arg (call, 2);
1552 ao_ref_init_from_ptr_and_size (&dref,
1553 gimple_call_arg (call, 1),
1554 size);
1555 return refs_may_alias_p_1 (&dref, ref, false);
1557 case BUILT_IN_STRCAT_CHK:
1558 case BUILT_IN_STRNCAT_CHK:
1560 ao_ref dref;
1561 ao_ref_init_from_ptr_and_size (&dref,
1562 gimple_call_arg (call, 0),
1563 NULL_TREE);
1564 if (refs_may_alias_p_1 (&dref, ref, false))
1565 return true;
1567 /* FALLTHRU */
1568 case BUILT_IN_STRCPY_CHK:
1569 case BUILT_IN_STRNCPY_CHK:
1570 case BUILT_IN_MEMCPY_CHK:
1571 case BUILT_IN_MEMMOVE_CHK:
1572 case BUILT_IN_MEMPCPY_CHK:
1573 case BUILT_IN_STPCPY_CHK:
1574 case BUILT_IN_STPNCPY_CHK:
1576 ao_ref dref;
1577 tree size = NULL_TREE;
1578 if (gimple_call_num_args (call) == 4)
1579 size = gimple_call_arg (call, 2);
1580 ao_ref_init_from_ptr_and_size (&dref,
1581 gimple_call_arg (call, 1),
1582 size);
1583 return refs_may_alias_p_1 (&dref, ref, false);
1585 case BUILT_IN_BCOPY:
1587 ao_ref dref;
1588 tree size = gimple_call_arg (call, 2);
1589 ao_ref_init_from_ptr_and_size (&dref,
1590 gimple_call_arg (call, 0),
1591 size);
1592 return refs_may_alias_p_1 (&dref, ref, false);
1595 /* The following functions read memory pointed to by their
1596 first argument. */
1597 CASE_BUILT_IN_TM_LOAD (1):
1598 CASE_BUILT_IN_TM_LOAD (2):
1599 CASE_BUILT_IN_TM_LOAD (4):
1600 CASE_BUILT_IN_TM_LOAD (8):
1601 CASE_BUILT_IN_TM_LOAD (FLOAT):
1602 CASE_BUILT_IN_TM_LOAD (DOUBLE):
1603 CASE_BUILT_IN_TM_LOAD (LDOUBLE):
1604 CASE_BUILT_IN_TM_LOAD (M64):
1605 CASE_BUILT_IN_TM_LOAD (M128):
1606 CASE_BUILT_IN_TM_LOAD (M256):
1607 case BUILT_IN_TM_LOG:
1608 case BUILT_IN_TM_LOG_1:
1609 case BUILT_IN_TM_LOG_2:
1610 case BUILT_IN_TM_LOG_4:
1611 case BUILT_IN_TM_LOG_8:
1612 case BUILT_IN_TM_LOG_FLOAT:
1613 case BUILT_IN_TM_LOG_DOUBLE:
1614 case BUILT_IN_TM_LOG_LDOUBLE:
1615 case BUILT_IN_TM_LOG_M64:
1616 case BUILT_IN_TM_LOG_M128:
1617 case BUILT_IN_TM_LOG_M256:
1618 return ptr_deref_may_alias_ref_p_1 (gimple_call_arg (call, 0), ref);
1620 /* These read memory pointed to by the first argument. */
1621 case BUILT_IN_STRDUP:
1622 case BUILT_IN_STRNDUP:
1623 case BUILT_IN_REALLOC:
1625 ao_ref dref;
1626 tree size = NULL_TREE;
1627 if (gimple_call_num_args (call) == 2)
1628 size = gimple_call_arg (call, 1);
1629 ao_ref_init_from_ptr_and_size (&dref,
1630 gimple_call_arg (call, 0),
1631 size);
1632 return refs_may_alias_p_1 (&dref, ref, false);
1634 /* These read memory pointed to by the first argument. */
1635 case BUILT_IN_INDEX:
1636 case BUILT_IN_STRCHR:
1637 case BUILT_IN_STRRCHR:
1639 ao_ref dref;
1640 ao_ref_init_from_ptr_and_size (&dref,
1641 gimple_call_arg (call, 0),
1642 NULL_TREE);
1643 return refs_may_alias_p_1 (&dref, ref, false);
1645 /* These read memory pointed to by the first argument with size
1646 in the third argument. */
1647 case BUILT_IN_MEMCHR:
1649 ao_ref dref;
1650 ao_ref_init_from_ptr_and_size (&dref,
1651 gimple_call_arg (call, 0),
1652 gimple_call_arg (call, 2));
1653 return refs_may_alias_p_1 (&dref, ref, false);
1655 /* These read memory pointed to by the first and second arguments. */
1656 case BUILT_IN_STRSTR:
1657 case BUILT_IN_STRPBRK:
1659 ao_ref dref;
1660 ao_ref_init_from_ptr_and_size (&dref,
1661 gimple_call_arg (call, 0),
1662 NULL_TREE);
1663 if (refs_may_alias_p_1 (&dref, ref, false))
1664 return true;
1665 ao_ref_init_from_ptr_and_size (&dref,
1666 gimple_call_arg (call, 1),
1667 NULL_TREE);
1668 return refs_may_alias_p_1 (&dref, ref, false);
1671 /* The following builtins do not read from memory. */
1672 case BUILT_IN_FREE:
1673 case BUILT_IN_MALLOC:
1674 case BUILT_IN_POSIX_MEMALIGN:
1675 case BUILT_IN_ALIGNED_ALLOC:
1676 case BUILT_IN_CALLOC:
1677 case BUILT_IN_ALLOCA:
1678 case BUILT_IN_ALLOCA_WITH_ALIGN:
1679 case BUILT_IN_STACK_SAVE:
1680 case BUILT_IN_STACK_RESTORE:
1681 case BUILT_IN_MEMSET:
1682 case BUILT_IN_TM_MEMSET:
1683 case BUILT_IN_MEMSET_CHK:
1684 case BUILT_IN_FREXP:
1685 case BUILT_IN_FREXPF:
1686 case BUILT_IN_FREXPL:
1687 case BUILT_IN_GAMMA_R:
1688 case BUILT_IN_GAMMAF_R:
1689 case BUILT_IN_GAMMAL_R:
1690 case BUILT_IN_LGAMMA_R:
1691 case BUILT_IN_LGAMMAF_R:
1692 case BUILT_IN_LGAMMAL_R:
1693 case BUILT_IN_MODF:
1694 case BUILT_IN_MODFF:
1695 case BUILT_IN_MODFL:
1696 case BUILT_IN_REMQUO:
1697 case BUILT_IN_REMQUOF:
1698 case BUILT_IN_REMQUOL:
1699 case BUILT_IN_SINCOS:
1700 case BUILT_IN_SINCOSF:
1701 case BUILT_IN_SINCOSL:
1702 case BUILT_IN_ASSUME_ALIGNED:
1703 case BUILT_IN_VA_END:
1704 return false;
1705 /* __sync_* builtins and some OpenMP builtins act as threading
1706 barriers. */
1707 #undef DEF_SYNC_BUILTIN
1708 #define DEF_SYNC_BUILTIN(ENUM, NAME, TYPE, ATTRS) case ENUM:
1709 #include "sync-builtins.def"
1710 #undef DEF_SYNC_BUILTIN
1711 case BUILT_IN_GOMP_ATOMIC_START:
1712 case BUILT_IN_GOMP_ATOMIC_END:
