c++: Tweaks for -Wredundant-move [PR107363]
[official-gcc.git] / gcc / tree-ssa-sccvn.cc
blob37484403c5667bee7277267162fec9a0caac2ed7
1 /* SCC value numbering for trees
2 Copyright (C) 2006-2022 Free Software Foundation, Inc.
3 Contributed by Daniel Berlin <dan@dberlin.org>
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 "splay-tree.h"
25 #include "backend.h"
26 #include "rtl.h"
27 #include "tree.h"
28 #include "gimple.h"
29 #include "ssa.h"
30 #include "expmed.h"
31 #include "insn-config.h"
32 #include "memmodel.h"
33 #include "emit-rtl.h"
34 #include "cgraph.h"
35 #include "gimple-pretty-print.h"
36 #include "alias.h"
37 #include "fold-const.h"
38 #include "stor-layout.h"
39 #include "cfganal.h"
40 #include "tree-inline.h"
41 #include "internal-fn.h"
42 #include "gimple-iterator.h"
43 #include "gimple-fold.h"
44 #include "tree-eh.h"
45 #include "gimplify.h"
46 #include "flags.h"
47 #include "dojump.h"
48 #include "explow.h"
49 #include "calls.h"
50 #include "varasm.h"
51 #include "stmt.h"
52 #include "expr.h"
53 #include "tree-dfa.h"
54 #include "tree-ssa.h"
55 #include "dumpfile.h"
56 #include "cfgloop.h"
57 #include "tree-ssa-propagate.h"
58 #include "tree-cfg.h"
59 #include "domwalk.h"
60 #include "gimple-match.h"
61 #include "stringpool.h"
62 #include "attribs.h"
63 #include "tree-pass.h"
64 #include "statistics.h"
65 #include "langhooks.h"
66 #include "ipa-utils.h"
67 #include "dbgcnt.h"
68 #include "tree-cfgcleanup.h"
69 #include "tree-ssa-loop.h"
70 #include "tree-scalar-evolution.h"
71 #include "tree-ssa-loop-niter.h"
72 #include "builtins.h"
73 #include "fold-const-call.h"
74 #include "ipa-modref-tree.h"
75 #include "ipa-modref.h"
76 #include "tree-ssa-sccvn.h"
78 /* This algorithm is based on the SCC algorithm presented by Keith
79 Cooper and L. Taylor Simpson in "SCC-Based Value numbering"
80 (http://citeseer.ist.psu.edu/41805.html). In
81 straight line code, it is equivalent to a regular hash based value
82 numbering that is performed in reverse postorder.
84 For code with cycles, there are two alternatives, both of which
85 require keeping the hashtables separate from the actual list of
86 value numbers for SSA names.
88 1. Iterate value numbering in an RPO walk of the blocks, removing
89 all the entries from the hashtable after each iteration (but
90 keeping the SSA name->value number mapping between iterations).
91 Iterate until it does not change.
93 2. Perform value numbering as part of an SCC walk on the SSA graph,
94 iterating only the cycles in the SSA graph until they do not change
95 (using a separate, optimistic hashtable for value numbering the SCC
96 operands).
98 The second is not just faster in practice (because most SSA graph
99 cycles do not involve all the variables in the graph), it also has
100 some nice properties.
102 One of these nice properties is that when we pop an SCC off the
103 stack, we are guaranteed to have processed all the operands coming from
104 *outside of that SCC*, so we do not need to do anything special to
105 ensure they have value numbers.
107 Another nice property is that the SCC walk is done as part of a DFS
108 of the SSA graph, which makes it easy to perform combining and
109 simplifying operations at the same time.
111 The code below is deliberately written in a way that makes it easy
112 to separate the SCC walk from the other work it does.
114 In order to propagate constants through the code, we track which
115 expressions contain constants, and use those while folding. In
116 theory, we could also track expressions whose value numbers are
117 replaced, in case we end up folding based on expression
118 identities.
120 In order to value number memory, we assign value numbers to vuses.
121 This enables us to note that, for example, stores to the same
122 address of the same value from the same starting memory states are
123 equivalent.
124 TODO:
126 1. We can iterate only the changing portions of the SCC's, but
127 I have not seen an SCC big enough for this to be a win.
128 2. If you differentiate between phi nodes for loops and phi nodes
129 for if-then-else, you can properly consider phi nodes in different
130 blocks for equivalence.
131 3. We could value number vuses in more cases, particularly, whole
132 structure copies.
135 /* There's no BB_EXECUTABLE but we can use BB_VISITED. */
136 #define BB_EXECUTABLE BB_VISITED
138 static vn_lookup_kind default_vn_walk_kind;
140 /* vn_nary_op hashtable helpers. */
142 struct vn_nary_op_hasher : nofree_ptr_hash <vn_nary_op_s>
144 typedef vn_nary_op_s *compare_type;
145 static inline hashval_t hash (const vn_nary_op_s *);
146 static inline bool equal (const vn_nary_op_s *, const vn_nary_op_s *);
149 /* Return the computed hashcode for nary operation P1. */
151 inline hashval_t
152 vn_nary_op_hasher::hash (const vn_nary_op_s *vno1)
154 return vno1->hashcode;
157 /* Compare nary operations P1 and P2 and return true if they are
158 equivalent. */
160 inline bool
161 vn_nary_op_hasher::equal (const vn_nary_op_s *vno1, const vn_nary_op_s *vno2)
163 return vno1 == vno2 || vn_nary_op_eq (vno1, vno2);
166 typedef hash_table<vn_nary_op_hasher> vn_nary_op_table_type;
167 typedef vn_nary_op_table_type::iterator vn_nary_op_iterator_type;
170 /* vn_phi hashtable helpers. */
172 static int
173 vn_phi_eq (const_vn_phi_t const vp1, const_vn_phi_t const vp2);
175 struct vn_phi_hasher : nofree_ptr_hash <vn_phi_s>
177 static inline hashval_t hash (const vn_phi_s *);
178 static inline bool equal (const vn_phi_s *, const vn_phi_s *);
181 /* Return the computed hashcode for phi operation P1. */
183 inline hashval_t
184 vn_phi_hasher::hash (const vn_phi_s *vp1)
186 return vp1->hashcode;
189 /* Compare two phi entries for equality, ignoring VN_TOP arguments. */
191 inline bool
192 vn_phi_hasher::equal (const vn_phi_s *vp1, const vn_phi_s *vp2)
194 return vp1 == vp2 || vn_phi_eq (vp1, vp2);
197 typedef hash_table<vn_phi_hasher> vn_phi_table_type;
198 typedef vn_phi_table_type::iterator vn_phi_iterator_type;
201 /* Compare two reference operands P1 and P2 for equality. Return true if
202 they are equal, and false otherwise. */
204 static int
205 vn_reference_op_eq (const void *p1, const void *p2)
207 const_vn_reference_op_t const vro1 = (const_vn_reference_op_t) p1;
208 const_vn_reference_op_t const vro2 = (const_vn_reference_op_t) p2;
210 return (vro1->opcode == vro2->opcode
211 /* We do not care for differences in type qualification. */
212 && (vro1->type == vro2->type
213 || (vro1->type && vro2->type
214 && types_compatible_p (TYPE_MAIN_VARIANT (vro1->type),
215 TYPE_MAIN_VARIANT (vro2->type))))
216 && expressions_equal_p (vro1->op0, vro2->op0)
217 && expressions_equal_p (vro1->op1, vro2->op1)
218 && expressions_equal_p (vro1->op2, vro2->op2)
219 && (vro1->opcode != CALL_EXPR || vro1->clique == vro2->clique));
222 /* Free a reference operation structure VP. */
224 static inline void
225 free_reference (vn_reference_s *vr)
227 vr->operands.release ();
231 /* vn_reference hashtable helpers. */
233 struct vn_reference_hasher : nofree_ptr_hash <vn_reference_s>
235 static inline hashval_t hash (const vn_reference_s *);
236 static inline bool equal (const vn_reference_s *, const vn_reference_s *);
239 /* Return the hashcode for a given reference operation P1. */
241 inline hashval_t
242 vn_reference_hasher::hash (const vn_reference_s *vr1)
244 return vr1->hashcode;
247 inline bool
248 vn_reference_hasher::equal (const vn_reference_s *v, const vn_reference_s *c)
250 return v == c || vn_reference_eq (v, c);
253 typedef hash_table<vn_reference_hasher> vn_reference_table_type;
254 typedef vn_reference_table_type::iterator vn_reference_iterator_type;
256 /* Pretty-print OPS to OUTFILE. */
258 void
259 print_vn_reference_ops (FILE *outfile, const vec<vn_reference_op_s> ops)
261 vn_reference_op_t vro;
262 unsigned int i;
263 fprintf (outfile, "{");
264 for (i = 0; ops.iterate (i, &vro); i++)
266 bool closebrace = false;
267 if (vro->opcode != SSA_NAME
268 && TREE_CODE_CLASS (vro->opcode) != tcc_declaration)
270 fprintf (outfile, "%s", get_tree_code_name (vro->opcode));
271 if (vro->op0 || vro->opcode == CALL_EXPR)
273 fprintf (outfile, "<");
274 closebrace = true;
277 if (vro->op0 || vro->opcode == CALL_EXPR)
279 if (!vro->op0)
280 fprintf (outfile, internal_fn_name ((internal_fn)vro->clique));
281 else
282 print_generic_expr (outfile, vro->op0);
283 if (vro->op1)
285 fprintf (outfile, ",");
286 print_generic_expr (outfile, vro->op1);
288 if (vro->op2)
290 fprintf (outfile, ",");
291 print_generic_expr (outfile, vro->op2);
294 if (closebrace)
295 fprintf (outfile, ">");
296 if (i != ops.length () - 1)
297 fprintf (outfile, ",");
299 fprintf (outfile, "}");
302 DEBUG_FUNCTION void
303 debug_vn_reference_ops (const vec<vn_reference_op_s> ops)
305 print_vn_reference_ops (stderr, ops);
306 fputc ('\n', stderr);
309 /* The set of VN hashtables. */
311 typedef struct vn_tables_s
313 vn_nary_op_table_type *nary;
314 vn_phi_table_type *phis;
315 vn_reference_table_type *references;
316 } *vn_tables_t;
319 /* vn_constant hashtable helpers. */
321 struct vn_constant_hasher : free_ptr_hash <vn_constant_s>
323 static inline hashval_t hash (const vn_constant_s *);
324 static inline bool equal (const vn_constant_s *, const vn_constant_s *);
327 /* Hash table hash function for vn_constant_t. */
329 inline hashval_t
330 vn_constant_hasher::hash (const vn_constant_s *vc1)
332 return vc1->hashcode;
335 /* Hash table equality function for vn_constant_t. */
337 inline bool
338 vn_constant_hasher::equal (const vn_constant_s *vc1, const vn_constant_s *vc2)
340 if (vc1->hashcode != vc2->hashcode)
341 return false;
343 return vn_constant_eq_with_type (vc1->constant, vc2->constant);
346 static hash_table<vn_constant_hasher> *constant_to_value_id;
349 /* Obstack we allocate the vn-tables elements from. */
350 static obstack vn_tables_obstack;
351 /* Special obstack we never unwind. */
352 static obstack vn_tables_insert_obstack;
354 static vn_reference_t last_inserted_ref;
355 static vn_phi_t last_inserted_phi;
356 static vn_nary_op_t last_inserted_nary;
357 static vn_ssa_aux_t last_pushed_avail;
359 /* Valid hashtables storing information we have proven to be
360 correct. */
361 static vn_tables_t valid_info;
364 /* Valueization hook for simplify_replace_tree. Valueize NAME if it is
365 an SSA name, otherwise just return it. */
366 tree (*vn_valueize) (tree);
367 static tree
368 vn_valueize_for_srt (tree t, void* context ATTRIBUTE_UNUSED)
370 basic_block saved_vn_context_bb = vn_context_bb;
371 /* Look for sth available at the definition block of the argument.
372 This avoids inconsistencies between availability there which
373 decides if the stmt can be removed and availability at the
374 use site. The SSA property ensures that things available
375 at the definition are also available at uses. */
376 if (!SSA_NAME_IS_DEFAULT_DEF (t))
377 vn_context_bb = gimple_bb (SSA_NAME_DEF_STMT (t));
378 tree res = vn_valueize (t);
379 vn_context_bb = saved_vn_context_bb;
380 return res;
384 /* This represents the top of the VN lattice, which is the universal
385 value. */
387 tree VN_TOP;
389 /* Unique counter for our value ids. */
391 static unsigned int next_value_id;
392 static int next_constant_value_id;
395 /* Table of vn_ssa_aux_t's, one per ssa_name. The vn_ssa_aux_t objects
396 are allocated on an obstack for locality reasons, and to free them
397 without looping over the vec. */
399 struct vn_ssa_aux_hasher : typed_noop_remove <vn_ssa_aux_t>
401 typedef vn_ssa_aux_t value_type;
402 typedef tree compare_type;
403 static inline hashval_t hash (const value_type &);
404 static inline bool equal (const value_type &, const compare_type &);
405 static inline void mark_deleted (value_type &) {}
406 static const bool empty_zero_p = true;
407 static inline void mark_empty (value_type &e) { e = NULL; }
408 static inline bool is_deleted (value_type &) { return false; }
409 static inline bool is_empty (value_type &e) { return e == NULL; }
412 hashval_t
413 vn_ssa_aux_hasher::hash (const value_type &entry)
415 return SSA_NAME_VERSION (entry->name);
418 bool
419 vn_ssa_aux_hasher::equal (const value_type &entry, const compare_type &name)
421 return name == entry->name;
424 static hash_table<vn_ssa_aux_hasher> *vn_ssa_aux_hash;
425 typedef hash_table<vn_ssa_aux_hasher>::iterator vn_ssa_aux_iterator_type;
426 static struct obstack vn_ssa_aux_obstack;
428 static vn_nary_op_t vn_nary_op_insert_stmt (gimple *, tree);
429 static vn_nary_op_t vn_nary_op_insert_into (vn_nary_op_t,
430 vn_nary_op_table_type *);
431 static void init_vn_nary_op_from_pieces (vn_nary_op_t, unsigned int,
432 enum tree_code, tree, tree *);
433 static tree vn_lookup_simplify_result (gimple_match_op *);
434 static vn_reference_t vn_reference_lookup_or_insert_for_pieces
435 (tree, alias_set_type, alias_set_type, tree,
436 vec<vn_reference_op_s, va_heap>, tree);
438 /* Return whether there is value numbering information for a given SSA name. */
440 bool
441 has_VN_INFO (tree name)
443 return vn_ssa_aux_hash->find_with_hash (name, SSA_NAME_VERSION (name));
446 vn_ssa_aux_t
447 VN_INFO (tree name)
449 vn_ssa_aux_t *res
450 = vn_ssa_aux_hash->find_slot_with_hash (name, SSA_NAME_VERSION (name),
451 INSERT);
452 if (*res != NULL)
453 return *res;
455 vn_ssa_aux_t newinfo = *res = XOBNEW (&vn_ssa_aux_obstack, struct vn_ssa_aux);
456 memset (newinfo, 0, sizeof (struct vn_ssa_aux));
457 newinfo->name = name;
458 newinfo->valnum = VN_TOP;
459 /* We are using the visited flag to handle uses with defs not within the
460 region being value-numbered. */
461 newinfo->visited = false;
463 /* Given we create the VN_INFOs on-demand now we have to do initialization
464 different than VN_TOP here. */
465 if (SSA_NAME_IS_DEFAULT_DEF (name))
466 switch (TREE_CODE (SSA_NAME_VAR (name)))
468 case VAR_DECL:
469 /* All undefined vars are VARYING. */
470 newinfo->valnum = name;
471 newinfo->visited = true;
472 break;
474 case PARM_DECL:
475 /* Parameters are VARYING but we can record a condition
476 if we know it is a non-NULL pointer. */
477 newinfo->visited = true;
478 newinfo->valnum = name;
479 if (POINTER_TYPE_P (TREE_TYPE (name))
480 && nonnull_arg_p (SSA_NAME_VAR (name)))
482 tree ops[2];
483 ops[0] = name;
484 ops[1] = build_int_cst (TREE_TYPE (name), 0);
485 vn_nary_op_t nary;
486 /* Allocate from non-unwinding stack. */
487 nary = alloc_vn_nary_op_noinit (2, &vn_tables_insert_obstack);
488 init_vn_nary_op_from_pieces (nary, 2, NE_EXPR,
489 boolean_type_node, ops);
490 nary->predicated_values = 0;
491 nary->u.result = boolean_true_node;
492 vn_nary_op_insert_into (nary, valid_info->nary);
493 gcc_assert (nary->unwind_to == NULL);
494 /* Also do not link it into the undo chain. */
495 last_inserted_nary = nary->next;
496 nary->next = (vn_nary_op_t)(void *)-1;
497 nary = alloc_vn_nary_op_noinit (2, &vn_tables_insert_obstack);
498 init_vn_nary_op_from_pieces (nary, 2, EQ_EXPR,
499 boolean_type_node, ops);
500 nary->predicated_values = 0;
501 nary->u.result = boolean_false_node;
502 vn_nary_op_insert_into (nary, valid_info->nary);
503 gcc_assert (nary->unwind_to == NULL);
504 last_inserted_nary = nary->next;
505 nary->next = (vn_nary_op_t)(void *)-1;
506 if (dump_file && (dump_flags & TDF_DETAILS))
508 fprintf (dump_file, "Recording ");
509 print_generic_expr (dump_file, name, TDF_SLIM);
510 fprintf (dump_file, " != 0\n");
513 break;
515 case RESULT_DECL:
516 /* If the result is passed by invisible reference the default
517 def is initialized, otherwise it's uninitialized. Still
518 undefined is varying. */
519 newinfo->visited = true;
520 newinfo->valnum = name;
521 break;
523 default:
524 gcc_unreachable ();
526 return newinfo;
529 /* Return the SSA value of X. */
531 inline tree
532 SSA_VAL (tree x, bool *visited = NULL)
534 vn_ssa_aux_t tem = vn_ssa_aux_hash->find_with_hash (x, SSA_NAME_VERSION (x));
535 if (visited)
536 *visited = tem && tem->visited;
537 return tem && tem->visited ? tem->valnum : x;
540 /* Return the SSA value of the VUSE x, supporting released VDEFs
541 during elimination which will value-number the VDEF to the
542 associated VUSE (but not substitute in the whole lattice). */
544 static inline tree
545 vuse_ssa_val (tree x)
547 if (!x)
548 return NULL_TREE;
552 x = SSA_VAL (x);
553 gcc_assert (x != VN_TOP);
555 while (SSA_NAME_IN_FREE_LIST (x));
557 return x;
560 /* Similar to the above but used as callback for walk_non_aliased_vuses
561 and thus should stop at unvisited VUSE to not walk across region
562 boundaries. */
564 static tree
565 vuse_valueize (tree vuse)
569 bool visited;
570 vuse = SSA_VAL (vuse, &visited);
571 if (!visited)
572 return NULL_TREE;
573 gcc_assert (vuse != VN_TOP);
575 while (SSA_NAME_IN_FREE_LIST (vuse));
576 return vuse;
580 /* Return the vn_kind the expression computed by the stmt should be
581 associated with. */
583 enum vn_kind
584 vn_get_stmt_kind (gimple *stmt)
586 switch (gimple_code (stmt))
588 case GIMPLE_CALL:
589 return VN_REFERENCE;
590 case GIMPLE_PHI:
591 return VN_PHI;
592 case GIMPLE_ASSIGN:
594 enum tree_code code = gimple_assign_rhs_code (stmt);
595 tree rhs1 = gimple_assign_rhs1 (stmt);
596 switch (get_gimple_rhs_class (code))
598 case GIMPLE_UNARY_RHS:
599 case GIMPLE_BINARY_RHS:
600 case GIMPLE_TERNARY_RHS:
601 return VN_NARY;
602 case GIMPLE_SINGLE_RHS:
603 switch (TREE_CODE_CLASS (code))
605 case tcc_reference:
606 /* VOP-less references can go through unary case. */
607 if ((code == REALPART_EXPR
608 || code == IMAGPART_EXPR
609 || code == VIEW_CONVERT_EXPR
610 || code == BIT_FIELD_REF)
611 && (TREE_CODE (TREE_OPERAND (rhs1, 0)) == SSA_NAME
612 || is_gimple_min_invariant (TREE_OPERAND (rhs1, 0))))
613 return VN_NARY;
615 /* Fallthrough. */
616 case tcc_declaration:
617 return VN_REFERENCE;
619 case tcc_constant:
620 return VN_CONSTANT;
622 default:
623 if (code == ADDR_EXPR)
624 return (is_gimple_min_invariant (rhs1)
625 ? VN_CONSTANT : VN_REFERENCE);
626 else if (code == CONSTRUCTOR)
627 return VN_NARY;
628 return VN_NONE;
630 default:
631 return VN_NONE;
634 default:
635 return VN_NONE;
639 /* Lookup a value id for CONSTANT and return it. If it does not
640 exist returns 0. */
642 unsigned int
643 get_constant_value_id (tree constant)
645 vn_constant_s **slot;
646 struct vn_constant_s vc;
648 vc.hashcode = vn_hash_constant_with_type (constant);
649 vc.constant = constant;
650 slot = constant_to_value_id->find_slot (&vc, NO_INSERT);
651 if (slot)
652 return (*slot)->value_id;
653 return 0;
656 /* Lookup a value id for CONSTANT, and if it does not exist, create a
657 new one and return it. If it does exist, return it. */
659 unsigned int
660 get_or_alloc_constant_value_id (tree constant)
662 vn_constant_s **slot;
663 struct vn_constant_s vc;
664 vn_constant_t vcp;
666 /* If the hashtable isn't initialized we're not running from PRE and thus
667 do not need value-ids. */
668 if (!constant_to_value_id)
669 return 0;
671 vc.hashcode = vn_hash_constant_with_type (constant);
672 vc.constant = constant;
673 slot = constant_to_value_id->find_slot (&vc, INSERT);
674 if (*slot)
675 return (*slot)->value_id;
677 vcp = XNEW (struct vn_constant_s);
678 vcp->hashcode = vc.hashcode;
679 vcp->constant = constant;
680 vcp->value_id = get_next_constant_value_id ();
681 *slot = vcp;
682 return vcp->value_id;
685 /* Compute the hash for a reference operand VRO1. */
687 static void
688 vn_reference_op_compute_hash (const vn_reference_op_t vro1, inchash::hash &hstate)
690 hstate.add_int (vro1->opcode);
691 if (vro1->opcode == CALL_EXPR && !vro1->op0)
692 hstate.add_int (vro1->clique);
693 if (vro1->op0)
694 inchash::add_expr (vro1->op0, hstate);
695 if (vro1->op1)
696 inchash::add_expr (vro1->op1, hstate);
697 if (vro1->op2)
698 inchash::add_expr (vro1->op2, hstate);
701 /* Compute a hash for the reference operation VR1 and return it. */
703 static hashval_t
704 vn_reference_compute_hash (const vn_reference_t vr1)
706 inchash::hash hstate;
707 hashval_t result;
708 int i;
709 vn_reference_op_t vro;
710 poly_int64 off = -1;
711 bool deref = false;
713 FOR_EACH_VEC_ELT (vr1->operands, i, vro)
715 if (vro->opcode == MEM_REF)
716 deref = true;
717 else if (vro->opcode != ADDR_EXPR)
718 deref = false;
719 if (maybe_ne (vro->off, -1))
721 if (known_eq (off, -1))
722 off = 0;
723 off += vro->off;
725 else
727 if (maybe_ne (off, -1)
728 && maybe_ne (off, 0))
729 hstate.add_poly_int (off);
730 off = -1;
731 if (deref
732 && vro->opcode == ADDR_EXPR)
734 if (vro->op0)
736 tree op = TREE_OPERAND (vro->op0, 0);
737 hstate.add_int (TREE_CODE (op));
738 inchash::add_expr (op, hstate);
741 else
742 vn_reference_op_compute_hash (vro, hstate);
745 result = hstate.end ();
746 /* ??? We would ICE later if we hash instead of adding that in. */
747 if (vr1->vuse)
748 result += SSA_NAME_VERSION (vr1->vuse);
750 return result;
753 /* Return true if reference operations VR1 and VR2 are equivalent. This
754 means they have the same set of operands and vuses. */
756 bool
757 vn_reference_eq (const_vn_reference_t const vr1, const_vn_reference_t const vr2)
759 unsigned i, j;
761 /* Early out if this is not a hash collision. */
762 if (vr1->hashcode != vr2->hashcode)
763 return false;
765 /* The VOP needs to be the same. */
766 if (vr1->vuse != vr2->vuse)
767 return false;
769 /* If the operands are the same we are done. */
770 if (vr1->operands == vr2->operands)
771 return true;
773 if (!vr1->type || !vr2->type)
775 if (vr1->type != vr2->type)
776 return false;
778 else if (vr1->type == vr2->type)
780 else if (COMPLETE_TYPE_P (vr1->type) != COMPLETE_TYPE_P (vr2->type)
781 || (COMPLETE_TYPE_P (vr1->type)
782 && !expressions_equal_p (TYPE_SIZE (vr1->type),
783 TYPE_SIZE (vr2->type))))
784 return false;
785 else if (vr1->operands[0].opcode == CALL_EXPR
786 && !types_compatible_p (vr1->type, vr2->type))
787 return false;
788 else if (INTEGRAL_TYPE_P (vr1->type)
789 && INTEGRAL_TYPE_P (vr2->type))
791 if (TYPE_PRECISION (vr1->type) != TYPE_PRECISION (vr2->type))
792 return false;
794 else if (INTEGRAL_TYPE_P (vr1->type)
795 && (TYPE_PRECISION (vr1->type)
796 != TREE_INT_CST_LOW (TYPE_SIZE (vr1->type))))
797 return false;
798 else if (INTEGRAL_TYPE_P (vr2->type)
799 && (TYPE_PRECISION (vr2->type)
800 != TREE_INT_CST_LOW (TYPE_SIZE (vr2->type))))
801 return false;
803 i = 0;
804 j = 0;
807 poly_int64 off1 = 0, off2 = 0;
808 vn_reference_op_t vro1, vro2;
809 vn_reference_op_s tem1, tem2;
810 bool deref1 = false, deref2 = false;
811 bool reverse1 = false, reverse2 = false;
812 for (; vr1->operands.iterate (i, &vro1); i++)
814 if (vro1->opcode == MEM_REF)
815 deref1 = true;
816 /* Do not look through a storage order barrier. */
817 else if (vro1->opcode == VIEW_CONVERT_EXPR && vro1->reverse)
818 return false;
819 reverse1 |= vro1->reverse;
820 if (known_eq (vro1->off, -1))
821 break;
822 off1 += vro1->off;
824 for (; vr2->operands.iterate (j, &vro2); j++)
826 if (vro2->opcode == MEM_REF)
827 deref2 = true;
828 /* Do not look through a storage order barrier. */
829 else if (vro2->opcode == VIEW_CONVERT_EXPR && vro2->reverse)
830 return false;
831 reverse2 |= vro2->reverse;
832 if (known_eq (vro2->off, -1))
833 break;
834 off2 += vro2->off;
836 if (maybe_ne (off1, off2) || reverse1 != reverse2)
837 return false;
838 if (deref1 && vro1->opcode == ADDR_EXPR)
840 memset (&tem1, 0, sizeof (tem1));
841 tem1.op0 = TREE_OPERAND (vro1->op0, 0);
842 tem1.type = TREE_TYPE (tem1.op0);
843 tem1.opcode = TREE_CODE (tem1.op0);
844 vro1 = &tem1;
845 deref1 = false;
847 if (deref2 && vro2->opcode == ADDR_EXPR)
849 memset (&tem2, 0, sizeof (tem2));
850 tem2.op0 = TREE_OPERAND (vro2->op0, 0);
851 tem2.type = TREE_TYPE (tem2.op0);
852 tem2.opcode = TREE_CODE (tem2.op0);
853 vro2 = &tem2;
854 deref2 = false;
856 if (deref1 != deref2)
857 return false;
858 if (!vn_reference_op_eq (vro1, vro2))
859 return false;
860 ++j;
861 ++i;
863 while (vr1->operands.length () != i
864 || vr2->operands.length () != j);
866 return true;
869 /* Copy the operations present in load/store REF into RESULT, a vector of
870 vn_reference_op_s's. */
872 static void
873 copy_reference_ops_from_ref (tree ref, vec<vn_reference_op_s> *result)
875 /* For non-calls, store the information that makes up the address. */
876 tree orig = ref;
877 while (ref)
879 vn_reference_op_s temp;
881 memset (&temp, 0, sizeof (temp));
882 temp.type = TREE_TYPE (ref);
883 temp.opcode = TREE_CODE (ref);
884 temp.off = -1;
886 switch (temp.opcode)
888 case MODIFY_EXPR:
889 temp.op0 = TREE_OPERAND (ref, 1);
890 break;
891 case WITH_SIZE_EXPR:
892 temp.op0 = TREE_OPERAND (ref, 1);
893 temp.off = 0;
894 break;
895 case MEM_REF:
896 /* The base address gets its own vn_reference_op_s structure. */
897 temp.op0 = TREE_OPERAND (ref, 1);
898 if (!mem_ref_offset (ref).to_shwi (&temp.off))
899 temp.off = -1;
900 temp.clique = MR_DEPENDENCE_CLIQUE (ref);
901 temp.base = MR_DEPENDENCE_BASE (ref);
902 temp.reverse = REF_REVERSE_STORAGE_ORDER (ref);
903 break;
904 case TARGET_MEM_REF:
905 /* The base address gets its own vn_reference_op_s structure. */
906 temp.op0 = TMR_INDEX (ref);
907 temp.op1 = TMR_STEP (ref);
908 temp.op2 = TMR_OFFSET (ref);
909 temp.clique = MR_DEPENDENCE_CLIQUE (ref);
910 temp.base = MR_DEPENDENCE_BASE (ref);
911 result->safe_push (temp);
912 memset (&temp, 0, sizeof (temp));
913 temp.type = NULL_TREE;
914 temp.opcode = ERROR_MARK;
915 temp.op0 = TMR_INDEX2 (ref);
916 temp.off = -1;
917 break;
918 case BIT_FIELD_REF:
919 /* Record bits, position and storage order. */
920 temp.op0 = TREE_OPERAND (ref, 1);
921 temp.op1 = TREE_OPERAND (ref, 2);
922 if (!multiple_p (bit_field_offset (ref), BITS_PER_UNIT, &temp.off))
923 temp.off = -1;
924 temp.reverse = REF_REVERSE_STORAGE_ORDER (ref);
925 break;
926 case COMPONENT_REF:
927 /* The field decl is enough to unambiguously specify the field,
928 so use its type here. */
929 temp.type = TREE_TYPE (TREE_OPERAND (ref, 1));
930 temp.op0 = TREE_OPERAND (ref, 1);
931 temp.op1 = TREE_OPERAND (ref, 2);
932 temp.reverse = (AGGREGATE_TYPE_P (TREE_TYPE (TREE_OPERAND (ref, 0)))
933 && TYPE_REVERSE_STORAGE_ORDER
934 (TREE_TYPE (TREE_OPERAND (ref, 0))));
936 tree this_offset = component_ref_field_offset (ref);
937 if (this_offset
938 && poly_int_tree_p (this_offset))
940 tree bit_offset = DECL_FIELD_BIT_OFFSET (TREE_OPERAND (ref, 1));
941 if (TREE_INT_CST_LOW (bit_offset) % BITS_PER_UNIT == 0)
943 poly_offset_int off
944 = (wi::to_poly_offset (this_offset)
945 + (wi::to_offset (bit_offset) >> LOG2_BITS_PER_UNIT));
946 /* Probibit value-numbering zero offset components
947 of addresses the same before the pass folding
948 __builtin_object_size had a chance to run. */
949 if (TREE_CODE (orig) != ADDR_EXPR
950 || maybe_ne (off, 0)
951 || (cfun->curr_properties & PROP_objsz))
952 off.to_shwi (&temp.off);
956 break;
957 case ARRAY_RANGE_REF:
958 case ARRAY_REF:
960 tree eltype = TREE_TYPE (TREE_TYPE (TREE_OPERAND (ref, 0)));
961 /* Record index as operand. */
962 temp.op0 = TREE_OPERAND (ref, 1);
963 /* Always record lower bounds and element size. */
964 temp.op1 = array_ref_low_bound (ref);
965 /* But record element size in units of the type alignment. */
966 temp.op2 = TREE_OPERAND (ref, 3);
967 temp.align = eltype->type_common.align;
968 if (! temp.op2)
969 temp.op2 = size_binop (EXACT_DIV_EXPR, TYPE_SIZE_UNIT (eltype),
970 size_int (TYPE_ALIGN_UNIT (eltype)));
971 if (poly_int_tree_p (temp.op0)
972 && poly_int_tree_p (temp.op1)
973 && TREE_CODE (temp.op2) == INTEGER_CST)
975 poly_offset_int off = ((wi::to_poly_offset (temp.op0)
976 - wi::to_poly_offset (temp.op1))
977 * wi::to_offset (temp.op2)
978 * vn_ref_op_align_unit (&temp));
979 off.to_shwi (&temp.off);
981 temp.reverse = (AGGREGATE_TYPE_P (TREE_TYPE (TREE_OPERAND (ref, 0)))
982 && TYPE_REVERSE_STORAGE_ORDER
983 (TREE_TYPE (TREE_OPERAND (ref, 0))));
985 break;
986 case VAR_DECL:
987 if (DECL_HARD_REGISTER (ref))
989 temp.op0 = ref;
990 break;
992 /* Fallthru. */
993 case PARM_DECL:
994 case CONST_DECL:
995 case RESULT_DECL:
996 /* Canonicalize decls to MEM[&decl] which is what we end up with
997 when valueizing MEM[ptr] with ptr = &decl. */
998 temp.opcode = MEM_REF;
999 temp.op0 = build_int_cst (build_pointer_type (TREE_TYPE (ref)), 0);
1000 temp.off = 0;
1001 result->safe_push (temp);
1002 temp.opcode = ADDR_EXPR;
1003 temp.op0 = build1 (ADDR_EXPR, TREE_TYPE (temp.op0), ref);
1004 temp.type = TREE_TYPE (temp.op0);
1005 temp.off = -1;
1006 break;
1007 case STRING_CST:
1008 case INTEGER_CST:
1009 case POLY_INT_CST:
1010 case COMPLEX_CST:
1011 case VECTOR_CST:
1012 case REAL_CST:
1013 case FIXED_CST:
1014 case CONSTRUCTOR:
1015 case SSA_NAME:
1016 temp.op0 = ref;
1017 break;
1018 case ADDR_EXPR:
1019 if (is_gimple_min_invariant (ref))
1021 temp.op0 = ref;
1022 break;
1024 break;
1025 /* These are only interesting for their operands, their
1026 existence, and their type. They will never be the last
1027 ref in the chain of references (IE they require an
1028 operand), so we don't have to put anything
1029 for op* as it will be handled by the iteration */
1030 case REALPART_EXPR:
1031 temp.off = 0;
1032 break;
1033 case VIEW_CONVERT_EXPR:
1034 temp.off = 0;
1035 temp.reverse = storage_order_barrier_p (ref);
1036 break;
1037 case IMAGPART_EXPR:
1038 /* This is only interesting for its constant offset. */
1039 temp.off = TREE_INT_CST_LOW (TYPE_SIZE_UNIT (TREE_TYPE (ref)));
1040 break;
1041 default:
1042 gcc_unreachable ();
1044 result->safe_push (temp);
1046 if (REFERENCE_CLASS_P (ref)
1047 || TREE_CODE (ref) == MODIFY_EXPR
1048 || TREE_CODE (ref) == WITH_SIZE_EXPR
1049 || (TREE_CODE (ref) == ADDR_EXPR
1050 && !is_gimple_min_invariant (ref)))
1051 ref = TREE_OPERAND (ref, 0);
1052 else
1053 ref = NULL_TREE;
1057 /* Build a alias-oracle reference abstraction in *REF from the vn_reference
1058 operands in *OPS, the reference alias set SET and the reference type TYPE.