1713 case BUILT_IN_GOMP_BARRIER:
1714 case BUILT_IN_GOMP_BARRIER_CANCEL:
1715 case BUILT_IN_GOMP_TASKWAIT:
1716 case BUILT_IN_GOMP_TASKGROUP_END:
1717 case BUILT_IN_GOMP_CRITICAL_START:
1718 case BUILT_IN_GOMP_CRITICAL_END:
1719 case BUILT_IN_GOMP_CRITICAL_NAME_START:
1720 case BUILT_IN_GOMP_CRITICAL_NAME_END:
1721 case BUILT_IN_GOMP_LOOP_END:
1722 case BUILT_IN_GOMP_LOOP_END_CANCEL:
1723 case BUILT_IN_GOMP_ORDERED_START:
1724 case BUILT_IN_GOMP_ORDERED_END:
1725 case BUILT_IN_GOMP_SECTIONS_END:
1726 case BUILT_IN_GOMP_SECTIONS_END_CANCEL:
1727 case BUILT_IN_GOMP_SINGLE_COPY_START:
1728 case BUILT_IN_GOMP_SINGLE_COPY_END:
1729 return true;
1731 default:
1732 /* Fallthru to general call handling. */;
1735 /* Check if base is a global static variable that is not read
1736 by the function. */
1737 if (callee != NULL_TREE
1738 && TREE_CODE (base) == VAR_DECL
1739 && TREE_STATIC (base))
1741 struct cgraph_node *node = cgraph_node::get (callee);
1742 bitmap not_read;
1744 /* FIXME: Callee can be an OMP builtin that does not have a call graph
1745 node yet. We should enforce that there are nodes for all decls in the
1746 IL and remove this check instead. */
1747 if (node
1748 && (not_read = ipa_reference_get_not_read_global (node))
1749 && bitmap_bit_p (not_read, DECL_UID (base)))
1750 goto process_args;
1753 /* Check if the base variable is call-used. */
1754 if (DECL_P (base))
1756 if (pt_solution_includes (gimple_call_use_set (call), base))
1757 return true;
1759 else if ((TREE_CODE (base) == MEM_REF
1760 || TREE_CODE (base) == TARGET_MEM_REF)
1761 && TREE_CODE (TREE_OPERAND (base, 0)) == SSA_NAME)
1763 struct ptr_info_def *pi = SSA_NAME_PTR_INFO (TREE_OPERAND (base, 0));
1764 if (!pi)
1765 return true;
1767 if (pt_solutions_intersect (gimple_call_use_set (call), &pi->pt))
1768 return true;
1770 else
1771 return true;
1773 /* Inspect call arguments for passed-by-value aliases. */
1774 process_args:
1775 for (i = 0; i < gimple_call_num_args (call); ++i)
1777 tree op = gimple_call_arg (call, i);
1778 int flags = gimple_call_arg_flags (call, i);
1780 if (flags & EAF_UNUSED)
1781 continue;
1783 if (TREE_CODE (op) == WITH_SIZE_EXPR)
1784 op = TREE_OPERAND (op, 0);
1786 if (TREE_CODE (op) != SSA_NAME
1787 && !is_gimple_min_invariant (op))
1789 ao_ref r;
1790 ao_ref_init (&r, op);
1791 if (refs_may_alias_p_1 (&r, ref, true))
1792 return true;
1796 return false;
1799 static bool
1800 ref_maybe_used_by_call_p (gcall *call, ao_ref *ref)
1802 bool res;
1803 res = ref_maybe_used_by_call_p_1 (call, ref);
1804 if (res)
1805 ++alias_stats.ref_maybe_used_by_call_p_may_alias;
1806 else
1807 ++alias_stats.ref_maybe_used_by_call_p_no_alias;
1808 return res;
1812 /* If the statement STMT may use the memory reference REF return
1813 true, otherwise return false. */
1815 bool
1816 ref_maybe_used_by_stmt_p (gimple *stmt, ao_ref *ref)
1818 if (is_gimple_assign (stmt))
1820 tree rhs;
1822 /* All memory assign statements are single. */
1823 if (!gimple_assign_single_p (stmt))
1824 return false;
1826 rhs = gimple_assign_rhs1 (stmt);
1827 if (is_gimple_reg (rhs)
1828 || is_gimple_min_invariant (rhs)
1829 || gimple_assign_rhs_code (stmt) == CONSTRUCTOR)
1830 return false;
1832 return refs_may_alias_p (rhs, ref);
1834 else if (is_gimple_call (stmt))
1835 return ref_maybe_used_by_call_p (as_a <gcall *> (stmt), ref);
1836 else if (greturn *return_stmt = dyn_cast <greturn *> (stmt))
1838 tree retval = gimple_return_retval (return_stmt);
1839 if (retval
1840 && TREE_CODE (retval) != SSA_NAME
1841 && !is_gimple_min_invariant (retval)
1842 && refs_may_alias_p (retval, ref))
1843 return true;
1844 /* If ref escapes the function then the return acts as a use. */
1845 tree base = ao_ref_base (ref);
1846 if (!base)
1848 else if (DECL_P (base))
1849 return is_global_var (base);
1850 else if (TREE_CODE (base) == MEM_REF
1851 || TREE_CODE (base) == TARGET_MEM_REF)
1852 return ptr_deref_may_alias_global_p (TREE_OPERAND (base, 0));
1853 return false;
1856 return true;
1859 bool
1860 ref_maybe_used_by_stmt_p (gimple *stmt, tree ref)
1862 ao_ref r;
1863 ao_ref_init (&r, ref);
1864 return ref_maybe_used_by_stmt_p (stmt, &r);
1867 /* If the call in statement CALL may clobber the memory reference REF
1868 return true, otherwise return false. */
1870 bool
1871 call_may_clobber_ref_p_1 (gcall *call, ao_ref *ref)
1873 tree base;
1874 tree callee;
1876 /* If the call is pure or const it cannot clobber anything. */
1877 if (gimple_call_flags (call)
1878 & (ECF_PURE|ECF_CONST|ECF_LOOPING_CONST_OR_PURE|ECF_NOVOPS))
1879 return false;
1880 if (gimple_call_internal_p (call))
1881 switch (gimple_call_internal_fn (call))
1883 /* Treat these internal calls like ECF_PURE for aliasing,
1884 they don't write to any memory the program should care about.
1885 They have important other side-effects, and read memory,
1886 so can't be ECF_NOVOPS. */
1887 case IFN_UBSAN_NULL:
1888 case IFN_UBSAN_BOUNDS:
1889 case IFN_UBSAN_VPTR:
1890 case IFN_UBSAN_OBJECT_SIZE:
1891 case IFN_ASAN_CHECK:
1892 return false;
1893 default:
1894 break;
1897 base = ao_ref_base (ref);
1898 if (!base)
1899 return true;
1901 if (TREE_CODE (base) == SSA_NAME
1902 || CONSTANT_CLASS_P (base))
1903 return false;
1905 /* A call that is not without side-effects might involve volatile
1906 accesses and thus conflicts with all other volatile accesses. */
1907 if (ref->volatile_p)
1908 return true;
1910 /* If the reference is based on a decl that is not aliased the call
1911 cannot possibly clobber it. */
1912 if (DECL_P (base)
1913 && !may_be_aliased (base)
1914 /* But local non-readonly statics can be modified through recursion
1915 or the call may implement a threading barrier which we must
1916 treat as may-def. */
1917 && (TREE_READONLY (base)
1918 || !is_global_var (base)))
1919 return false;
1921 callee = gimple_call_fndecl (call);
1923 /* Handle those builtin functions explicitly that do not act as
1924 escape points. See tree-ssa-structalias.c:find_func_aliases
1925 for the list of builtins we might need to handle here. */
1926 if (callee != NULL_TREE
1927 && gimple_call_builtin_p (call, BUILT_IN_NORMAL))
1928 switch (DECL_FUNCTION_CODE (callee))
1930 /* All the following functions clobber memory pointed to by
1931 their first argument. */
1932 case BUILT_IN_STRCPY:
1933 case BUILT_IN_STRNCPY:
1934 case BUILT_IN_MEMCPY:
1935 case BUILT_IN_MEMMOVE:
1936 case BUILT_IN_MEMPCPY:
1937 case BUILT_IN_STPCPY:
1938 case BUILT_IN_STPNCPY:
1939 case BUILT_IN_STRCAT:
1940 case BUILT_IN_STRNCAT:
1941 case BUILT_IN_MEMSET:
1942 case BUILT_IN_TM_MEMSET:
1943 CASE_BUILT_IN_TM_STORE (1):
1944 CASE_BUILT_IN_TM_STORE (2):
1945 CASE_BUILT_IN_TM_STORE (4):
1946 CASE_BUILT_IN_TM_STORE (8):
1947 CASE_BUILT_IN_TM_STORE (FLOAT):
1948 CASE_BUILT_IN_TM_STORE (DOUBLE):
1949 CASE_BUILT_IN_TM_STORE (LDOUBLE):
1950 CASE_BUILT_IN_TM_STORE (M64):
1951 CASE_BUILT_IN_TM_STORE (M128):
1952 CASE_BUILT_IN_TM_STORE (M256):
1953 case BUILT_IN_TM_MEMCPY:
1954 case BUILT_IN_TM_MEMMOVE:
1956 ao_ref dref;
1957 tree size = NULL_TREE;
1958 /* Don't pass in size for strncat, as the maximum size
1959 is strlen (dest) + n + 1 instead of n, resp.
1960 n + 1 at dest + strlen (dest), but strlen (dest) isn't
1961 known. */
1962 if (gimple_call_num_args (call) == 3
1963 && DECL_FUNCTION_CODE (callee) != BUILT_IN_STRNCAT)
1964 size = gimple_call_arg (call, 2);
1965 ao_ref_init_from_ptr_and_size (&dref,
1966 gimple_call_arg (call, 0),
1967 size);
1968 return refs_may_alias_p_1 (&dref, ref, false);
1970 case BUILT_IN_STRCPY_CHK:
1971 case BUILT_IN_STRNCPY_CHK:
1972 case BUILT_IN_MEMCPY_CHK:
1973 case BUILT_IN_MEMMOVE_CHK:
1974 case BUILT_IN_MEMPCPY_CHK:
1975 case BUILT_IN_STPCPY_CHK:
1976 case BUILT_IN_STPNCPY_CHK:
1977 case BUILT_IN_STRCAT_CHK:
1978 case BUILT_IN_STRNCAT_CHK:
1979 case BUILT_IN_MEMSET_CHK:
1981 ao_ref dref;
1982 tree size = NULL_TREE;
1983 /* Don't pass in size for __strncat_chk, as the maximum size
1984 is strlen (dest) + n + 1 instead of n, resp.