1059 Return true if something useful was produced. */
1061 bool
1062 ao_ref_init_from_vn_reference (ao_ref *ref,
1063 alias_set_type set, alias_set_type base_set,
1064 tree type, const vec<vn_reference_op_s> &ops)
1066 unsigned i;
1067 tree base = NULL_TREE;
1068 tree *op0_p = &base;
1069 poly_offset_int offset = 0;
1070 poly_offset_int max_size;
1071 poly_offset_int size = -1;
1072 tree size_tree = NULL_TREE;
1074 /* We don't handle calls. */
1075 if (!type)
1076 return false;
1078 machine_mode mode = TYPE_MODE (type);
1079 if (mode == BLKmode)
1080 size_tree = TYPE_SIZE (type);
1081 else
1082 size = GET_MODE_BITSIZE (mode);
1083 if (size_tree != NULL_TREE
1084 && poly_int_tree_p (size_tree))
1085 size = wi::to_poly_offset (size_tree);
1087 /* Lower the final access size from the outermost expression. */
1088 const_vn_reference_op_t cst_op = &ops[0];
1089 /* Cast away constness for the sake of the const-unsafe
1090 FOR_EACH_VEC_ELT(). */
1091 vn_reference_op_t op = const_cast<vn_reference_op_t>(cst_op);
1092 size_tree = NULL_TREE;
1093 if (op->opcode == COMPONENT_REF)
1094 size_tree = DECL_SIZE (op->op0);
1095 else if (op->opcode == BIT_FIELD_REF)
1096 size_tree = op->op0;
1097 if (size_tree != NULL_TREE
1098 && poly_int_tree_p (size_tree)
1099 && (!known_size_p (size)
1100 || known_lt (wi::to_poly_offset (size_tree), size)))
1101 size = wi::to_poly_offset (size_tree);
1103 /* Initially, maxsize is the same as the accessed element size.
1104 In the following it will only grow (or become -1). */
1105 max_size = size;
1107 /* Compute cumulative bit-offset for nested component-refs and array-refs,
1108 and find the ultimate containing object. */
1109 FOR_EACH_VEC_ELT (ops, i, op)
1111 switch (op->opcode)
1113 /* These may be in the reference ops, but we cannot do anything
1114 sensible with them here. */
1115 case ADDR_EXPR:
1116 /* Apart from ADDR_EXPR arguments to MEM_REF. */
1117 if (base != NULL_TREE
1118 && TREE_CODE (base) == MEM_REF
1119 && op->op0
1120 && DECL_P (TREE_OPERAND (op->op0, 0)))
1122 const_vn_reference_op_t pop = &ops[i-1];
1123 base = TREE_OPERAND (op->op0, 0);
1124 if (known_eq (pop->off, -1))
1126 max_size = -1;
1127 offset = 0;
1129 else
1130 offset += pop->off * BITS_PER_UNIT;
1131 op0_p = NULL;
1132 break;
1134 /* Fallthru. */
1135 case CALL_EXPR:
1136 return false;
1138 /* Record the base objects. */
1139 case MEM_REF:
1140 *op0_p = build2 (MEM_REF, op->type,
1141 NULL_TREE, op->op0);
1142 MR_DEPENDENCE_CLIQUE (*op0_p) = op->clique;
1143 MR_DEPENDENCE_BASE (*op0_p) = op->base;
1144 op0_p = &TREE_OPERAND (*op0_p, 0);
1145 break;
1147 case VAR_DECL:
1148 case PARM_DECL:
1149 case RESULT_DECL:
1150 case SSA_NAME:
1151 *op0_p = op->op0;
1152 op0_p = NULL;
1153 break;
1155 /* And now the usual component-reference style ops. */
1156 case BIT_FIELD_REF:
1157 offset += wi::to_poly_offset (op->op1);
1158 break;
1160 case COMPONENT_REF:
1162 tree field = op->op0;
1163 /* We do not have a complete COMPONENT_REF tree here so we
1164 cannot use component_ref_field_offset. Do the interesting
1165 parts manually. */
1166 tree this_offset = DECL_FIELD_OFFSET (field);
1168 if (op->op1 || !poly_int_tree_p (this_offset))
1169 max_size = -1;
1170 else
1172 poly_offset_int woffset = (wi::to_poly_offset (this_offset)
1173 << LOG2_BITS_PER_UNIT);
1174 woffset += wi::to_offset (DECL_FIELD_BIT_OFFSET (field));
1175 offset += woffset;
1177 break;
1180 case ARRAY_RANGE_REF:
1181 case ARRAY_REF:
1182 /* We recorded the lower bound and the element size. */
1183 if (!poly_int_tree_p (op->op0)
1184 || !poly_int_tree_p (op->op1)
1185 || TREE_CODE (op->op2) != INTEGER_CST)
1186 max_size = -1;
1187 else
1189 poly_offset_int woffset
1190 = wi::sext (wi::to_poly_offset (op->op0)
1191 - wi::to_poly_offset (op->op1),
1192 TYPE_PRECISION (sizetype));
1193 woffset *= wi::to_offset (op->op2) * vn_ref_op_align_unit (op);
1194 woffset <<= LOG2_BITS_PER_UNIT;
1195 offset += woffset;
1197 break;
1199 case REALPART_EXPR:
1200 break;
1202 case IMAGPART_EXPR:
1203 offset += size;
1204 break;
1206 case VIEW_CONVERT_EXPR:
1207 break;
1209 case STRING_CST:
1210 case INTEGER_CST:
1211 case COMPLEX_CST:
1212 case VECTOR_CST:
1213 case REAL_CST:
1214 case CONSTRUCTOR:
1215 case CONST_DECL:
1216 return false;
1218 default:
1219 return false;
1223 if (base == NULL_TREE)
1224 return false;
1226 ref->ref = NULL_TREE;
1227 ref->base = base;
1228 ref->ref_alias_set = set;
1229 ref->base_alias_set = base_set;
1230 /* We discount volatiles from value-numbering elsewhere. */
1231 ref->volatile_p = false;
1233 if (!size.to_shwi (&ref->size) || maybe_lt (ref->size, 0))
1235 ref->offset = 0;
1236 ref->size = -1;
1237 ref->max_size = -1;
1238 return true;
1241 if (!offset.to_shwi (&ref->offset))
1243 ref->offset = 0;
1244 ref->max_size = -1;
1245 return true;
1248 if (!max_size.to_shwi (&ref->max_size) || maybe_lt (ref->max_size, 0))
1249 ref->max_size = -1;
1251 return true;
1254 /* Copy the operations present in load/store/call REF into RESULT, a vector of
1255 vn_reference_op_s's. */
1257 static void
1258 copy_reference_ops_from_call (gcall *call,
1259 vec<vn_reference_op_s> *result)
1261 vn_reference_op_s temp;
1262 unsigned i;
1263 tree lhs = gimple_call_lhs (call);
1264 int lr;
1266 /* If 2 calls have a different non-ssa lhs, vdef value numbers should be
1267 different. By adding the lhs here in the vector, we ensure that the
1268 hashcode is different, guaranteeing a different value number. */
1269 if (lhs && TREE_CODE (lhs) != SSA_NAME)
1271 memset (&temp, 0, sizeof (temp));
1272 temp.opcode = MODIFY_EXPR;
1273 temp.type = TREE_TYPE (lhs);
1274 temp.op0 = lhs;
1275 temp.off = -1;
1276 result->safe_push (temp);
1279 /* Copy the type, opcode, function, static chain and EH region, if any. */
1280 memset (&temp, 0, sizeof (temp));
1281 temp.type = gimple_call_fntype (call);
1282 temp.opcode = CALL_EXPR;
1283 temp.op0 = gimple_call_fn (call);
1284 if (gimple_call_internal_p (call))
1285 temp.clique = gimple_call_internal_fn (call);
1286 temp.op1 = gimple_call_chain (call);
1287 if (stmt_could_throw_p (cfun, call) && (lr = lookup_stmt_eh_lp (call)) > 0)
1288 temp.op2 = size_int (lr);
1289 temp.off = -1;
1290 result->safe_push (temp);
1292 /* Copy the call arguments. As they can be references as well,
1293 just chain them together. */
1294 for (i = 0; i < gimple_call_num_args (call); ++i)
1296 tree callarg = gimple_call_arg (call, i);
1297 copy_reference_ops_from_ref (callarg, result);
1301 /* Fold *& at position *I_P in a vn_reference_op_s vector *OPS. Updates
1302 *I_P to point to the last element of the replacement. */
1303 static bool
1304 vn_reference_fold_indirect (vec<vn_reference_op_s> *ops,
1305 unsigned int *i_p)
1307 unsigned int i = *i_p;
1308 vn_reference_op_t op = &(*ops)[i];
1309 vn_reference_op_t mem_op = &(*ops)[i - 1];
1310 tree addr_base;
1311 poly_int64 addr_offset = 0;
1313 /* The only thing we have to do is from &OBJ.foo.bar add the offset
1314 from .foo.bar to the preceding MEM_REF offset and replace the
1315 address with &OBJ. */
1316 addr_base = get_addr_base_and_unit_offset_1 (TREE_OPERAND (op->op0, 0),
1317 &addr_offset, vn_valueize);
1318 gcc_checking_assert (addr_base && TREE_CODE (addr_base) != MEM_REF);
1319 if (addr_base != TREE_OPERAND (op->op0, 0))
1321 poly_offset_int off
1322 = (poly_offset_int::from (wi::to_poly_wide (mem_op->op0),
1323 SIGNED)
1324 + addr_offset);
1325 mem_op->op0 = wide_int_to_tree (TREE_TYPE (mem_op->op0), off);
1326 op->op0 = build_fold_addr_expr (addr_base);
1327 if (tree_fits_shwi_p (mem_op->op0))
1328 mem_op->off = tree_to_shwi (mem_op->op0);
1329 else
1330 mem_op->off = -1;
1331 return true;
1333 return false;
1336 /* Fold *& at position *I_P in a vn_reference_op_s vector *OPS. Updates
1337 *I_P to point to the last element of the replacement. */
1338 static bool
1339 vn_reference_maybe_forwprop_address (vec<vn_reference_op_s> *ops,
1340 unsigned int *i_p)
1342 bool changed = false;
1343 vn_reference_op_t op;
1347 unsigned int i = *i_p;
1348 op = &(*ops)[i];
1349 vn_reference_op_t mem_op = &(*ops)[i - 1];
1350 gimple *def_stmt;
1351 enum tree_code code;
1352 poly_offset_int off;
1354 def_stmt = SSA_NAME_DEF_STMT (op->op0);
1355 if (!is_gimple_assign (def_stmt))
1356 return changed;
1358 code = gimple_assign_rhs_code (def_stmt);
1359 if (code != ADDR_EXPR
1360 && code != POINTER_PLUS_EXPR)
1361 return changed;
1363 off = poly_offset_int::from (wi::to_poly_wide (mem_op->op0), SIGNED);
1365 /* The only thing we have to do is from &OBJ.foo.bar add the offset
1366 from .foo.bar to the preceding MEM_REF offset and replace the
1367 address with &OBJ. */
1368 if (code == ADDR_EXPR)
1370 tree addr, addr_base;
1371 poly_int64 addr_offset;
1373 addr = gimple_assign_rhs1 (def_stmt);
1374 addr_base = get_addr_base_and_unit_offset_1 (TREE_OPERAND (addr, 0),
1375 &addr_offset,
1376 vn_valueize);
1377 /* If that didn't work because the address isn't invariant propagate
1378 the reference tree from the address operation in case the current
1379 dereference isn't offsetted. */
1380 if (!addr_base
1381 && *i_p == ops->length () - 1
1382 && known_eq (off, 0)
1383 /* This makes us disable this transform for PRE where the
1384 reference ops might be also used for code insertion which
1385 is invalid. */
1386 && default_vn_walk_kind == VN_WALKREWRITE)
1388 auto_vec<vn_reference_op_s, 32> tem;
1389 copy_reference_ops_from_ref (TREE_OPERAND (addr, 0), &tem);
1390 /* Make sure to preserve TBAA info. The only objects not
1391 wrapped in MEM_REFs that can have their address taken are
1392 STRING_CSTs. */
1393 if (tem.length () >= 2
1394 && tem[tem.length () - 2].opcode == MEM_REF)
1396 vn_reference_op_t new_mem_op = &tem[tem.length () - 2];
1397 new_mem_op->op0
1398 = wide_int_to_tree (TREE_TYPE (mem_op->op0),
1399 wi::to_poly_wide (new_mem_op->op0));
1401 else
1402 gcc_assert (tem.last ().opcode == STRING_CST);
1403 ops->pop ();
1404 ops->pop ();
1405 ops->safe_splice (tem);
1406 --*i_p;
1407 return true;
1409 if (!addr_base
1410 || TREE_CODE (addr_base) != MEM_REF
1411 || (TREE_CODE (TREE_OPERAND (addr_base, 0)) == SSA_NAME
1412 && SSA_NAME_OCCURS_IN_ABNORMAL_PHI (TREE_OPERAND (addr_base,
1413 0))))
1414 return changed;
1416 off += addr_offset;
1417 off += mem_ref_offset (addr_base);
1418 op->op0 = TREE_OPERAND (addr_base, 0);
1420 else
1422 tree ptr, ptroff;
1423 ptr = gimple_assign_rhs1 (def_stmt);
1424 ptroff = gimple_assign_rhs2 (def_stmt);
1425 if (TREE_CODE (ptr) != SSA_NAME
1426 || SSA_NAME_OCCURS_IN_ABNORMAL_PHI (ptr)
1427 /* Make sure to not endlessly recurse.
1428 See gcc.dg/tree-ssa/20040408-1.c for an example. Can easily
1429 happen when we value-number a PHI to its backedge value. */
1430 || SSA_VAL (ptr) == op->op0
1431 || !poly_int_tree_p (ptroff))
1432 return changed;
1434 off += wi::to_poly_offset (ptroff);
1435 op->op0 = ptr;
1438 mem_op->op0 = wide_int_to_tree (TREE_TYPE (mem_op->op0), off);
1439 if (tree_fits_shwi_p (mem_op->op0))
1440 mem_op->off = tree_to_shwi (mem_op->op0);
1441 else
1442 mem_op->off = -1;
1443 /* ??? Can end up with endless recursion here!?
1444 gcc.c-torture/execute/strcmp-1.c */
1445 if (TREE_CODE (op->op0) == SSA_NAME)
1446 op->op0 = SSA_VAL (op->op0);
1447 if (TREE_CODE (op->op0) != SSA_NAME)
1448 op->opcode = TREE_CODE (op->op0);
1450 changed = true;
1452 /* Tail-recurse. */
1453 while (TREE_CODE (op->op0) == SSA_NAME);
1455 /* Fold a remaining *&. */
1456 if (TREE_CODE (op->op0) == ADDR_EXPR)
1457 vn_reference_fold_indirect (ops, i_p);
1459 return changed;
1462 /* Optimize the reference REF to a constant if possible or return
1463 NULL_TREE if not. */
1465 tree
1466 fully_constant_vn_reference_p (vn_reference_t ref)
1468 vec<vn_reference_op_s> operands = ref->operands;
1469 vn_reference_op_t op;
1471 /* Try to simplify the translated expression if it is
1472 a call to a builtin function with at most two arguments. */
1473 op = &operands[0];
1474 if (op->opcode == CALL_EXPR
1475 && (!op->op0
1476 || (TREE_CODE (op->op0) == ADDR_EXPR
1477 && TREE_CODE (TREE_OPERAND (op->op0, 0)) == FUNCTION_DECL
1478 && fndecl_built_in_p (TREE_OPERAND (op->op0, 0),
1479 BUILT_IN_NORMAL)))
1480 && operands.length () >= 2
1481 && operands.length () <= 3)
1483 vn_reference_op_t arg0, arg1 = NULL;
1484 bool anyconst = false;
1485 arg0 = &operands[1];
1486 if (operands.length () > 2)
1487 arg1 = &operands[2];
1488 if (TREE_CODE_CLASS (arg0->opcode) == tcc_constant
1489 || (arg0->opcode == ADDR_EXPR
1490 && is_gimple_min_invariant (arg0->op0)))
1491 anyconst = true;
1492 if (arg1
1493 && (TREE_CODE_CLASS (arg1->opcode) == tcc_constant
1494 || (arg1->opcode == ADDR_EXPR
1495 && is_gimple_min_invariant (arg1->op0))))
1496 anyconst = true;
1497 if (anyconst)
1499 combined_fn fn;
1500 if (op->op0)
1501 fn = as_combined_fn (DECL_FUNCTION_CODE
1502 (TREE_OPERAND (op->op0, 0)));
1503 else
1504 fn = as_combined_fn ((internal_fn) op->clique);
1505 tree folded;
1506 if (arg1)
1507 folded = fold_const_call (fn, ref->type, arg0->op0, arg1->op0);
1508 else
1509 folded = fold_const_call (fn, ref->type, arg0->op0);
1510 if (folded
1511 && is_gimple_min_invariant (folded))
1512 return folded;
1516 /* Simplify reads from constants or constant initializers. */
1517 else if (BITS_PER_UNIT == 8
1518 && ref->type
1519 && COMPLETE_TYPE_P (ref->type)
1520 && is_gimple_reg_type (ref->type))
1522 poly_int64 off = 0;
1523 HOST_WIDE_INT size;
1524 if (INTEGRAL_TYPE_P (ref->type))
1525 size = TYPE_PRECISION (ref->type);
1526 else if (tree_fits_shwi_p (TYPE_SIZE (ref->type)))
1527 size = tree_to_shwi (TYPE_SIZE (ref->type));
1528 else
1529 return NULL_TREE;
1530 if (size % BITS_PER_UNIT != 0
1531 || size > MAX_BITSIZE_MODE_ANY_MODE)
1532 return NULL_TREE;
1533 size /= BITS_PER_UNIT;
1534 unsigned i;
1535 for (i = 0; i < operands.length (); ++i)
1537 if (TREE_CODE_CLASS (operands[i].opcode) == tcc_constant)
1539 ++i;
1540 break;
1542 if (known_eq (operands[i].off, -1))
1543 return NULL_TREE;
1544 off += operands[i].off;
1545 if (operands[i].opcode == MEM_REF)
1547 ++i;
1548 break;
1551 vn_reference_op_t base = &operands[--i];
1552 tree ctor = error_mark_node;
1553 tree decl = NULL_TREE;
1554 if (TREE_CODE_CLASS (base->opcode) == tcc_constant)
1555 ctor = base->op0;
1556 else if (base->opcode == MEM_REF
1557 && base[1].opcode == ADDR_EXPR
1558 && (TREE_CODE (TREE_OPERAND (base[1].op0, 0)) == VAR_DECL
1559 || TREE_CODE (TREE_OPERAND (base[1].op0, 0)) == CONST_DECL
1560 || TREE_CODE (TREE_OPERAND (base[1].op0, 0)) == STRING_CST))
1562 decl = TREE_OPERAND (base[1].op0, 0);
1563 if (TREE_CODE (decl) == STRING_CST)
1564 ctor = decl;
1565 else
1566 ctor = ctor_for_folding (decl);
1568 if (ctor == NULL_TREE)
1569 return build_zero_cst (ref->type);
1570 else if (ctor != error_mark_node)
1572 HOST_WIDE_INT const_off;
1573 if (decl)
1575 tree res = fold_ctor_reference (ref->type, ctor,
1576 off * BITS_PER_UNIT,
1577 size * BITS_PER_UNIT, decl);
1578 if (res)
1580 STRIP_USELESS_TYPE_CONVERSION (res);
1581 if (is_gimple_min_invariant (res))
1582 return res;
1585 else if (off.is_constant (&const_off))
1587 unsigned char buf[MAX_BITSIZE_MODE_ANY_MODE / BITS_PER_UNIT];
1588 int len = native_encode_expr (ctor, buf, size, const_off);
1589 if (len > 0)
1590 return native_interpret_expr (ref->type, buf, len);
1595 return NULL_TREE;
1598 /* Return true if OPS contain a storage order barrier. */
1600 static bool
1601 contains_storage_order_barrier_p (vec<vn_reference_op_s> ops)
1603 vn_reference_op_t op;
1604 unsigned i;
1606 FOR_EACH_VEC_ELT (ops, i, op)
1607 if (op->opcode == VIEW_CONVERT_EXPR && op->reverse)
1608 return true;
1610 return false;
1613 /* Return true if OPS represent an access with reverse storage order. */
1615 static bool
1616 reverse_storage_order_for_component_p (vec<vn_reference_op_s> ops)
1618 unsigned i = 0;
1619 if (ops[i].opcode == REALPART_EXPR || ops[i].opcode == IMAGPART_EXPR)
1620 ++i;
1621 switch (ops[i].opcode)
1623 case ARRAY_REF:
1624 case COMPONENT_REF:
1625 case BIT_FIELD_REF:
1626 case MEM_REF:
1627 return ops[i].reverse;
1628 default:
1629 return false;
1633 /* Transform any SSA_NAME's in a vector of vn_reference_op_s
1634 structures into their value numbers. This is done in-place, and
1635 the vector passed in is returned. *VALUEIZED_ANYTHING will specify
1636 whether any operands were valueized. */
1638 static void
1639 valueize_refs_1 (vec<vn_reference_op_s> *orig, bool *valueized_anything,
1640 bool with_avail = false)
1642 *valueized_anything = false;
1644 for (unsigned i = 0; i < orig->length (); ++i)
1646 re_valueize:
1647 vn_reference_op_t vro = &(*orig)[i];
1648 if (vro->opcode == SSA_NAME
1649 || (vro->op0 && TREE_CODE (vro->op0) == SSA_NAME))
1651 tree tem = with_avail ? vn_valueize (vro->op0) : SSA_VAL (vro->op0);
1652 if (tem != vro->op0)
1654 *valueized_anything = true;
1655 vro->op0 = tem;
1657 /* If it transforms from an SSA_NAME to a constant, update
1658 the opcode. */
1659 if (TREE_CODE (vro->op0) != SSA_NAME && vro->opcode == SSA_NAME)
1660 vro->opcode = TREE_CODE (vro->op0);
1662 if (vro->op1 && TREE_CODE (vro->op1) == SSA_NAME)
1664 tree tem = with_avail ? vn_valueize (vro->op1) : SSA_VAL (vro->op1);
1665 if (tem != vro->op1)
1667 *valueized_anything = true;
1668 vro->op1 = tem;
1671 if (vro->op2 && TREE_CODE (vro->op2) == SSA_NAME)
1673 tree tem = with_avail ? vn_valueize (vro->op2) : SSA_VAL (vro->op2);
1674 if (tem != vro->op2)
1676 *valueized_anything = true;
1677 vro->op2 = tem;
1680 /* If it transforms from an SSA_NAME to an address, fold with
1681 a preceding indirect reference. */
1682 if (i > 0
1683 && vro->op0
1684 && TREE_CODE (vro->op0) == ADDR_EXPR
1685 && (*orig)[i - 1].opcode == MEM_REF)
1687 if (vn_reference_fold_indirect (orig, &i))
1688 *valueized_anything = true;
1690 else if (i > 0
1691 && vro->opcode == SSA_NAME
1692 && (*orig)[i - 1].opcode == MEM_REF)
1694 if (vn_reference_maybe_forwprop_address (orig, &i))
1696 *valueized_anything = true;
1697 /* Re-valueize the current operand. */
1698 goto re_valueize;
1701 /* If it transforms a non-constant ARRAY_REF into a constant
1702 one, adjust the constant offset. */
1703 else if (vro->opcode == ARRAY_REF
1704 && known_eq (vro->off, -1)
1705 && poly_int_tree_p (vro->op0)
1706 && poly_int_tree_p (vro->op1)
1707 && TREE_CODE (vro->op2) == INTEGER_CST)
1709 poly_offset_int off = ((wi::to_poly_offset (vro->op0)
1710 - wi::to_poly_offset (vro->op1))
1711 * wi::to_offset (vro->op2)
1712 * vn_ref_op_align_unit (vro));
1713 off.to_shwi (&vro->off);
1718 static void
1719 valueize_refs (vec<vn_reference_op_s> *orig)
1721 bool tem;
1722 valueize_refs_1 (orig, &tem);
1725 static vec<vn_reference_op_s> shared_lookup_references;
1727 /* Create a vector of vn_reference_op_s structures from REF, a
1728 REFERENCE_CLASS_P tree. The vector is shared among all callers of
1729 this function. *VALUEIZED_ANYTHING will specify whether any
1730 operands were valueized. */
1732 static vec<vn_reference_op_s>
1733 valueize_shared_reference_ops_from_ref (tree ref, bool *valueized_anything)
1735 if (!ref)
1736 return vNULL;
1737 shared_lookup_references.truncate (0);
1738 copy_reference_ops_from_ref (ref, &shared_lookup_references);
1739 valueize_refs_1 (&shared_lookup_references, valueized_anything);
1740 return shared_lookup_references;
1743 /* Create a vector of vn_reference_op_s structures from CALL, a
1744 call statement. The vector is shared among all callers of
1745 this function. */
1747 static vec<vn_reference_op_s>
1748 valueize_shared_reference_ops_from_call (gcall *call)
1750 if (!call)
1751 return vNULL;
1752 shared_lookup_references.truncate (0);
1753 copy_reference_ops_from_call (call, &shared_lookup_references);
1754 valueize_refs (&shared_lookup_references);
1755 return shared_lookup_references;
1758 /* Lookup a SCCVN reference operation VR in the current hash table.
1759 Returns the resulting value number if it exists in the hash table,
1760 NULL_TREE otherwise. VNRESULT will be filled in with the actual
1761 vn_reference_t stored in the hashtable if something is found. */
1763 static tree
1764 vn_reference_lookup_1 (vn_reference_t vr, vn_reference_t *vnresult)
1766 vn_reference_s **slot;
1767 hashval_t hash;
1769 hash = vr->hashcode;
1770 slot = valid_info->references->find_slot_with_hash (vr, hash, NO_INSERT);
1771 if (slot)
1773 if (vnresult)
1774 *vnresult = (vn_reference_t)*slot;
1775 return ((vn_reference_t)*slot)->result;
1778 return NULL_TREE;
1782 /* Partial definition tracking support. */
1784 struct pd_range
1786 HOST_WIDE_INT offset;
1787 HOST_WIDE_INT size;
1790 struct pd_data
1792 tree rhs;
1793 HOST_WIDE_INT rhs_off;
1794 HOST_WIDE_INT offset;
1795 HOST_WIDE_INT size;
1798 /* Context for alias walking. */
1800 struct vn_walk_cb_data
1802 vn_walk_cb_data (vn_reference_t vr_, tree orig_ref_, tree *last_vuse_ptr_,
1803 vn_lookup_kind vn_walk_kind_, bool tbaa_p_, tree mask_,
1804 bool redundant_store_removal_p_)
1805 : vr (vr_), last_vuse_ptr (last_vuse_ptr_), last_vuse (NULL_TREE),
1806 mask (mask_), masked_result (NULL_TREE), same_val (NULL_TREE),
1807 vn_walk_kind (vn_walk_kind_),
1808 tbaa_p (tbaa_p_), redundant_store_removal_p (redundant_store_removal_p_),
1809 saved_operands (vNULL), first_set (-2), first_base_set (-2),
1810 known_ranges (NULL)
1812 if (!last_vuse_ptr)
1813 last_vuse_ptr = &last_vuse;
1814 ao_ref_init (&orig_ref, orig_ref_);
1815 if (mask)
1817 wide_int w = wi::to_wide (mask);
1818 unsigned int pos = 0, prec = w.get_precision ();
1819 pd_data pd;
1820 pd.rhs = build_constructor (NULL_TREE, NULL);
1821 pd.rhs_off = 0;
1822 /* When bitwise and with a constant is done on a memory load,
1823 we don't really need all the bits to be defined or defined
1824 to constants, we don't really care what is in the position
1825 corresponding to 0 bits in the mask.
1826 So, push the ranges of those 0 bits in the mask as artificial
1827 zero stores and let the partial def handling code do the
1828 rest. */
1829 while (pos < prec)
1831 int tz = wi::ctz (w);
1832 if (pos + tz > prec)
1833 tz = prec - pos;
1834 if (tz)
1836 if (BYTES_BIG_ENDIAN)
1837 pd.offset = prec - pos - tz;
1838 else
1839 pd.offset = pos;
1840 pd.size = tz;
1841 void *r = push_partial_def (pd, 0, 0, 0, prec);
1842 gcc_assert (r == NULL_TREE);
1844 pos += tz;
1845 if (pos == prec)
1846 break;
1847 w = wi::lrshift (w, tz);
1848 tz = wi::ctz (wi::bit_not (w));
1849 if (pos + tz > prec)
1850 tz = prec - pos;
1851 pos += tz;
1852 w = wi::lrshift (w, tz);
1856 ~vn_walk_cb_data ();
1857 void *finish (alias_set_type, alias_set_type, tree);
1858 void *push_partial_def (pd_data pd,
1859 alias_set_type, alias_set_type, HOST_WIDE_INT,
1860 HOST_WIDE_INT);
1862 vn_reference_t vr;
1863 ao_ref orig_ref;
1864 tree *last_vuse_ptr;
1865 tree last_vuse;
1866 tree mask;
1867 tree masked_result;
1868 tree same_val;
1869 vn_lookup_kind vn_walk_kind;
1870 bool tbaa_p;
1871 bool redundant_store_removal_p;
1872 vec<vn_reference_op_s> saved_operands;
1874 /* The VDEFs of partial defs we come along. */
1875 auto_vec<pd_data, 2> partial_defs;
1876 /* The first defs range to avoid splay tree setup in most cases. */
1877 pd_range first_range;
1878 alias_set_type first_set;
1879 alias_set_type first_base_set;
1880 splay_tree known_ranges;
1881 obstack ranges_obstack;
1884 vn_walk_cb_data::~vn_walk_cb_data ()
1886 if (known_ranges)
1888 splay_tree_delete (known_ranges);
1889 obstack_free (&ranges_obstack, NULL);
1891 saved_operands.release ();
1894 void *
1895 vn_walk_cb_data::finish (alias_set_type set, alias_set_type base_set, tree val)
1897 if (first_set != -2)
1899 set = first_set;
1900 base_set = first_base_set;
1902 if (mask)
1904 masked_result = val;
1905 return (void *) -1;
1907 if (same_val && !operand_equal_p (val, same_val))
1908 return (void *) -1;
1909 vec<vn_reference_op_s> &operands
1910 = saved_operands.exists () ? saved_operands : vr->operands;
1911 return vn_reference_lookup_or_insert_for_pieces (last_vuse, set, base_set,
1912 vr->type, operands, val);
1915 /* pd_range splay-tree helpers. */
1917 static int
1918 pd_range_compare (splay_tree_key offset1p, splay_tree_key offset2p)
1920 HOST_WIDE_INT offset1 = *(HOST_WIDE_INT *)offset1p;
1921 HOST_WIDE_INT offset2 = *(HOST_WIDE_INT *)offset2p;
1922 if (offset1 < offset2)
1923 return -1;
1924 else if (offset1 > offset2)
1925 return 1;
1926 return 0;
1929 static void *
1930 pd_tree_alloc (int size, void *data_)
1932 vn_walk_cb_data *data = (vn_walk_cb_data *)data_;
1933 return obstack_alloc (&data->ranges_obstack, size);
1936 static void
1937 pd_tree_dealloc (void *, void *)
1941 /* Push PD to the vector of partial definitions returning a
1942 value when we are ready to combine things with VUSE, SET and MAXSIZEI,
1943 NULL when we want to continue looking for partial defs or -1
1944 on failure. */
1946 void *
1947 vn_walk_cb_data::push_partial_def (pd_data pd,
1948 alias_set_type set, alias_set_type base_set,
1949 HOST_WIDE_INT offseti,
1950 HOST_WIDE_INT maxsizei)
1952 const HOST_WIDE_INT bufsize = 64;
1953 /* We're using a fixed buffer for encoding so fail early if the object
1954 we want to interpret is bigger. */
1955 if (maxsizei > bufsize * BITS_PER_UNIT
1956 || CHAR_BIT != 8
1957 || BITS_PER_UNIT != 8
1958 /* Not prepared to handle PDP endian. */
1959 || BYTES_BIG_ENDIAN != WORDS_BIG_ENDIAN)
1960 return (void *)-1;
1962 /* Turn too large constant stores into non-constant stores. */
1963 if (CONSTANT_CLASS_P (pd.rhs) && pd.size > bufsize * BITS_PER_UNIT)
1964 pd.rhs = error_mark_node;
1966 /* And for non-constant or CONSTRUCTOR stores shrink them to only keep at
1967 most a partial byte before and/or after the region. */
1968 if (!CONSTANT_CLASS_P (pd.rhs))
1970 if (pd.offset < offseti)
1972 HOST_WIDE_INT o = ROUND_DOWN (offseti - pd.offset, BITS_PER_UNIT);
1973 gcc_assert (pd.size > o);
1974 pd.size -= o;
1975 pd.offset += o;
1977 if (pd.size > maxsizei)
1978 pd.size = maxsizei + ((pd.size - maxsizei) % BITS_PER_UNIT);
1981 pd.offset -= offseti;
1983 bool pd_constant_p = (TREE_CODE (pd.rhs) == CONSTRUCTOR
1984 || CONSTANT_CLASS_P (pd.rhs));
1985 pd_range *r;
1986 if (partial_defs.is_empty ())
1988 /* If we get a clobber upfront, fail. */
1989 if (TREE_CLOBBER_P (pd.rhs))
1990 return (void *)-1;
1991 if (!pd_constant_p)
1992 return (void *)-1;
1993 partial_defs.safe_push (pd);
1994 first_range.offset = pd.offset;
1995 first_range.size = pd.size;
1996 first_set = set;
1997 first_base_set = base_set;
1998 last_vuse_ptr = NULL;
1999 r = &first_range;
2000 /* Go check if the first partial definition was a full one in case
2001 the caller didn't optimize for this. */
2003 else
2005 if (!known_ranges)
2007 /* ??? Optimize the case where the 2nd partial def completes
2008 things. */
2009 gcc_obstack_init (&ranges_obstack);
2010 known_ranges = splay_tree_new_with_allocator (pd_range_compare, 0, 0,
2011 pd_tree_alloc,
2012 pd_tree_dealloc, this);
2013 splay_tree_insert (known_ranges,
2014 (splay_tree_key)&first_range.offset,
2015 (splay_tree_value)&first_range);
2018 pd_range newr = { pd.offset, pd.size };
2019 splay_tree_node n;
2020 /* Lookup the predecessor of offset + 1 and see if we need to merge. */
2021 HOST_WIDE_INT loffset = newr.offset + 1;
2022 if ((n = splay_tree_predecessor (known_ranges, (splay_tree_key)&loffset))
2023 && ((r = (pd_range *)n->value), true)
2024 && ranges_known_overlap_p (r->offset, r->size + 1,
2025 newr.offset, newr.size))
2027 /* Ignore partial defs already covered. Here we also drop shadowed
2028 clobbers arriving here at the floor. */
2029 if (known_subrange_p (newr.offset, newr.size, r->offset, r->size))
2030 return NULL;
2031 r->size
2032 = MAX (r->offset + r->size, newr.offset + newr.size) - r->offset;
2034 else
2036 /* newr.offset wasn't covered yet, insert the range. */
2037 r = XOBNEW (&ranges_obstack, pd_range);
2038 *r = newr;
2039 splay_tree_insert (known_ranges, (splay_tree_key)&r->offset,
2040 (splay_tree_value)r);
2042 /* Merge r which now contains newr and is a member of the splay tree with
2043 adjacent overlapping ranges. */
2044 pd_range *rafter;
2045 while ((n = splay_tree_successor (known_ranges,
2046 (splay_tree_key)&r->offset))
2047 && ((rafter = (pd_range *)n->value), true)
2048 && ranges_known_overlap_p (r->offset, r->size + 1,
2049 rafter->offset, rafter->size))
2051 r->size = MAX (r->offset + r->size,
2052 rafter->offset + rafter->size) - r->offset;
2053 splay_tree_remove (known_ranges, (splay_tree_key)&rafter->offset);
2055 /* If we get a clobber, fail. */
2056 if (TREE_CLOBBER_P (pd.rhs))
2057 return (void *)-1;
2058 /* Non-constants are OK as long as they are shadowed by a constant. */
2059 if (!pd_constant_p)
2060 return (void *)-1;
2061 partial_defs.safe_push (pd);
2064 /* Now we have merged newr into the range tree. When we have covered
2065 [offseti, sizei] then the tree will contain exactly one node which has
2066 the desired properties and it will be 'r'. */
2067 if (!known_subrange_p (0, maxsizei, r->offset, r->size))
2068 /* Continue looking for partial defs. */
2069 return NULL;
2071 /* Now simply native encode all partial defs in reverse order. */
2072 unsigned ndefs = partial_defs.length ();
2073 /* We support up to 512-bit values (for V8DFmode). */
2074 unsigned char buffer[bufsize + 1];
2075 unsigned char this_buffer[bufsize + 1];
2076 int len;
2078 memset (buffer, 0, bufsize + 1);
2079 unsigned needed_len = ROUND_UP (maxsizei, BITS_PER_UNIT) / BITS_PER_UNIT;
2080 while (!partial_defs.is_empty ())
2082 pd_data pd = partial_defs.pop ();
2083 unsigned int amnt;
2084 if (TREE_CODE (pd.rhs) == CONSTRUCTOR)
2086 /* Empty CONSTRUCTOR. */
2087 if (pd.size >= needed_len * BITS_PER_UNIT)
2088 len = needed_len;
2089 else
2090 len = ROUND_UP (pd.size, BITS_PER_UNIT) / BITS_PER_UNIT;
2091 memset (this_buffer, 0, len);
2093 else
2095 len = native_encode_expr (pd.rhs, this_buffer, bufsize,
2096 (MAX (0, -pd.offset)
2097 + pd.rhs_off) / BITS_PER_UNIT);
2098 if (len <= 0
2099 || len < (ROUND_UP (pd.size, BITS_PER_UNIT) / BITS_PER_UNIT
2100 - MAX (0, -pd.offset) / BITS_PER_UNIT))
2102 if (dump_file && (dump_flags & TDF_DETAILS))
2103 fprintf (dump_file, "Failed to encode %u "
2104 "partial definitions\n", ndefs);
2105 return (void *)-1;
2109 unsigned char *p = buffer;
2110 HOST_WIDE_INT size = pd.size;
2111 if (pd.offset < 0)
2112 size -= ROUND_DOWN (-pd.offset, BITS_PER_UNIT);
2113 this_buffer[len] = 0;
2114 if (BYTES_BIG_ENDIAN)
2116 /* LSB of this_buffer[len - 1] byte should be at
2117 pd.offset + pd.size - 1 bits in buffer. */
2118 amnt = ((unsigned HOST_WIDE_INT) pd.offset
2119 + pd.size) % BITS_PER_UNIT;
2120 if (amnt)
2121 shift_bytes_in_array_right (this_buffer, len + 1, amnt);
2122 unsigned char *q = this_buffer;
2123 unsigned int off = 0;
2124 if (pd.offset >= 0)
2126 unsigned int msk;
2127 off = pd.offset / BITS_PER_UNIT;
2128 gcc_assert (off < needed_len);
2129 p = buffer + off;
2130 if (size <= amnt)
2132 msk = ((1 << size) - 1) << (BITS_PER_UNIT - amnt);
2133 *p = (*p & ~msk) | (this_buffer[len] & msk);
2134 size = 0;
2136 else
2138 if (TREE_CODE (pd.rhs) != CONSTRUCTOR)
2139 q = (this_buffer + len
2140 - (ROUND_UP (size - amnt, BITS_PER_UNIT)
2141 / BITS_PER_UNIT));
2142 if (pd.offset % BITS_PER_UNIT)
2144 msk = -1U << (BITS_PER_UNIT
2145 - (pd.offset % BITS_PER_UNIT));
2146 *p = (*p & msk) | (*q & ~msk);
2147 p++;
2148 q++;
2149 off++;
2150 size -= BITS_PER_UNIT - (pd.offset % BITS_PER_UNIT);
2151 gcc_assert (size >= 0);
2155 else if (TREE_CODE (pd.rhs) != CONSTRUCTOR)
2157 q = (this_buffer + len
2158 - (ROUND_UP (size - amnt, BITS_PER_UNIT)
2159 / BITS_PER_UNIT));
2160 if (pd.offset % BITS_PER_UNIT)
2162 q++;
2163 size -= BITS_PER_UNIT - ((unsigned HOST_WIDE_INT) pd.offset
2164 % BITS_PER_UNIT);
2165 gcc_assert (size >= 0);
2168 if ((unsigned HOST_WIDE_INT) size / BITS_PER_UNIT + off
2169 > needed_len)
2170 size = (needed_len - off) * BITS_PER_UNIT;
2171 memcpy (p, q, size / BITS_PER_UNIT);
2172 if (size % BITS_PER_UNIT)
2174 unsigned int msk
2175 = -1U << (BITS_PER_UNIT - (size % BITS_PER_UNIT));
2176 p += size / BITS_PER_UNIT;
2177 q += size / BITS_PER_UNIT;
2178 *p = (*q & msk) | (*p & ~msk);
2181 else
2183 if (pd.offset >= 0)
2185 /* LSB of this_buffer[0] byte should be at pd.offset bits
2186 in buffer. */
2187 unsigned int msk;
2188 size = MIN (size, (HOST_WIDE_INT) needed_len * BITS_PER_UNIT);
2189 amnt = pd.offset % BITS_PER_UNIT;
2190 if (amnt)
2191 shift_bytes_in_array_left (this_buffer, len + 1, amnt);
2192 unsigned int off = pd.offset / BITS_PER_UNIT;
2193 gcc_assert (off < needed_len);
2194 size = MIN (size,
2195 (HOST_WIDE_INT) (needed_len - off) * BITS_PER_UNIT);
2196 p = buffer + off;
2197 if (amnt + size < BITS_PER_UNIT)
2199 /* Low amnt bits come from *p, then size bits
2200 from this_buffer[0] and the remaining again from
2201 *p. */
2202 msk = ((1 << size) - 1) << amnt;
2203 *p = (*p & ~msk) | (this_buffer[0] & msk);
2204 size = 0;
2206 else if (amnt)
2208 msk = -1U << amnt;
2209 *p = (*p & ~msk) | (this_buffer[0] & msk);
2210 p++;
2211 size -= (BITS_PER_UNIT - amnt);
2214 else
2216 amnt = (unsigned HOST_WIDE_INT) pd.offset % BITS_PER_UNIT;
2217 if (amnt)
2218 size -= BITS_PER_UNIT - amnt;
2219 size = MIN (size, (HOST_WIDE_INT) needed_len * BITS_PER_UNIT);
2220 if (amnt)
2221 shift_bytes_in_array_left (this_buffer, len + 1, amnt);
2223 memcpy (p, this_buffer + (amnt != 0), size / BITS_PER_UNIT);
2224 p += size / BITS_PER_UNIT;
2225 if (size % BITS_PER_UNIT)
2227 unsigned int msk = -1U << (size % BITS_PER_UNIT);
2228 *p = (this_buffer[(amnt != 0) + size / BITS_PER_UNIT]
2229 & ~msk) | (*p & msk);
2234 tree type = vr->type;
2235 /* Make sure to interpret in a type that has a range covering the whole
2236 access size. */
2237 if (INTEGRAL_TYPE_P (vr->type) && maxsizei != TYPE_PRECISION (vr->type))
2238 type = build_nonstandard_integer_type (maxsizei, TYPE_UNSIGNED (type));
2239 tree val;
2240 if (BYTES_BIG_ENDIAN)
2242 unsigned sz = needed_len;
2243 if (maxsizei % BITS_PER_UNIT)
2244 shift_bytes_in_array_right (buffer, needed_len,
2245 BITS_PER_UNIT
2246 - (maxsizei % BITS_PER_UNIT));
2247 if (INTEGRAL_TYPE_P (type))
2248 sz = GET_MODE_SIZE (SCALAR_INT_TYPE_MODE (type));
2249 if (sz > needed_len)
2251 memcpy (this_buffer + (sz - needed_len), buffer, needed_len);
2252 val = native_interpret_expr (type, this_buffer, sz);
2254 else
2255 val = native_interpret_expr (type, buffer, needed_len);
2257 else
2258 val = native_interpret_expr (type, buffer, bufsize);
2259 /* If we chop off bits because the types precision doesn't match the memory
2260 access size this is ok when optimizing reads but not when called from
2261 the DSE code during elimination. */
2262 if (val && type != vr->type)
2264 if (! int_fits_type_p (val, vr->type))
2265 val = NULL_TREE;
2266 else
2267 val = fold_convert (vr->type, val);
2270 if (val)
2272 if (dump_file && (dump_flags & TDF_DETAILS))
2273 fprintf (dump_file,
2274 "Successfully combined %u partial definitions\n", ndefs);
2275 /* We are using the alias-set of the first store we encounter which
2276 should be appropriate here. */
2277 return finish (first_set, first_base_set, val);
2279 else
2281 if (dump_file && (dump_flags & TDF_DETAILS))
2282 fprintf (dump_file,
2283 "Failed to interpret %u encoded partial definitions\n", ndefs);
2284 return (void *)-1;
2288 /* Callback for walk_non_aliased_vuses. Adjusts the vn_reference_t VR_
2289 with the current VUSE and performs the expression lookup. */
2291 static void *
2292 vn_reference_lookup_2 (ao_ref *op ATTRIBUTE_UNUSED, tree vuse, void *data_)
2294 vn_walk_cb_data *data = (vn_walk_cb_data *)data_;
2295 vn_reference_t vr = data->vr;
2296 vn_reference_s **slot;
2297 hashval_t hash;
2299 /* If we have partial definitions recorded we have to go through
2300 vn_reference_lookup_3. */
2301 if (!data->partial_defs.is_empty ())
2302 return NULL;
2304 if (data->last_vuse_ptr)
2306 *data->last_vuse_ptr = vuse;
2307 data->last_vuse = vuse;
2310 /* Fixup vuse and hash. */
2311 if (vr->vuse)
2312 vr->hashcode = vr->hashcode - SSA_NAME_VERSION (vr->vuse);
2313 vr->vuse = vuse_ssa_val (vuse);
2314 if (vr->vuse)
2315 vr->hashcode = vr->hashcode + SSA_NAME_VERSION (vr->vuse);
2317 hash = vr->hashcode;
2318 slot = valid_info->references->find_slot_with_hash (vr, hash, NO_INSERT);
2319 if (slot)
2321 if ((*slot)->result && data->saved_operands.exists ())
2322 return data->finish (vr->set, vr->base_set, (*slot)->result);
2323 return *slot;
2326 return NULL;
2329 /* Lookup an existing or insert a new vn_reference entry into the
2330 value table for the VUSE, SET, TYPE, OPERANDS reference which
2331 has the value VALUE which is either a constant or an SSA name. */
2333 static vn_reference_t
2334 vn_reference_lookup_or_insert_for_pieces (tree vuse,
2335 alias_set_type set,
2336 alias_set_type base_set,
2337 tree type,
2338 vec<vn_reference_op_s,
2339 va_heap> operands,
2340 tree value)
2342 vn_reference_s vr1;
2343 vn_reference_t result;
2344 unsigned value_id;
2345 vr1.vuse = vuse ? SSA_VAL (vuse) : NULL_TREE;
2346 vr1.operands = operands;
2347 vr1.type = type;
2348 vr1.set = set;
2349 vr1.base_set = base_set;
2350 vr1.hashcode = vn_reference_compute_hash (&vr1);
2351 if (vn_reference_lookup_1 (&vr1, &result))
2352 return result;
2353 if (TREE_CODE (value) == SSA_NAME)
2354 value_id = VN_INFO (value)->value_id;
2355 else
2356 value_id = get_or_alloc_constant_value_id (value);
2357 return vn_reference_insert_pieces (vuse, set, base_set, type,
2358 operands.copy (), value, value_id);
2361 /* Return a value-number for RCODE OPS... either by looking up an existing
2362 value-number for the possibly simplified result or by inserting the
2363 operation if INSERT is true. If SIMPLIFY is false, return a value
2364 number for the unsimplified expression. */
2366 static tree
2367 vn_nary_build_or_lookup_1 (gimple_match_op *res_op, bool insert,
2368 bool simplify)
2370 tree result = NULL_TREE;
2371 /* We will be creating a value number for
2372 RCODE (OPS...).
2373 So first simplify and lookup this expression to see if it
2374 is already available. */
2375 /* For simplification valueize. */
2376 unsigned i = 0;
2377 if (simplify)
2378 for (i = 0; i < res_op->num_ops; ++i)
2379 if (TREE_CODE (res_op->ops[i]) == SSA_NAME)
2381 tree tem = vn_valueize (res_op->ops[i]);
2382 if (!tem)
2383 break;
2384 res_op->ops[i] = tem;
2386 /* If valueization of an operand fails (it is not available), skip
2387 simplification. */
2388 bool res = false;
2389 if (i == res_op->num_ops)
2391 mprts_hook = vn_lookup_simplify_result;
2392 res = res_op->resimplify (NULL, vn_valueize);
2393 mprts_hook = NULL;
2395 gimple *new_stmt = NULL;
2396 if (res
2397 && gimple_simplified_result_is_gimple_val (res_op))
2399 /* The expression is already available. */
2400 result = res_op->ops[0];
2401 /* Valueize it, simplification returns sth in AVAIL only. */
2402 if (TREE_CODE (result) == SSA_NAME)
2403 result = SSA_VAL (result);
2405 else
2407 tree val = vn_lookup_simplify_result (res_op);
2408 if (!val && insert)
2410 gimple_seq stmts = NULL;
2411 result = maybe_push_res_to_seq (res_op, &stmts);
2412 if (result)
2414 gcc_assert (gimple_seq_singleton_p (stmts));
2415 new_stmt = gimple_seq_first_stmt (stmts);
2418 else
2419 /* The expression is already available. */
2420 result = val;
2422 if (new_stmt)
2424 /* The expression is not yet available, value-number lhs to
2425 the new SSA_NAME we created. */
2426 /* Initialize value-number information properly. */
2427 vn_ssa_aux_t result_info = VN_INFO (result);
2428 result_info->valnum = result;
2429 result_info->value_id = get_next_value_id ();
2430 result_info->visited = 1;
2431 gimple_seq_add_stmt_without_update (&VN_INFO (result)->expr,
2432 new_stmt);
2433 result_info->needs_insertion = true;
2434 /* ??? PRE phi-translation inserts NARYs without corresponding
2435 SSA name result. Re-use those but set their result according
2436 to the stmt we just built. */
2437 vn_nary_op_t nary = NULL;
2438 vn_nary_op_lookup_stmt (new_stmt, &nary);
2439 if (nary)
2441 gcc_assert (! nary->predicated_values && nary->u.result == NULL_TREE);
2442 nary->u.result = gimple_assign_lhs (new_stmt);
2444 /* As all "inserted" statements are singleton SCCs, insert
2445 to the valid table. This is strictly needed to
2446 avoid re-generating new value SSA_NAMEs for the same
2447 expression during SCC iteration over and over (the
2448 optimistic table gets cleared after each iteration).
2449 We do not need to insert into the optimistic table, as
2450 lookups there will fall back to the valid table. */
2451 else
2453 unsigned int length = vn_nary_length_from_stmt (new_stmt);
2454 vn_nary_op_t vno1
2455 = alloc_vn_nary_op_noinit (length, &vn_tables_insert_obstack);
2456 vno1->value_id = result_info->value_id;
2457 vno1->length = length;
2458 vno1->predicated_values = 0;
2459 vno1->u.result = result;
2460 init_vn_nary_op_from_stmt (vno1, as_a <gassign *> (new_stmt));
2461 vn_nary_op_insert_into (vno1, valid_info->nary);
2462 /* Also do not link it into the undo chain. */
2463 last_inserted_nary = vno1->next;
2464 vno1->next = (vn_nary_op_t)(void *)-1;
2466 if (dump_file && (dump_flags & TDF_DETAILS))
2468 fprintf (dump_file, "Inserting name ");
2469 print_generic_expr (dump_file, result);
2470 fprintf (dump_file, " for expression ");
2471 print_gimple_expr (dump_file, new_stmt, 0, TDF_SLIM);
2472 fprintf (dump_file, "\n");
2475 return result;
2478 /* Return a value-number for RCODE OPS... either by looking up an existing
2479 value-number for the simplified result or by inserting the operation. */
2481 static tree
2482 vn_nary_build_or_lookup (gimple_match_op *res_op)
2484 return vn_nary_build_or_lookup_1 (res_op, true, true);
2487 /* Try to simplify the expression RCODE OPS... of type TYPE and return
2488 its value if present. */
2490 tree
2491 vn_nary_simplify (vn_nary_op_t nary)
2493 if (nary->length > gimple_match_op::MAX_NUM_OPS)
2494 return NULL_TREE;
2495 gimple_match_op op (gimple_match_cond::UNCOND, nary->opcode,
2496 nary->type, nary->length);
2497 memcpy (op.ops, nary->op, sizeof (tree) * nary->length);
2498 return vn_nary_build_or_lookup_1 (&op, false, true);
2501 /* Elimination engine. */
2503 class eliminate_dom_walker : public dom_walker
2505 public:
2506 eliminate_dom_walker (cdi_direction, bitmap);
2507 ~eliminate_dom_walker ();
2509 edge before_dom_children (basic_block) final override;
2510 void after_dom_children (basic_block) final override;
2512 virtual tree eliminate_avail (basic_block, tree op);
2513 virtual void eliminate_push_avail (basic_block, tree op);
2514 tree eliminate_insert (basic_block, gimple_stmt_iterator *gsi, tree val);
2516 void eliminate_stmt (basic_block, gimple_stmt_iterator *);
2518 unsigned eliminate_cleanup (bool region_p = false);
2520 bool do_pre;
2521 unsigned int el_todo;
2522 unsigned int eliminations;
2523 unsigned int insertions;
2525 /* SSA names that had their defs inserted by PRE if do_pre. */
2526 bitmap inserted_exprs;
2528 /* Blocks with statements that have had their EH properties changed. */
2529 bitmap need_eh_cleanup;
2531 /* Blocks with statements that have had their AB properties changed. */
2532 bitmap need_ab_cleanup;
2534 /* Local state for the eliminate domwalk. */
2535 auto_vec<gimple *> to_remove;
2536 auto_vec<gimple *> to_fixup;
2537 auto_vec<tree> avail;
2538 auto_vec<tree> avail_stack;
2541 /* Adaptor to the elimination engine using RPO availability. */
2543 class rpo_elim : public eliminate_dom_walker
2545 public:
2546 rpo_elim(basic_block entry_)
2547 : eliminate_dom_walker (CDI_DOMINATORS, NULL), entry (entry_),
2548 m_avail_freelist (NULL) {}
2550 tree eliminate_avail (basic_block, tree op) final override;
2552 void eliminate_push_avail (basic_block, tree) final override;
2554 basic_block entry;
2555 /* Freelist of avail entries which are allocated from the vn_ssa_aux
2556 obstack. */
2557 vn_avail *m_avail_freelist;
2560 /* Global RPO state for access from hooks. */
2561 static eliminate_dom_walker *rpo_avail;
2562 basic_block vn_context_bb;
2564 /* Return true if BASE1 and BASE2 can be adjusted so they have the
2565 same address and adjust *OFFSET1 and *OFFSET2 accordingly.
2566 Otherwise return false. */
2568 static bool
2569 adjust_offsets_for_equal_base_address (tree base1, poly_int64 *offset1,
2570 tree base2, poly_int64 *offset2)
2572 poly_int64 soff;
2573 if (TREE_CODE (base1) == MEM_REF
2574 && TREE_CODE (base2) == MEM_REF)
2576 if (mem_ref_offset (base1).to_shwi (&soff))
2578 base1 = TREE_OPERAND (base1, 0);
2579 *offset1 += soff * BITS_PER_UNIT;
2581 if (mem_ref_offset (base2).to_shwi (&soff))
2583 base2 = TREE_OPERAND (base2, 0);
2584 *offset2 += soff * BITS_PER_UNIT;
2586 return operand_equal_p (base1, base2, 0);
2588 return operand_equal_p (base1, base2, OEP_ADDRESS_OF);
2591 /* Callback for walk_non_aliased_vuses. Tries to perform a lookup
2592 from the statement defining VUSE and if not successful tries to
2593 translate *REFP and VR_ through an aggregate copy at the definition
2594 of VUSE. If *DISAMBIGUATE_ONLY is true then do not perform translation
2595 of *REF and *VR. If only disambiguation was performed then
2596 *DISAMBIGUATE_ONLY is set to true. */
2598 static void *
2599 vn_reference_lookup_3 (ao_ref *ref, tree vuse, void *data_,
2600 translate_flags *disambiguate_only)
2602 vn_walk_cb_data *data = (vn_walk_cb_data *)data_;
2603 vn_reference_t vr = data->vr;
2604 gimple *def_stmt = SSA_NAME_DEF_STMT (vuse);
2605 tree base = ao_ref_base (ref);
2606 HOST_WIDE_INT offseti = 0, maxsizei, sizei = 0;
2607 static vec<vn_reference_op_s> lhs_ops;
2608 ao_ref lhs_ref;
2609 bool lhs_ref_ok = false;
2610 poly_int64 copy_size;
2612 /* First try to disambiguate after value-replacing in the definitions LHS. */
2613 if (is_gimple_assign (def_stmt))
2615 tree lhs = gimple_assign_lhs (def_stmt);
2616 bool valueized_anything = false;
2617 /* Avoid re-allocation overhead. */
2618 lhs_ops.truncate (0);
2619 basic_block saved_rpo_bb = vn_context_bb;
2620 vn_context_bb = gimple_bb (def_stmt);
2621 if (*disambiguate_only <= TR_VALUEIZE_AND_DISAMBIGUATE)
2623 copy_reference_ops_from_ref (lhs, &lhs_ops);
2624 valueize_refs_1 (&lhs_ops, &valueized_anything, true);
2626 vn_context_bb = saved_rpo_bb;
2627 ao_ref_init (&lhs_ref, lhs);
2628 lhs_ref_ok = true;
2629 if (valueized_anything
2630 && ao_ref_init_from_vn_reference
2631 (&lhs_ref, ao_ref_alias_set (&lhs_ref),
2632 ao_ref_base_alias_set (&lhs_ref), TREE_TYPE (lhs), lhs_ops)
2633 && !refs_may_alias_p_1 (ref, &lhs_ref, data->tbaa_p))
2635 *disambiguate_only = TR_VALUEIZE_AND_DISAMBIGUATE;
2636 return NULL;
2639 /* When the def is a CLOBBER we can optimistically disambiguate
2640 against it since any overlap it would be undefined behavior.
2641 Avoid this for obvious must aliases to save compile-time though.
2642 We also may not do this when the query is used for redundant
2643 store removal. */
2644 if (!data->redundant_store_removal_p
2645 && gimple_clobber_p (def_stmt)
2646 && !operand_equal_p (ao_ref_base (&lhs_ref), base, OEP_ADDRESS_OF))
2648 *disambiguate_only = TR_DISAMBIGUATE;
2649 return NULL;
2652 /* Besides valueizing the LHS we can also use access-path based
2653 disambiguation on the original non-valueized ref. */
2654 if (!ref->ref
2655 && lhs_ref_ok
2656 && data->orig_ref.ref)
2658 /* We want to use the non-valueized LHS for this, but avoid redundant
2659 work. */
2660 ao_ref *lref = &lhs_ref;
2661 ao_ref lref_alt;
2662 if (valueized_anything)
2664 ao_ref_init (&lref_alt, lhs);
2665 lref = &lref_alt;
2667 if (!refs_may_alias_p_1 (&data->orig_ref, lref, data->tbaa_p))
2669 *disambiguate_only = (valueized_anything
2670 ? TR_VALUEIZE_AND_DISAMBIGUATE
2671 : TR_DISAMBIGUATE);
2672 return NULL;
2676 /* If we reach a clobbering statement try to skip it and see if
2677 we find a VN result with exactly the same value as the
2678 possible clobber. In this case we can ignore the clobber
2679 and return the found value. */
2680 if (is_gimple_reg_type (TREE_TYPE (lhs))
2681 && types_compatible_p (TREE_TYPE (lhs), vr->type)
2682 && (ref->ref || data->orig_ref.ref)
2683 && !data->mask
2684 && data->partial_defs.is_empty ()
2685 && multiple_p (get_object_alignment
2686 (ref->ref ? ref->ref : data->orig_ref.ref),
2687 ref->size)
2688 && multiple_p (get_object_alignment (lhs), ref->size))
2690 tree rhs = gimple_assign_rhs1 (def_stmt);
2691 /* ??? We may not compare to ahead values which might be from
2692 a different loop iteration but only to loop invariants. Use
2693 CONSTANT_CLASS_P (unvalueized!) as conservative approximation.
2694 The one-hop lookup below doesn't have this issue since there's
2695 a virtual PHI before we ever reach a backedge to cross.
2696 We can skip multiple defs as long as they are from the same
2697 value though. */
2698 if (data->same_val
2699 && !operand_equal_p (data->same_val, rhs))
2701 else if (CONSTANT_CLASS_P (rhs))
2703 if (dump_file && (dump_flags & TDF_DETAILS))
2705 fprintf (dump_file,
2706 "Skipping possible redundant definition ");
2707 print_gimple_stmt (dump_file, def_stmt, 0);
2709 /* Delay the actual compare of the values to the end of the walk
2710 but do not update last_vuse from here. */
2711 data->last_vuse_ptr = NULL;
2712 data->same_val = rhs;
2713 return NULL;
2715 else
2717 tree *saved_last_vuse_ptr = data->last_vuse_ptr;
2718 /* Do not update last_vuse_ptr in vn_reference_lookup_2. */
2719 data->last_vuse_ptr = NULL;
2720 tree saved_vuse = vr->vuse;
2721 hashval_t saved_hashcode = vr->hashcode;
2722 void *res = vn_reference_lookup_2 (ref, gimple_vuse (def_stmt),
2723 data);
2724 /* Need to restore vr->vuse and vr->hashcode. */
2725 vr->vuse = saved_vuse;
2726 vr->hashcode = saved_hashcode;
2727 data->last_vuse_ptr = saved_last_vuse_ptr;
2728 if (res && res != (void *)-1)
2730 vn_reference_t vnresult = (vn_reference_t) res;
2731 if (TREE_CODE (rhs) == SSA_NAME)
2732 rhs = SSA_VAL (rhs);
2733 if (vnresult->result
2734 && operand_equal_p (vnresult->result, rhs, 0))
2735 return res;
2740 else if (*disambiguate_only <= TR_VALUEIZE_AND_DISAMBIGUATE
2741 && gimple_call_builtin_p (def_stmt, BUILT_IN_NORMAL)
2742 && gimple_call_num_args (def_stmt) <= 4)
2744 /* For builtin calls valueize its arguments and call the
2745 alias oracle again. Valueization may improve points-to
2746 info of pointers and constify size and position arguments.
2747 Originally this was motivated by PR61034 which has
2748 conditional calls to free falsely clobbering ref because
2749 of imprecise points-to info of the argument. */
2750 tree oldargs[4];
2751 bool valueized_anything = false;
2752 for (unsigned i = 0; i < gimple_call_num_args (def_stmt); ++i)
2754 oldargs[i] = gimple_call_arg (def_stmt, i);
2755 tree val = vn_valueize (oldargs[i]);
2756 if (val != oldargs[i])
2758 gimple_call_set_arg (def_stmt, i, val);
2759 valueized_anything = true;
2762 if (valueized_anything)
2764 bool res = call_may_clobber_ref_p_1 (as_a <gcall *> (def_stmt),
2765 ref, data->tbaa_p);
2766 for (unsigned i = 0; i < gimple_call_num_args (def_stmt); ++i)
2767 gimple_call_set_arg (def_stmt, i, oldargs[i]);
2768 if (!res)
2770 *disambiguate_only = TR_VALUEIZE_AND_DISAMBIGUATE;
2771 return NULL;
2776 if (*disambiguate_only > TR_TRANSLATE)
2777 return (void *)-1;
2779 /* If we cannot constrain the size of the reference we cannot
2780 test if anything kills it. */
2781 if (!ref->max_size_known_p ())
2782 return (void *)-1;
2784 poly_int64 offset = ref->offset;
2785 poly_int64 maxsize = ref->max_size;
2787 /* def_stmt may-defs *ref. See if we can derive a value for *ref
2788 from that definition.
2789 1) Memset. */
2790 if (is_gimple_reg_type (vr->type)
2791 && (gimple_call_builtin_p (def_stmt, BUILT_IN_MEMSET)
2792 || gimple_call_builtin_p (def_stmt, BUILT_IN_MEMSET_CHK))
2793 && (integer_zerop (gimple_call_arg (def_stmt, 1))
2794 || ((TREE_CODE (gimple_call_arg (def_stmt, 1)) == INTEGER_CST
2795 || (INTEGRAL_TYPE_P (vr->type) && known_eq (ref->size, 8)))
2796 && CHAR_BIT == 8
2797 && BITS_PER_UNIT == 8
2798 && BYTES_BIG_ENDIAN == WORDS_BIG_ENDIAN
2799 && offset.is_constant (&offseti)
2800 && ref->size.is_constant (&sizei)
2801 && (offseti % BITS_PER_UNIT == 0
2802 || TREE_CODE (gimple_call_arg (def_stmt, 1)) == INTEGER_CST)))
2803 && (poly_int_tree_p (gimple_call_arg (def_stmt, 2))
2804 || (TREE_CODE (gimple_call_arg (def_stmt, 2)) == SSA_NAME
2805 && poly_int_tree_p (SSA_VAL (gimple_call_arg (def_stmt, 2)))))
2806 && (TREE_CODE (gimple_call_arg (def_stmt, 0)) == ADDR_EXPR
2807 || TREE_CODE (gimple_call_arg (def_stmt, 0)) == SSA_NAME))
2809 tree base2;
2810 poly_int64 offset2, size2, maxsize2;
2811 bool reverse;
2812 tree ref2 = gimple_call_arg (def_stmt, 0);
2813 if (TREE_CODE (ref2) == SSA_NAME)
2815 ref2 = SSA_VAL (ref2);
2816 if (TREE_CODE (ref2) == SSA_NAME
2817 && (TREE_CODE (base) != MEM_REF
2818 || TREE_OPERAND (base, 0) != ref2))
2820 gimple *def_stmt = SSA_NAME_DEF_STMT (ref2);
2821 if (gimple_assign_single_p (def_stmt)
2822 && gimple_assign_rhs_code (def_stmt) == ADDR_EXPR)
2823 ref2 = gimple_assign_rhs1 (def_stmt);
2826 if (TREE_CODE (ref2) == ADDR_EXPR)
2828 ref2 = TREE_OPERAND (ref2, 0);
2829 base2 = get_ref_base_and_extent (ref2, &offset2, &size2, &maxsize2,
2830 &reverse);
2831 if (!known_size_p (maxsize2)
2832 || !known_eq (maxsize2, size2)
2833 || !operand_equal_p (base, base2, OEP_ADDRESS_OF))
2834 return (void *)-1;
2836 else if (TREE_CODE (ref2) == SSA_NAME)
2838 poly_int64 soff;
2839 if (TREE_CODE (base) != MEM_REF
2840 || !(mem_ref_offset (base)
2841 << LOG2_BITS_PER_UNIT).to_shwi (&soff))
2842 return (void *)-1;
2843 offset += soff;
2844 offset2 = 0;
2845 if (TREE_OPERAND (base, 0) != ref2)
2847 gimple *def = SSA_NAME_DEF_STMT (ref2);
2848 if (is_gimple_assign (def)
2849 && gimple_assign_rhs_code (def) == POINTER_PLUS_EXPR
2850 && gimple_assign_rhs1 (def) == TREE_OPERAND (base, 0)
2851 && poly_int_tree_p (gimple_assign_rhs2 (def)))
2853 tree rhs2 = gimple_assign_rhs2 (def);
2854 if (!(poly_offset_int::from (wi::to_poly_wide (rhs2),
2855 SIGNED)
2856 << LOG2_BITS_PER_UNIT).to_shwi (&offset2))
2857 return (void *)-1;
2858 ref2 = gimple_assign_rhs1 (def);
2859 if (TREE_CODE (ref2) == SSA_NAME)
2860 ref2 = SSA_VAL (ref2);
2862 else
2863 return (void *)-1;
2866 else
2867 return (void *)-1;
2868 tree len = gimple_call_arg (def_stmt, 2);
2869 HOST_WIDE_INT leni, offset2i;
2870 if (TREE_CODE (len) == SSA_NAME)
2871 len = SSA_VAL (len);
2872 /* Sometimes the above trickery is smarter than alias analysis. Take
2873 advantage of that. */
2874 if (!ranges_maybe_overlap_p (offset, maxsize, offset2,
2875 (wi::to_poly_offset (len)
2876 << LOG2_BITS_PER_UNIT)))
2877 return NULL;
2878 if (data->partial_defs.is_empty ()
2879 && known_subrange_p (offset, maxsize, offset2,
2880 wi::to_poly_offset (len) << LOG2_BITS_PER_UNIT))
2882 tree val;
2883 if (integer_zerop (gimple_call_arg (def_stmt, 1)))
2884 val = build_zero_cst (vr->type);
2885 else if (INTEGRAL_TYPE_P (vr->type)
2886 && known_eq (ref->size, 8)
2887 && offseti % BITS_PER_UNIT == 0)
2889 gimple_match_op res_op (gimple_match_cond::UNCOND, NOP_EXPR,
2890 vr->type, gimple_call_arg (def_stmt, 1));
2891 val = vn_nary_build_or_lookup (&res_op);
2892 if (!val
2893 || (TREE_CODE (val) == SSA_NAME
2894 && SSA_NAME_OCCURS_IN_ABNORMAL_PHI (val)))
2895 return (void *)-1;
2897 else
2899 unsigned buflen = TREE_INT_CST_LOW (TYPE_SIZE_UNIT (vr->type)) + 1;
2900 if (INTEGRAL_TYPE_P (vr->type))
2901 buflen = GET_MODE_SIZE (SCALAR_INT_TYPE_MODE (vr->type)) + 1;
2902 unsigned char *buf = XALLOCAVEC (unsigned char, buflen);
2903 memset (buf, TREE_INT_CST_LOW (gimple_call_arg (def_stmt, 1)),
2904 buflen);
2905 if (BYTES_BIG_ENDIAN)
2907 unsigned int amnt
2908 = (((unsigned HOST_WIDE_INT) offseti + sizei)
2909 % BITS_PER_UNIT);
2910 if (amnt)
2912 shift_bytes_in_array_right (buf, buflen,
2913 BITS_PER_UNIT - amnt);
2914 buf++;
2915 buflen--;
2918 else if (offseti % BITS_PER_UNIT != 0)
2920 unsigned int amnt
2921 = BITS_PER_UNIT - ((unsigned HOST_WIDE_INT) offseti
2922 % BITS_PER_UNIT);
2923 shift_bytes_in_array_left (buf, buflen, amnt);
2924 buf++;
2925 buflen--;
2927 val = native_interpret_expr (vr->type, buf, buflen);
2928 if (!val)
2929 return (void *)-1;
2931 return data->finish (0, 0, val);
2933 /* For now handle clearing memory with partial defs. */
2934 else if (known_eq (ref->size, maxsize)
2935 && integer_zerop (gimple_call_arg (def_stmt, 1))
2936 && tree_fits_poly_int64_p (len)
2937 && tree_to_poly_int64 (len).is_constant (&leni)
2938 && leni <= INTTYPE_MAXIMUM (HOST_WIDE_INT) / BITS_PER_UNIT
2939 && offset.is_constant (&offseti)
2940 && offset2.is_constant (&offset2i)
2941 && maxsize.is_constant (&maxsizei)
2942 && ranges_known_overlap_p (offseti, maxsizei, offset2i,
2943 leni << LOG2_BITS_PER_UNIT))
2945 pd_data pd;
2946 pd.rhs = build_constructor (NULL_TREE, NULL);
2947 pd.rhs_off = 0;
2948 pd.offset = offset2i;
2949 pd.size = leni << LOG2_BITS_PER_UNIT;
2950 return data->push_partial_def (pd, 0, 0, offseti, maxsizei);
2954 /* 2) Assignment from an empty CONSTRUCTOR. */
2955 else if (is_gimple_reg_type (vr->type)
2956 && gimple_assign_single_p (def_stmt)
2957 && gimple_assign_rhs_code (def_stmt) == CONSTRUCTOR
2958 && CONSTRUCTOR_NELTS (gimple_assign_rhs1 (def_stmt)) == 0)
2960 tree base2;
2961 poly_int64 offset2, size2, maxsize2;
2962 HOST_WIDE_INT offset2i, size2i;
2963 gcc_assert (lhs_ref_ok);
2964 base2 = ao_ref_base (&lhs_ref);
2965 offset2 = lhs_ref.offset;
2966 size2 = lhs_ref.size;
2967 maxsize2 = lhs_ref.max_size;
2968 if (known_size_p (maxsize2)
2969 && known_eq (maxsize2, size2)
2970 && adjust_offsets_for_equal_base_address (base, &offset,
2971 base2, &offset2))
2973 if (data->partial_defs.is_empty ()
2974 && known_subrange_p (offset, maxsize, offset2, size2))
2976 /* While technically undefined behavior do not optimize
2977 a full read from a clobber. */
2978 if (gimple_clobber_p (def_stmt))
2979 return (void *)-1;
2980 tree val = build_zero_cst (vr->type);
2981 return data->finish (ao_ref_alias_set (&lhs_ref),
2982 ao_ref_base_alias_set (&lhs_ref), val);
2984 else if (known_eq (ref->size, maxsize)
2985 && maxsize.is_constant (&maxsizei)
2986 && offset.is_constant (&offseti)
2987 && offset2.is_constant (&offset2i)
2988 && size2.is_constant (&size2i)
2989 && ranges_known_overlap_p (offseti, maxsizei,
2990 offset2i, size2i))
2992 /* Let clobbers be consumed by the partial-def tracker
2993 which can choose to ignore them if they are shadowed
2994 by a later def. */
2995 pd_data pd;
2996 pd.rhs = gimple_assign_rhs1 (def_stmt);
2997 pd.rhs_off = 0;
2998 pd.offset = offset2i;
2999 pd.size = size2i;
3000 return data->push_partial_def (pd, ao_ref_alias_set (&lhs_ref),
3001 ao_ref_base_alias_set (&lhs_ref),
3002 offseti, maxsizei);
3007 /* 3) Assignment from a constant. We can use folds native encode/interpret
3008 routines to extract the assigned bits. */
3009 else if (known_eq (ref->size, maxsize)
3010 && is_gimple_reg_type (vr->type)
3011 && !reverse_storage_order_for_component_p (vr->operands)
3012 && !contains_storage_order_barrier_p (vr->operands)
3013 && gimple_assign_single_p (def_stmt)
3014 && CHAR_BIT == 8
3015 && BITS_PER_UNIT == 8
3016 && BYTES_BIG_ENDIAN == WORDS_BIG_ENDIAN
3017 /* native_encode and native_decode operate on arrays of bytes
3018 and so fundamentally need a compile-time size and offset. */
3019 && maxsize.is_constant (&maxsizei)
3020 && offset.is_constant (&offseti)
3021 && (is_gimple_min_invariant (gimple_assign_rhs1 (def_stmt))
3022 || (TREE_CODE (gimple_assign_rhs1 (def_stmt)) == SSA_NAME
3023 && is_gimple_min_invariant (SSA_VAL (gimple_assign_rhs1 (def_stmt))))))
3025 tree lhs = gimple_assign_lhs (def_stmt);
3026 tree base2;
3027 poly_int64 offset2, size2, maxsize2;
3028 HOST_WIDE_INT offset2i, size2i;
3029 bool reverse;
3030 gcc_assert (lhs_ref_ok);
3031 base2 = ao_ref_base (&lhs_ref);
3032 offset2 = lhs_ref.offset;
3033 size2 = lhs_ref.size;
3034 maxsize2 = lhs_ref.max_size;
3035 reverse = reverse_storage_order_for_component_p (lhs);
3036 if (base2
3037 && !reverse
3038 && !storage_order_barrier_p (lhs)
3039 && known_eq (maxsize2, size2)
3040 && adjust_offsets_for_equal_base_address (base, &offset,
3041 base2, &offset2)
3042 && offset.is_constant (&offseti)
3043 && offset2.is_constant (&offset2i)
3044 && size2.is_constant (&size2i))
3046 if (data->partial_defs.is_empty ()
3047 && known_subrange_p (offseti, maxsizei, offset2, size2))
3049 /* We support up to 512-bit values (for V8DFmode). */
3050 unsigned char buffer[65];
3051 int len;
3053 tree rhs = gimple_assign_rhs1 (def_stmt);
3054 if (TREE_CODE (rhs) == SSA_NAME)
3055 rhs = SSA_VAL (rhs);
3056 len = native_encode_expr (rhs,
3057 buffer, sizeof (buffer) - 1,
3058 (offseti - offset2i) / BITS_PER_UNIT);
3059 if (len > 0 && len * BITS_PER_UNIT >= maxsizei)
3061 tree type = vr->type;
3062 unsigned char *buf = buffer;
3063 unsigned int amnt = 0;
3064 /* Make sure to interpret in a type that has a range
3065 covering the whole access size. */
3066 if (INTEGRAL_TYPE_P (vr->type)
3067 && maxsizei != TYPE_PRECISION (vr->type))
3068 type = build_nonstandard_integer_type (maxsizei,
3069 TYPE_UNSIGNED (type));
3070 if (BYTES_BIG_ENDIAN)
3072 /* For big-endian native_encode_expr stored the rhs
3073 such that the LSB of it is the LSB of buffer[len - 1].