1985 n + 1 at dest + strlen (dest), but strlen (dest) isn't
1986 known. */
1987 if (gimple_call_num_args (call) == 4
1988 && DECL_FUNCTION_CODE (callee) != BUILT_IN_STRNCAT_CHK)
1989 size = gimple_call_arg (call, 2);
1990 ao_ref_init_from_ptr_and_size (&dref,
1991 gimple_call_arg (call, 0),
1992 size);
1993 return refs_may_alias_p_1 (&dref, ref, false);
1995 case BUILT_IN_BCOPY:
1997 ao_ref dref;
1998 tree size = gimple_call_arg (call, 2);
1999 ao_ref_init_from_ptr_and_size (&dref,
2000 gimple_call_arg (call, 1),
2001 size);
2002 return refs_may_alias_p_1 (&dref, ref, false);
2004 /* Allocating memory does not have any side-effects apart from
2005 being the definition point for the pointer. */
2006 case BUILT_IN_MALLOC:
2007 case BUILT_IN_ALIGNED_ALLOC:
2008 case BUILT_IN_CALLOC:
2009 case BUILT_IN_STRDUP:
2010 case BUILT_IN_STRNDUP:
2011 /* Unix98 specifies that errno is set on allocation failure. */
2012 if (flag_errno_math
2013 && targetm.ref_may_alias_errno (ref))
2014 return true;
2015 return false;
2016 case BUILT_IN_STACK_SAVE:
2017 case BUILT_IN_ALLOCA:
2018 case BUILT_IN_ALLOCA_WITH_ALIGN:
2019 case BUILT_IN_ASSUME_ALIGNED:
2020 return false;
2021 /* But posix_memalign stores a pointer into the memory pointed to
2022 by its first argument. */
2023 case BUILT_IN_POSIX_MEMALIGN:
2025 tree ptrptr = gimple_call_arg (call, 0);
2026 ao_ref dref;
2027 ao_ref_init_from_ptr_and_size (&dref, ptrptr,
2028 TYPE_SIZE_UNIT (ptr_type_node));
2029 return (refs_may_alias_p_1 (&dref, ref, false)
2030 || (flag_errno_math
2031 && targetm.ref_may_alias_errno (ref)));
2033 /* Freeing memory kills the pointed-to memory. More importantly
2034 the call has to serve as a barrier for moving loads and stores
2035 across it. */
2036 case BUILT_IN_FREE:
2037 case BUILT_IN_VA_END:
2039 tree ptr = gimple_call_arg (call, 0);
2040 return ptr_deref_may_alias_ref_p_1 (ptr, ref);
2042 /* Realloc serves both as allocation point and deallocation point. */
2043 case BUILT_IN_REALLOC:
2045 tree ptr = gimple_call_arg (call, 0);
2046 /* Unix98 specifies that errno is set on allocation failure. */
2047 return ((flag_errno_math
2048 && targetm.ref_may_alias_errno (ref))
2049 || ptr_deref_may_alias_ref_p_1 (ptr, ref));
2051 case BUILT_IN_GAMMA_R:
2052 case BUILT_IN_GAMMAF_R:
2053 case BUILT_IN_GAMMAL_R:
2054 case BUILT_IN_LGAMMA_R:
2055 case BUILT_IN_LGAMMAF_R:
2056 case BUILT_IN_LGAMMAL_R:
2058 tree out = gimple_call_arg (call, 1);
2059 if (ptr_deref_may_alias_ref_p_1 (out, ref))
2060 return true;
2061 if (flag_errno_math)
2062 break;
2063 return false;
2065 case BUILT_IN_FREXP:
2066 case BUILT_IN_FREXPF:
2067 case BUILT_IN_FREXPL:
2068 case BUILT_IN_MODF:
2069 case BUILT_IN_MODFF:
2070 case BUILT_IN_MODFL:
2072 tree out = gimple_call_arg (call, 1);
2073 return ptr_deref_may_alias_ref_p_1 (out, ref);
2075 case BUILT_IN_REMQUO:
2076 case BUILT_IN_REMQUOF:
2077 case BUILT_IN_REMQUOL:
2079 tree out = gimple_call_arg (call, 2);
2080 if (ptr_deref_may_alias_ref_p_1 (out, ref))
2081 return true;
2082 if (flag_errno_math)
2083 break;
2084 return false;
2086 case BUILT_IN_SINCOS:
2087 case BUILT_IN_SINCOSF:
2088 case BUILT_IN_SINCOSL:
2090 tree sin = gimple_call_arg (call, 1);
2091 tree cos = gimple_call_arg (call, 2);
2092 return (ptr_deref_may_alias_ref_p_1 (sin, ref)
2093 || ptr_deref_may_alias_ref_p_1 (cos, ref));
2095 /* __sync_* builtins and some OpenMP builtins act as threading
2096 barriers. */
2097 #undef DEF_SYNC_BUILTIN
2098 #define DEF_SYNC_BUILTIN(ENUM, NAME, TYPE, ATTRS) case ENUM:
2099 #include "sync-builtins.def"
2100 #undef DEF_SYNC_BUILTIN
2101 case BUILT_IN_GOMP_ATOMIC_START:
2102 case BUILT_IN_GOMP_ATOMIC_END:
2103 case BUILT_IN_GOMP_BARRIER:
2104 case BUILT_IN_GOMP_BARRIER_CANCEL:
2105 case BUILT_IN_GOMP_TASKWAIT:
2106 case BUILT_IN_GOMP_TASKGROUP_END:
2107 case BUILT_IN_GOMP_CRITICAL_START:
2108 case BUILT_IN_GOMP_CRITICAL_END:
2109 case BUILT_IN_GOMP_CRITICAL_NAME_START:
2110 case BUILT_IN_GOMP_CRITICAL_NAME_END:
2111 case BUILT_IN_GOMP_LOOP_END:
2112 case BUILT_IN_GOMP_LOOP_END_CANCEL:
2113 case BUILT_IN_GOMP_ORDERED_START:
2114 case BUILT_IN_GOMP_ORDERED_END:
2115 case BUILT_IN_GOMP_SECTIONS_END:
2116 case BUILT_IN_GOMP_SECTIONS_END_CANCEL:
2117 case BUILT_IN_GOMP_SINGLE_COPY_START:
2118 case BUILT_IN_GOMP_SINGLE_COPY_END:
2119 return true;
2120 default:
2121 /* Fallthru to general call handling. */;
2124 /* Check if base is a global static variable that is not written
2125 by the function. */
2126 if (callee != NULL_TREE
2127 && TREE_CODE (base) == VAR_DECL
2128 && TREE_STATIC (base))
2130 struct cgraph_node *node = cgraph_node::get (callee);
2131 bitmap not_written;
2133 if (node
2134 && (not_written = ipa_reference_get_not_written_global (node))
2135 && bitmap_bit_p (not_written, DECL_UID (base)))
2136 return false;