3074 That bit is stored into memory at position
3075 offset2 + size2 - 1, i.e. in byte
3076 base + (offset2 + size2 - 1) / BITS_PER_UNIT.
3077 E.g. for offset2 1 and size2 14, rhs -1 and memory
3078 previously cleared that is:
3080 01111111|11111110
3081 Now, if we want to extract offset 2 and size 12 from
3082 it using native_interpret_expr (which actually works
3083 for integral bitfield types in terms of byte size of
3084 the mode), the native_encode_expr stored the value
3085 into buffer as
3086 XX111111|11111111
3087 and returned len 2 (the X bits are outside of
3088 precision).
3089 Let sz be maxsize / BITS_PER_UNIT if not extracting
3090 a bitfield, and GET_MODE_SIZE otherwise.
3091 We need to align the LSB of the value we want to
3092 extract as the LSB of buf[sz - 1].
3093 The LSB from memory we need to read is at position
3094 offset + maxsize - 1. */
3095 HOST_WIDE_INT sz = maxsizei / BITS_PER_UNIT;
3096 if (INTEGRAL_TYPE_P (type))
3097 sz = GET_MODE_SIZE (SCALAR_INT_TYPE_MODE (type));
3098 amnt = ((unsigned HOST_WIDE_INT) offset2i + size2i
3099 - offseti - maxsizei) % BITS_PER_UNIT;
3100 if (amnt)
3101 shift_bytes_in_array_right (buffer, len, amnt);
3102 amnt = ((unsigned HOST_WIDE_INT) offset2i + size2i
3103 - offseti - maxsizei - amnt) / BITS_PER_UNIT;
3104 if ((unsigned HOST_WIDE_INT) sz + amnt > (unsigned) len)
3105 len = 0;
3106 else
3108 buf = buffer + len - sz - amnt;
3109 len -= (buf - buffer);
3112 else
3114 amnt = ((unsigned HOST_WIDE_INT) offset2i
3115 - offseti) % BITS_PER_UNIT;
3116 if (amnt)
3118 buffer[len] = 0;
3119 shift_bytes_in_array_left (buffer, len + 1, amnt);
3120 buf = buffer + 1;
3123 tree val = native_interpret_expr (type, buf, len);
3124 /* If we chop off bits because the types precision doesn't
3125 match the memory access size this is ok when optimizing
3126 reads but not when called from the DSE code during
3127 elimination. */
3128 if (val
3129 && type != vr->type)
3131 if (! int_fits_type_p (val, vr->type))
3132 val = NULL_TREE;
3133 else
3134 val = fold_convert (vr->type, val);
3137 if (val)
3138 return data->finish (ao_ref_alias_set (&lhs_ref),
3139 ao_ref_base_alias_set (&lhs_ref), val);
3142 else if (ranges_known_overlap_p (offseti, maxsizei, offset2i,
3143 size2i))
3145 pd_data pd;
3146 tree rhs = gimple_assign_rhs1 (def_stmt);
3147 if (TREE_CODE (rhs) == SSA_NAME)
3148 rhs = SSA_VAL (rhs);
3149 pd.rhs = rhs;
3150 pd.rhs_off = 0;
3151 pd.offset = offset2i;
3152 pd.size = size2i;
3153 return data->push_partial_def (pd, ao_ref_alias_set (&lhs_ref),
3154 ao_ref_base_alias_set (&lhs_ref),
3155 offseti, maxsizei);
3160 /* 4) Assignment from an SSA name which definition we may be able
3161 to access pieces from or we can combine to a larger entity. */
3162 else if (known_eq (ref->size, maxsize)
3163 && is_gimple_reg_type (vr->type)
3164 && !reverse_storage_order_for_component_p (vr->operands)
3165 && !contains_storage_order_barrier_p (vr->operands)
3166 && gimple_assign_single_p (def_stmt)
3167 && TREE_CODE (gimple_assign_rhs1 (def_stmt)) == SSA_NAME)
3169 tree lhs = gimple_assign_lhs (def_stmt);
3170 tree base2;
3171 poly_int64 offset2, size2, maxsize2;
3172 HOST_WIDE_INT offset2i, size2i, offseti;
3173 bool reverse;
3174 gcc_assert (lhs_ref_ok);
3175 base2 = ao_ref_base (&lhs_ref);
3176 offset2 = lhs_ref.offset;
3177 size2 = lhs_ref.size;
3178 maxsize2 = lhs_ref.max_size;
3179 reverse = reverse_storage_order_for_component_p (lhs);
3180 tree def_rhs = gimple_assign_rhs1 (def_stmt);
3181 if (!reverse
3182 && !storage_order_barrier_p (lhs)
3183 && known_size_p (maxsize2)
3184 && known_eq (maxsize2, size2)
3185 && adjust_offsets_for_equal_base_address (base, &offset,
3186 base2, &offset2))
3188 if (data->partial_defs.is_empty ()
3189 && known_subrange_p (offset, maxsize, offset2, size2)
3190 /* ??? We can't handle bitfield precision extracts without
3191 either using an alternate type for the BIT_FIELD_REF and
3192 then doing a conversion or possibly adjusting the offset
3193 according to endianness. */
3194 && (! INTEGRAL_TYPE_P (vr->type)
3195 || known_eq (ref->size, TYPE_PRECISION (vr->type)))
3196 && multiple_p (ref->size, BITS_PER_UNIT))
3198 tree val = NULL_TREE;
3199 if (! INTEGRAL_TYPE_P (TREE_TYPE (def_rhs))
3200 || type_has_mode_precision_p (TREE_TYPE (def_rhs)))
3202 gimple_match_op op (gimple_match_cond::UNCOND,
3203 BIT_FIELD_REF, vr->type,
3204 SSA_VAL (def_rhs),
3205 bitsize_int (ref->size),
3206 bitsize_int (offset - offset2));
3207 val = vn_nary_build_or_lookup (&op);
3209 else if (known_eq (ref->size, size2))
3211 gimple_match_op op (gimple_match_cond::UNCOND,
3212 VIEW_CONVERT_EXPR, vr->type,
3213 SSA_VAL (def_rhs));
3214 val = vn_nary_build_or_lookup (&op);
3216 if (val
3217 && (TREE_CODE (val) != SSA_NAME
3218 || ! SSA_NAME_OCCURS_IN_ABNORMAL_PHI (val)))
3219 return data->finish (ao_ref_alias_set (&lhs_ref),
3220 ao_ref_base_alias_set (&lhs_ref), val);
3222 else if (maxsize.is_constant (&maxsizei)
3223 && offset.is_constant (&offseti)
3224 && offset2.is_constant (&offset2i)
3225 && size2.is_constant (&size2i)
3226 && ranges_known_overlap_p (offset, maxsize, offset2, size2))
3228 pd_data pd;
3229 pd.rhs = SSA_VAL (def_rhs);
3230 pd.rhs_off = 0;
3231 pd.offset = offset2i;
3232 pd.size = size2i;
3233 return data->push_partial_def (pd, ao_ref_alias_set (&lhs_ref),
3234 ao_ref_base_alias_set (&lhs_ref),
3235 offseti, maxsizei);
3240 /* 4b) Assignment done via one of the vectorizer internal store
3241 functions where we may be able to access pieces from or we can
3242 combine to a larger entity. */
3243 else if (known_eq (ref->size, maxsize)
3244 && is_gimple_reg_type (vr->type)
3245 && !reverse_storage_order_for_component_p (vr->operands)
3246 && !contains_storage_order_barrier_p (vr->operands)
3247 && is_gimple_call (def_stmt)
3248 && gimple_call_internal_p (def_stmt)
3249 && internal_store_fn_p (gimple_call_internal_fn (def_stmt)))
3251 gcall *call = as_a <gcall *> (def_stmt);
3252 internal_fn fn = gimple_call_internal_fn (call);
3254 tree mask = NULL_TREE, len = NULL_TREE, bias = NULL_TREE;
3255 switch (fn)
3257 case IFN_MASK_STORE:
3258 mask = gimple_call_arg (call, internal_fn_mask_index (fn));
3259 mask = vn_valueize (mask);
3260 if (TREE_CODE (mask) != VECTOR_CST)
3261 return (void *)-1;
3262 break;
3263 case IFN_LEN_STORE:
3264 len = gimple_call_arg (call, 2);
3265 bias = gimple_call_arg (call, 4);
3266 if (!tree_fits_uhwi_p (len) || !tree_fits_shwi_p (bias))
3267 return (void *)-1;
3268 break;
3269 default:
3270 return (void *)-1;
3272 tree def_rhs = gimple_call_arg (call,
3273 internal_fn_stored_value_index (fn));
3274 def_rhs = vn_valueize (def_rhs);
3275 if (TREE_CODE (def_rhs) != VECTOR_CST)
3276 return (void *)-1;
3278 ao_ref_init_from_ptr_and_size (&lhs_ref,
3279 vn_valueize (gimple_call_arg (call, 0)),
3280 TYPE_SIZE_UNIT (TREE_TYPE (def_rhs)));
3281 tree base2;
3282 poly_int64 offset2, size2, maxsize2;
3283 HOST_WIDE_INT offset2i, size2i, offseti;
3284 base2 = ao_ref_base (&lhs_ref);
3285 offset2 = lhs_ref.offset;
3286 size2 = lhs_ref.size;
3287 maxsize2 = lhs_ref.max_size;
3288 if (known_size_p (maxsize2)
3289 && known_eq (maxsize2, size2)
3290 && adjust_offsets_for_equal_base_address (base, &offset,
3291 base2, &offset2)
3292 && maxsize.is_constant (&maxsizei)
3293 && offset.is_constant (&offseti)
3294 && offset2.is_constant (&offset2i)
3295 && size2.is_constant (&size2i))
3297 if (!ranges_maybe_overlap_p (offset, maxsize, offset2, size2))
3298 /* Poor-mans disambiguation. */
3299 return NULL;
3300 else if (ranges_known_overlap_p (offset, maxsize, offset2, size2))
3302 pd_data pd;
3303 pd.rhs = def_rhs;
3304 tree aa = gimple_call_arg (call, 1);
3305 alias_set_type set = get_deref_alias_set (TREE_TYPE (aa));
3306 tree vectype = TREE_TYPE (def_rhs);
3307 unsigned HOST_WIDE_INT elsz
3308 = tree_to_uhwi (TYPE_SIZE (TREE_TYPE (vectype)));
3309 if (mask)
3311 HOST_WIDE_INT start = 0, len = 0;
3312 unsigned mask_idx = 0;
3315 if (integer_zerop (VECTOR_CST_ELT (mask, mask_idx)))
3317 if (len != 0)
3319 pd.rhs_off = start;
3320 pd.offset = offset2i + start;
3321 pd.size = len;
3322 if (ranges_known_overlap_p
3323 (offset, maxsize, pd.offset, pd.size))
3325 void *res = data->push_partial_def
3326 (pd, set, set, offseti, maxsizei);
3327 if (res != NULL)
3328 return res;
3331 start = (mask_idx + 1) * elsz;
3332 len = 0;
3334 else
3335 len += elsz;
3336 mask_idx++;
3338 while (known_lt (mask_idx, TYPE_VECTOR_SUBPARTS (vectype)));
3339 if (len != 0)
3341 pd.rhs_off = start;
3342 pd.offset = offset2i + start;
3343 pd.size = len;
3344 if (ranges_known_overlap_p (offset, maxsize,
3345 pd.offset, pd.size))
3346 return data->push_partial_def (pd, set, set,
3347 offseti, maxsizei);
3350 else if (fn == IFN_LEN_STORE)
3352 pd.rhs_off = 0;
3353 pd.offset = offset2i;
3354 pd.size = (tree_to_uhwi (len)
3355 + -tree_to_shwi (bias)) * BITS_PER_UNIT;
3356 if (ranges_known_overlap_p (offset, maxsize,
3357 pd.offset, pd.size))
3358 return data->push_partial_def (pd, set, set,
3359 offseti, maxsizei);
3361 else
3362 gcc_unreachable ();
3363 return NULL;
3368 /* 5) For aggregate copies translate the reference through them if
3369 the copy kills ref. */
3370 else if (data->vn_walk_kind == VN_WALKREWRITE
3371 && gimple_assign_single_p (def_stmt)
3372 && (DECL_P (gimple_assign_rhs1 (def_stmt))
3373 || TREE_CODE (gimple_assign_rhs1 (def_stmt)) == MEM_REF
3374 || handled_component_p (gimple_assign_rhs1 (def_stmt))))
3376 tree base2;
3377 int i, j, k;
3378 auto_vec<vn_reference_op_s> rhs;
3379 vn_reference_op_t vro;
3380 ao_ref r;
3382 gcc_assert (lhs_ref_ok);
3384 /* See if the assignment kills REF. */
3385 base2 = ao_ref_base (&lhs_ref);
3386 if (!lhs_ref.max_size_known_p ()
3387 || (base != base2
3388 && (TREE_CODE (base) != MEM_REF
3389 || TREE_CODE (base2) != MEM_REF
3390 || TREE_OPERAND (base, 0) != TREE_OPERAND (base2, 0)
3391 || !tree_int_cst_equal (TREE_OPERAND (base, 1),
3392 TREE_OPERAND (base2, 1))))
3393 || !stmt_kills_ref_p (def_stmt, ref))
3394 return (void *)-1;
3396 /* Find the common base of ref and the lhs. lhs_ops already
3397 contains valueized operands for the lhs. */
3398 i = vr->operands.length () - 1;
3399 j = lhs_ops.length () - 1;
3400 while (j >= 0 && i >= 0
3401 && vn_reference_op_eq (&vr->operands[i], &lhs_ops[j]))
3403 i--;
3404 j--;
3407 /* ??? The innermost op should always be a MEM_REF and we already
3408 checked that the assignment to the lhs kills vr. Thus for
3409 aggregate copies using char[] types the vn_reference_op_eq
3410 may fail when comparing types for compatibility. But we really
3411 don't care here - further lookups with the rewritten operands
3412 will simply fail if we messed up types too badly. */
3413 poly_int64 extra_off = 0;
3414 if (j == 0 && i >= 0
3415 && lhs_ops[0].opcode == MEM_REF
3416 && maybe_ne (lhs_ops[0].off, -1))
3418 if (known_eq (lhs_ops[0].off, vr->operands[i].off))
3419 i--, j--;
3420 else if (vr->operands[i].opcode == MEM_REF
3421 && maybe_ne (vr->operands[i].off, -1))
3423 extra_off = vr->operands[i].off - lhs_ops[0].off;
3424 i--, j--;
3428 /* i now points to the first additional op.
3429 ??? LHS may not be completely contained in VR, one or more
3430 VIEW_CONVERT_EXPRs could be in its way. We could at least
3431 try handling outermost VIEW_CONVERT_EXPRs. */
3432 if (j != -1)
3433 return (void *)-1;
3435 /* Punt if the additional ops contain a storage order barrier. */
3436 for (k = i; k >= 0; k--)
3438 vro = &vr->operands[k];
3439 if (vro->opcode == VIEW_CONVERT_EXPR && vro->reverse)
3440 return (void *)-1;
3443 /* Now re-write REF to be based on the rhs of the assignment. */
3444 tree rhs1 = gimple_assign_rhs1 (def_stmt);
3445 copy_reference_ops_from_ref (rhs1, &rhs);
3447 /* Apply an extra offset to the inner MEM_REF of the RHS. */
3448 bool force_no_tbaa = false;
3449 if (maybe_ne (extra_off, 0))
3451 if (rhs.length () < 2)
3452 return (void *)-1;
3453 int ix = rhs.length () - 2;
3454 if (rhs[ix].opcode != MEM_REF
3455 || known_eq (rhs[ix].off, -1))
3456 return (void *)-1;
3457 rhs[ix].off += extra_off;
3458 rhs[ix].op0 = int_const_binop (PLUS_EXPR, rhs[ix].op0,
3459 build_int_cst (TREE_TYPE (rhs[ix].op0),
3460 extra_off));
3461 /* When we have offsetted the RHS, reading only parts of it,
3462 we can no longer use the original TBAA type, force alias-set
3463 zero. */
3464 force_no_tbaa = true;
3467 /* Save the operands since we need to use the original ones for
3468 the hash entry we use. */
3469 if (!data->saved_operands.exists ())
3470 data->saved_operands = vr->operands.copy ();
3472 /* We need to pre-pend vr->operands[0..i] to rhs. */
3473 vec<vn_reference_op_s> old = vr->operands;
3474 if (i + 1 + rhs.length () > vr->operands.length ())
3475 vr->operands.safe_grow (i + 1 + rhs.length (), true);
3476 else
3477 vr->operands.truncate (i + 1 + rhs.length ());
3478 FOR_EACH_VEC_ELT (rhs, j, vro)
3479 vr->operands[i + 1 + j] = *vro;
3480 valueize_refs (&vr->operands);
3481 if (old == shared_lookup_references)
3482 shared_lookup_references = vr->operands;
3483 vr->hashcode = vn_reference_compute_hash (vr);
3485 /* Try folding the new reference to a constant. */
3486 tree val = fully_constant_vn_reference_p (vr);
3487 if (val)
3489 if (data->partial_defs.is_empty ())
3490 return data->finish (ao_ref_alias_set (&lhs_ref),
3491 ao_ref_base_alias_set (&lhs_ref), val);
3492 /* This is the only interesting case for partial-def handling
3493 coming from targets that like to gimplify init-ctors as
3494 aggregate copies from constant data like aarch64 for
3495 PR83518. */
3496 if (maxsize.is_constant (&maxsizei) && known_eq (ref->size, maxsize))
3498 pd_data pd;
3499 pd.rhs = val;
3500 pd.rhs_off = 0;
3501 pd.offset = 0;
3502 pd.size = maxsizei;
3503 return data->push_partial_def (pd, ao_ref_alias_set (&lhs_ref),
3504 ao_ref_base_alias_set (&lhs_ref),
3505 0, maxsizei);
3509 /* Continuing with partial defs isn't easily possible here, we
3510 have to find a full def from further lookups from here. Probably
3511 not worth the special-casing everywhere. */
3512 if (!data->partial_defs.is_empty ())
3513 return (void *)-1;
3515 /* Adjust *ref from the new operands. */
3516 ao_ref rhs1_ref;
3517 ao_ref_init (&rhs1_ref, rhs1);
3518 if (!ao_ref_init_from_vn_reference (&r,
3519 force_no_tbaa ? 0
3520 : ao_ref_alias_set (&rhs1_ref),
3521 force_no_tbaa ? 0
3522 : ao_ref_base_alias_set (&rhs1_ref),
3523 vr->type, vr->operands))
3524 return (void *)-1;
3525 /* This can happen with bitfields. */
3526 if (maybe_ne (ref->size, r.size))
3528 /* If the access lacks some subsetting simply apply that by
3529 shortening it. That in the end can only be successful
3530 if we can pun the lookup result which in turn requires
3531 exact offsets. */
3532 if (known_eq (r.size, r.max_size)
3533 && known_lt (ref->size, r.size))
3534 r.size = r.max_size = ref->size;
3535 else
3536 return (void *)-1;
3538 *ref = r;
3540 /* Do not update last seen VUSE after translating. */
3541 data->last_vuse_ptr = NULL;
3542 /* Invalidate the original access path since it now contains
3543 the wrong base. */
3544 data->orig_ref.ref = NULL_TREE;
3545 /* Use the alias-set of this LHS for recording an eventual result. */
3546 if (data->first_set == -2)
3548 data->first_set = ao_ref_alias_set (&lhs_ref);
3549 data->first_base_set = ao_ref_base_alias_set (&lhs_ref);
3552 /* Keep looking for the adjusted *REF / VR pair. */
3553 return NULL;
3556 /* 6) For memcpy copies translate the reference through them if the copy
3557 kills ref. But we cannot (easily) do this translation if the memcpy is
3558 a storage order barrier, i.e. is equivalent to a VIEW_CONVERT_EXPR that
3559 can modify the storage order of objects (see storage_order_barrier_p). */
3560 else if (data->vn_walk_kind == VN_WALKREWRITE
3561 && is_gimple_reg_type (vr->type)
3562 /* ??? Handle BCOPY as well. */
3563 && (gimple_call_builtin_p (def_stmt, BUILT_IN_MEMCPY)
3564 || gimple_call_builtin_p (def_stmt, BUILT_IN_MEMCPY_CHK)
3565 || gimple_call_builtin_p (def_stmt, BUILT_IN_MEMPCPY)
3566 || gimple_call_builtin_p (def_stmt, BUILT_IN_MEMPCPY_CHK)
3567 || gimple_call_builtin_p (def_stmt, BUILT_IN_MEMMOVE)
3568 || gimple_call_builtin_p (def_stmt, BUILT_IN_MEMMOVE_CHK))
3569 && (TREE_CODE (gimple_call_arg (def_stmt, 0)) == ADDR_EXPR
3570 || TREE_CODE (gimple_call_arg (def_stmt, 0)) == SSA_NAME)
3571 && (TREE_CODE (gimple_call_arg (def_stmt, 1)) == ADDR_EXPR
3572 || TREE_CODE (gimple_call_arg (def_stmt, 1)) == SSA_NAME)
3573 && (poly_int_tree_p (gimple_call_arg (def_stmt, 2), &copy_size)
3574 || (TREE_CODE (gimple_call_arg (def_stmt, 2)) == SSA_NAME
3575 && poly_int_tree_p (SSA_VAL (gimple_call_arg (def_stmt, 2)),
3576 &copy_size)))
3577 /* Handling this is more complicated, give up for now. */
3578 && data->partial_defs.is_empty ())
3580 tree lhs, rhs;
3581 ao_ref r;
3582 poly_int64 rhs_offset, lhs_offset;
3583 vn_reference_op_s op;
3584 poly_uint64 mem_offset;
3585 poly_int64 at, byte_maxsize;
3587 /* Only handle non-variable, addressable refs. */
3588 if (maybe_ne (ref->size, maxsize)
3589 || !multiple_p (offset, BITS_PER_UNIT, &at)
3590 || !multiple_p (maxsize, BITS_PER_UNIT, &byte_maxsize))
3591 return (void *)-1;
3593 /* Extract a pointer base and an offset for the destination. */
3594 lhs = gimple_call_arg (def_stmt, 0);
3595 lhs_offset = 0;
3596 if (TREE_CODE (lhs) == SSA_NAME)
3598 lhs = vn_valueize (lhs);
3599 if (TREE_CODE (lhs) == SSA_NAME)
3601 gimple *def_stmt = SSA_NAME_DEF_STMT (lhs);
3602 if (gimple_assign_single_p (def_stmt)
3603 && gimple_assign_rhs_code (def_stmt) == ADDR_EXPR)
3604 lhs = gimple_assign_rhs1 (def_stmt);
3607 if (TREE_CODE (lhs) == ADDR_EXPR)
3609 if (AGGREGATE_TYPE_P (TREE_TYPE (TREE_TYPE (lhs)))
3610 && TYPE_REVERSE_STORAGE_ORDER (TREE_TYPE (TREE_TYPE (lhs))))
3611 return (void *)-1;
3612 tree tem = get_addr_base_and_unit_offset (TREE_OPERAND (lhs, 0),
3613 &lhs_offset);
3614 if (!tem)
3615 return (void *)-1;
3616 if (TREE_CODE (tem) == MEM_REF
3617 && poly_int_tree_p (TREE_OPERAND (tem, 1), &mem_offset))
3619 lhs = TREE_OPERAND (tem, 0);
3620 if (TREE_CODE (lhs) == SSA_NAME)
3621 lhs = vn_valueize (lhs);
3622 lhs_offset += mem_offset;
3624 else if (DECL_P (tem))
3625 lhs = build_fold_addr_expr (tem);
3626 else
3627 return (void *)-1;
3629 if (TREE_CODE (lhs) != SSA_NAME
3630 && TREE_CODE (lhs) != ADDR_EXPR)
3631 return (void *)-1;
3633 /* Extract a pointer base and an offset for the source. */
3634 rhs = gimple_call_arg (def_stmt, 1);
3635 rhs_offset = 0;
3636 if (TREE_CODE (rhs) == SSA_NAME)
3637 rhs = vn_valueize (rhs);
3638 if (TREE_CODE (rhs) == ADDR_EXPR)
3640 if (AGGREGATE_TYPE_P (TREE_TYPE (TREE_TYPE (rhs)))
3641 && TYPE_REVERSE_STORAGE_ORDER (TREE_TYPE (TREE_TYPE (rhs))))
3642 return (void *)-1;
3643 tree tem = get_addr_base_and_unit_offset (TREE_OPERAND (rhs, 0),
3644 &rhs_offset);
3645 if (!tem)
3646 return (void *)-1;
3647 if (TREE_CODE (tem) == MEM_REF
3648 && poly_int_tree_p (TREE_OPERAND (tem, 1), &mem_offset))
3650 rhs = TREE_OPERAND (tem, 0);
3651 rhs_offset += mem_offset;
3653 else if (DECL_P (tem)
3654 || TREE_CODE (tem) == STRING_CST)
3655 rhs = build_fold_addr_expr (tem);
3656 else
3657 return (void *)-1;
3659 if (TREE_CODE (rhs) == SSA_NAME)
3660 rhs = SSA_VAL (rhs);
3661 else if (TREE_CODE (rhs) != ADDR_EXPR)
3662 return (void *)-1;
3664 /* The bases of the destination and the references have to agree. */
3665 if (TREE_CODE (base) == MEM_REF)
3667 if (TREE_OPERAND (base, 0) != lhs
3668 || !poly_int_tree_p (TREE_OPERAND (base, 1), &mem_offset))
3669 return (void *) -1;
3670 at += mem_offset;
3672 else if (!DECL_P (base)
3673 || TREE_CODE (lhs) != ADDR_EXPR
3674 || TREE_OPERAND (lhs, 0) != base)
3675 return (void *)-1;
3677 /* If the access is completely outside of the memcpy destination
3678 area there is no aliasing. */
3679 if (!ranges_maybe_overlap_p (lhs_offset, copy_size, at, byte_maxsize))
3680 return NULL;
3681 /* And the access has to be contained within the memcpy destination. */
3682 if (!known_subrange_p (at, byte_maxsize, lhs_offset, copy_size))
3683 return (void *)-1;
3685 /* Save the operands since we need to use the original ones for
3686 the hash entry we use. */
3687 if (!data->saved_operands.exists ())
3688 data->saved_operands = vr->operands.copy ();
3690 /* Make room for 2 operands in the new reference. */
3691 if (vr->operands.length () < 2)
3693 vec<vn_reference_op_s> old = vr->operands;
3694 vr->operands.safe_grow_cleared (2, true);
3695 if (old == shared_lookup_references)
3696 shared_lookup_references = vr->operands;
3698 else
3699 vr->operands.truncate (2);
3701 /* The looked-through reference is a simple MEM_REF. */
3702 memset (&op, 0, sizeof (op));
3703 op.type = vr->type;
3704 op.opcode = MEM_REF;
3705 op.op0 = build_int_cst (ptr_type_node, at - lhs_offset + rhs_offset);
3706 op.off = at - lhs_offset + rhs_offset;
3707 vr->operands[0] = op;
3708 op.type = TREE_TYPE (rhs);
3709 op.opcode = TREE_CODE (rhs);
3710 op.op0 = rhs;
3711 op.off = -1;
3712 vr->operands[1] = op;
3713 vr->hashcode = vn_reference_compute_hash (vr);
3715 /* Try folding the new reference to a constant. */
3716 tree val = fully_constant_vn_reference_p (vr);
3717 if (val)
3718 return data->finish (0, 0, val);
3720 /* Adjust *ref from the new operands. */
3721 if (!ao_ref_init_from_vn_reference (&r, 0, 0, vr->type, vr->operands))
3722 return (void *)-1;
3723 /* This can happen with bitfields. */
3724 if (maybe_ne (ref->size, r.size))
3725 return (void *)-1;
3726 *ref = r;
3728 /* Do not update last seen VUSE after translating. */
3729 data->last_vuse_ptr = NULL;
3730 /* Invalidate the original access path since it now contains
3731 the wrong base. */
3732 data->orig_ref.ref = NULL_TREE;
3733 /* Use the alias-set of this stmt for recording an eventual result. */
3734 if (data->first_set == -2)
3736 data->first_set = 0;
3737 data->first_base_set = 0;
3740 /* Keep looking for the adjusted *REF / VR pair. */
3741 return NULL;
3744 /* Bail out and stop walking. */
3745 return (void *)-1;
3748 /* Return a reference op vector from OP that can be used for
3749 vn_reference_lookup_pieces. The caller is responsible for releasing
3750 the vector. */
3752 vec<vn_reference_op_s>
3753 vn_reference_operands_for_lookup (tree op)
3755 bool valueized;
3756 return valueize_shared_reference_ops_from_ref (op, &valueized).copy ();
3759 /* Lookup a reference operation by it's parts, in the current hash table.
3760 Returns the resulting value number if it exists in the hash table,
3761 NULL_TREE otherwise. VNRESULT will be filled in with the actual
3762 vn_reference_t stored in the hashtable if something is found. */
3764 tree
3765 vn_reference_lookup_pieces (tree vuse, alias_set_type set,
3766 alias_set_type base_set, tree type,
3767 vec<vn_reference_op_s> operands,
3768 vn_reference_t *vnresult, vn_lookup_kind kind)
3770 struct vn_reference_s vr1;
3771 vn_reference_t tmp;
3772 tree cst;
3774 if (!vnresult)
3775 vnresult = &tmp;
3776 *vnresult = NULL;
3778 vr1.vuse = vuse_ssa_val (vuse);
3779 shared_lookup_references.truncate (0);
3780 shared_lookup_references.safe_grow (operands.length (), true);
3781 memcpy (shared_lookup_references.address (),
3782 operands.address (),
3783 sizeof (vn_reference_op_s)
3784 * operands.length ());
3785 bool valueized_p;
3786 valueize_refs_1 (&shared_lookup_references, &valueized_p);
3787 vr1.operands = shared_lookup_references;
3788 vr1.type = type;
3789 vr1.set = set;
3790 vr1.base_set = base_set;
3791 vr1.hashcode = vn_reference_compute_hash (&vr1);
3792 if ((cst = fully_constant_vn_reference_p (&vr1)))
3793 return cst;
3795 vn_reference_lookup_1 (&vr1, vnresult);
3796 if (!*vnresult
3797 && kind != VN_NOWALK
3798 && vr1.vuse)
3800 ao_ref r;
3801 unsigned limit = param_sccvn_max_alias_queries_per_access;
3802 vn_walk_cb_data data (&vr1, NULL_TREE, NULL, kind, true, NULL_TREE,
3803 false);
3804 vec<vn_reference_op_s> ops_for_ref;
3805 if (!valueized_p)
3806 ops_for_ref = vr1.operands;
3807 else
3809 /* For ao_ref_from_mem we have to ensure only available SSA names
3810 end up in base and the only convenient way to make this work
3811 for PRE is to re-valueize with that in mind. */
3812 ops_for_ref.create (operands.length ());
3813 ops_for_ref.quick_grow (operands.length ());
3814 memcpy (ops_for_ref.address (),
3815 operands.address (),
3816 sizeof (vn_reference_op_s)
3817 * operands.length ());
3818 valueize_refs_1 (&ops_for_ref, &valueized_p, true);
3820 if (ao_ref_init_from_vn_reference (&r, set, base_set, type,
3821 ops_for_ref))
3822 *vnresult
3823 = ((vn_reference_t)
3824 walk_non_aliased_vuses (&r, vr1.vuse, true, vn_reference_lookup_2,
3825 vn_reference_lookup_3, vuse_valueize,
3826 limit, &data));
3827 if (ops_for_ref != shared_lookup_references)
3828 ops_for_ref.release ();
3829 gcc_checking_assert (vr1.operands == shared_lookup_references);
3830 if (*vnresult
3831 && data.same_val
3832 && (!(*vnresult)->result
3833 || !operand_equal_p ((*vnresult)->result, data.same_val)))
3835 *vnresult = NULL;
3836 return NULL_TREE;
3840 if (*vnresult)
3841 return (*vnresult)->result;
3843 return NULL_TREE;
3846 /* Lookup OP in the current hash table, and return the resulting value
3847 number if it exists in the hash table. Return NULL_TREE if it does
3848 not exist in the hash table or if the result field of the structure
3849 was NULL.. VNRESULT will be filled in with the vn_reference_t
3850 stored in the hashtable if one exists. When TBAA_P is false assume
3851 we are looking up a store and treat it as having alias-set zero.
3852 *LAST_VUSE_PTR will be updated with the VUSE the value lookup succeeded.