2139 /* Check if the base variable is call-clobbered. */
2140 if (DECL_P (base))
2141 return pt_solution_includes (gimple_call_clobber_set (call), base);
2142 else if ((TREE_CODE (base) == MEM_REF
2143 || TREE_CODE (base) == TARGET_MEM_REF)
2144 && TREE_CODE (TREE_OPERAND (base, 0)) == SSA_NAME)
2146 struct ptr_info_def *pi = SSA_NAME_PTR_INFO (TREE_OPERAND (base, 0));
2147 if (!pi)
2148 return true;
2150 return pt_solutions_intersect (gimple_call_clobber_set (call), &pi->pt);
2153 return true;
2156 /* If the call in statement CALL may clobber the memory reference REF
2157 return true, otherwise return false. */
2159 bool
2160 call_may_clobber_ref_p (gcall *call, tree ref)
2162 bool res;
2163 ao_ref r;
2164 ao_ref_init (&r, ref);
2165 res = call_may_clobber_ref_p_1 (call, &r);
2166 if (res)
2167 ++alias_stats.call_may_clobber_ref_p_may_alias;
2168 else
2169 ++alias_stats.call_may_clobber_ref_p_no_alias;
2170 return res;
2174 /* If the statement STMT may clobber the memory reference REF return true,
2175 otherwise return false. */
2177 bool
2178 stmt_may_clobber_ref_p_1 (gimple *stmt, ao_ref *ref)
2180 if (is_gimple_call (stmt))
2182 tree lhs = gimple_call_lhs (stmt);
2183 if (lhs
2184 && TREE_CODE (lhs) != SSA_NAME)
2186 ao_ref r;
2187 ao_ref_init (&r, lhs);
2188 if (refs_may_alias_p_1 (ref, &r, true))
2189 return true;
2192 return call_may_clobber_ref_p_1 (as_a <gcall *> (stmt), ref);
2194 else if (gimple_assign_single_p (stmt))
2196 tree lhs = gimple_assign_lhs (stmt);
2197 if (TREE_CODE (lhs) != SSA_NAME)
2199 ao_ref r;
2200 ao_ref_init (&r, lhs);
2201 return refs_may_alias_p_1 (ref, &r, true);
2204 else if (gimple_code (stmt) == GIMPLE_ASM)
2205 return true;
2207 return false;
2210 bool
2211 stmt_may_clobber_ref_p (gimple *stmt, tree ref)
2213 ao_ref r;
2214 ao_ref_init (&r, ref);
2215 return stmt_may_clobber_ref_p_1 (stmt, &r);
2218 /* If STMT kills the memory reference REF return true, otherwise
2219 return false. */
2221 bool
2222 stmt_kills_ref_p (gimple *stmt, ao_ref *ref)
2224 if (!ao_ref_base (ref))
2225 return false;
2227 if (gimple_has_lhs (stmt)
2228 && TREE_CODE (gimple_get_lhs (stmt)) != SSA_NAME
2229 /* The assignment is not necessarily carried out if it can throw
2230 and we can catch it in the current function where we could inspect
2231 the previous value.
2232 ??? We only need to care about the RHS throwing. For aggregate
2233 assignments or similar calls and non-call exceptions the LHS
2234 might throw as well. */
2235 && !stmt_can_throw_internal (stmt))
2237 tree lhs = gimple_get_lhs (stmt);
2238 /* If LHS is literally a base of the access we are done. */
2239 if (ref->ref)
2241 tree base = ref->ref;
2242 if (handled_component_p (base))
2244 tree saved_lhs0 = NULL_TREE;
2245 if (handled_component_p (lhs))
2247 saved_lhs0 = TREE_OPERAND (lhs, 0);
2248 TREE_OPERAND (lhs, 0) = integer_zero_node;
2252 /* Just compare the outermost handled component, if
2253 they are equal we have found a possible common
2254 base. */
2255 tree saved_base0 = TREE_OPERAND (base, 0);
2256 TREE_OPERAND (base, 0) = integer_zero_node;
2257 bool res = operand_equal_p (lhs, base, 0);
2258 TREE_OPERAND (base, 0) = saved_base0;
2259 if (res)
2260 break;
2261 /* Otherwise drop handled components of the access. */
2262 base = saved_base0;
2264 while (handled_component_p (base));
2265 if (saved_lhs0)
2266 TREE_OPERAND (lhs, 0) = saved_lhs0;
2268 /* Finally check if the lhs has the same address and size as the
2269 base candidate of the access. */
2270 if (lhs == base
2271 || (((TYPE_SIZE (TREE_TYPE (lhs))
2272 == TYPE_SIZE (TREE_TYPE (base)))
2273 || (TYPE_SIZE (TREE_TYPE (lhs))
2274 && TYPE_SIZE (TREE_TYPE (base))
2275 && operand_equal_p (TYPE_SIZE (TREE_TYPE (lhs)),
2276 TYPE_SIZE (TREE_TYPE (base)), 0)))
2277 && operand_equal_p (lhs, base, OEP_ADDRESS_OF)))
2278 return true;
2281 /* Now look for non-literal equal bases with the restriction of
2282 handling constant offset and size. */
2283 /* For a must-alias check we need to be able to constrain
2284 the access properly. */
2285 if (ref->max_size == -1)
2286 return false;
2287 HOST_WIDE_INT size, offset, max_size, ref_offset = ref->offset;
2288 bool reverse;
2289 tree base
2290 = get_ref_base_and_extent (lhs, &offset, &size, &max_size, &reverse);
2291 /* We can get MEM[symbol: sZ, index: D.8862_1] here,
2292 so base == ref->base does not always hold. */
2293 if (base != ref->base)
2295 /* If both base and ref->base are MEM_REFs, only compare the
2296 first operand, and if the second operand isn't equal constant,
2297 try to add the offsets into offset and ref_offset. */
2298 if (TREE_CODE (base) == MEM_REF && TREE_CODE (ref->base) == MEM_REF
2299 && TREE_OPERAND (base, 0) == TREE_OPERAND (ref->base, 0))
2301 if (!tree_int_cst_equal (TREE_OPERAND (base, 1),
2302 TREE_OPERAND (ref->base, 1)))
2304 offset_int off1 = mem_ref_offset (base);
2305 off1 = wi::lshift (off1, LOG2_BITS_PER_UNIT);
2306 off1 += offset;
2307 offset_int off2 = mem_ref_offset (ref->base);
2308 off2 = wi::lshift (off2, LOG2_BITS_PER_UNIT);
2309 off2 += ref_offset;
2310 if (wi::fits_shwi_p (off1) && wi::fits_shwi_p (off2))
2312 offset = off1.to_shwi ();
2313 ref_offset = off2.to_shwi ();
2315 else
2316 size = -1;
2319 else
2320 size = -1;
2322 /* For a must-alias check we need to be able to constrain
2323 the access properly. */
2324 if (size != -1 && size == max_size)
2326 if (offset <= ref_offset
2327 && offset + size >= ref_offset + ref->max_size)
2328 return true;
2332 if (is_gimple_call (stmt))
2334 tree callee = gimple_call_fndecl (stmt);
2335 if (callee != NULL_TREE
2336 && gimple_call_builtin_p (stmt, BUILT_IN_NORMAL))
2337 switch (DECL_FUNCTION_CODE (callee))
2339 case BUILT_IN_FREE:
2341 tree ptr = gimple_call_arg (stmt, 0);
2342 tree base = ao_ref_base (ref);
2343 if (base && TREE_CODE (base) == MEM_REF
2344 && TREE_OPERAND (base, 0) == ptr)
2345 return true;
2346 break;
2349 case BUILT_IN_MEMCPY:
2350 case BUILT_IN_MEMPCPY:
2351 case BUILT_IN_MEMMOVE:
2352 case BUILT_IN_MEMSET:
2353 case BUILT_IN_MEMCPY_CHK:
2354 case BUILT_IN_MEMPCPY_CHK:
2355 case BUILT_IN_MEMMOVE_CHK:
2356 case BUILT_IN_MEMSET_CHK:
2358 /* For a must-alias check we need to be able to constrain
2359 the access properly. */
2360 if (ref->max_size == -1)
2361 return false;
2362 tree dest = gimple_call_arg (stmt, 0);
2363 tree len = gimple_call_arg (stmt, 2);
2364 if (!tree_fits_shwi_p (len))
2365 return false;
2366 tree rbase = ref->base;
2367 offset_int roffset = ref->offset;
2368 ao_ref dref;
2369 ao_ref_init_from_ptr_and_size (&dref, dest, len);
2370 tree base = ao_ref_base (&dref);
2371 offset_int offset = dref.offset;
2372 if (!base || dref.size == -1)
2373 return false;
2374 if (TREE_CODE (base) == MEM_REF)
2376 if (TREE_CODE (rbase) != MEM_REF)
2377 return false;
2378 // Compare pointers.
2379 offset += wi::lshift (mem_ref_offset (base),
2380 LOG2_BITS_PER_UNIT);
2381 roffset += wi::lshift (mem_ref_offset (rbase),
2382 LOG2_BITS_PER_UNIT);
2383 base = TREE_OPERAND (base, 0);
2384 rbase = TREE_OPERAND (rbase, 0);
2386 if (base == rbase
2387 && wi::les_p (offset, roffset)
2388 && wi::les_p (roffset + ref->max_size,
2389 offset + wi::lshift (wi::to_offset (len),
2390 LOG2_BITS_PER_UNIT)))
2391 return true;
2392 break;
2395 case BUILT_IN_VA_END:
2397 tree ptr = gimple_call_arg (stmt, 0);
2398 if (TREE_CODE (ptr) == ADDR_EXPR)
2400 tree base = ao_ref_base (ref);
2401 if (TREE_OPERAND (ptr, 0) == base)
2402 return true;
2404 break;
2407 default:;
2410 return false;
2413 bool
2414 stmt_kills_ref_p (gimple *stmt, tree ref)
2416 ao_ref r;
2417 ao_ref_init (&r, ref);
2418 return stmt_kills_ref_p (stmt, &r);
2422 /* Walk the virtual use-def chain of VUSE until hitting the virtual operand
2423 TARGET or a statement clobbering the memory reference REF in which
2424 case false is returned. The walk starts with VUSE, one argument of PHI. */
2426 static bool
2427 maybe_skip_until (gimple *phi, tree target, ao_ref *ref,
2428 tree vuse, unsigned int *cnt, bitmap *visited,
2429 bool abort_on_visited,
2430 void *(*translate)(ao_ref *, tree, void *, bool *),
2431 void *data)
2433 basic_block bb = gimple_bb (phi);
2435 if (!*visited)
2436 *visited = BITMAP_ALLOC (NULL);
2438 bitmap_set_bit (*visited, SSA_NAME_VERSION (PHI_RESULT (phi)));
2440 /* Walk until we hit the target. */
2441 while (vuse != target)
2443 gimple *def_stmt = SSA_NAME_DEF_STMT (vuse);
2444 /* Recurse for PHI nodes. */
2445 if (gimple_code (def_stmt) == GIMPLE_PHI)
2447 /* An already visited PHI node ends the walk successfully. */
2448 if (bitmap_bit_p (*visited, SSA_NAME_VERSION (PHI_RESULT (def_stmt))))
2449 return !abort_on_visited;
2450 vuse = get_continuation_for_phi (def_stmt, ref, cnt,
2451 visited, abort_on_visited,
2452 translate, data);
2453 if (!vuse)
2454 return false;
2455 continue;
2457 else if (gimple_nop_p (def_stmt))
2458 return false;
2459 else
2461 /* A clobbering statement or the end of the IL ends it failing. */
2462 ++*cnt;
2463 if (stmt_may_clobber_ref_p_1 (def_stmt, ref))
2465 bool disambiguate_only = true;
2466 if (translate
2467 && (*translate) (ref, vuse, data, &disambiguate_only) == NULL)
2469 else
2470 return false;
2473 /* If we reach a new basic-block see if we already skipped it
2474 in a previous walk that ended successfully. */
2475 if (gimple_bb (def_stmt) != bb)
2477 if (!bitmap_set_bit (*visited, SSA_NAME_VERSION (vuse)))
2478 return !abort_on_visited;
2479 bb = gimple_bb (def_stmt);
2481 vuse = gimple_vuse (def_stmt);
2483 return true;
2486 /* For two PHI arguments ARG0 and ARG1 try to skip non-aliasing code
2487 until we hit the phi argument definition that dominates the other one.