3853 MASK is either NULL_TREE, or can be an INTEGER_CST if the result of the
3854 load is bitwise anded with MASK and so we are only interested in a subset
3855 of the bits and can ignore if the other bits are uninitialized or
3856 not initialized with constants. When doing redundant store removal
3857 the caller has to set REDUNDANT_STORE_REMOVAL_P. */
3859 tree
3860 vn_reference_lookup (tree op, tree vuse, vn_lookup_kind kind,
3861 vn_reference_t *vnresult, bool tbaa_p,
3862 tree *last_vuse_ptr, tree mask,
3863 bool redundant_store_removal_p)
3865 vec<vn_reference_op_s> operands;
3866 struct vn_reference_s vr1;
3867 bool valueized_anything;
3869 if (vnresult)
3870 *vnresult = NULL;
3872 vr1.vuse = vuse_ssa_val (vuse);
3873 vr1.operands = operands
3874 = valueize_shared_reference_ops_from_ref (op, &valueized_anything);
3876 /* Handle &MEM[ptr + 5].b[1].c as POINTER_PLUS_EXPR. Avoid doing
3877 this before the pass folding __builtin_object_size had a chance to run. */
3878 if ((cfun->curr_properties & PROP_objsz)
3879 && operands[0].opcode == ADDR_EXPR
3880 && operands.last ().opcode == SSA_NAME)
3882 poly_int64 off = 0;
3883 vn_reference_op_t vro;
3884 unsigned i;
3885 for (i = 1; operands.iterate (i, &vro); ++i)
3887 if (vro->opcode == SSA_NAME)
3888 break;
3889 else if (known_eq (vro->off, -1))
3890 break;
3891 off += vro->off;
3893 if (i == operands.length () - 1
3894 /* Make sure we the offset we accumulated in a 64bit int
3895 fits the address computation carried out in target
3896 offset precision. */
3897 && (off.coeffs[0]
3898 == sext_hwi (off.coeffs[0], TYPE_PRECISION (sizetype))))
3900 gcc_assert (operands[i-1].opcode == MEM_REF);
3901 tree ops[2];
3902 ops[0] = operands[i].op0;
3903 ops[1] = wide_int_to_tree (sizetype, off);
3904 tree res = vn_nary_op_lookup_pieces (2, POINTER_PLUS_EXPR,
3905 TREE_TYPE (op), ops, NULL);
3906 if (res)
3907 return res;
3908 return NULL_TREE;
3912 vr1.type = TREE_TYPE (op);
3913 ao_ref op_ref;
3914 ao_ref_init (&op_ref, op);
3915 vr1.set = ao_ref_alias_set (&op_ref);
3916 vr1.base_set = ao_ref_base_alias_set (&op_ref);
3917 vr1.hashcode = vn_reference_compute_hash (&vr1);
3918 if (mask == NULL_TREE)
3919 if (tree cst = fully_constant_vn_reference_p (&vr1))
3920 return cst;
3922 if (kind != VN_NOWALK && vr1.vuse)
3924 vn_reference_t wvnresult;
3925 ao_ref r;
3926 unsigned limit = param_sccvn_max_alias_queries_per_access;
3927 auto_vec<vn_reference_op_s> ops_for_ref;
3928 if (valueized_anything)
3930 copy_reference_ops_from_ref (op, &ops_for_ref);
3931 bool tem;
3932 valueize_refs_1 (&ops_for_ref, &tem, true);
3934 /* Make sure to use a valueized reference if we valueized anything.
3935 Otherwise preserve the full reference for advanced TBAA. */
3936 if (!valueized_anything
3937 || !ao_ref_init_from_vn_reference (&r, vr1.set, vr1.base_set,
3938 vr1.type, ops_for_ref))
3939 ao_ref_init (&r, op);
3940 vn_walk_cb_data data (&vr1, r.ref ? NULL_TREE : op,
3941 last_vuse_ptr, kind, tbaa_p, mask,
3942 redundant_store_removal_p);
3944 wvnresult
3945 = ((vn_reference_t)
3946 walk_non_aliased_vuses (&r, vr1.vuse, tbaa_p, vn_reference_lookup_2,
3947 vn_reference_lookup_3, vuse_valueize, limit,
3948 &data));
3949 gcc_checking_assert (vr1.operands == shared_lookup_references);
3950 if (wvnresult)
3952 gcc_assert (mask == NULL_TREE);
3953 if (data.same_val
3954 && (!wvnresult->result
3955 || !operand_equal_p (wvnresult->result, data.same_val)))
3956 return NULL_TREE;
3957 if (vnresult)
3958 *vnresult = wvnresult;
3959 return wvnresult->result;
3961 else if (mask)
3962 return data.masked_result;
3964 return NULL_TREE;
3967 if (last_vuse_ptr)
3968 *last_vuse_ptr = vr1.vuse;
3969 if (mask)
3970 return NULL_TREE;
3971 return vn_reference_lookup_1 (&vr1, vnresult);
3974 /* Lookup CALL in the current hash table and return the entry in
3975 *VNRESULT if found. Populates *VR for the hashtable lookup. */
3977 void
3978 vn_reference_lookup_call (gcall *call, vn_reference_t *vnresult,
3979 vn_reference_t vr)
3981 if (vnresult)
3982 *vnresult = NULL;
3984 tree vuse = gimple_vuse (call);
3986 vr->vuse = vuse ? SSA_VAL (vuse) : NULL_TREE;
3987 vr->operands = valueize_shared_reference_ops_from_call (call);
3988 tree lhs = gimple_call_lhs (call);
3989 /* For non-SSA return values the referece ops contain the LHS. */
3990 vr->type = ((lhs && TREE_CODE (lhs) == SSA_NAME)
3991 ? TREE_TYPE (lhs) : NULL_TREE);
3992 vr->punned = false;
3993 vr->set = 0;
3994 vr->base_set = 0;
3995 vr->hashcode = vn_reference_compute_hash (vr);
3996 vn_reference_lookup_1 (vr, vnresult);
3999 /* Insert OP into the current hash table with a value number of RESULT. */
4001 static void
4002 vn_reference_insert (tree op, tree result, tree vuse, tree vdef)
4004 vn_reference_s **slot;
4005 vn_reference_t vr1;
4006 bool tem;
4008 vec<vn_reference_op_s> operands
4009 = valueize_shared_reference_ops_from_ref (op, &tem);
4010 /* Handle &MEM[ptr + 5].b[1].c as POINTER_PLUS_EXPR. Avoid doing this
4011 before the pass folding __builtin_object_size had a chance to run. */
4012 if ((cfun->curr_properties & PROP_objsz)
4013 && operands[0].opcode == ADDR_EXPR
4014 && operands.last ().opcode == SSA_NAME)
4016 poly_int64 off = 0;
4017 vn_reference_op_t vro;
4018 unsigned i;
4019 for (i = 1; operands.iterate (i, &vro); ++i)
4021 if (vro->opcode == SSA_NAME)
4022 break;
4023 else if (known_eq (vro->off, -1))
4024 break;
4025 off += vro->off;
4027 if (i == operands.length () - 1
4028 /* Make sure we the offset we accumulated in a 64bit int
4029 fits the address computation carried out in target
4030 offset precision. */
4031 && (off.coeffs[0]
4032 == sext_hwi (off.coeffs[0], TYPE_PRECISION (sizetype))))
4034 gcc_assert (operands[i-1].opcode == MEM_REF);
4035 tree ops[2];
4036 ops[0] = operands[i].op0;
4037 ops[1] = wide_int_to_tree (sizetype, off);
4038 vn_nary_op_insert_pieces (2, POINTER_PLUS_EXPR,
4039 TREE_TYPE (op), ops, result,
4040 VN_INFO (result)->value_id);
4041 return;
4045 vr1 = XOBNEW (&vn_tables_obstack, vn_reference_s);
4046 if (TREE_CODE (result) == SSA_NAME)
4047 vr1->value_id = VN_INFO (result)->value_id;
4048 else
4049 vr1->value_id = get_or_alloc_constant_value_id (result);
4050 vr1->vuse = vuse_ssa_val (vuse);
4051 vr1->operands = operands.copy ();
4052 vr1->type = TREE_TYPE (op);
4053 vr1->punned = false;
4054 ao_ref op_ref;
4055 ao_ref_init (&op_ref, op);
4056 vr1->set = ao_ref_alias_set (&op_ref);
4057 vr1->base_set = ao_ref_base_alias_set (&op_ref);
4058 vr1->hashcode = vn_reference_compute_hash (vr1);
4059 vr1->result = TREE_CODE (result) == SSA_NAME ? SSA_VAL (result) : result;
4060 vr1->result_vdef = vdef;
4062 slot = valid_info->references->find_slot_with_hash (vr1, vr1->hashcode,
4063 INSERT);
4065 /* Because IL walking on reference lookup can end up visiting
4066 a def that is only to be visited later in iteration order
4067 when we are about to make an irreducible region reducible
4068 the def can be effectively processed and its ref being inserted
4069 by vn_reference_lookup_3 already. So we cannot assert (!*slot)
4070 but save a lookup if we deal with already inserted refs here. */
4071 if (*slot)
4073 /* We cannot assert that we have the same value either because
4074 when disentangling an irreducible region we may end up visiting
4075 a use before the corresponding def. That's a missed optimization
4076 only though. See gcc.dg/tree-ssa/pr87126.c for example. */
4077 if (dump_file && (dump_flags & TDF_DETAILS)
4078 && !operand_equal_p ((*slot)->result, vr1->result, 0))
4080 fprintf (dump_file, "Keeping old value ");
4081 print_generic_expr (dump_file, (*slot)->result);
4082 fprintf (dump_file, " because of collision\n");
4084 free_reference (vr1);
4085 obstack_free (&vn_tables_obstack, vr1);
4086 return;
4089 *slot = vr1;
4090 vr1->next = last_inserted_ref;
4091 last_inserted_ref = vr1;
4094 /* Insert a reference by it's pieces into the current hash table with
4095 a value number of RESULT. Return the resulting reference
4096 structure we created. */
4098 vn_reference_t
4099 vn_reference_insert_pieces (tree vuse, alias_set_type set,
4100 alias_set_type base_set, tree type,
4101 vec<vn_reference_op_s> operands,
4102 tree result, unsigned int value_id)
4105 vn_reference_s **slot;
4106 vn_reference_t vr1;
4108 vr1 = XOBNEW (&vn_tables_obstack, vn_reference_s);
4109 vr1->value_id = value_id;
4110 vr1->vuse = vuse_ssa_val (vuse);
4111 vr1->operands = operands;
4112 valueize_refs (&vr1->operands);
4113 vr1->type = type;
4114 vr1->punned = false;
4115 vr1->set = set;
4116 vr1->base_set = base_set;
4117 vr1->hashcode = vn_reference_compute_hash (vr1);
4118 if (result && TREE_CODE (result) == SSA_NAME)
4119 result = SSA_VAL (result);
4120 vr1->result = result;
4121 vr1->result_vdef = NULL_TREE;
4123 slot = valid_info->references->find_slot_with_hash (vr1, vr1->hashcode,
4124 INSERT);
4126 /* At this point we should have all the things inserted that we have
4127 seen before, and we should never try inserting something that
4128 already exists. */
4129 gcc_assert (!*slot);
4131 *slot = vr1;
4132 vr1->next = last_inserted_ref;
4133 last_inserted_ref = vr1;
4134 return vr1;
4137 /* Compute and return the hash value for nary operation VBO1. */
4139 hashval_t
4140 vn_nary_op_compute_hash (const vn_nary_op_t vno1)
4142 inchash::hash hstate;
4143 unsigned i;
4145 if (((vno1->length == 2
4146 && commutative_tree_code (vno1->opcode))
4147 || (vno1->length == 3
4148 && commutative_ternary_tree_code (vno1->opcode)))
4149 && tree_swap_operands_p (vno1->op[0], vno1->op[1]))
4150 std::swap (vno1->op[0], vno1->op[1]);
4151 else if (TREE_CODE_CLASS (vno1->opcode) == tcc_comparison
4152 && tree_swap_operands_p (vno1->op[0], vno1->op[1]))
4154 std::swap (vno1->op[0], vno1->op[1]);
4155 vno1->opcode = swap_tree_comparison (vno1->opcode);
4158 hstate.add_int (vno1->opcode);
4159 for (i = 0; i < vno1->length; ++i)
4160 inchash::add_expr (vno1->op[i], hstate);
4162 return hstate.end ();
4165 /* Compare nary operations VNO1 and VNO2 and return true if they are
4166 equivalent. */
4168 bool
4169 vn_nary_op_eq (const_vn_nary_op_t const vno1, const_vn_nary_op_t const vno2)
4171 unsigned i;
4173 if (vno1->hashcode != vno2->hashcode)
4174 return false;
4176 if (vno1->length != vno2->length)
4177 return false;
4179 if (vno1->opcode != vno2->opcode
4180 || !types_compatible_p (vno1->type, vno2->type))
4181 return false;
4183 for (i = 0; i < vno1->length; ++i)
4184 if (!expressions_equal_p (vno1->op[i], vno2->op[i]))
4185 return false;
4187 /* BIT_INSERT_EXPR has an implict operand as the type precision
4188 of op1. Need to check to make sure they are the same. */
4189 if (vno1->opcode == BIT_INSERT_EXPR
4190 && TREE_CODE (vno1->op[1]) == INTEGER_CST
4191 && TYPE_PRECISION (TREE_TYPE (vno1->op[1]))
4192 != TYPE_PRECISION (TREE_TYPE (vno2->op[1])))
4193 return false;
4195 return true;
4198 /* Initialize VNO from the pieces provided. */
4200 static void
4201 init_vn_nary_op_from_pieces (vn_nary_op_t vno, unsigned int length,
4202 enum tree_code code, tree type, tree *ops)
4204 vno->opcode = code;
4205 vno->length = length;
4206 vno->type = type;
4207 memcpy (&vno->op[0], ops, sizeof (tree) * length);
4210 /* Return the number of operands for a vn_nary ops structure from STMT. */
4212 unsigned int
4213 vn_nary_length_from_stmt (gimple *stmt)
4215 switch (gimple_assign_rhs_code (stmt))
4217 case REALPART_EXPR:
4218 case IMAGPART_EXPR:
4219 case VIEW_CONVERT_EXPR:
4220 return 1;
4222 case BIT_FIELD_REF:
4223 return 3;
4225 case CONSTRUCTOR:
4226 return CONSTRUCTOR_NELTS (gimple_assign_rhs1 (stmt));
4228 default:
4229 return gimple_num_ops (stmt) - 1;
4233 /* Initialize VNO from STMT. */
4235 void
4236 init_vn_nary_op_from_stmt (vn_nary_op_t vno, gassign *stmt)
4238 unsigned i;
4240 vno->opcode = gimple_assign_rhs_code (stmt);
4241 vno->type = TREE_TYPE (gimple_assign_lhs (stmt));
4242 switch (vno->opcode)
4244 case REALPART_EXPR:
4245 case IMAGPART_EXPR:
4246 case VIEW_CONVERT_EXPR:
4247 vno->length = 1;
4248 vno->op[0] = TREE_OPERAND (gimple_assign_rhs1 (stmt), 0);
4249 break;
4251 case BIT_FIELD_REF:
4252 vno->length = 3;
4253 vno->op[0] = TREE_OPERAND (gimple_assign_rhs1 (stmt), 0);
4254 vno->op[1] = TREE_OPERAND (gimple_assign_rhs1 (stmt), 1);
4255 vno->op[2] = TREE_OPERAND (gimple_assign_rhs1 (stmt), 2);
4256 break;
4258 case CONSTRUCTOR:
4259 vno->length = CONSTRUCTOR_NELTS (gimple_assign_rhs1 (stmt));
4260 for (i = 0; i < vno->length; ++i)
4261 vno->op[i] = CONSTRUCTOR_ELT (gimple_assign_rhs1 (stmt), i)->value;
4262 break;
4264 default:
4265 gcc_checking_assert (!gimple_assign_single_p (stmt));
4266 vno->length = gimple_num_ops (stmt) - 1;
4267 for (i = 0; i < vno->length; ++i)
4268 vno->op[i] = gimple_op (stmt, i + 1);
4272 /* Compute the hashcode for VNO and look for it in the hash table;
4273 return the resulting value number if it exists in the hash table.
4274 Return NULL_TREE if it does not exist in the hash table or if the
4275 result field of the operation is NULL. VNRESULT will contain the
4276 vn_nary_op_t from the hashtable if it exists. */
4278 static tree
4279 vn_nary_op_lookup_1 (vn_nary_op_t vno, vn_nary_op_t *vnresult)
4281 vn_nary_op_s **slot;
4283 if (vnresult)
4284 *vnresult = NULL;
4286 for (unsigned i = 0; i < vno->length; ++i)
4287 if (TREE_CODE (vno->op[i]) == SSA_NAME)
4288 vno->op[i] = SSA_VAL (vno->op[i]);
4290 vno->hashcode = vn_nary_op_compute_hash (vno);
4291 slot = valid_info->nary->find_slot_with_hash (vno, vno->hashcode, NO_INSERT);
4292 if (!slot)
4293 return NULL_TREE;
4294 if (vnresult)
4295 *vnresult = *slot;
4296 return (*slot)->predicated_values ? NULL_TREE : (*slot)->u.result;
4299 /* Lookup a n-ary operation by its pieces and return the resulting value
4300 number if it exists in the hash table. Return NULL_TREE if it does
4301 not exist in the hash table or if the result field of the operation
4302 is NULL. VNRESULT will contain the vn_nary_op_t from the hashtable
4303 if it exists. */
4305 tree
4306 vn_nary_op_lookup_pieces (unsigned int length, enum tree_code code,
4307 tree type, tree *ops, vn_nary_op_t *vnresult)
4309 vn_nary_op_t vno1 = XALLOCAVAR (struct vn_nary_op_s,
4310 sizeof_vn_nary_op (length));
4311 init_vn_nary_op_from_pieces (vno1, length, code, type, ops);
4312 return vn_nary_op_lookup_1 (vno1, vnresult);
4315 /* Lookup the rhs of STMT in the current hash table, and return the resulting
4316 value number if it exists in the hash table. Return NULL_TREE if
4317 it does not exist in the hash table. VNRESULT will contain the
4318 vn_nary_op_t from the hashtable if it exists. */
4320 tree
4321 vn_nary_op_lookup_stmt (gimple *stmt, vn_nary_op_t *vnresult)
4323 vn_nary_op_t vno1
4324 = XALLOCAVAR (struct vn_nary_op_s,
4325 sizeof_vn_nary_op (vn_nary_length_from_stmt (stmt)));
4326 init_vn_nary_op_from_stmt (vno1, as_a <gassign *> (stmt));
4327 return vn_nary_op_lookup_1 (vno1, vnresult);
4330 /* Allocate a vn_nary_op_t with LENGTH operands on STACK. */
4332 vn_nary_op_t
4333 alloc_vn_nary_op_noinit (unsigned int length, struct obstack *stack)
4335 return (vn_nary_op_t) obstack_alloc (stack, sizeof_vn_nary_op (length));
4338 /* Allocate and initialize a vn_nary_op_t on CURRENT_INFO's
4339 obstack. */
4341 static vn_nary_op_t
4342 alloc_vn_nary_op (unsigned int length, tree result, unsigned int value_id)
4344 vn_nary_op_t vno1 = alloc_vn_nary_op_noinit (length, &vn_tables_obstack);
4346 vno1->value_id = value_id;
4347 vno1->length = length;
4348 vno1->predicated_values = 0;
4349 vno1->u.result = result;
4351 return vno1;
4354 /* Insert VNO into TABLE. */
4356 static vn_nary_op_t
4357 vn_nary_op_insert_into (vn_nary_op_t vno, vn_nary_op_table_type *table)
4359 vn_nary_op_s **slot;
4361 gcc_assert (! vno->predicated_values
4362 || (! vno->u.values->next
4363 && vno->u.values->n == 1));
4365 for (unsigned i = 0; i < vno->length; ++i)
4366 if (TREE_CODE (vno->op[i]) == SSA_NAME)
4367 vno->op[i] = SSA_VAL (vno->op[i]);
4369 vno->hashcode = vn_nary_op_compute_hash (vno);
4370 slot = table->find_slot_with_hash (vno, vno->hashcode, INSERT);
4371 vno->unwind_to = *slot;
4372 if (*slot)
4374 /* Prefer non-predicated values.
4375 ??? Only if those are constant, otherwise, with constant predicated
4376 value, turn them into predicated values with entry-block validity
4377 (??? but we always find the first valid result currently). */
4378 if ((*slot)->predicated_values
4379 && ! vno->predicated_values)
4381 /* ??? We cannot remove *slot from the unwind stack list.
4382 For the moment we deal with this by skipping not found
4383 entries but this isn't ideal ... */
4384 *slot = vno;
4385 /* ??? Maintain a stack of states we can unwind in
4386 vn_nary_op_s? But how far do we unwind? In reality
4387 we need to push change records somewhere... Or not
4388 unwind vn_nary_op_s and linking them but instead
4389 unwind the results "list", linking that, which also
4390 doesn't move on hashtable resize. */
4391 /* We can also have a ->unwind_to recording *slot there.
4392 That way we can make u.values a fixed size array with
4393 recording the number of entries but of course we then
4394 have always N copies for each unwind_to-state. Or we
4395 make sure to only ever append and each unwinding will
4396 pop off one entry (but how to deal with predicated
4397 replaced with non-predicated here?) */
4398 vno->next = last_inserted_nary;
4399 last_inserted_nary = vno;
4400 return vno;
4402 else if (vno->predicated_values
4403 && ! (*slot)->predicated_values)
4404 return *slot;
4405 else if (vno->predicated_values
4406 && (*slot)->predicated_values)
4408 /* ??? Factor this all into a insert_single_predicated_value
4409 routine. */
4410 gcc_assert (!vno->u.values->next && vno->u.values->n == 1);
4411 basic_block vno_bb
4412 = BASIC_BLOCK_FOR_FN (cfun, vno->u.values->valid_dominated_by_p[0]);
4413 vn_pval *nval = vno->u.values;
4414 vn_pval **next = &vno->u.values;
4415 bool found = false;
4416 for (vn_pval *val = (*slot)->u.values; val; val = val->next)
4418 if (expressions_equal_p (val->result, nval->result))
4420 found = true;
4421 for (unsigned i = 0; i < val->n; ++i)
4423 basic_block val_bb
4424 = BASIC_BLOCK_FOR_FN (cfun,
4425 val->valid_dominated_by_p[i]);
4426 if (dominated_by_p (CDI_DOMINATORS, vno_bb, val_bb))
4427 /* Value registered with more generic predicate. */
4428 return *slot;
4429 else if (flag_checking)
4430 /* Shouldn't happen, we insert in RPO order. */
4431 gcc_assert (!dominated_by_p (CDI_DOMINATORS,
4432 val_bb, vno_bb));
4434 /* Append value. */
4435 *next = (vn_pval *) obstack_alloc (&vn_tables_obstack,
4436 sizeof (vn_pval)
4437 + val->n * sizeof (int));
4438 (*next)->next = NULL;
4439 (*next)->result = val->result;
4440 (*next)->n = val->n + 1;
4441 memcpy ((*next)->valid_dominated_by_p,
4442 val->valid_dominated_by_p,
4443 val->n * sizeof (int));
4444 (*next)->valid_dominated_by_p[val->n] = vno_bb->index;
4445 next = &(*next)->next;
4446 if (dump_file && (dump_flags & TDF_DETAILS))
4447 fprintf (dump_file, "Appending predicate to value.\n");
4448 continue;
4450 /* Copy other predicated values. */
4451 *next = (vn_pval *) obstack_alloc (&vn_tables_obstack,
4452 sizeof (vn_pval)
4453 + (val->n-1) * sizeof (int));
4454 memcpy (*next, val, sizeof (vn_pval) + (val->n-1) * sizeof (int));
4455 (*next)->next = NULL;
4456 next = &(*next)->next;
4458 if (!found)
4459 *next = nval;
4461 *slot = vno;
4462 vno->next = last_inserted_nary;
4463 last_inserted_nary = vno;
4464 return vno;
4467 /* While we do not want to insert things twice it's awkward to
4468 avoid it in the case where visit_nary_op pattern-matches stuff
4469 and ends up simplifying the replacement to itself. We then
4470 get two inserts, one from visit_nary_op and one from
4471 vn_nary_build_or_lookup.
4472 So allow inserts with the same value number. */
4473 if ((*slot)->u.result == vno->u.result)
4474 return *slot;
4477 /* ??? There's also optimistic vs. previous commited state merging
4478 that is problematic for the case of unwinding. */
4480 /* ??? We should return NULL if we do not use 'vno' and have the
4481 caller release it. */
4482 gcc_assert (!*slot);
4484 *slot = vno;
4485 vno->next = last_inserted_nary;
4486 last_inserted_nary = vno;
4487 return vno;
4490 /* Insert a n-ary operation into the current hash table using it's
4491 pieces. Return the vn_nary_op_t structure we created and put in
4492 the hashtable. */
4494 vn_nary_op_t
4495 vn_nary_op_insert_pieces (unsigned int length, enum tree_code code,
4496 tree type, tree *ops,
4497 tree result, unsigned int value_id)
4499 vn_nary_op_t vno1 = alloc_vn_nary_op (length, result, value_id);
4500 init_vn_nary_op_from_pieces (vno1, length, code, type, ops);
4501 return vn_nary_op_insert_into (vno1, valid_info->nary);
4504 /* Return whether we can track a predicate valid when PRED_E is executed. */
4506 static bool
4507 can_track_predicate_on_edge (edge pred_e)
4509 /* ??? As we are currently recording a basic-block index in
4510 vn_pval.valid_dominated_by_p and using dominance for the
4511 validity check we cannot track predicates on all edges. */
4512 if (single_pred_p (pred_e->dest))
4513 return true;
4514 /* Never record for backedges. */
4515 if (pred_e->flags & EDGE_DFS_BACK)
4516 return false;
4517 /* When there's more than one predecessor we cannot track
4518 predicate validity based on the destination block. The
4519 exception is when all other incoming edges are backedges. */
4520 edge_iterator ei;
4521 edge e;
4522 int cnt = 0;
4523 FOR_EACH_EDGE (e, ei, pred_e->dest->preds)
4524 if (! dominated_by_p (CDI_DOMINATORS, e->src, e->dest))
4525 cnt++;
4526 return cnt == 1;
4529 static vn_nary_op_t
4530 vn_nary_op_insert_pieces_predicated (unsigned int length, enum tree_code code,
4531 tree type, tree *ops,
4532 tree result, unsigned int value_id,
4533 edge pred_e)
4535 if (!can_track_predicate_on_edge (pred_e))
4536 return NULL;
4537 if (dump_file && (dump_flags & TDF_DETAILS)
4538 /* ??? Fix dumping, but currently we only get comparisons. */
4539 && TREE_CODE_CLASS (code) == tcc_comparison)
4541 fprintf (dump_file, "Recording on edge %d->%d ", pred_e->src->index,
4542 pred_e->dest->index);
4543 print_generic_expr (dump_file, ops[0], TDF_SLIM);
4544 fprintf (dump_file, " %s ", get_tree_code_name (code));
4545 print_generic_expr (dump_file, ops[1], TDF_SLIM);
4546 fprintf (dump_file, " == %s\n",
4547 integer_zerop (result) ? "false" : "true");
4549 vn_nary_op_t vno1 = alloc_vn_nary_op (length, NULL_TREE, value_id);
4550 init_vn_nary_op_from_pieces (vno1, length, code, type, ops);
4551 vno1->predicated_values = 1;
4552 vno1->u.values = (vn_pval *) obstack_alloc (&vn_tables_obstack,
4553 sizeof (vn_pval));
4554 vno1->u.values->next = NULL;
4555 vno1->u.values->result = result;
4556 vno1->u.values->n = 1;
4557 vno1->u.values->valid_dominated_by_p[0] = pred_e->dest->index;
4558 return vn_nary_op_insert_into (vno1, valid_info->nary);
4561 static bool
4562 dominated_by_p_w_unex (basic_block bb1, basic_block bb2, bool);
4564 static tree
4565 vn_nary_op_get_predicated_value (vn_nary_op_t vno, basic_block bb)
4567 if (! vno->predicated_values)
4568 return vno->u.result;
4569 for (vn_pval *val = vno->u.values; val; val = val->next)
4570 for (unsigned i = 0; i < val->n; ++i)
4571 /* Do not handle backedge executability optimistically since
4572 when figuring out whether to iterate we do not consider
4573 changed predication. */
4574 if (dominated_by_p_w_unex
4575 (bb, BASIC_BLOCK_FOR_FN (cfun, val->valid_dominated_by_p[i]),
4576 false))
4577 return val->result;
4578 return NULL_TREE;
4581 /* Insert the rhs of STMT into the current hash table with a value number of
4582 RESULT. */
4584 static vn_nary_op_t
4585 vn_nary_op_insert_stmt (gimple *stmt, tree result)
4587 vn_nary_op_t vno1
4588 = alloc_vn_nary_op (vn_nary_length_from_stmt (stmt),
4589 result, VN_INFO (result)->value_id);
4590 init_vn_nary_op_from_stmt (vno1, as_a <gassign *> (stmt));
4591 return vn_nary_op_insert_into (vno1, valid_info->nary);
4594 /* Compute a hashcode for PHI operation VP1 and return it. */
4596 static inline hashval_t
4597 vn_phi_compute_hash (vn_phi_t vp1)
4599 inchash::hash hstate;
4600 tree phi1op;
4601 tree type;
4602 edge e;
4603 edge_iterator ei;
4605 hstate.add_int (EDGE_COUNT (vp1->block->preds));
4606 switch (EDGE_COUNT (vp1->block->preds))
4608 case 1:
4609 break;
4610 case 2:
4611 if (vp1->block->loop_father->header == vp1->block)
4613 else
4614 break;
4615 /* Fallthru. */
4616 default:
4617 hstate.add_int (vp1->block->index);
4620 /* If all PHI arguments are constants we need to distinguish
4621 the PHI node via its type. */
4622 type = vp1->type;
4623 hstate.merge_hash (vn_hash_type (type));
4625 FOR_EACH_EDGE (e, ei, vp1->block->preds)
4627 /* Don't hash backedge values they need to be handled as VN_TOP
4628 for optimistic value-numbering. */
4629 if (e->flags & EDGE_DFS_BACK)
4630 continue;
4632 phi1op = vp1->phiargs[e->dest_idx];
4633 if (phi1op == VN_TOP)
4634 continue;
4635 inchash::add_expr (phi1op, hstate);
4638 return hstate.end ();
4642 /* Return true if COND1 and COND2 represent the same condition, set
4643 *INVERTED_P if one needs to be inverted to make it the same as
4644 the other. */
4646 static bool
4647 cond_stmts_equal_p (gcond *cond1, tree lhs1, tree rhs1,
4648 gcond *cond2, tree lhs2, tree rhs2, bool *inverted_p)
4650 enum tree_code code1 = gimple_cond_code (cond1);
4651 enum tree_code code2 = gimple_cond_code (cond2);
4653 *inverted_p = false;
4654 if (code1 == code2)
4656 else if (code1 == swap_tree_comparison (code2))
4657 std::swap (lhs2, rhs2);
4658 else if (code1 == invert_tree_comparison (code2, HONOR_NANS (lhs2)))
4659 *inverted_p = true;
4660 else if (code1 == invert_tree_comparison
4661 (swap_tree_comparison (code2), HONOR_NANS (lhs2)))
4663 std::swap (lhs2, rhs2);
4664 *inverted_p = true;
4666 else
4667 return false;
4669 return ((expressions_equal_p (lhs1, lhs2)
4670 && expressions_equal_p (rhs1, rhs2))
4671 || (commutative_tree_code (code1)
4672 && expressions_equal_p (lhs1, rhs2)
4673 && expressions_equal_p (rhs1, lhs2)));
4676 /* Compare two phi entries for equality, ignoring VN_TOP arguments. */
4678 static int
4679 vn_phi_eq (const_vn_phi_t const vp1, const_vn_phi_t const vp2)
4681 if (vp1->hashcode != vp2->hashcode)
4682 return false;
4684 if (vp1->block != vp2->block)
4686 if (EDGE_COUNT (vp1->block->preds) != EDGE_COUNT (vp2->block->preds))
4687 return false;
4689 switch (EDGE_COUNT (vp1->block->preds))
4691 case 1:
4692 /* Single-arg PHIs are just copies. */
4693 break;
4695 case 2:
4697 /* Rule out backedges into the PHI. */
4698 if (vp1->block->loop_father->header == vp1->block
4699 || vp2->block->loop_father->header == vp2->block)
4700 return false;
4702 /* If the PHI nodes do not have compatible types
4703 they are not the same. */
4704 if (!types_compatible_p (vp1->type, vp2->type))
4705 return false;
4707 basic_block idom1
4708 = get_immediate_dominator (CDI_DOMINATORS, vp1->block);
4709 basic_block idom2
4710 = get_immediate_dominator (CDI_DOMINATORS, vp2->block);
4711 /* If the immediate dominator end in switch stmts multiple
4712 values may end up in the same PHI arg via intermediate
4713 CFG merges. */
4714 if (EDGE_COUNT (idom1->succs) != 2
4715 || EDGE_COUNT (idom2->succs) != 2)
4716 return false;
4718 /* Verify the controlling stmt is the same. */
4719 gcond *last1 = safe_dyn_cast <gcond *> (last_stmt (idom1));
4720 gcond *last2 = safe_dyn_cast <gcond *> (last_stmt (idom2));
4721 if (! last1 || ! last2)
4722 return false;
4723 bool inverted_p;
4724 if (! cond_stmts_equal_p (last1, vp1->cclhs, vp1->ccrhs,
4725 last2, vp2->cclhs, vp2->ccrhs,
4726 &inverted_p))
4727 return false;
4729 /* Get at true/false controlled edges into the PHI. */
4730 edge te1, te2, fe1, fe2;
4731 if (! extract_true_false_controlled_edges (idom1, vp1->block,
4732 &te1, &fe1)
4733 || ! extract_true_false_controlled_edges (idom2, vp2->block,
4734 &te2, &fe2))
4735 return false;
4737 /* Swap edges if the second condition is the inverted of the
4738 first. */
4739 if (inverted_p)
4740 std::swap (te2, fe2);
4742 /* Since we do not know which edge will be executed we have
4743 to be careful when matching VN_TOP. Be conservative and
4744 only match VN_TOP == VN_TOP for now, we could allow
4745 VN_TOP on the not prevailing PHI though. See for example
4746 PR102920. */
4747 if (! expressions_equal_p (vp1->phiargs[te1->dest_idx],
4748 vp2->phiargs[te2->dest_idx], false)
4749 || ! expressions_equal_p (vp1->phiargs[fe1->dest_idx],
4750 vp2->phiargs[fe2->dest_idx], false))
4751 return false;
4753 return true;
4756 default:
4757 return false;
4761 /* If the PHI nodes do not have compatible types
4762 they are not the same. */
4763 if (!types_compatible_p (vp1->type, vp2->type))
4764 return false;
4766 /* Any phi in the same block will have it's arguments in the
4767 same edge order, because of how we store phi nodes. */
4768 unsigned nargs = EDGE_COUNT (vp1->block->preds);
4769 for (unsigned i = 0; i < nargs; ++i)
4771 tree phi1op = vp1->phiargs[i];
4772 tree phi2op = vp2->phiargs[i];
4773 if (phi1op == phi2op)
4774 continue;
4775 if (!expressions_equal_p (phi1op, phi2op, false))
4776 return false;
4779 return true;
4782 /* Lookup PHI in the current hash table, and return the resulting
4783 value number if it exists in the hash table. Return NULL_TREE if
4784 it does not exist in the hash table. */
4786 static tree
4787 vn_phi_lookup (gimple *phi, bool backedges_varying_p)
4789 vn_phi_s **slot;
4790 struct vn_phi_s *vp1;
4791 edge e;
4792 edge_iterator ei;
4794 vp1 = XALLOCAVAR (struct vn_phi_s,
4795 sizeof (struct vn_phi_s)
4796 + (gimple_phi_num_args (phi) - 1) * sizeof (tree));
4798 /* Canonicalize the SSA_NAME's to their value number. */
4799 FOR_EACH_EDGE (e, ei, gimple_bb (phi)->preds)
4801 tree def = PHI_ARG_DEF_FROM_EDGE (phi, e);
4802 if (TREE_CODE (def) == SSA_NAME
4803 && (!backedges_varying_p || !(e->flags & EDGE_DFS_BACK)))
4805 if (ssa_undefined_value_p (def, false))
4806 def = VN_TOP;
4807 else
4808 def = SSA_VAL (def);
4810 vp1->phiargs[e->dest_idx] = def;
4812 vp1->type = TREE_TYPE (gimple_phi_result (phi));
4813 vp1->block = gimple_bb (phi);
4814 /* Extract values of the controlling condition. */
4815 vp1->cclhs = NULL_TREE;
4816 vp1->ccrhs = NULL_TREE;
4817 basic_block idom1 = get_immediate_dominator (CDI_DOMINATORS, vp1->block);
4818 if (EDGE_COUNT (idom1->succs) == 2)
4819 if (gcond *last1 = safe_dyn_cast <gcond *> (last_stmt (idom1)))
4821 /* ??? We want to use SSA_VAL here. But possibly not
4822 allow VN_TOP. */
4823 vp1->cclhs = vn_valueize (gimple_cond_lhs (last1));
4824 vp1->ccrhs = vn_valueize (gimple_cond_rhs (last1));
4826 vp1->hashcode = vn_phi_compute_hash (vp1);
4827 slot = valid_info->phis->find_slot_with_hash (vp1, vp1->hashcode, NO_INSERT);
4828 if (!slot)
4829 return NULL_TREE;
4830 return (*slot)->result;
4833 /* Insert PHI into the current hash table with a value number of
4834 RESULT. */
4836 static vn_phi_t
4837 vn_phi_insert (gimple *phi, tree result, bool backedges_varying_p)
4839 vn_phi_s **slot;
4840 vn_phi_t vp1 = (vn_phi_t) obstack_alloc (&vn_tables_obstack,
4841 sizeof (vn_phi_s)
4842 + ((gimple_phi_num_args (phi) - 1)
4843 * sizeof (tree)));
4844 edge e;
4845 edge_iterator ei;
4847 /* Canonicalize the SSA_NAME's to their value number. */
4848 FOR_EACH_EDGE (e, ei, gimple_bb (phi)->preds)
4850 tree def = PHI_ARG_DEF_FROM_EDGE (phi, e);
4851 if (TREE_CODE (def) == SSA_NAME
4852 && (!backedges_varying_p || !(e->flags & EDGE_DFS_BACK)))
4854 if (ssa_undefined_value_p (def, false))
4855 def = VN_TOP;
4856 else
4857 def = SSA_VAL (def);
4859 vp1->phiargs[e->dest_idx] = def;
4861 vp1->value_id = VN_INFO (result)->value_id;
4862 vp1->type = TREE_TYPE (gimple_phi_result (phi));
4863 vp1->block = gimple_bb (phi);
4864 /* Extract values of the controlling condition. */
4865 vp1->cclhs = NULL_TREE;
4866 vp1->ccrhs = NULL_TREE;
4867 basic_block idom1 = get_immediate_dominator (CDI_DOMINATORS, vp1->block);
4868 if (EDGE_COUNT (idom1->succs) == 2)
4869 if (gcond *last1 = safe_dyn_cast <gcond *> (last_stmt (idom1)))
4871 /* ??? We want to use SSA_VAL here. But possibly not
4872 allow VN_TOP. */
4873 vp1->cclhs = vn_valueize (gimple_cond_lhs (last1));
4874 vp1->ccrhs = vn_valueize (gimple_cond_rhs (last1));
4876 vp1->result = result;
4877 vp1->hashcode = vn_phi_compute_hash (vp1);
4879 slot = valid_info->phis->find_slot_with_hash (vp1, vp1->hashcode, INSERT);
4880 gcc_assert (!*slot);
4882 *slot = vp1;
4883 vp1->next = last_inserted_phi;
4884 last_inserted_phi = vp1;
4885 return vp1;
4889 /* Return true if BB1 is dominated by BB2 taking into account edges
4890 that are not executable. When ALLOW_BACK is false consider not
4891 executable backedges as executable. */
4893 static bool
4894 dominated_by_p_w_unex (basic_block bb1, basic_block bb2, bool allow_back)
4896 edge_iterator ei;
4897 edge e;
4899 if (dominated_by_p (CDI_DOMINATORS, bb1, bb2))
4900 return true;
4902 /* Before iterating we'd like to know if there exists a
4903 (executable) path from bb2 to bb1 at all, if not we can
4904 directly return false. For now simply iterate once. */
4906 /* Iterate to the single executable bb1 predecessor. */
4907 if (EDGE_COUNT (bb1->preds) > 1)
4909 edge prede = NULL;
4910 FOR_EACH_EDGE (e, ei, bb1->preds)
4911 if ((e->flags & EDGE_EXECUTABLE)
4912 || (!allow_back && (e->flags & EDGE_DFS_BACK)))
4914 if (prede)
4916 prede = NULL;
4917 break;
4919 prede = e;
4921 if (prede)
4923 bb1 = prede->src;
4925 /* Re-do the dominance check with changed bb1. */
4926 if (dominated_by_p (CDI_DOMINATORS, bb1, bb2))
4927 return true;
4931 /* Iterate to the single executable bb2 successor. */
4932 if (EDGE_COUNT (bb2->succs) > 1)
4934 edge succe = NULL;
4935 FOR_EACH_EDGE (e, ei, bb2->succs)
4936 if ((e->flags & EDGE_EXECUTABLE)
4937 || (!allow_back && (e->flags & EDGE_DFS_BACK)))
4939 if (succe)
4941 succe = NULL;
4942 break;
4944 succe = e;
4946 if (succe)
4948 /* Verify the reached block is only reached through succe.