2488 Return that, or NULL_TREE if there is no such definition. */
2490 static tree
2491 get_continuation_for_phi_1 (gimple *phi, tree arg0, tree arg1,
2492 ao_ref *ref, unsigned int *cnt,
2493 bitmap *visited, bool abort_on_visited,
2494 void *(*translate)(ao_ref *, tree, void *, bool *),
2495 void *data)
2497 gimple *def0 = SSA_NAME_DEF_STMT (arg0);
2498 gimple *def1 = SSA_NAME_DEF_STMT (arg1);
2499 tree common_vuse;
2501 if (arg0 == arg1)
2502 return arg0;
2503 else if (gimple_nop_p (def0)
2504 || (!gimple_nop_p (def1)
2505 && dominated_by_p (CDI_DOMINATORS,
2506 gimple_bb (def1), gimple_bb (def0))))
2508 if (maybe_skip_until (phi, arg0, ref, arg1, cnt,
2509 visited, abort_on_visited, translate, data))
2510 return arg0;
2512 else if (gimple_nop_p (def1)
2513 || dominated_by_p (CDI_DOMINATORS,
2514 gimple_bb (def0), gimple_bb (def1)))
2516 if (maybe_skip_until (phi, arg1, ref, arg0, cnt,
2517 visited, abort_on_visited, translate, data))
2518 return arg1;
2520 /* Special case of a diamond:
2521 MEM_1 = ...
2522 goto (cond) ? L1 : L2
2523 L1: store1 = ... #MEM_2 = vuse(MEM_1)
2524 goto L3
2525 L2: store2 = ... #MEM_3 = vuse(MEM_1)
2526 L3: MEM_4 = PHI<MEM_2, MEM_3>
2527 We were called with the PHI at L3, MEM_2 and MEM_3 don't
2528 dominate each other, but still we can easily skip this PHI node
2529 if we recognize that the vuse MEM operand is the same for both,
2530 and that we can skip both statements (they don't clobber us).
2531 This is still linear. Don't use maybe_skip_until, that might
2532 potentially be slow. */
2533 else if ((common_vuse = gimple_vuse (def0))
2534 && common_vuse == gimple_vuse (def1))
2536 bool disambiguate_only = true;
2537 *cnt += 2;
2538 if ((!stmt_may_clobber_ref_p_1 (def0, ref)
2539 || (translate
2540 && (*translate) (ref, arg0, data, &disambiguate_only) == NULL))
2541 && (!stmt_may_clobber_ref_p_1 (def1, ref)
2542 || (translate
2543 && (*translate) (ref, arg1, data, &disambiguate_only) == NULL)))
2544 return common_vuse;
2547 return NULL_TREE;
2551 /* Starting from a PHI node for the virtual operand of the memory reference
2552 REF find a continuation virtual operand that allows to continue walking
2553 statements dominating PHI skipping only statements that cannot possibly
2554 clobber REF. Increments *CNT for each alias disambiguation done.
2555 Returns NULL_TREE if no suitable virtual operand can be found. */
2557 tree
2558 get_continuation_for_phi (gimple *phi, ao_ref *ref,
2559 unsigned int *cnt, bitmap *visited,
2560 bool abort_on_visited,
2561 void *(*translate)(ao_ref *, tree, void *, bool *),
2562 void *data)
2564 unsigned nargs = gimple_phi_num_args (phi);
2566 /* Through a single-argument PHI we can simply look through. */
2567 if (nargs == 1)
2568 return PHI_ARG_DEF (phi, 0);
2570 /* For two or more arguments try to pairwise skip non-aliasing code
2571 until we hit the phi argument definition that dominates the other one. */
2572 else if (nargs >= 2)
2574 tree arg0, arg1;
2575 unsigned i;
2577 /* Find a candidate for the virtual operand which definition
2578 dominates those of all others. */
2579 arg0 = PHI_ARG_DEF (phi, 0);
2580 if (!SSA_NAME_IS_DEFAULT_DEF (arg0))
2581 for (i = 1; i < nargs; ++i)
2583 arg1 = PHI_ARG_DEF (phi, i);
2584 if (SSA_NAME_IS_DEFAULT_DEF (arg1))
2586 arg0 = arg1;
2587 break;
2589 if (dominated_by_p (CDI_DOMINATORS,
2590 gimple_bb (SSA_NAME_DEF_STMT (arg0)),
2591 gimple_bb (SSA_NAME_DEF_STMT (arg1))))
2592 arg0 = arg1;
2595 /* Then pairwise reduce against the found candidate. */
2596 for (i = 0; i < nargs; ++i)
2598 arg1 = PHI_ARG_DEF (phi, i);
2599 arg0 = get_continuation_for_phi_1 (phi, arg0, arg1, ref,
2600 cnt, visited, abort_on_visited,
2601 translate, data);
2602 if (!arg0)
2603 return NULL_TREE;
2606 return arg0;
2609 return NULL_TREE;
2612 /* Based on the memory reference REF and its virtual use VUSE call
2613 WALKER for each virtual use that is equivalent to VUSE, including VUSE
2614 itself. That is, for each virtual use for which its defining statement
2615 does not clobber REF.