4949 If there is only one edge we can spare us the dominator
4950 check and iterate directly. */
4951 if (EDGE_COUNT (succe->dest->preds) > 1)
4953 FOR_EACH_EDGE (e, ei, succe->dest->preds)
4954 if (e != succe
4955 && ((e->flags & EDGE_EXECUTABLE)
4956 || (!allow_back && (e->flags & EDGE_DFS_BACK))))
4958 succe = NULL;
4959 break;
4962 if (succe)
4964 bb2 = succe->dest;
4966 /* Re-do the dominance check with changed bb2. */
4967 if (dominated_by_p (CDI_DOMINATORS, bb1, bb2))
4968 return true;
4973 /* We could now iterate updating bb1 / bb2. */
4974 return false;
4977 /* Set the value number of FROM to TO, return true if it has changed
4978 as a result. */
4980 static inline bool
4981 set_ssa_val_to (tree from, tree to)
4983 vn_ssa_aux_t from_info = VN_INFO (from);
4984 tree currval = from_info->valnum; // SSA_VAL (from)
4985 poly_int64 toff, coff;
4986 bool curr_undefined = false;
4987 bool curr_invariant = false;
4989 /* The only thing we allow as value numbers are ssa_names
4990 and invariants. So assert that here. We don't allow VN_TOP
4991 as visiting a stmt should produce a value-number other than
4992 that.
4993 ??? Still VN_TOP can happen for unreachable code, so force
4994 it to varying in that case. Not all code is prepared to
4995 get VN_TOP on valueization. */
4996 if (to == VN_TOP)
4998 /* ??? When iterating and visiting PHI <undef, backedge-value>
4999 for the first time we rightfully get VN_TOP and we need to
5000 preserve that to optimize for example gcc.dg/tree-ssa/ssa-sccvn-2.c.
5001 With SCCVN we were simply lucky we iterated the other PHI
5002 cycles first and thus visited the backedge-value DEF. */
5003 if (currval == VN_TOP)
5004 goto set_and_exit;
5005 if (dump_file && (dump_flags & TDF_DETAILS))
5006 fprintf (dump_file, "Forcing value number to varying on "
5007 "receiving VN_TOP\n");
5008 to = from;
5011 gcc_checking_assert (to != NULL_TREE
5012 && ((TREE_CODE (to) == SSA_NAME
5013 && (to == from || SSA_VAL (to) == to))
5014 || is_gimple_min_invariant (to)));
5016 if (from != to)
5018 if (currval == from)
5020 if (dump_file && (dump_flags & TDF_DETAILS))
5022 fprintf (dump_file, "Not changing value number of ");
5023 print_generic_expr (dump_file, from);
5024 fprintf (dump_file, " from VARYING to ");
5025 print_generic_expr (dump_file, to);
5026 fprintf (dump_file, "\n");
5028 return false;
5030 curr_invariant = is_gimple_min_invariant (currval);
5031 curr_undefined = (TREE_CODE (currval) == SSA_NAME
5032 && ssa_undefined_value_p (currval, false));
5033 if (currval != VN_TOP
5034 && !curr_invariant
5035 && !curr_undefined
5036 && is_gimple_min_invariant (to))
5038 if (dump_file && (dump_flags & TDF_DETAILS))
5040 fprintf (dump_file, "Forcing VARYING instead of changing "
5041 "value number of ");
5042 print_generic_expr (dump_file, from);
5043 fprintf (dump_file, " from ");
5044 print_generic_expr (dump_file, currval);
5045 fprintf (dump_file, " (non-constant) to ");
5046 print_generic_expr (dump_file, to);
5047 fprintf (dump_file, " (constant)\n");
5049 to = from;
5051 else if (currval != VN_TOP
5052 && !curr_undefined
5053 && TREE_CODE (to) == SSA_NAME
5054 && ssa_undefined_value_p (to, false))
5056 if (dump_file && (dump_flags & TDF_DETAILS))
5058 fprintf (dump_file, "Forcing VARYING instead of changing "
5059 "value number of ");
5060 print_generic_expr (dump_file, from);
5061 fprintf (dump_file, " from ");
5062 print_generic_expr (dump_file, currval);
5063 fprintf (dump_file, " (non-undefined) to ");
5064 print_generic_expr (dump_file, to);
5065 fprintf (dump_file, " (undefined)\n");
5067 to = from;
5069 else if (TREE_CODE (to) == SSA_NAME
5070 && SSA_NAME_OCCURS_IN_ABNORMAL_PHI (to))
5071 to = from;
5074 set_and_exit:
5075 if (dump_file && (dump_flags & TDF_DETAILS))
5077 fprintf (dump_file, "Setting value number of ");
5078 print_generic_expr (dump_file, from);
5079 fprintf (dump_file, " to ");
5080 print_generic_expr (dump_file, to);
5083 if (currval != to
5084 && !operand_equal_p (currval, to, 0)
5085 /* Different undefined SSA names are not actually different. See
5086 PR82320 for a testcase were we'd otherwise not terminate iteration. */
5087 && !(curr_undefined
5088 && TREE_CODE (to) == SSA_NAME
5089 && ssa_undefined_value_p (to, false))
5090 /* ??? For addresses involving volatile objects or types operand_equal_p
5091 does not reliably detect ADDR_EXPRs as equal. We know we are only
5092 getting invariant gimple addresses here, so can use
5093 get_addr_base_and_unit_offset to do this comparison. */
5094 && !(TREE_CODE (currval) == ADDR_EXPR
5095 && TREE_CODE (to) == ADDR_EXPR
5096 && (get_addr_base_and_unit_offset (TREE_OPERAND (currval, 0), &coff)
5097 == get_addr_base_and_unit_offset (TREE_OPERAND (to, 0), &toff))
5098 && known_eq (coff, toff)))
5100 if (to != from
5101 && currval != VN_TOP
5102 && !curr_undefined
5103 /* We do not want to allow lattice transitions from one value
5104 to another since that may lead to not terminating iteration
5105 (see PR95049). Since there's no convenient way to check
5106 for the allowed transition of VAL -> PHI (loop entry value,
5107 same on two PHIs, to same PHI result) we restrict the check
5108 to invariants. */
5109 && curr_invariant
5110 && is_gimple_min_invariant (to))
5112 if (dump_file && (dump_flags & TDF_DETAILS))
5113 fprintf (dump_file, " forced VARYING");
5114 to = from;
5116 if (dump_file && (dump_flags & TDF_DETAILS))
5117 fprintf (dump_file, " (changed)\n");
5118 from_info->valnum = to;
5119 return true;
5121 if (dump_file && (dump_flags & TDF_DETAILS))
5122 fprintf (dump_file, "\n");
5123 return false;
5126 /* Set all definitions in STMT to value number to themselves.
5127 Return true if a value number changed. */
5129 static bool
5130 defs_to_varying (gimple *stmt)
5132 bool changed = false;
5133 ssa_op_iter iter;
5134 def_operand_p defp;
5136 FOR_EACH_SSA_DEF_OPERAND (defp, stmt, iter, SSA_OP_ALL_DEFS)
5138 tree def = DEF_FROM_PTR (defp);
5139 changed |= set_ssa_val_to (def, def);
5141 return changed;
5144 /* Visit a copy between LHS and RHS, return true if the value number
5145 changed. */
5147 static bool
5148 visit_copy (tree lhs, tree rhs)
5150 /* Valueize. */
5151 rhs = SSA_VAL (rhs);
5153 return set_ssa_val_to (lhs, rhs);
5156 /* Lookup a value for OP in type WIDE_TYPE where the value in type of OP
5157 is the same. */
5159 static tree
5160 valueized_wider_op (tree wide_type, tree op, bool allow_truncate)
5162 if (TREE_CODE (op) == SSA_NAME)
5163 op = vn_valueize (op);
5165 /* Either we have the op widened available. */
5166 tree ops[3] = {};
5167 ops[0] = op;
5168 tree tem = vn_nary_op_lookup_pieces (1, NOP_EXPR,
5169 wide_type, ops, NULL);
5170 if (tem)
5171 return tem;
5173 /* Or the op is truncated from some existing value. */
5174 if (allow_truncate && TREE_CODE (op) == SSA_NAME)
5176 gimple *def = SSA_NAME_DEF_STMT (op);
5177 if (is_gimple_assign (def)
5178 && CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (def)))
5180 tem = gimple_assign_rhs1 (def);
5181 if (useless_type_conversion_p (wide_type, TREE_TYPE (tem)))
5183 if (TREE_CODE (tem) == SSA_NAME)
5184 tem = vn_valueize (tem);
5185 return tem;
5190 /* For constants simply extend it. */
5191 if (TREE_CODE (op) == INTEGER_CST)
5192 return wide_int_to_tree (wide_type, wi::to_widest (op));
5194 return NULL_TREE;
5197 /* Visit a nary operator RHS, value number it, and return true if the
5198 value number of LHS has changed as a result. */
5200 static bool
5201 visit_nary_op (tree lhs, gassign *stmt)
5203 vn_nary_op_t vnresult;
5204 tree result = vn_nary_op_lookup_stmt (stmt, &vnresult);
5205 if (! result && vnresult)
5206 result = vn_nary_op_get_predicated_value (vnresult, gimple_bb (stmt));
5207 if (result)
5208 return set_ssa_val_to (lhs, result);
5210 /* Do some special pattern matching for redundancies of operations
5211 in different types. */
5212 enum tree_code code = gimple_assign_rhs_code (stmt);
5213 tree type = TREE_TYPE (lhs);
5214 tree rhs1 = gimple_assign_rhs1 (stmt);
5215 switch (code)
5217 CASE_CONVERT:
5218 /* Match arithmetic done in a different type where we can easily
5219 substitute the result from some earlier sign-changed or widened
5220 operation. */
5221 if (INTEGRAL_TYPE_P (type)
5222 && TREE_CODE (rhs1) == SSA_NAME
5223 /* We only handle sign-changes, zero-extension -> & mask or
5224 sign-extension if we know the inner operation doesn't
5225 overflow. */
5226 && (((TYPE_UNSIGNED (TREE_TYPE (rhs1))
5227 || (INTEGRAL_TYPE_P (TREE_TYPE (rhs1))
5228 && TYPE_OVERFLOW_UNDEFINED (TREE_TYPE (rhs1))))
5229 && TYPE_PRECISION (type) > TYPE_PRECISION (TREE_TYPE (rhs1)))
5230 || TYPE_PRECISION (type) == TYPE_PRECISION (TREE_TYPE (rhs1))))
5232 gassign *def = dyn_cast <gassign *> (SSA_NAME_DEF_STMT (rhs1));
5233 if (def
5234 && (gimple_assign_rhs_code (def) == PLUS_EXPR
5235 || gimple_assign_rhs_code (def) == MINUS_EXPR
5236 || gimple_assign_rhs_code (def) == MULT_EXPR))
5238 tree ops[3] = {};
5239 /* When requiring a sign-extension we cannot model a
5240 previous truncation with a single op so don't bother. */
5241 bool allow_truncate = TYPE_UNSIGNED (TREE_TYPE (rhs1));
5242 /* Either we have the op widened available. */
5243 ops[0] = valueized_wider_op (type, gimple_assign_rhs1 (def),
5244 allow_truncate);
5245 if (ops[0])
5246 ops[1] = valueized_wider_op (type, gimple_assign_rhs2 (def),
5247 allow_truncate);
5248 if (ops[0] && ops[1])
5250 ops[0] = vn_nary_op_lookup_pieces
5251 (2, gimple_assign_rhs_code (def), type, ops, NULL);
5252 /* We have wider operation available. */
5253 if (ops[0]
5254 /* If the leader is a wrapping operation we can
5255 insert it for code hoisting w/o introducing
5256 undefined overflow. If it is not it has to
5257 be available. See PR86554. */
5258 && (TYPE_OVERFLOW_WRAPS (TREE_TYPE (ops[0]))
5259 || (rpo_avail && vn_context_bb
5260 && rpo_avail->eliminate_avail (vn_context_bb,
5261 ops[0]))))
5263 unsigned lhs_prec = TYPE_PRECISION (type);
5264 unsigned rhs_prec = TYPE_PRECISION (TREE_TYPE (rhs1));
5265 if (lhs_prec == rhs_prec
5266 || (INTEGRAL_TYPE_P (TREE_TYPE (rhs1))
5267 && TYPE_OVERFLOW_UNDEFINED (TREE_TYPE (rhs1))))
5269 gimple_match_op match_op (gimple_match_cond::UNCOND,
5270 NOP_EXPR, type, ops[0]);
5271 result = vn_nary_build_or_lookup (&match_op);
5272 if (result)
5274 bool changed = set_ssa_val_to (lhs, result);
5275 vn_nary_op_insert_stmt (stmt, result);
5276 return changed;
5279 else
5281 tree mask = wide_int_to_tree
5282 (type, wi::mask (rhs_prec, false, lhs_prec));
5283 gimple_match_op match_op (gimple_match_cond::UNCOND,
5284 BIT_AND_EXPR,
5285 TREE_TYPE (lhs),
5286 ops[0], mask);
5287 result = vn_nary_build_or_lookup (&match_op);
5288 if (result)
5290 bool changed = set_ssa_val_to (lhs, result);
5291 vn_nary_op_insert_stmt (stmt, result);
5292 return changed;
5299 break;
5300 case BIT_AND_EXPR:
5301 if (INTEGRAL_TYPE_P (type)
5302 && TREE_CODE (rhs1) == SSA_NAME
5303 && TREE_CODE (gimple_assign_rhs2 (stmt)) == INTEGER_CST
5304 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (rhs1)
5305 && default_vn_walk_kind != VN_NOWALK
5306 && CHAR_BIT == 8
5307 && BITS_PER_UNIT == 8
5308 && BYTES_BIG_ENDIAN == WORDS_BIG_ENDIAN
5309 && !integer_all_onesp (gimple_assign_rhs2 (stmt))
5310 && !integer_zerop (gimple_assign_rhs2 (stmt)))
5312 gassign *ass = dyn_cast <gassign *> (SSA_NAME_DEF_STMT (rhs1));
5313 if (ass
5314 && !gimple_has_volatile_ops (ass)
5315 && vn_get_stmt_kind (ass) == VN_REFERENCE)
5317 tree last_vuse = gimple_vuse (ass);
5318 tree op = gimple_assign_rhs1 (ass);
5319 tree result = vn_reference_lookup (op, gimple_vuse (ass),
5320 default_vn_walk_kind,
5321 NULL, true, &last_vuse,
5322 gimple_assign_rhs2 (stmt));
5323 if (result
5324 && useless_type_conversion_p (TREE_TYPE (result),
5325 TREE_TYPE (op)))
5326 return set_ssa_val_to (lhs, result);
5329 break;
5330 case TRUNC_DIV_EXPR:
5331 if (TYPE_UNSIGNED (type))
5332 break;
5333 /* Fallthru. */
5334 case RDIV_EXPR:
5335 case MULT_EXPR:
5336 /* Match up ([-]a){/,*}([-])b with v=a{/,*}b, replacing it with -v. */
5337 if (! HONOR_SIGN_DEPENDENT_ROUNDING (type))
5339 tree rhs[2];
5340 rhs[0] = rhs1;
5341 rhs[1] = gimple_assign_rhs2 (stmt);
5342 for (unsigned i = 0; i <= 1; ++i)
5344 unsigned j = i == 0 ? 1 : 0;
5345 tree ops[2];
5346 gimple_match_op match_op (gimple_match_cond::UNCOND,
5347 NEGATE_EXPR, type, rhs[i]);
5348 ops[i] = vn_nary_build_or_lookup_1 (&match_op, false, true);
5349 ops[j] = rhs[j];
5350 if (ops[i]
5351 && (ops[0] = vn_nary_op_lookup_pieces (2, code,
5352 type, ops, NULL)))
5354 gimple_match_op match_op (gimple_match_cond::UNCOND,
5355 NEGATE_EXPR, type, ops[0]);
5356 result = vn_nary_build_or_lookup_1 (&match_op, true, false);
5357 if (result)
5359 bool changed = set_ssa_val_to (lhs, result);
5360 vn_nary_op_insert_stmt (stmt, result);
5361 return changed;
5366 break;
5367 default:
5368 break;
5371 bool changed = set_ssa_val_to (lhs, lhs);
5372 vn_nary_op_insert_stmt (stmt, lhs);
5373 return changed;
5376 /* Visit a call STMT storing into LHS. Return true if the value number
5377 of the LHS has changed as a result. */
5379 static bool
5380 visit_reference_op_call (tree lhs, gcall *stmt)
5382 bool changed = false;
5383 struct vn_reference_s vr1;
5384 vn_reference_t vnresult = NULL;
5385 tree vdef = gimple_vdef (stmt);
5386 modref_summary *summary;
5388 /* Non-ssa lhs is handled in copy_reference_ops_from_call. */
5389 if (lhs && TREE_CODE (lhs) != SSA_NAME)
5390 lhs = NULL_TREE;
5392 vn_reference_lookup_call (stmt, &vnresult, &vr1);
5394 /* If the lookup did not succeed for pure functions try to use
5395 modref info to find a candidate to CSE to. */
5396 const unsigned accesses_limit = 8;
5397 if (!vnresult
5398 && !vdef
5399 && lhs
5400 && gimple_vuse (stmt)
5401 && (((summary = get_modref_function_summary (stmt, NULL))
5402 && !summary->global_memory_read
5403 && summary->load_accesses < accesses_limit)
5404 || gimple_call_flags (stmt) & ECF_CONST))
5406 /* First search if we can do someting useful and build a
5407 vector of all loads we have to check. */
5408 bool unknown_memory_access = false;
5409 auto_vec<ao_ref, accesses_limit> accesses;
5410 unsigned load_accesses = summary ? summary->load_accesses : 0;
5411 if (!unknown_memory_access)
5412 /* Add loads done as part of setting up the call arguments.
5413 That's also necessary for CONST functions which will
5414 not have a modref summary. */
5415 for (unsigned i = 0; i < gimple_call_num_args (stmt); ++i)
5417 tree arg = gimple_call_arg (stmt, i);
5418 if (TREE_CODE (arg) != SSA_NAME
5419 && !is_gimple_min_invariant (arg))
5421 if (accesses.length () >= accesses_limit - load_accesses)
5423 unknown_memory_access = true;
5424 break;
5426 accesses.quick_grow (accesses.length () + 1);
5427 ao_ref_init (&accesses.last (), arg);
5430 if (summary && !unknown_memory_access)
5432 /* Add loads as analyzed by IPA modref. */
5433 for (auto base_node : summary->loads->bases)
5434 if (unknown_memory_access)
5435 break;
5436 else for (auto ref_node : base_node->refs)
5437 if (unknown_memory_access)
5438 break;
5439 else for (auto access_node : ref_node->accesses)
5441 accesses.quick_grow (accesses.length () + 1);
5442 ao_ref *r = &accesses.last ();
5443 if (!access_node.get_ao_ref (stmt, r))
5445 /* Initialize a ref based on the argument and
5446 unknown offset if possible. */
5447 tree arg = access_node.get_call_arg (stmt);
5448 if (arg && TREE_CODE (arg) == SSA_NAME)
5449 arg = SSA_VAL (arg);
5450 if (arg
5451 && TREE_CODE (arg) == ADDR_EXPR
5452 && (arg = get_base_address (arg))
5453 && DECL_P (arg))
5455 ao_ref_init (r, arg);
5456 r->ref = NULL_TREE;
5457 r->base = arg;
5459 else
5461 unknown_memory_access = true;
5462 break;
5465 r->base_alias_set = base_node->base;
5466 r->ref_alias_set = ref_node->ref;
5470 /* Walk the VUSE->VDEF chain optimistically trying to find an entry
5471 for the call in the hashtable. */
5472 unsigned limit = (unknown_memory_access
5474 : (param_sccvn_max_alias_queries_per_access
5475 / (accesses.length () + 1)));
5476 tree saved_vuse = vr1.vuse;
5477 hashval_t saved_hashcode = vr1.hashcode;
5478 while (limit > 0 && !vnresult && !SSA_NAME_IS_DEFAULT_DEF (vr1.vuse))
5480 vr1.hashcode = vr1.hashcode - SSA_NAME_VERSION (vr1.vuse);
5481 gimple *def = SSA_NAME_DEF_STMT (vr1.vuse);
5482 /* ??? We could use fancy stuff like in walk_non_aliased_vuses, but
5483 do not bother for now. */
5484 if (is_a <gphi *> (def))
5485 break;
5486 vr1.vuse = vuse_ssa_val (gimple_vuse (def));
5487 vr1.hashcode = vr1.hashcode + SSA_NAME_VERSION (vr1.vuse);
5488 vn_reference_lookup_1 (&vr1, &vnresult);
5489 limit--;
5492 /* If we found a candidate to CSE to verify it is valid. */
5493 if (vnresult && !accesses.is_empty ())
5495 tree vuse = vuse_ssa_val (gimple_vuse (stmt));
5496 while (vnresult && vuse != vr1.vuse)
5498 gimple *def = SSA_NAME_DEF_STMT (vuse);
5499 for (auto &ref : accesses)
5501 /* ??? stmt_may_clobber_ref_p_1 does per stmt constant
5502 analysis overhead that we might be able to cache. */
5503 if (stmt_may_clobber_ref_p_1 (def, &ref, true))
5505 vnresult = NULL;
5506 break;
5509 vuse = vuse_ssa_val (gimple_vuse (def));
5512 vr1.vuse = saved_vuse;
5513 vr1.hashcode = saved_hashcode;
5516 if (vnresult)
5518 if (vdef)
5520 if (vnresult->result_vdef)
5521 changed |= set_ssa_val_to (vdef, vnresult->result_vdef);
5522 else if (!lhs && gimple_call_lhs (stmt))
5523 /* If stmt has non-SSA_NAME lhs, value number the vdef to itself,
5524 as the call still acts as a lhs store. */
5525 changed |= set_ssa_val_to (vdef, vdef);
5526 else
5527 /* If the call was discovered to be pure or const reflect
5528 that as far as possible. */
5529 changed |= set_ssa_val_to (vdef,
5530 vuse_ssa_val (gimple_vuse (stmt)));
5533 if (!vnresult->result && lhs)
5534 vnresult->result = lhs;
5536 if (vnresult->result && lhs)
5537 changed |= set_ssa_val_to (lhs, vnresult->result);
5539 else
5541 vn_reference_t vr2;
5542 vn_reference_s **slot;
5543 tree vdef_val = vdef;
5544 if (vdef)
5546 /* If we value numbered an indirect functions function to
5547 one not clobbering memory value number its VDEF to its
5548 VUSE. */
5549 tree fn = gimple_call_fn (stmt);
5550 if (fn && TREE_CODE (fn) == SSA_NAME)
5552 fn = SSA_VAL (fn);
5553 if (TREE_CODE (fn) == ADDR_EXPR
5554 && TREE_CODE (TREE_OPERAND (fn, 0)) == FUNCTION_DECL
5555 && (flags_from_decl_or_type (TREE_OPERAND (fn, 0))
5556 & (ECF_CONST | ECF_PURE))
5557 /* If stmt has non-SSA_NAME lhs, value number the
5558 vdef to itself, as the call still acts as a lhs
5559 store. */
5560 && (lhs || gimple_call_lhs (stmt) == NULL_TREE))
5561 vdef_val = vuse_ssa_val (gimple_vuse (stmt));
5563 changed |= set_ssa_val_to (vdef, vdef_val);
5565 if (lhs)
5566 changed |= set_ssa_val_to (lhs, lhs);
5567 vr2 = XOBNEW (&vn_tables_obstack, vn_reference_s);
5568 vr2->vuse = vr1.vuse;
5569 /* As we are not walking the virtual operand chain we know the
5570 shared_lookup_references are still original so we can re-use
5571 them here. */
5572 vr2->operands = vr1.operands.copy ();
5573 vr2->type = vr1.type;
5574 vr2->punned = vr1.punned;
5575 vr2->set = vr1.set;
5576 vr2->base_set = vr1.base_set;
5577 vr2->hashcode = vr1.hashcode;
5578 vr2->result = lhs;
5579 vr2->result_vdef = vdef_val;
5580 vr2->value_id = 0;
5581 slot = valid_info->references->find_slot_with_hash (vr2, vr2->hashcode,
5582 INSERT);
5583 gcc_assert (!*slot);
5584 *slot = vr2;
5585 vr2->next = last_inserted_ref;
5586 last_inserted_ref = vr2;
5589 return changed;
5592 /* Visit a load from a reference operator RHS, part of STMT, value number it,
5593 and return true if the value number of the LHS has changed as a result. */
5595 static bool
5596 visit_reference_op_load (tree lhs, tree op, gimple *stmt)
5598 bool changed = false;
5599 tree result;
5600 vn_reference_t res;
5602 tree vuse = gimple_vuse (stmt);
5603 tree last_vuse = vuse;
5604 result = vn_reference_lookup (op, vuse, default_vn_walk_kind, &res, true, &last_vuse);
5606 /* We handle type-punning through unions by value-numbering based
5607 on offset and size of the access. Be prepared to handle a
5608 type-mismatch here via creating a VIEW_CONVERT_EXPR. */
5609 if (result
5610 && !useless_type_conversion_p (TREE_TYPE (result), TREE_TYPE (op)))
5612 /* Avoid the type punning in case the result mode has padding where
5613 the op we lookup has not. */
5614 if (maybe_lt (GET_MODE_PRECISION (TYPE_MODE (TREE_TYPE (result))),
5615 GET_MODE_PRECISION (TYPE_MODE (TREE_TYPE (op)))))
5616 result = NULL_TREE;
5617 else
5619 /* We will be setting the value number of lhs to the value number
5620 of VIEW_CONVERT_EXPR <TREE_TYPE (result)> (result).
5621 So first simplify and lookup this expression to see if it
5622 is already available. */
5623 gimple_match_op res_op (gimple_match_cond::UNCOND,
5624 VIEW_CONVERT_EXPR, TREE_TYPE (op), result);
5625 result = vn_nary_build_or_lookup (&res_op);
5626 if (result
5627 && TREE_CODE (result) == SSA_NAME
5628 && VN_INFO (result)->needs_insertion)
5629 /* Track whether this is the canonical expression for different
5630 typed loads. We use that as a stopgap measure for code
5631 hoisting when dealing with floating point loads. */
5632 res->punned = true;
5635 /* When building the conversion fails avoid inserting the reference
5636 again. */
5637 if (!result)
5638 return set_ssa_val_to (lhs, lhs);
5641 if (result)
5642 changed = set_ssa_val_to (lhs, result);
5643 else
5645 changed = set_ssa_val_to (lhs, lhs);
5646 vn_reference_insert (op, lhs, last_vuse, NULL_TREE);
5647 if (vuse && SSA_VAL (last_vuse) != SSA_VAL (vuse))
5649 if (dump_file && (dump_flags & TDF_DETAILS))
5651 fprintf (dump_file, "Using extra use virtual operand ");
5652 print_generic_expr (dump_file, last_vuse);
5653 fprintf (dump_file, "\n");
5655 vn_reference_insert (op, lhs, vuse, NULL_TREE);
5659 return changed;
5663 /* Visit a store to a reference operator LHS, part of STMT, value number it,
5664 and return true if the value number of the LHS has changed as a result. */
5666 static bool
5667 visit_reference_op_store (tree lhs, tree op, gimple *stmt)
5669 bool changed = false;
5670 vn_reference_t vnresult = NULL;
5671 tree assign;
5672 bool resultsame = false;
5673 tree vuse = gimple_vuse (stmt);
5674 tree vdef = gimple_vdef (stmt);
5676 if (TREE_CODE (op) == SSA_NAME)
5677 op = SSA_VAL (op);
5679 /* First we want to lookup using the *vuses* from the store and see
5680 if there the last store to this location with the same address
5681 had the same value.
5683 The vuses represent the memory state before the store. If the
5684 memory state, address, and value of the store is the same as the
5685 last store to this location, then this store will produce the
5686 same memory state as that store.
5688 In this case the vdef versions for this store are value numbered to those
5689 vuse versions, since they represent the same memory state after
5690 this store.
5692 Otherwise, the vdefs for the store are used when inserting into
5693 the table, since the store generates a new memory state. */
5695 vn_reference_lookup (lhs, vuse, VN_NOWALK, &vnresult, false);
5696 if (vnresult
5697 && vnresult->result)
5699 tree result = vnresult->result;
5700 gcc_checking_assert (TREE_CODE (result) != SSA_NAME
5701 || result == SSA_VAL (result));
5702 resultsame = expressions_equal_p (result, op);
5703 if (resultsame)
5705 /* If the TBAA state isn't compatible for downstream reads
5706 we cannot value-number the VDEFs the same. */
5707 ao_ref lhs_ref;
5708 ao_ref_init (&lhs_ref, lhs);
5709 alias_set_type set = ao_ref_alias_set (&lhs_ref);
5710 alias_set_type base_set = ao_ref_base_alias_set (&lhs_ref);
5711 if ((vnresult->set != set
5712 && ! alias_set_subset_of (set, vnresult->set))
5713 || (vnresult->base_set != base_set
5714 && ! alias_set_subset_of (base_set, vnresult->base_set)))
5715 resultsame = false;
5719 if (!resultsame)
5721 if (dump_file && (dump_flags & TDF_DETAILS))
5723 fprintf (dump_file, "No store match\n");
5724 fprintf (dump_file, "Value numbering store ");
5725 print_generic_expr (dump_file, lhs);
5726 fprintf (dump_file, " to ");
5727 print_generic_expr (dump_file, op);
5728 fprintf (dump_file, "\n");
5730 /* Have to set value numbers before insert, since insert is
5731 going to valueize the references in-place. */
5732 if (vdef)
5733 changed |= set_ssa_val_to (vdef, vdef);
5735 /* Do not insert structure copies into the tables. */
5736 if (is_gimple_min_invariant (op)
5737 || is_gimple_reg (op))
5738 vn_reference_insert (lhs, op, vdef, NULL);
5740 /* Only perform the following when being called from PRE
5741 which embeds tail merging. */
5742 if (default_vn_walk_kind == VN_WALK)
5744 assign = build2 (MODIFY_EXPR, TREE_TYPE (lhs), lhs, op);
5745 vn_reference_lookup (assign, vuse, VN_NOWALK, &vnresult, false);
5746 if (!vnresult)
5747 vn_reference_insert (assign, lhs, vuse, vdef);
5750 else
5752 /* We had a match, so value number the vdef to have the value
5753 number of the vuse it came from. */
5755 if (dump_file && (dump_flags & TDF_DETAILS))
5756 fprintf (dump_file, "Store matched earlier value, "
5757 "value numbering store vdefs to matching vuses.\n");
5759 changed |= set_ssa_val_to (vdef, SSA_VAL (vuse));
5762 return changed;
5765 /* Visit and value number PHI, return true if the value number
5766 changed. When BACKEDGES_VARYING_P is true then assume all
5767 backedge values are varying. When INSERTED is not NULL then
5768 this is just a ahead query for a possible iteration, set INSERTED
5769 to true if we'd insert into the hashtable. */
5771 static bool
5772 visit_phi (gimple *phi, bool *inserted, bool backedges_varying_p)
5774 tree result, sameval = VN_TOP, seen_undef = NULL_TREE;
5775 tree backedge_val = NULL_TREE;
5776 bool seen_non_backedge = false;
5777 tree sameval_base = NULL_TREE;
5778 poly_int64 soff, doff;
5779 unsigned n_executable = 0;
5780 edge_iterator ei;
5781 edge e;
5783 /* TODO: We could check for this in initialization, and replace this
5784 with a gcc_assert. */
5785 if (SSA_NAME_OCCURS_IN_ABNORMAL_PHI (PHI_RESULT (phi)))
5786 return set_ssa_val_to (PHI_RESULT (phi), PHI_RESULT (phi));
5788 /* We track whether a PHI was CSEd to to avoid excessive iterations
5789 that would be necessary only because the PHI changed arguments
5790 but not value. */
5791 if (!inserted)
5792 gimple_set_plf (phi, GF_PLF_1, false);
5794 /* See if all non-TOP arguments have the same value. TOP is
5795 equivalent to everything, so we can ignore it. */
5796 FOR_EACH_EDGE (e, ei, gimple_bb (phi)->preds)
5797 if (e->flags & EDGE_EXECUTABLE)
5799 tree def = PHI_ARG_DEF_FROM_EDGE (phi, e);
5801 if (def == PHI_RESULT (phi))
5802 continue;
5803 ++n_executable;
5804 if (TREE_CODE (def) == SSA_NAME)
5806 if (!backedges_varying_p || !(e->flags & EDGE_DFS_BACK))
5807 def = SSA_VAL (def);
5808 if (e->flags & EDGE_DFS_BACK)
5809 backedge_val = def;
5811 if (!(e->flags & EDGE_DFS_BACK))
5812 seen_non_backedge = true;
5813 if (def == VN_TOP)
5815 /* Ignore undefined defs for sameval but record one. */
5816 else if (TREE_CODE (def) == SSA_NAME
5817 && ! virtual_operand_p (def)
5818 && ssa_undefined_value_p (def, false))
5819 seen_undef = def;
5820 else if (sameval == VN_TOP)
5821 sameval = def;
5822 else if (!expressions_equal_p (def, sameval))
5824 /* We know we're arriving only with invariant addresses here,
5825 try harder comparing them. We can do some caching here
5826 which we cannot do in expressions_equal_p. */
5827 if (TREE_CODE (def) == ADDR_EXPR
5828 && TREE_CODE (sameval) == ADDR_EXPR
5829 && sameval_base != (void *)-1)
5831 if (!sameval_base)
5832 sameval_base = get_addr_base_and_unit_offset
5833 (TREE_OPERAND (sameval, 0), &soff);
5834 if (!sameval_base)
5835 sameval_base = (tree)(void *)-1;
5836 else if ((get_addr_base_and_unit_offset
5837 (TREE_OPERAND (def, 0), &doff) == sameval_base)
5838 && known_eq (soff, doff))
5839 continue;
5841 sameval = NULL_TREE;
5842 break;
5846 /* If the value we want to use is flowing over the backedge and we
5847 should take it as VARYING but it has a non-VARYING value drop to
5848 VARYING.
5849 If we value-number a virtual operand never value-number to the
5850 value from the backedge as that confuses the alias-walking code.
5851 See gcc.dg/torture/pr87176.c. If the value is the same on a
5852 non-backedge everything is OK though. */
5853 bool visited_p;
5854 if ((backedge_val
5855 && !seen_non_backedge
5856 && TREE_CODE (backedge_val) == SSA_NAME
5857 && sameval == backedge_val
5858 && (SSA_NAME_IS_VIRTUAL_OPERAND (backedge_val)
5859 || SSA_VAL (backedge_val) != backedge_val))
5860 /* Do not value-number a virtual operand to sth not visited though
5861 given that allows us to escape a region in alias walking. */
5862 || (sameval
5863 && TREE_CODE (sameval) == SSA_NAME
5864 && !SSA_NAME_IS_DEFAULT_DEF (sameval)
5865 && SSA_NAME_IS_VIRTUAL_OPERAND (sameval)
5866 && (SSA_VAL (sameval, &visited_p), !visited_p)))
5867 /* Note this just drops to VARYING without inserting the PHI into
5868 the hashes. */
5869 result = PHI_RESULT (phi);
5870 /* If none of the edges was executable keep the value-number at VN_TOP,
5871 if only a single edge is exectuable use its value. */
5872 else if (n_executable <= 1)
5873 result = seen_undef ? seen_undef : sameval;
5874 /* If we saw only undefined values and VN_TOP use one of the
5875 undefined values. */
5876 else if (sameval == VN_TOP)
5877 result = seen_undef ? seen_undef : sameval;
5878 /* First see if it is equivalent to a phi node in this block. We prefer
5879 this as it allows IV elimination - see PRs 66502 and 67167. */
5880 else if ((result = vn_phi_lookup (phi, backedges_varying_p)))
5882 if (!inserted
5883 && TREE_CODE (result) == SSA_NAME
5884 && gimple_code (SSA_NAME_DEF_STMT (result)) == GIMPLE_PHI)
5886 gimple_set_plf (SSA_NAME_DEF_STMT (result), GF_PLF_1, true);
5887 if (dump_file && (dump_flags & TDF_DETAILS))
5889 fprintf (dump_file, "Marking CSEd to PHI node ");
5890 print_gimple_expr (dump_file, SSA_NAME_DEF_STMT (result),
5891 0, TDF_SLIM);
5892 fprintf (dump_file, "\n");
5896 /* If all values are the same use that, unless we've seen undefined
5897 values as well and the value isn't constant.
5898 CCP/copyprop have the same restriction to not remove uninit warnings. */
5899 else if (sameval
5900 && (! seen_undef || is_gimple_min_invariant (sameval)))
5901 result = sameval;
5902 else
5904 result = PHI_RESULT (phi);
5905 /* Only insert PHIs that are varying, for constant value numbers
5906 we mess up equivalences otherwise as we are only comparing
5907 the immediate controlling predicates. */
5908 vn_phi_insert (phi, result, backedges_varying_p);
5909 if (inserted)
5910 *inserted = true;
5913 return set_ssa_val_to (PHI_RESULT (phi), result);
5916 /* Try to simplify RHS using equivalences and constant folding. */
5918 static tree
5919 try_to_simplify (gassign *stmt)
5921 enum tree_code code = gimple_assign_rhs_code (stmt);
5922 tree tem;
5924 /* For stores we can end up simplifying a SSA_NAME rhs. Just return
5925 in this case, there is no point in doing extra work. */
5926 if (code == SSA_NAME)
5927 return NULL_TREE;
5929 /* First try constant folding based on our current lattice. */
5930 mprts_hook = vn_lookup_simplify_result;
5931 tem = gimple_fold_stmt_to_constant_1 (stmt, vn_valueize, vn_valueize);
5932 mprts_hook = NULL;
5933 if (tem
5934 && (TREE_CODE (tem) == SSA_NAME
5935 || is_gimple_min_invariant (tem)))
5936 return tem;
5938 return NULL_TREE;
5941 /* Visit and value number STMT, return true if the value number
5942 changed. */
5944 static bool
5945 visit_stmt (gimple *stmt, bool backedges_varying_p = false)
5947 bool changed = false;
5949 if (dump_file && (dump_flags & TDF_DETAILS))
5951 fprintf (dump_file, "Value numbering stmt = ");
5952 print_gimple_stmt (dump_file, stmt, 0);
5955 if (gimple_code (stmt) == GIMPLE_PHI)
5956 changed = visit_phi (stmt, NULL, backedges_varying_p);
5957 else if (gimple_has_volatile_ops (stmt))
5958 changed = defs_to_varying (stmt);
5959 else if (gassign *ass = dyn_cast <gassign *> (stmt))
5961 enum tree_code code = gimple_assign_rhs_code (ass);
5962 tree lhs = gimple_assign_lhs (ass);
5963 tree rhs1 = gimple_assign_rhs1 (ass);
5964 tree simplified;
5966 /* Shortcut for copies. Simplifying copies is pointless,
5967 since we copy the expression and value they represent. */
5968 if (code == SSA_NAME
5969 && TREE_CODE (lhs) == SSA_NAME)
5971 changed = visit_copy (lhs, rhs1);
5972 goto done;
5974 simplified = try_to_simplify (ass);
5975 if (simplified)
5977 if (dump_file && (dump_flags & TDF_DETAILS))
5979 fprintf (dump_file, "RHS ");
5980 print_gimple_expr (dump_file, ass, 0);
5981 fprintf (dump_file, " simplified to ");
5982 print_generic_expr (dump_file, simplified);
5983 fprintf (dump_file, "\n");
5986 /* Setting value numbers to constants will occasionally
5987 screw up phi congruence because constants are not
5988 uniquely associated with a single ssa name that can be
5989 looked up. */
5990 if (simplified
5991 && is_gimple_min_invariant (simplified)
5992 && TREE_CODE (lhs) == SSA_NAME)
5994 changed = set_ssa_val_to (lhs, simplified);
5995 goto done;
5997 else if (simplified
5998 && TREE_CODE (simplified) == SSA_NAME
5999 && TREE_CODE (lhs) == SSA_NAME)
6001 changed = visit_copy (lhs, simplified);
6002 goto done;
6005 if ((TREE_CODE (lhs) == SSA_NAME
6006 /* We can substitute SSA_NAMEs that are live over
6007 abnormal edges with their constant value. */
6008 && !(gimple_assign_copy_p (ass)
6009 && is_gimple_min_invariant (rhs1))
6010 && !(simplified
6011 && is_gimple_min_invariant (simplified))
6012 && SSA_NAME_OCCURS_IN_ABNORMAL_PHI (lhs))
6013 /* Stores or copies from SSA_NAMEs that are live over
6014 abnormal edges are a problem. */
6015 || (code == SSA_NAME
6016 && SSA_NAME_OCCURS_IN_ABNORMAL_PHI (rhs1)))
6017 changed = defs_to_varying (ass);
6018 else if (REFERENCE_CLASS_P (lhs)
6019 || DECL_P (lhs))
6020 changed = visit_reference_op_store (lhs, rhs1, ass);
6021 else if (TREE_CODE (lhs) == SSA_NAME)
6023 if ((gimple_assign_copy_p (ass)
6024 && is_gimple_min_invariant (rhs1))
6025 || (simplified
6026 && is_gimple_min_invariant (simplified)))
6028 if (simplified)
6029 changed = set_ssa_val_to (lhs, simplified);
6030 else
6031 changed = set_ssa_val_to (lhs, rhs1);
6033 else
6035 /* Visit the original statement. */
6036 switch (vn_get_stmt_kind (ass))
6038 case VN_NARY:
6039 changed = visit_nary_op (lhs, ass);
6040 break;
6041 case VN_REFERENCE:
6042 changed = visit_reference_op_load (lhs, rhs1, ass);
6043 break;
6044 default:
6045 changed = defs_to_varying (ass);
6046 break;
6050 else
6051 changed = defs_to_varying (ass);
6053 else if (gcall *call_stmt = dyn_cast <gcall *> (stmt))
6055 tree lhs = gimple_call_lhs (call_stmt);
6056 if (lhs && TREE_CODE (lhs) == SSA_NAME)
6058 /* Try constant folding based on our current lattice. */
6059 tree simplified = gimple_fold_stmt_to_constant_1 (call_stmt,
6060 vn_valueize);
6061 if (simplified)
6063 if (dump_file && (dump_flags & TDF_DETAILS))
6065 fprintf (dump_file, "call ");
6066 print_gimple_expr (dump_file, call_stmt, 0);
6067 fprintf (dump_file, " simplified to ");
6068 print_generic_expr (dump_file, simplified);
6069 fprintf (dump_file, "\n");
6072 /* Setting value numbers to constants will occasionally
6073 screw up phi congruence because constants are not
6074 uniquely associated with a single ssa name that can be
6075 looked up. */
6076 if (simplified
6077 && is_gimple_min_invariant (simplified))
6079 changed = set_ssa_val_to (lhs, simplified);
6080 if (gimple_vdef (call_stmt))
6081 changed |= set_ssa_val_to (gimple_vdef (call_stmt),
6082 SSA_VAL (gimple_vuse (call_stmt)));
6083 goto done;
6085 else if (simplified
6086 && TREE_CODE (simplified) == SSA_NAME)
6088 changed = visit_copy (lhs, simplified);
6089 if (gimple_vdef (call_stmt))
6090 changed |= set_ssa_val_to (gimple_vdef (call_stmt),
6091 SSA_VAL (gimple_vuse (call_stmt)));
6092 goto done;
6094 else if (SSA_NAME_OCCURS_IN_ABNORMAL_PHI (lhs))
6096 changed = defs_to_varying (call_stmt);
6097 goto done;
6101 /* Pick up flags from a devirtualization target. */
6102 tree fn = gimple_call_fn (stmt);
6103 int extra_fnflags = 0;
6104 if (fn && TREE_CODE (fn) == SSA_NAME)
6106 fn = SSA_VAL (fn);
6107 if (TREE_CODE (fn) == ADDR_EXPR
6108 && TREE_CODE (TREE_OPERAND (fn, 0)) == FUNCTION_DECL)
6109 extra_fnflags = flags_from_decl_or_type (TREE_OPERAND (fn, 0));
6111 if ((/* Calls to the same function with the same vuse
6112 and the same operands do not necessarily return the same
6113 value, unless they're pure or const. */
6114 ((gimple_call_flags (call_stmt) | extra_fnflags)
6115 & (ECF_PURE | ECF_CONST))
6116 /* If calls have a vdef, subsequent calls won't have
6117 the same incoming vuse. So, if 2 calls with vdef have the
6118 same vuse, we know they're not subsequent.
6119 We can value number 2 calls to the same function with the
6120 same vuse and the same operands which are not subsequent
6121 the same, because there is no code in the program that can
6122 compare the 2 values... */
6123 || (gimple_vdef (call_stmt)
6124 /* ... unless the call returns a pointer which does
6125 not alias with anything else. In which case the
6126 information that the values are distinct are encoded
6127 in the IL. */
6128 && !(gimple_call_return_flags (call_stmt) & ERF_NOALIAS)
6129 /* Only perform the following when being called from PRE
6130 which embeds tail merging. */
6131 && default_vn_walk_kind == VN_WALK))
6132 /* Do not process .DEFERRED_INIT since that confuses uninit
6133 analysis. */
6134 && !gimple_call_internal_p (call_stmt, IFN_DEFERRED_INIT))
6135 changed = visit_reference_op_call (lhs, call_stmt);
6136 else
6137 changed = defs_to_varying (call_stmt);
6139 else
6140 changed = defs_to_varying (stmt);
6141 done:
6142 return changed;
6146 /* Allocate a value number table. */
6148 static void
6149 allocate_vn_table (vn_tables_t table, unsigned size)
6151 table->phis = new vn_phi_table_type (size);
6152 table->nary = new vn_nary_op_table_type (size);
6153 table->references = new vn_reference_table_type (size);
6156 /* Free a value number table. */
6158 static void
6159 free_vn_table (vn_tables_t table)
6161 /* Walk over elements and release vectors. */
6162 vn_reference_iterator_type hir;
6163 vn_reference_t vr;
6164 FOR_EACH_HASH_TABLE_ELEMENT (*table->references, vr, vn_reference_t, hir)
6165 vr->operands.release ();
6166 delete table->phis;
6167 table->phis = NULL;
6168 delete table->nary;
6169 table->nary = NULL;
6170 delete table->references;
6171 table->references = NULL;
6174 /* Set *ID according to RESULT. */
6176 static void
6177 set_value_id_for_result (tree result, unsigned int *id)
6179 if (result && TREE_CODE (result) == SSA_NAME)
6180 *id = VN_INFO (result)->value_id;
6181 else if (result && is_gimple_min_invariant (result))
6182 *id = get_or_alloc_constant_value_id (result);
6183 else
6184 *id = get_next_value_id ();
6187 /* Set the value ids in the valid hash tables. */
6189 static void
6190 set_hashtable_value_ids (void)
6192 vn_nary_op_iterator_type hin;
6193 vn_phi_iterator_type hip;
6194 vn_reference_iterator_type hir;
6195 vn_nary_op_t vno;
6196 vn_reference_t vr;
6197 vn_phi_t vp;
6199 /* Now set the value ids of the things we had put in the hash
6200 table. */
6202 FOR_EACH_HASH_TABLE_ELEMENT (*valid_info->nary, vno, vn_nary_op_t, hin)
6203 if (! vno->predicated_values)
6204 set_value_id_for_result (vno->u.result, &vno->value_id);
6206 FOR_EACH_HASH_TABLE_ELEMENT (*valid_info->phis, vp, vn_phi_t, hip)
6207 set_value_id_for_result (vp->result, &vp->value_id);
6209 FOR_EACH_HASH_TABLE_ELEMENT (*valid_info->references, vr, vn_reference_t,
6210 hir)
6211 set_value_id_for_result (vr->result, &vr->value_id);
6214 /* Return the maximum value id we have ever seen. */
6216 unsigned int
6217 get_max_value_id (void)
6219 return next_value_id;
6222 /* Return the maximum constant value id we have ever seen. */
6224 unsigned int
6225 get_max_constant_value_id (void)
6227 return -next_constant_value_id;
6230 /* Return the next unique value id. */
6232 unsigned int
6233 get_next_value_id (void)
6235 gcc_checking_assert ((int)next_value_id > 0);
6236 return next_value_id++;
6239 /* Return the next unique value id for constants. */
6241 unsigned int
6242 get_next_constant_value_id (void)
6244 gcc_checking_assert (next_constant_value_id < 0);
6245 return next_constant_value_id--;
6249 /* Compare two expressions E1 and E2 and return true if they are equal.
6250 If match_vn_top_optimistically is true then VN_TOP is equal to anything,
6251 otherwise VN_TOP only matches VN_TOP. */
6253 bool
6254 expressions_equal_p (tree e1, tree e2, bool match_vn_top_optimistically)
6256 /* The obvious case. */
6257 if (e1 == e2)
6258 return true;
6260 /* If either one is VN_TOP consider them equal. */
6261 if (match_vn_top_optimistically
6262 && (e1 == VN_TOP || e2 == VN_TOP))
6263 return true;
6265 /* SSA_NAME compare pointer equal. */
6266 if (TREE_CODE (e1) == SSA_NAME || TREE_CODE (e2) == SSA_NAME)
6267 return false;
6269 /* Now perform the actual comparison. */
6270 if (TREE_CODE (e1) == TREE_CODE (e2)
6271 && operand_equal_p (e1, e2, OEP_PURE_SAME))
6272 return true;
6274 return false;
6278 /* Return true if the nary operation NARY may trap. This is a copy
6279 of stmt_could_throw_1_p adjusted to the SCCVN IL. */
6281 bool
6282 vn_nary_may_trap (vn_nary_op_t nary)
6284 tree type;
6285 tree rhs2 = NULL_TREE;
6286 bool honor_nans = false;
6287 bool honor_snans = false;
6288 bool fp_operation = false;
6289 bool honor_trapv = false;
6290 bool handled, ret;
6291 unsigned i;
6293 if (TREE_CODE_CLASS (nary->opcode) == tcc_comparison
6294 || TREE_CODE_CLASS (nary->opcode) == tcc_unary
6295 || TREE_CODE_CLASS (nary->opcode) == tcc_binary)
6297 type = nary->type;
6298 fp_operation = FLOAT_TYPE_P (type);
6299 if (fp_operation)
6301 honor_nans = flag_trapping_math && !flag_finite_math_only;
6302 honor_snans = flag_signaling_nans != 0;
6304 else if (INTEGRAL_TYPE_P (type) && TYPE_OVERFLOW_TRAPS (type))
6305 honor_trapv = true;
6307 if (nary->length >= 2)
6308 rhs2 = nary->op[1];
6309 ret = operation_could_trap_helper_p (nary->opcode, fp_operation,
6310 honor_trapv, honor_nans, honor_snans,
6311 rhs2, &handled);
6312 if (handled && ret)
6313 return true;
6315 for (i = 0; i < nary->length; ++i)
6316 if (tree_could_trap_p (nary->op[i]))
6317 return true;
6319 return false;
6322 /* Return true if the reference operation REF may trap. */
6324 bool
6325 vn_reference_may_trap (vn_reference_t ref)
6327 switch (ref->operands[0].opcode)
6329 case MODIFY_EXPR:
6330 case CALL_EXPR:
6331 /* We do not handle calls. */
6332 return true;
6333 case ADDR_EXPR:
6334 /* And toplevel address computations never trap. */
6335 return false;
6336 default:;
6339 vn_reference_op_t op;
6340 unsigned i;
6341 FOR_EACH_VEC_ELT (ref->operands, i, op)
6343 switch (op->opcode)
6345 case WITH_SIZE_EXPR:
6346 case TARGET_MEM_REF:
6347 /* Always variable. */
6348 return true;
6349 case COMPONENT_REF:
6350 if (op->op1 && TREE_CODE (op->op1) == SSA_NAME)
6351 return true;
6352 break;
6353 case ARRAY_RANGE_REF:
6354 if (TREE_CODE (op->op0) == SSA_NAME)
6355 return true;
6356 break;
6357 case ARRAY_REF:
6359 if (TREE_CODE (op->op0) != INTEGER_CST)
6360 return true;
6362 /* !in_array_bounds */
6363 tree domain_type = TYPE_DOMAIN (ref->operands[i+1].type);
6364 if (!domain_type)
6365 return true;
6367 tree min = op->op1;
6368 tree max = TYPE_MAX_VALUE (domain_type);
6369 if (!min
6370 || !max
6371 || TREE_CODE (min) != INTEGER_CST
6372 || TREE_CODE (max) != INTEGER_CST)
6373 return true;
6375 if (tree_int_cst_lt (op->op0, min)
6376 || tree_int_cst_lt (max, op->op0))
6377 return true;
6379 break;
6381 case MEM_REF:
6382 /* Nothing interesting in itself, the base is separate. */
6383 break;
6384 /* The following are the address bases. */
6385 case SSA_NAME:
6386 return true;
6387 case ADDR_EXPR:
6388 if (op->op0)
6389 return tree_could_trap_p (TREE_OPERAND (op->op0, 0));
6390 return false;
6391 default:;
6394 return false;
6397 eliminate_dom_walker::eliminate_dom_walker (cdi_direction direction,
6398 bitmap inserted_exprs_)
6399 : dom_walker (direction), do_pre (inserted_exprs_ != NULL),
6400 el_todo (0), eliminations (0), insertions (0),
6401 inserted_exprs (inserted_exprs_)
6403 need_eh_cleanup = BITMAP_ALLOC (NULL);
6404 need_ab_cleanup = BITMAP_ALLOC (NULL);
6407 eliminate_dom_walker::~eliminate_dom_walker ()
6409 BITMAP_FREE (need_eh_cleanup);
6410 BITMAP_FREE (need_ab_cleanup);
6413 /* Return a leader for OP that is available at the current point of the
6414 eliminate domwalk. */
6416 tree
6417 eliminate_dom_walker::eliminate_avail (basic_block, tree op)
6419 tree valnum = VN_INFO (op)->valnum;
6420 if (TREE_CODE (valnum) == SSA_NAME)
6422 if (SSA_NAME_IS_DEFAULT_DEF (valnum))
6423 return valnum;
6424 if (avail.length () > SSA_NAME_VERSION (valnum))
6425 return avail[SSA_NAME_VERSION (valnum)];
6427 else if (is_gimple_min_invariant (valnum))
6428 return valnum;
6429 return NULL_TREE;
6432 /* At the current point of the eliminate domwalk make OP available. */
6434 void
6435 eliminate_dom_walker::eliminate_push_avail (basic_block, tree op)
6437 tree valnum = VN_INFO (op)->valnum;
6438 if (TREE_CODE (valnum) == SSA_NAME)
6440 if (avail.length () <= SSA_NAME_VERSION (valnum))
6441 avail.safe_grow_cleared (SSA_NAME_VERSION (valnum) + 1, true);
6442 tree pushop = op;
6443 if (avail[SSA_NAME_VERSION (valnum)])
6444 pushop = avail[SSA_NAME_VERSION (valnum)];
6445 avail_stack.safe_push (pushop);
6446 avail[SSA_NAME_VERSION (valnum)] = op;
6450 /* Insert the expression recorded by SCCVN for VAL at *GSI. Returns
6451 the leader for the expression if insertion was successful. */
6453 tree
6454 eliminate_dom_walker::eliminate_insert (basic_block bb,
6455 gimple_stmt_iterator *gsi, tree val)
6457 /* We can insert a sequence with a single assignment only. */
6458 gimple_seq stmts = VN_INFO (val)->expr;
6459 if (!gimple_seq_singleton_p (stmts))
6460 return NULL_TREE;
6461 gassign *stmt = dyn_cast <gassign *> (gimple_seq_first_stmt (stmts));
6462 if (!stmt
6463 || (!CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (stmt))
6464 && gimple_assign_rhs_code (stmt) != VIEW_CONVERT_EXPR
6465 && gimple_assign_rhs_code (stmt) != NEGATE_EXPR
6466 && gimple_assign_rhs_code (stmt) != BIT_FIELD_REF
6467 && (gimple_assign_rhs_code (stmt) != BIT_AND_EXPR
6468 || TREE_CODE (gimple_assign_rhs2 (stmt)) != INTEGER_CST)))
6469 return NULL_TREE;
6471 tree op = gimple_assign_rhs1 (stmt);
6472 if (gimple_assign_rhs_code (stmt) == VIEW_CONVERT_EXPR
6473 || gimple_assign_rhs_code (stmt) == BIT_FIELD_REF)
6474 op = TREE_OPERAND (op, 0);
6475 tree leader = TREE_CODE (op) == SSA_NAME ? eliminate_avail (bb, op) : op;
6476 if (!leader)
6477 return NULL_TREE;
6479 tree res;
6480 stmts = NULL;
6481 if (gimple_assign_rhs_code (stmt) == BIT_FIELD_REF)
6482 res = gimple_build (&stmts, BIT_FIELD_REF,
6483 TREE_TYPE (val), leader,
6484 TREE_OPERAND (gimple_assign_rhs1 (stmt), 1),
6485 TREE_OPERAND (gimple_assign_rhs1 (stmt), 2));
6486 else if (gimple_assign_rhs_code (stmt) == BIT_AND_EXPR)
6487 res = gimple_build (&stmts, BIT_AND_EXPR,
6488 TREE_TYPE (val), leader, gimple_assign_rhs2 (stmt));
6489 else
6490 res = gimple_build (&stmts, gimple_assign_rhs_code (stmt),
6491 TREE_TYPE (val), leader);
6492 if (TREE_CODE (res) != SSA_NAME
6493 || SSA_NAME_IS_DEFAULT_DEF (res)
6494 || gimple_bb (SSA_NAME_DEF_STMT (res)))
6496 gimple_seq_discard (stmts);
6498 /* During propagation we have to treat SSA info conservatively
6499 and thus we can end up simplifying the inserted expression
6500 at elimination time to sth not defined in stmts. */
6501 /* But then this is a redundancy we failed to detect. Which means
6502 res now has two values. That doesn't play well with how
6503 we track availability here, so give up. */
6504 if (dump_file && (dump_flags & TDF_DETAILS))
6506 if (TREE_CODE (res) == SSA_NAME)
6507 res = eliminate_avail (bb, res);
6508 if (res)
6510 fprintf (dump_file, "Failed to insert expression for value ");
6511 print_generic_expr (dump_file, val);
6512 fprintf (dump_file, " which is really fully redundant to ");
6513 print_generic_expr (dump_file, res);
6514 fprintf (dump_file, "\n");
6518 return NULL_TREE;
6520 else
6522 gsi_insert_seq_before (gsi, stmts, GSI_SAME_STMT);
6523 vn_ssa_aux_t vn_info = VN_INFO (res);
6524 vn_info->valnum = val;
6525 vn_info->visited = true;
6528 insertions++;
6529 if (dump_file && (dump_flags & TDF_DETAILS))
6531 fprintf (dump_file, "Inserted ");
6532 print_gimple_stmt (dump_file, SSA_NAME_DEF_STMT (res), 0);
6535 return res;
6538 void
6539 eliminate_dom_walker::eliminate_stmt (basic_block b, gimple_stmt_iterator *gsi)
6541 tree sprime = NULL_TREE;
6542 gimple *stmt = gsi_stmt (*gsi);
6543 tree lhs = gimple_get_lhs (stmt);
6544 if (lhs && TREE_CODE (lhs) == SSA_NAME
6545 && !gimple_has_volatile_ops (stmt)
6546 /* See PR43491. Do not replace a global register variable when
6547 it is a the RHS of an assignment. Do replace local register
6548 variables since gcc does not guarantee a local variable will
6549 be allocated in register.
6550 ??? The fix isn't effective here. This should instead
6551 be ensured by not value-numbering them the same but treating
6552 them like volatiles? */
6553 && !(gimple_assign_single_p (stmt)
6554 && (TREE_CODE (gimple_assign_rhs1 (stmt)) == VAR_DECL
6555 && DECL_HARD_REGISTER (gimple_assign_rhs1 (stmt))
6556 && is_global_var (gimple_assign_rhs1 (stmt)))))
6558 sprime = eliminate_avail (b, lhs);
6559 if (!sprime)
6561 /* If there is no existing usable leader but SCCVN thinks
6562 it has an expression it wants to use as replacement,
6563 insert that. */
6564 tree val = VN_INFO (lhs)->valnum;
6565 vn_ssa_aux_t vn_info;
6566 if (val != VN_TOP
6567 && TREE_CODE (val) == SSA_NAME
6568 && (vn_info = VN_INFO (val), true)
6569 && vn_info->needs_insertion
6570 && vn_info->expr != NULL
6571 && (sprime = eliminate_insert (b, gsi, val)) != NULL_TREE)
6572 eliminate_push_avail (b, sprime);
6575 /* If this now constitutes a copy duplicate points-to
6576 and range info appropriately. This is especially
6577 important for inserted code. See tree-ssa-copy.cc
6578 for similar code. */
6579 if (sprime
6580 && TREE_CODE (sprime) == SSA_NAME)
6582 basic_block sprime_b = gimple_bb (SSA_NAME_DEF_STMT (sprime));
6583 if (POINTER_TYPE_P (TREE_TYPE (lhs))
6584 && SSA_NAME_PTR_INFO (lhs)
6585 && ! SSA_NAME_PTR_INFO (sprime))
6587 duplicate_ssa_name_ptr_info (sprime,
6588 SSA_NAME_PTR_INFO (lhs));
6589 if (b != sprime_b)
6590 reset_flow_sensitive_info (sprime);
6592 else if (INTEGRAL_TYPE_P (TREE_TYPE (lhs))
6593 && SSA_NAME_RANGE_INFO (lhs)
6594 && ! SSA_NAME_RANGE_INFO (sprime)
6595 && b == sprime_b)
6596 duplicate_ssa_name_range_info (sprime, lhs);
6599 /* Inhibit the use of an inserted PHI on a loop header when
6600 the address of the memory reference is a simple induction
6601 variable. In other cases the vectorizer won't do anything
6602 anyway (either it's loop invariant or a complicated
6603 expression). */
6604 if (sprime
6605 && TREE_CODE (sprime) == SSA_NAME
6606 && do_pre
6607 && (flag_tree_loop_vectorize || flag_tree_parallelize_loops > 1)
6608 && loop_outer (b->loop_father)
6609 && has_zero_uses (sprime)
6610 && bitmap_bit_p (inserted_exprs, SSA_NAME_VERSION (sprime))
6611 && gimple_assign_load_p (stmt))
6613 gimple *def_stmt = SSA_NAME_DEF_STMT (sprime);
6614 basic_block def_bb = gimple_bb (def_stmt);
6615 if (gimple_code (def_stmt) == GIMPLE_PHI
6616 && def_bb->loop_father->header == def_bb)
6618 loop_p loop = def_bb->loop_father;
6619 ssa_op_iter iter;
6620 tree op;
6621 bool found = false;
6622 FOR_EACH_SSA_TREE_OPERAND (op, stmt, iter, SSA_OP_USE)
6624 affine_iv iv;
6625 def_bb = gimple_bb (SSA_NAME_DEF_STMT (op));
6626 if (def_bb
6627 && flow_bb_inside_loop_p (loop, def_bb)
6628 && simple_iv (loop, loop, op, &iv, true))
6630 found = true;
6631 break;
6634 if (found)
6636 if (dump_file && (dump_flags & TDF_DETAILS))
6638 fprintf (dump_file, "Not replacing ");
6639 print_gimple_expr (dump_file, stmt, 0);
6640 fprintf (dump_file, " with ");
6641 print_generic_expr (dump_file, sprime);
6642 fprintf (dump_file, " which would add a loop"
6643 " carried dependence to loop %d\n",
6644 loop->num);
6646 /* Don't keep sprime available. */
6647 sprime = NULL_TREE;
6652 if (sprime)
6654 /* If we can propagate the value computed for LHS into
6655 all uses don't bother doing anything with this stmt. */
6656 if (may_propagate_copy (lhs, sprime))
6658 /* Mark it for removal. */
6659 to_remove.safe_push (stmt);
6661 /* ??? Don't count copy/constant propagations. */
6662 if (gimple_assign_single_p (stmt)
6663 && (TREE_CODE (gimple_assign_rhs1 (stmt)) == SSA_NAME
6664 || gimple_assign_rhs1 (stmt) == sprime))
6665 return;
6667 if (dump_file && (dump_flags & TDF_DETAILS))
6669 fprintf (dump_file, "Replaced ");
6670 print_gimple_expr (dump_file, stmt, 0);
6671 fprintf (dump_file, " with ");
6672 print_generic_expr (dump_file, sprime);
6673 fprintf (dump_file, " in all uses of ");
6674 print_gimple_stmt (dump_file, stmt, 0);
6677 eliminations++;
6678 return;
6681 /* If this is an assignment from our leader (which
6682 happens in the case the value-number is a constant)
6683 then there is nothing to do. Likewise if we run into
6684 inserted code that needed a conversion because of
6685 our type-agnostic value-numbering of loads. */
6686 if ((gimple_assign_single_p (stmt)
6687 || (is_gimple_assign (stmt)
6688 && (CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (stmt))
6689 || gimple_assign_rhs_code (stmt) == VIEW_CONVERT_EXPR)))
6690 && sprime == gimple_assign_rhs1 (stmt))
6691 return;
6693 /* Else replace its RHS. */
6694 if (dump_file && (dump_flags & TDF_DETAILS))
6696 fprintf (dump_file, "Replaced ");
6697 print_gimple_expr (dump_file, stmt, 0);
6698 fprintf (dump_file, " with ");
6699 print_generic_expr (dump_file, sprime);
6700 fprintf (dump_file, " in ");
6701 print_gimple_stmt (dump_file, stmt, 0);
6703 eliminations++;
6705 bool can_make_abnormal_goto = (is_gimple_call (stmt)
6706 && stmt_can_make_abnormal_goto (stmt));
6707 gimple *orig_stmt = stmt;
6708 if (!useless_type_conversion_p (TREE_TYPE (lhs),
6709 TREE_TYPE (sprime)))
6711 /* We preserve conversions to but not from function or method
6712 types. This asymmetry makes it necessary to re-instantiate
6713 conversions here. */
6714 if (POINTER_TYPE_P (TREE_TYPE (lhs))
6715 && FUNC_OR_METHOD_TYPE_P (TREE_TYPE (TREE_TYPE (lhs))))
6716 sprime = fold_convert (TREE_TYPE (lhs), sprime);
6717 else
6718 gcc_unreachable ();
6720 tree vdef = gimple_vdef (stmt);
6721 tree vuse = gimple_vuse (stmt);
6722 propagate_tree_value_into_stmt (gsi, sprime);
6723 stmt = gsi_stmt (*gsi);
6724 update_stmt (stmt);
6725 /* In case the VDEF on the original stmt was released, value-number
6726 it to the VUSE. This is to make vuse_ssa_val able to skip
6727 released virtual operands. */
6728 if (vdef != gimple_vdef (stmt))
6730 gcc_assert (SSA_NAME_IN_FREE_LIST (vdef));
6731 VN_INFO (vdef)->valnum = vuse;
6734 /* If we removed EH side-effects from the statement, clean
6735 its EH information. */
6736 if (maybe_clean_or_replace_eh_stmt (orig_stmt, stmt))
6738 bitmap_set_bit (need_eh_cleanup,
6739 gimple_bb (stmt)->index);
6740 if (dump_file && (dump_flags & TDF_DETAILS))
6741 fprintf (dump_file, " Removed EH side-effects.\n");
6744 /* Likewise for AB side-effects. */
6745 if (can_make_abnormal_goto
6746 && !stmt_can_make_abnormal_goto (stmt))
6748 bitmap_set_bit (need_ab_cleanup,
6749 gimple_bb (stmt)->index);
6750 if (dump_file && (dump_flags & TDF_DETAILS))
6751 fprintf (dump_file, " Removed AB side-effects.\n");
6754 return;
6758 /* If the statement is a scalar store, see if the expression
6759 has the same value number as its rhs. If so, the store is
6760 dead. */
6761 if (gimple_assign_single_p (stmt)
6762 && !gimple_has_volatile_ops (stmt)
6763 && !is_gimple_reg (gimple_assign_lhs (stmt))
6764 && (TREE_CODE (gimple_assign_rhs1 (stmt)) == SSA_NAME
6765 || is_gimple_min_invariant (gimple_assign_rhs1 (stmt))))
6767 tree rhs = gimple_assign_rhs1 (stmt);
6768 vn_reference_t vnresult;
6769 /* ??? gcc.dg/torture/pr91445.c shows that we lookup a boolean
6770 typed load of a byte known to be 0x11 as 1 so a store of
6771 a boolean 1 is detected as redundant. Because of this we
6772 have to make sure to lookup with a ref where its size
6773 matches the precision. */
6774 tree lookup_lhs = lhs;
6775 if (INTEGRAL_TYPE_P (TREE_TYPE (lhs))
6776 && (TREE_CODE (lhs) != COMPONENT_REF
6777 || !DECL_BIT_FIELD_TYPE (TREE_OPERAND (lhs, 1)))
6778 && !type_has_mode_precision_p (TREE_TYPE (lhs)))
6780 if (TREE_CODE (lhs) == COMPONENT_REF
6781 || TREE_CODE (lhs) == MEM_REF)
6783 tree ltype = build_nonstandard_integer_type
6784 (TREE_INT_CST_LOW (TYPE_SIZE (TREE_TYPE (lhs))),
6785 TYPE_UNSIGNED (TREE_TYPE (lhs)));
6786 if (TREE_CODE (lhs) == COMPONENT_REF)
6788 tree foff = component_ref_field_offset (lhs);
6789 tree f = TREE_OPERAND (lhs, 1);
6790 if (!poly_int_tree_p (foff))
6791 lookup_lhs = NULL_TREE;
6792 else
6793 lookup_lhs = build3 (BIT_FIELD_REF, ltype,
6794 TREE_OPERAND (lhs, 0),
6795 TYPE_SIZE (TREE_TYPE (lhs)),
6796 bit_from_pos
6797 (foff, DECL_FIELD_BIT_OFFSET (f)));
6799 else
6800 lookup_lhs = build2 (MEM_REF, ltype,
6801 TREE_OPERAND (lhs, 0),
6802 TREE_OPERAND (lhs, 1));
6804 else
6805 lookup_lhs = NULL_TREE;
6807 tree val = NULL_TREE;
6808 if (lookup_lhs)
6809 val = vn_reference_lookup (lookup_lhs, gimple_vuse (stmt),
6810 VN_WALKREWRITE, &vnresult, false,
6811 NULL, NULL_TREE, true);
6812 if (TREE_CODE (rhs) == SSA_NAME)
6813 rhs = VN_INFO (rhs)->valnum;
6814 if (val
6815 && (operand_equal_p (val, rhs, 0)
6816 /* Due to the bitfield lookups above we can get bit
6817 interpretations of the same RHS as values here. Those
6818 are redundant as well. */
6819 || (TREE_CODE (val) == SSA_NAME
6820 && gimple_assign_single_p (SSA_NAME_DEF_STMT (val))
6821 && (val = gimple_assign_rhs1 (SSA_NAME_DEF_STMT (val)))
6822 && TREE_CODE (val) == VIEW_CONVERT_EXPR
6823 && TREE_OPERAND (val, 0) == rhs)))
6825 /* We can only remove the later store if the former aliases
6826 at least all accesses the later one does or if the store
6827 was to readonly memory storing the same value. */
6828 ao_ref lhs_ref;
6829 ao_ref_init (&lhs_ref, lhs);
6830 alias_set_type set = ao_ref_alias_set (&lhs_ref);
6831 alias_set_type base_set = ao_ref_base_alias_set (&lhs_ref);
6832 if (! vnresult
6833 || ((vnresult->set == set
6834 || alias_set_subset_of (set, vnresult->set))
6835 && (vnresult->base_set == base_set
6836 || alias_set_subset_of (base_set, vnresult->base_set))))
6838 if (dump_file && (dump_flags & TDF_DETAILS))
6840 fprintf (dump_file, "Deleted redundant store ");
6841 print_gimple_stmt (dump_file, stmt, 0);
6844 /* Queue stmt for removal. */
6845 to_remove.safe_push (stmt);
6846 return;
6851 /* If this is a control statement value numbering left edges
6852 unexecuted on force the condition in a way consistent with
6853 that. */
6854 if (gcond *cond = dyn_cast <gcond *> (stmt))
6856 if ((EDGE_SUCC (b, 0)->flags & EDGE_EXECUTABLE)
6857 ^ (EDGE_SUCC (b, 1)->flags & EDGE_EXECUTABLE))
6859 if (dump_file && (dump_flags & TDF_DETAILS))
6861 fprintf (dump_file, "Removing unexecutable edge from ");
6862 print_gimple_stmt (dump_file, stmt, 0);
6864 if (((EDGE_SUCC (b, 0)->flags & EDGE_TRUE_VALUE) != 0)
6865 == ((EDGE_SUCC (b, 0)->flags & EDGE_EXECUTABLE) != 0))
6866 gimple_cond_make_true (cond);
6867 else
6868 gimple_cond_make_false (cond);
6869 update_stmt (cond);
6870 el_todo |= TODO_cleanup_cfg;
6871 return;
6875 bool can_make_abnormal_goto = stmt_can_make_abnormal_goto (stmt);
6876 bool was_noreturn = (is_gimple_call (stmt)
6877 && gimple_call_noreturn_p (stmt));
6878 tree vdef = gimple_vdef (stmt);
6879 tree vuse = gimple_vuse (stmt);
6881 /* If we didn't replace the whole stmt (or propagate the result
6882 into all uses), replace all uses on this stmt with their
6883 leaders. */
6884 bool modified = false;
6885 use_operand_p use_p;
6886 ssa_op_iter iter;
6887 FOR_EACH_SSA_USE_OPERAND (use_p, stmt, iter, SSA_OP_USE)
6889 tree use = USE_FROM_PTR (use_p);
6890 /* ??? The call code above leaves stmt operands un-updated. */
6891 if (TREE_CODE (use) != SSA_NAME)
6892 continue;
6893 tree sprime;
6894 if (SSA_NAME_IS_DEFAULT_DEF (use))
6895 /* ??? For default defs BB shouldn't matter, but we have to
6896 solve the inconsistency between rpo eliminate and
6897 dom eliminate avail valueization first. */
6898 sprime = eliminate_avail (b, use);
6899 else
6900 /* Look for sth available at the definition block of the argument.