2617 WALKER is called with REF, the current virtual use and DATA. If
2618 WALKER returns non-NULL the walk stops and its result is returned.
2619 At the end of a non-successful walk NULL is returned.
2621 TRANSLATE if non-NULL is called with a pointer to REF, the virtual
2622 use which definition is a statement that may clobber REF and DATA.
2623 If TRANSLATE returns (void *)-1 the walk stops and NULL is returned.
2624 If TRANSLATE returns non-NULL the walk stops and its result is returned.
2625 If TRANSLATE returns NULL the walk continues and TRANSLATE is supposed
2626 to adjust REF and *DATA to make that valid.
2628 VALUEIZE if non-NULL is called with the next VUSE that is considered
2629 and return value is substituted for that. This can be used to
2630 implement optimistic value-numbering for example. Note that the
2631 VUSE argument is assumed to be valueized already.
2633 TODO: Cache the vector of equivalent vuses per ref, vuse pair. */
2635 void *
2636 walk_non_aliased_vuses (ao_ref *ref, tree vuse,
2637 void *(*walker)(ao_ref *, tree, unsigned int, void *),
2638 void *(*translate)(ao_ref *, tree, void *, bool *),
2639 tree (*valueize)(tree),
2640 void *data)
2642 bitmap visited = NULL;
2643 void *res;
2644 unsigned int cnt = 0;
2645 bool translated = false;
2647 timevar_push (TV_ALIAS_STMT_WALK);
2651 gimple *def_stmt;
2653 /* ??? Do we want to account this to TV_ALIAS_STMT_WALK? */
2654 res = (*walker) (ref, vuse, cnt, data);
2655 /* Abort walk. */
2656 if (res == (void *)-1)
2658 res = NULL;
2659 break;
2661 /* Lookup succeeded. */
2662 else if (res != NULL)
2663 break;
2665 if (valueize)
2666 vuse = valueize (vuse);
2667 def_stmt = SSA_NAME_DEF_STMT (vuse);
2668 if (gimple_nop_p (def_stmt))
2669 break;
2670 else if (gimple_code (def_stmt) == GIMPLE_PHI)
2671 vuse = get_continuation_for_phi (def_stmt, ref, &cnt,
2672 &visited, translated, translate, data);
2673 else
2675 cnt++;
2676 if (stmt_may_clobber_ref_p_1 (def_stmt, ref))
2678 if (!translate)
2679 break;
2680 bool disambiguate_only = false;
2681 res = (*translate) (ref, vuse, data, &disambiguate_only);
2682 /* Failed lookup and translation. */
2683 if (res == (void *)-1)
2685 res = NULL;
2686 break;
2688 /* Lookup succeeded. */
2689 else if (res != NULL)
2690 break;
2691 /* Translation succeeded, continue walking. */
2692 translated = translated || !disambiguate_only;
2694 vuse = gimple_vuse (def_stmt);
2697 while (vuse);
2699 if (visited)
2700 BITMAP_FREE (visited);
2702 timevar_pop (TV_ALIAS_STMT_WALK);
2704 return res;
2708 /* Based on the memory reference REF call WALKER for each vdef which
2709 defining statement may clobber REF, starting with VDEF. If REF
2710 is NULL_TREE, each defining statement is visited.
2712 WALKER is called with REF, the current vdef and DATA. If WALKER
2713 returns true the walk is stopped, otherwise it continues.
2715 If function entry is reached, FUNCTION_ENTRY_REACHED is set to true.
2716 The pointer may be NULL and then we do not track this information.
2718 At PHI nodes walk_aliased_vdefs forks into one walk for reach
2719 PHI argument (but only one walk continues on merge points), the
2720 return value is true if any of the walks was successful.
2722 The function returns the number of statements walked. */
2724 static unsigned int
2725 walk_aliased_vdefs_1 (ao_ref *ref, tree vdef,
2726 bool (*walker)(ao_ref *, tree, void *), void *data,
2727 bitmap *visited, unsigned int cnt,
2728 bool *function_entry_reached)
2732 gimple *def_stmt = SSA_NAME_DEF_STMT (vdef);
2734 if (*visited
2735 && !bitmap_set_bit (*visited, SSA_NAME_VERSION (vdef)))
2736 return cnt;
2738 if (gimple_nop_p (def_stmt))
2740 if (function_entry_reached)
2741 *function_entry_reached = true;
2742 return cnt;
2744 else if (gimple_code (def_stmt) == GIMPLE_PHI)
2746 unsigned i;
2747 if (!*visited)
2748 *visited = BITMAP_ALLOC (NULL);
2749 for (i = 0; i < gimple_phi_num_args (def_stmt); ++i)
2750 cnt += walk_aliased_vdefs_1 (ref, gimple_phi_arg_def (def_stmt, i),
2751 walker, data, visited, 0,
2752 function_entry_reached);
2753 return cnt;
2756 /* ??? Do we want to account this to TV_ALIAS_STMT_WALK? */
2757 cnt++;
2758 if ((!ref
2759 || stmt_may_clobber_ref_p_1 (def_stmt, ref))
2760 && (*walker) (ref, vdef, data))
2761 return cnt;
2763 vdef = gimple_vuse (def_stmt);
2765 while (1);
2768 unsigned int
2769 walk_aliased_vdefs (ao_ref *ref, tree vdef,
2770 bool (*walker)(ao_ref *, tree, void *), void *data,
2771 bitmap *visited,
2772 bool *function_entry_reached)
2774 bitmap local_visited = NULL;
2775 unsigned int ret;
2777 timevar_push (TV_ALIAS_STMT_WALK);
2779 if (function_entry_reached)
2780 *function_entry_reached = false;
2782 ret = walk_aliased_vdefs_1 (ref, vdef, walker, data,
2783 visited ? visited : &local_visited, 0,
2784 function_entry_reached);
2785 if (local_visited)
2786 BITMAP_FREE (local_visited);
2788 timevar_pop (TV_ALIAS_STMT_WALK);
2790 return ret;