6901 This avoids inconsistencies between availability there which
6902 decides if the stmt can be removed and availability at the
6903 use site. The SSA property ensures that things available
6904 at the definition are also available at uses. */
6905 sprime = eliminate_avail (gimple_bb (SSA_NAME_DEF_STMT (use)), use);
6906 if (sprime && sprime != use
6907 && may_propagate_copy (use, sprime, true)
6908 /* We substitute into debug stmts to avoid excessive
6909 debug temporaries created by removed stmts, but we need
6910 to avoid doing so for inserted sprimes as we never want
6911 to create debug temporaries for them. */
6912 && (!inserted_exprs
6913 || TREE_CODE (sprime) != SSA_NAME
6914 || !is_gimple_debug (stmt)
6915 || !bitmap_bit_p (inserted_exprs, SSA_NAME_VERSION (sprime))))
6917 propagate_value (use_p, sprime);
6918 modified = true;
6922 /* Fold the stmt if modified, this canonicalizes MEM_REFs we propagated
6923 into which is a requirement for the IPA devirt machinery. */
6924 gimple *old_stmt = stmt;
6925 if (modified)
6927 /* If a formerly non-invariant ADDR_EXPR is turned into an
6928 invariant one it was on a separate stmt. */
6929 if (gimple_assign_single_p (stmt)
6930 && TREE_CODE (gimple_assign_rhs1 (stmt)) == ADDR_EXPR)
6931 recompute_tree_invariant_for_addr_expr (gimple_assign_rhs1 (stmt));
6932 gimple_stmt_iterator prev = *gsi;
6933 gsi_prev (&prev);
6934 if (fold_stmt (gsi, follow_all_ssa_edges))
6936 /* fold_stmt may have created new stmts inbetween
6937 the previous stmt and the folded stmt. Mark
6938 all defs created there as varying to not confuse
6939 the SCCVN machinery as we're using that even during
6940 elimination. */
6941 if (gsi_end_p (prev))
6942 prev = gsi_start_bb (b);
6943 else
6944 gsi_next (&prev);
6945 if (gsi_stmt (prev) != gsi_stmt (*gsi))
6948 tree def;
6949 ssa_op_iter dit;
6950 FOR_EACH_SSA_TREE_OPERAND (def, gsi_stmt (prev),
6951 dit, SSA_OP_ALL_DEFS)
6952 /* As existing DEFs may move between stmts
6953 only process new ones. */
6954 if (! has_VN_INFO (def))
6956 vn_ssa_aux_t vn_info = VN_INFO (def);
6957 vn_info->valnum = def;
6958 vn_info->visited = true;
6960 if (gsi_stmt (prev) == gsi_stmt (*gsi))
6961 break;
6962 gsi_next (&prev);
6964 while (1);
6966 stmt = gsi_stmt (*gsi);
6967 /* In case we folded the stmt away schedule the NOP for removal. */
6968 if (gimple_nop_p (stmt))
6969 to_remove.safe_push (stmt);
6972 /* Visit indirect calls and turn them into direct calls if
6973 possible using the devirtualization machinery. Do this before
6974 checking for required EH/abnormal/noreturn cleanup as devird
6975 may expose more of those. */
6976 if (gcall *call_stmt = dyn_cast <gcall *> (stmt))
6978 tree fn = gimple_call_fn (call_stmt);
6979 if (fn
6980 && flag_devirtualize
6981 && virtual_method_call_p (fn))
6983 tree otr_type = obj_type_ref_class (fn);
6984 unsigned HOST_WIDE_INT otr_tok
6985 = tree_to_uhwi (OBJ_TYPE_REF_TOKEN (fn));
6986 tree instance;
6987 ipa_polymorphic_call_context context (current_function_decl,
6988 fn, stmt, &instance);
6989 context.get_dynamic_type (instance, OBJ_TYPE_REF_OBJECT (fn),
6990 otr_type, stmt, NULL);
6991 bool final;
6992 vec <cgraph_node *> targets
6993 = possible_polymorphic_call_targets (obj_type_ref_class (fn),
6994 otr_tok, context, &final);
6995 if (dump_file)
6996 dump_possible_polymorphic_call_targets (dump_file,
6997 obj_type_ref_class (fn),
6998 otr_tok, context);
6999 if (final && targets.length () <= 1 && dbg_cnt (devirt))
7001 tree fn;
7002 if (targets.length () == 1)
7003 fn = targets[0]->decl;
7004 else
7005 fn = builtin_decl_unreachable ();
7006 if (dump_enabled_p ())
7008 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS, stmt,
7009 "converting indirect call to "
7010 "function %s\n",
7011 lang_hooks.decl_printable_name (fn, 2));
7013 gimple_call_set_fndecl (call_stmt, fn);
7014 /* If changing the call to __builtin_unreachable
7015 or similar noreturn function, adjust gimple_call_fntype
7016 too. */
7017 if (gimple_call_noreturn_p (call_stmt)
7018 && VOID_TYPE_P (TREE_TYPE (TREE_TYPE (fn)))
7019 && TYPE_ARG_TYPES (TREE_TYPE (fn))
7020 && (TREE_VALUE (TYPE_ARG_TYPES (TREE_TYPE (fn)))
7021 == void_type_node))
7022 gimple_call_set_fntype (call_stmt, TREE_TYPE (fn));
7023 maybe_remove_unused_call_args (cfun, call_stmt);
7024 modified = true;
7029 if (modified)
7031 /* When changing a call into a noreturn call, cfg cleanup
7032 is needed to fix up the noreturn call. */
7033 if (!was_noreturn
7034 && is_gimple_call (stmt) && gimple_call_noreturn_p (stmt))
7035 to_fixup.safe_push (stmt);
7036 /* When changing a condition or switch into one we know what
7037 edge will be executed, schedule a cfg cleanup. */
7038 if ((gimple_code (stmt) == GIMPLE_COND
7039 && (gimple_cond_true_p (as_a <gcond *> (stmt))
7040 || gimple_cond_false_p (as_a <gcond *> (stmt))))
7041 || (gimple_code (stmt) == GIMPLE_SWITCH
7042 && TREE_CODE (gimple_switch_index
7043 (as_a <gswitch *> (stmt))) == INTEGER_CST))
7044 el_todo |= TODO_cleanup_cfg;
7045 /* If we removed EH side-effects from the statement, clean
7046 its EH information. */
7047 if (maybe_clean_or_replace_eh_stmt (old_stmt, stmt))
7049 bitmap_set_bit (need_eh_cleanup,
7050 gimple_bb (stmt)->index);
7051 if (dump_file && (dump_flags & TDF_DETAILS))
7052 fprintf (dump_file, " Removed EH side-effects.\n");
7054 /* Likewise for AB side-effects. */
7055 if (can_make_abnormal_goto
7056 && !stmt_can_make_abnormal_goto (stmt))
7058 bitmap_set_bit (need_ab_cleanup,
7059 gimple_bb (stmt)->index);
7060 if (dump_file && (dump_flags & TDF_DETAILS))
7061 fprintf (dump_file, " Removed AB side-effects.\n");
7063 update_stmt (stmt);
7064 /* In case the VDEF on the original stmt was released, value-number
7065 it to the VUSE. This is to make vuse_ssa_val able to skip
7066 released virtual operands. */
7067 if (vdef && SSA_NAME_IN_FREE_LIST (vdef))
7068 VN_INFO (vdef)->valnum = vuse;
7071 /* Make new values available - for fully redundant LHS we
7072 continue with the next stmt above and skip this. */
7073 def_operand_p defp;
7074 FOR_EACH_SSA_DEF_OPERAND (defp, stmt, iter, SSA_OP_DEF)
7075 eliminate_push_avail (b, DEF_FROM_PTR (defp));
7078 /* Perform elimination for the basic-block B during the domwalk. */
7080 edge
7081 eliminate_dom_walker::before_dom_children (basic_block b)
7083 /* Mark new bb. */
7084 avail_stack.safe_push (NULL_TREE);
7086 /* Skip unreachable blocks marked unreachable during the SCCVN domwalk. */
7087 if (!(b->flags & BB_EXECUTABLE))
7088 return NULL;
7090 vn_context_bb = b;
7092 for (gphi_iterator gsi = gsi_start_phis (b); !gsi_end_p (gsi);)
7094 gphi *phi = gsi.phi ();
7095 tree res = PHI_RESULT (phi);
7097 if (virtual_operand_p (res))
7099 gsi_next (&gsi);
7100 continue;
7103 tree sprime = eliminate_avail (b, res);
7104 if (sprime
7105 && sprime != res)
7107 if (dump_file && (dump_flags & TDF_DETAILS))
7109 fprintf (dump_file, "Replaced redundant PHI node defining ");
7110 print_generic_expr (dump_file, res);
7111 fprintf (dump_file, " with ");
7112 print_generic_expr (dump_file, sprime);
7113 fprintf (dump_file, "\n");
7116 /* If we inserted this PHI node ourself, it's not an elimination. */
7117 if (! inserted_exprs
7118 || ! bitmap_bit_p (inserted_exprs, SSA_NAME_VERSION (res)))
7119 eliminations++;
7121 /* If we will propagate into all uses don't bother to do
7122 anything. */
7123 if (may_propagate_copy (res, sprime))
7125 /* Mark the PHI for removal. */
7126 to_remove.safe_push (phi);
7127 gsi_next (&gsi);
7128 continue;
7131 remove_phi_node (&gsi, false);
7133 if (!useless_type_conversion_p (TREE_TYPE (res), TREE_TYPE (sprime)))
7134 sprime = fold_convert (TREE_TYPE (res), sprime);
7135 gimple *stmt = gimple_build_assign (res, sprime);
7136 gimple_stmt_iterator gsi2 = gsi_after_labels (b);
7137 gsi_insert_before (&gsi2, stmt, GSI_NEW_STMT);
7138 continue;
7141 eliminate_push_avail (b, res);
7142 gsi_next (&gsi);
7145 for (gimple_stmt_iterator gsi = gsi_start_bb (b);
7146 !gsi_end_p (gsi);
7147 gsi_next (&gsi))
7148 eliminate_stmt (b, &gsi);
7150 /* Replace destination PHI arguments. */
7151 edge_iterator ei;
7152 edge e;
7153 FOR_EACH_EDGE (e, ei, b->succs)
7154 if (e->flags & EDGE_EXECUTABLE)
7155 for (gphi_iterator gsi = gsi_start_phis (e->dest);
7156 !gsi_end_p (gsi);
7157 gsi_next (&gsi))
7159 gphi *phi = gsi.phi ();
7160 use_operand_p use_p = PHI_ARG_DEF_PTR_FROM_EDGE (phi, e);
7161 tree arg = USE_FROM_PTR (use_p);
7162 if (TREE_CODE (arg) != SSA_NAME
7163 || virtual_operand_p (arg))
7164 continue;
7165 tree sprime = eliminate_avail (b, arg);
7166 if (sprime && may_propagate_copy (arg, sprime))
7167 propagate_value (use_p, sprime);
7170 vn_context_bb = NULL;
7172 return NULL;
7175 /* Make no longer available leaders no longer available. */
7177 void
7178 eliminate_dom_walker::after_dom_children (basic_block)
7180 tree entry;
7181 while ((entry = avail_stack.pop ()) != NULL_TREE)
7183 tree valnum = VN_INFO (entry)->valnum;
7184 tree old = avail[SSA_NAME_VERSION (valnum)];
7185 if (old == entry)
7186 avail[SSA_NAME_VERSION (valnum)] = NULL_TREE;
7187 else
7188 avail[SSA_NAME_VERSION (valnum)] = entry;
7192 /* Remove queued stmts and perform delayed cleanups. */
7194 unsigned
7195 eliminate_dom_walker::eliminate_cleanup (bool region_p)
7197 statistics_counter_event (cfun, "Eliminated", eliminations);
7198 statistics_counter_event (cfun, "Insertions", insertions);
7200 /* We cannot remove stmts during BB walk, especially not release SSA
7201 names there as this confuses the VN machinery. The stmts ending
7202 up in to_remove are either stores or simple copies.
7203 Remove stmts in reverse order to make debug stmt creation possible. */
7204 while (!to_remove.is_empty ())
7206 bool do_release_defs = true;
7207 gimple *stmt = to_remove.pop ();
7209 /* When we are value-numbering a region we do not require exit PHIs to
7210 be present so we have to make sure to deal with uses outside of the
7211 region of stmts that we thought are eliminated.
7212 ??? Note we may be confused by uses in dead regions we didn't run
7213 elimination on. Rather than checking individual uses we accept
7214 dead copies to be generated here (gcc.c-torture/execute/20060905-1.c
7215 contains such example). */
7216 if (region_p)
7218 if (gphi *phi = dyn_cast <gphi *> (stmt))
7220 tree lhs = gimple_phi_result (phi);
7221 if (!has_zero_uses (lhs))
7223 if (dump_file && (dump_flags & TDF_DETAILS))
7224 fprintf (dump_file, "Keeping eliminated stmt live "
7225 "as copy because of out-of-region uses\n");
7226 tree sprime = eliminate_avail (gimple_bb (stmt), lhs);
7227 gimple *copy = gimple_build_assign (lhs, sprime);
7228 gimple_stmt_iterator gsi
7229 = gsi_after_labels (gimple_bb (stmt));
7230 gsi_insert_before (&gsi, copy, GSI_SAME_STMT);
7231 do_release_defs = false;
7234 else if (tree lhs = gimple_get_lhs (stmt))
7235 if (TREE_CODE (lhs) == SSA_NAME
7236 && !has_zero_uses (lhs))
7238 if (dump_file && (dump_flags & TDF_DETAILS))
7239 fprintf (dump_file, "Keeping eliminated stmt live "
7240 "as copy because of out-of-region uses\n");
7241 tree sprime = eliminate_avail (gimple_bb (stmt), lhs);
7242 gimple_stmt_iterator gsi = gsi_for_stmt (stmt);
7243 if (is_gimple_assign (stmt))
7245 gimple_assign_set_rhs_from_tree (&gsi, sprime);
7246 stmt = gsi_stmt (gsi);
7247 update_stmt (stmt);
7248 if (maybe_clean_or_replace_eh_stmt (stmt, stmt))
7249 bitmap_set_bit (need_eh_cleanup, gimple_bb (stmt)->index);
7250 continue;
7252 else
7254 gimple *copy = gimple_build_assign (lhs, sprime);
7255 gsi_insert_before (&gsi, copy, GSI_SAME_STMT);
7256 do_release_defs = false;
7261 if (dump_file && (dump_flags & TDF_DETAILS))
7263 fprintf (dump_file, "Removing dead stmt ");
7264 print_gimple_stmt (dump_file, stmt, 0, TDF_NONE);
7267 gimple_stmt_iterator gsi = gsi_for_stmt (stmt);
7268 if (gimple_code (stmt) == GIMPLE_PHI)
7269 remove_phi_node (&gsi, do_release_defs);
7270 else
7272 basic_block bb = gimple_bb (stmt);
7273 unlink_stmt_vdef (stmt);
7274 if (gsi_remove (&gsi, true))
7275 bitmap_set_bit (need_eh_cleanup, bb->index);
7276 if (is_gimple_call (stmt) && stmt_can_make_abnormal_goto (stmt))
7277 bitmap_set_bit (need_ab_cleanup, bb->index);
7278 if (do_release_defs)
7279 release_defs (stmt);
7282 /* Removing a stmt may expose a forwarder block. */
7283 el_todo |= TODO_cleanup_cfg;
7286 /* Fixup stmts that became noreturn calls. This may require splitting
7287 blocks and thus isn't possible during the dominator walk. Do this
7288 in reverse order so we don't inadvertedly remove a stmt we want to
7289 fixup by visiting a dominating now noreturn call first. */
7290 while (!to_fixup.is_empty ())
7292 gimple *stmt = to_fixup.pop ();
7294 if (dump_file && (dump_flags & TDF_DETAILS))
7296 fprintf (dump_file, "Fixing up noreturn call ");
7297 print_gimple_stmt (dump_file, stmt, 0);
7300 if (fixup_noreturn_call (stmt))
7301 el_todo |= TODO_cleanup_cfg;
7304 bool do_eh_cleanup = !bitmap_empty_p (need_eh_cleanup);
7305 bool do_ab_cleanup = !bitmap_empty_p (need_ab_cleanup);
7307 if (do_eh_cleanup)
7308 gimple_purge_all_dead_eh_edges (need_eh_cleanup);
7310 if (do_ab_cleanup)
7311 gimple_purge_all_dead_abnormal_call_edges (need_ab_cleanup);
7313 if (do_eh_cleanup || do_ab_cleanup)
7314 el_todo |= TODO_cleanup_cfg;
7316 return el_todo;
7319 /* Eliminate fully redundant computations. */
7321 unsigned
7322 eliminate_with_rpo_vn (bitmap inserted_exprs)
7324 eliminate_dom_walker walker (CDI_DOMINATORS, inserted_exprs);
7326 eliminate_dom_walker *saved_rpo_avail = rpo_avail;
7327 rpo_avail = &walker;
7328 walker.walk (cfun->cfg->x_entry_block_ptr);
7329 rpo_avail = saved_rpo_avail;
7331 return walker.eliminate_cleanup ();
7334 static unsigned
7335 do_rpo_vn_1 (function *fn, edge entry, bitmap exit_bbs,
7336 bool iterate, bool eliminate, vn_lookup_kind kind);
7338 void
7339 run_rpo_vn (vn_lookup_kind kind)
7341 do_rpo_vn_1 (cfun, NULL, NULL, true, false, kind);
7343 /* ??? Prune requirement of these. */
7344 constant_to_value_id = new hash_table<vn_constant_hasher> (23);
7346 /* Initialize the value ids and prune out remaining VN_TOPs
7347 from dead code. */
7348 tree name;
7349 unsigned i;
7350 FOR_EACH_SSA_NAME (i, name, cfun)
7352 vn_ssa_aux_t info = VN_INFO (name);
7353 if (!info->visited
7354 || info->valnum == VN_TOP)
7355 info->valnum = name;
7356 if (info->valnum == name)
7357 info->value_id = get_next_value_id ();
7358 else if (is_gimple_min_invariant (info->valnum))
7359 info->value_id = get_or_alloc_constant_value_id (info->valnum);
7362 /* Propagate. */
7363 FOR_EACH_SSA_NAME (i, name, cfun)
7365 vn_ssa_aux_t info = VN_INFO (name);
7366 if (TREE_CODE (info->valnum) == SSA_NAME
7367 && info->valnum != name
7368 && info->value_id != VN_INFO (info->valnum)->value_id)
7369 info->value_id = VN_INFO (info->valnum)->value_id;
7372 set_hashtable_value_ids ();
7374 if (dump_file && (dump_flags & TDF_DETAILS))
7376 fprintf (dump_file, "Value numbers:\n");
7377 FOR_EACH_SSA_NAME (i, name, cfun)
7379 if (VN_INFO (name)->visited
7380 && SSA_VAL (name) != name)
7382 print_generic_expr (dump_file, name);
7383 fprintf (dump_file, " = ");
7384 print_generic_expr (dump_file, SSA_VAL (name));
7385 fprintf (dump_file, " (%04d)\n", VN_INFO (name)->value_id);
7391 /* Free VN associated data structures. */
7393 void
7394 free_rpo_vn (void)
7396 free_vn_table (valid_info);
7397 XDELETE (valid_info);
7398 obstack_free (&vn_tables_obstack, NULL);
7399 obstack_free (&vn_tables_insert_obstack, NULL);
7401 vn_ssa_aux_iterator_type it;
7402 vn_ssa_aux_t info;
7403 FOR_EACH_HASH_TABLE_ELEMENT (*vn_ssa_aux_hash, info, vn_ssa_aux_t, it)
7404 if (info->needs_insertion)
7405 release_ssa_name (info->name);
7406 obstack_free (&vn_ssa_aux_obstack, NULL);
7407 delete vn_ssa_aux_hash;
7409 delete constant_to_value_id;
7410 constant_to_value_id = NULL;
7413 /* Hook for maybe_push_res_to_seq, lookup the expression in the VN tables. */
7415 static tree
7416 vn_lookup_simplify_result (gimple_match_op *res_op)
7418 if (!res_op->code.is_tree_code ())
7419 return NULL_TREE;
7420 tree *ops = res_op->ops;
7421 unsigned int length = res_op->num_ops;
7422 if (res_op->code == CONSTRUCTOR
7423 /* ??? We're arriving here with SCCVNs view, decomposed CONSTRUCTOR
7424 and GIMPLEs / match-and-simplifies, CONSTRUCTOR as GENERIC tree. */
7425 && TREE_CODE (res_op->ops[0]) == CONSTRUCTOR)
7427 length = CONSTRUCTOR_NELTS (res_op->ops[0]);
7428 ops = XALLOCAVEC (tree, length);
7429 for (unsigned i = 0; i < length; ++i)
7430 ops[i] = CONSTRUCTOR_ELT (res_op->ops[0], i)->value;
7432 vn_nary_op_t vnresult = NULL;
7433 tree res = vn_nary_op_lookup_pieces (length, (tree_code) res_op->code,
7434 res_op->type, ops, &vnresult);
7435 /* If this is used from expression simplification make sure to
7436 return an available expression. */
7437 if (res && TREE_CODE (res) == SSA_NAME && mprts_hook && rpo_avail)
7438 res = rpo_avail->eliminate_avail (vn_context_bb, res);
7439 return res;
7442 /* Return a leader for OPs value that is valid at BB. */
7444 tree
7445 rpo_elim::eliminate_avail (basic_block bb, tree op)
7447 bool visited;
7448 tree valnum = SSA_VAL (op, &visited);
7449 /* If we didn't visit OP then it must be defined outside of the
7450 region we process and also dominate it. So it is available. */
7451 if (!visited)
7452 return op;
7453 if (TREE_CODE (valnum) == SSA_NAME)
7455 if (SSA_NAME_IS_DEFAULT_DEF (valnum))
7456 return valnum;
7457 vn_avail *av = VN_INFO (valnum)->avail;
7458 if (!av)
7459 return NULL_TREE;
7460 if (av->location == bb->index)
7461 /* On tramp3d 90% of the cases are here. */
7462 return ssa_name (av->leader);
7465 basic_block abb = BASIC_BLOCK_FOR_FN (cfun, av->location);
7466 /* ??? During elimination we have to use availability at the
7467 definition site of a use we try to replace. This
7468 is required to not run into inconsistencies because
7469 of dominated_by_p_w_unex behavior and removing a definition
7470 while not replacing all uses.
7471 ??? We could try to consistently walk dominators
7472 ignoring non-executable regions. The nearest common
7473 dominator of bb and abb is where we can stop walking. We
7474 may also be able to "pre-compute" (bits of) the next immediate
7475 (non-)dominator during the RPO walk when marking edges as
7476 executable. */
7477 if (dominated_by_p_w_unex (bb, abb, true))
7479 tree leader = ssa_name (av->leader);
7480 /* Prevent eliminations that break loop-closed SSA. */
7481 if (loops_state_satisfies_p (LOOP_CLOSED_SSA)
7482 && ! SSA_NAME_IS_DEFAULT_DEF (leader)
7483 && ! flow_bb_inside_loop_p (gimple_bb (SSA_NAME_DEF_STMT
7484 (leader))->loop_father,
7485 bb))
7486 return NULL_TREE;
7487 if (dump_file && (dump_flags & TDF_DETAILS))
7489 print_generic_expr (dump_file, leader);
7490 fprintf (dump_file, " is available for ");
7491 print_generic_expr (dump_file, valnum);
7492 fprintf (dump_file, "\n");
7494 /* On tramp3d 99% of the _remaining_ cases succeed at
7495 the first enty. */
7496 return leader;
7498 /* ??? Can we somehow skip to the immediate dominator
7499 RPO index (bb_to_rpo)? Again, maybe not worth, on
7500 tramp3d the worst number of elements in the vector is 9. */
7501 av = av->next;
7503 while (av);
7505 else if (valnum != VN_TOP)
7506 /* valnum is is_gimple_min_invariant. */
7507 return valnum;
7508 return NULL_TREE;
7511 /* Make LEADER a leader for its value at BB. */
7513 void
7514 rpo_elim::eliminate_push_avail (basic_block bb, tree leader)
7516 tree valnum = VN_INFO (leader)->valnum;
7517 if (valnum == VN_TOP
7518 || is_gimple_min_invariant (valnum))
7519 return;
7520 if (dump_file && (dump_flags & TDF_DETAILS))
7522 fprintf (dump_file, "Making available beyond BB%d ", bb->index);
7523 print_generic_expr (dump_file, leader);
7524 fprintf (dump_file, " for value ");
7525 print_generic_expr (dump_file, valnum);
7526 fprintf (dump_file, "\n");
7528 vn_ssa_aux_t value = VN_INFO (valnum);
7529 vn_avail *av;
7530 if (m_avail_freelist)
7532 av = m_avail_freelist;
7533 m_avail_freelist = m_avail_freelist->next;
7535 else
7536 av = XOBNEW (&vn_ssa_aux_obstack, vn_avail);
7537 av->location = bb->index;
7538 av->leader = SSA_NAME_VERSION (leader);
7539 av->next = value->avail;
7540 av->next_undo = last_pushed_avail;
7541 last_pushed_avail = value;
7542 value->avail = av;
7545 /* Valueization hook for RPO VN plus required state. */
7547 tree
7548 rpo_vn_valueize (tree name)
7550 if (TREE_CODE (name) == SSA_NAME)
7552 vn_ssa_aux_t val = VN_INFO (name);
7553 if (val)
7555 tree tem = val->valnum;
7556 if (tem != VN_TOP && tem != name)
7558 if (TREE_CODE (tem) != SSA_NAME)
7559 return tem;
7560 /* For all values we only valueize to an available leader
7561 which means we can use SSA name info without restriction. */
7562 tem = rpo_avail->eliminate_avail (vn_context_bb, tem);
7563 if (tem)
7564 return tem;
7568 return name;
7571 /* Insert on PRED_E predicates derived from CODE OPS being true besides the
7572 inverted condition. */
7574 static void
7575 insert_related_predicates_on_edge (enum tree_code code, tree *ops, edge pred_e)
7577 switch (code)
7579 case LT_EXPR:
7580 /* a < b -> a {!,<}= b */
7581 vn_nary_op_insert_pieces_predicated (2, NE_EXPR, boolean_type_node,
7582 ops, boolean_true_node, 0, pred_e);
7583 vn_nary_op_insert_pieces_predicated (2, LE_EXPR, boolean_type_node,
7584 ops, boolean_true_node, 0, pred_e);
7585 /* a < b -> ! a {>,=} b */
7586 vn_nary_op_insert_pieces_predicated (2, GT_EXPR, boolean_type_node,
7587 ops, boolean_false_node, 0, pred_e);
7588 vn_nary_op_insert_pieces_predicated (2, EQ_EXPR, boolean_type_node,
7589 ops, boolean_false_node, 0, pred_e);
7590 break;
7591 case GT_EXPR:
7592 /* a > b -> a {!,>}= b */
7593 vn_nary_op_insert_pieces_predicated (2, NE_EXPR, boolean_type_node,
7594 ops, boolean_true_node, 0, pred_e);
7595 vn_nary_op_insert_pieces_predicated (2, GE_EXPR, boolean_type_node,
7596 ops, boolean_true_node, 0, pred_e);
7597 /* a > b -> ! a {<,=} b */
7598 vn_nary_op_insert_pieces_predicated (2, LT_EXPR, boolean_type_node,
7599 ops, boolean_false_node, 0, pred_e);
7600 vn_nary_op_insert_pieces_predicated (2, EQ_EXPR, boolean_type_node,
7601 ops, boolean_false_node, 0, pred_e);
7602 break;
7603 case EQ_EXPR:
7604 /* a == b -> ! a {<,>} b */
7605 vn_nary_op_insert_pieces_predicated (2, LT_EXPR, boolean_type_node,
7606 ops, boolean_false_node, 0, pred_e);
7607 vn_nary_op_insert_pieces_predicated (2, GT_EXPR, boolean_type_node,
7608 ops, boolean_false_node, 0, pred_e);
7609 break;
7610 case LE_EXPR:
7611 case GE_EXPR:
7612 case NE_EXPR:
7613 /* Nothing besides inverted condition. */
7614 break;
7615 default:;
7619 /* Main stmt worker for RPO VN, process BB. */
7621 static unsigned
7622 process_bb (rpo_elim &avail, basic_block bb,
7623 bool bb_visited, bool iterate_phis, bool iterate, bool eliminate,
7624 bool do_region, bitmap exit_bbs, bool skip_phis)
7626 unsigned todo = 0;
7627 edge_iterator ei;
7628 edge e;
7630 vn_context_bb = bb;
7632 /* If we are in loop-closed SSA preserve this state. This is
7633 relevant when called on regions from outside of FRE/PRE. */
7634 bool lc_phi_nodes = false;
7635 if (!skip_phis
7636 && loops_state_satisfies_p (LOOP_CLOSED_SSA))
7637 FOR_EACH_EDGE (e, ei, bb->preds)
7638 if (e->src->loop_father != e->dest->loop_father
7639 && flow_loop_nested_p (e->dest->loop_father,
7640 e->src->loop_father))
7642 lc_phi_nodes = true;
7643 break;
7646 /* When we visit a loop header substitute into loop info. */
7647 if (!iterate && eliminate && bb->loop_father->header == bb)
7649 /* Keep fields in sync with substitute_in_loop_info. */
7650 if (bb->loop_father->nb_iterations)
7651 bb->loop_father->nb_iterations
7652 = simplify_replace_tree (bb->loop_father->nb_iterations,
7653 NULL_TREE, NULL_TREE, &vn_valueize_for_srt);
7656 /* Value-number all defs in the basic-block. */
7657 if (!skip_phis)
7658 for (gphi_iterator gsi = gsi_start_phis (bb); !gsi_end_p (gsi);
7659 gsi_next (&gsi))
7661 gphi *phi = gsi.phi ();
7662 tree res = PHI_RESULT (phi);
7663 vn_ssa_aux_t res_info = VN_INFO (res);
7664 if (!bb_visited)
7666 gcc_assert (!res_info->visited);
7667 res_info->valnum = VN_TOP;
7668 res_info->visited = true;
7671 /* When not iterating force backedge values to varying. */
7672 visit_stmt (phi, !iterate_phis);
7673 if (virtual_operand_p (res))
7674 continue;
7676 /* Eliminate */
7677 /* The interesting case is gcc.dg/tree-ssa/pr22230.c for correctness
7678 how we handle backedges and availability.
7679 And gcc.dg/tree-ssa/ssa-sccvn-2.c for optimization. */
7680 tree val = res_info->valnum;
7681 if (res != val && !iterate && eliminate)
7683 if (tree leader = avail.eliminate_avail (bb, res))
7685 if (leader != res
7686 /* Preserve loop-closed SSA form. */
7687 && (! lc_phi_nodes
7688 || is_gimple_min_invariant (leader)))
7690 if (dump_file && (dump_flags & TDF_DETAILS))
7692 fprintf (dump_file, "Replaced redundant PHI node "
7693 "defining ");
7694 print_generic_expr (dump_file, res);
7695 fprintf (dump_file, " with ");
7696 print_generic_expr (dump_file, leader);
7697 fprintf (dump_file, "\n");
7699 avail.eliminations++;
7701 if (may_propagate_copy (res, leader))
7703 /* Schedule for removal. */
7704 avail.to_remove.safe_push (phi);
7705 continue;
7707 /* ??? Else generate a copy stmt. */
7711 /* Only make defs available that not already are. But make
7712 sure loop-closed SSA PHI node defs are picked up for
7713 downstream uses. */
7714 if (lc_phi_nodes
7715 || res == val
7716 || ! avail.eliminate_avail (bb, res))
7717 avail.eliminate_push_avail (bb, res);
7720 /* For empty BBs mark outgoing edges executable. For non-empty BBs
7721 we do this when processing the last stmt as we have to do this
7722 before elimination which otherwise forces GIMPLE_CONDs to
7723 if (1 != 0) style when seeing non-executable edges. */
7724 if (gsi_end_p (gsi_start_bb (bb)))
7726 FOR_EACH_EDGE (e, ei, bb->succs)
7728 if (!(e->flags & EDGE_EXECUTABLE))
7730 if (dump_file && (dump_flags & TDF_DETAILS))
7731 fprintf (dump_file,
7732 "marking outgoing edge %d -> %d executable\n",
7733 e->src->index, e->dest->index);
7734 e->flags |= EDGE_EXECUTABLE;
7735 e->dest->flags |= BB_EXECUTABLE;
7737 else if (!(e->dest->flags & BB_EXECUTABLE))
7739 if (dump_file && (dump_flags & TDF_DETAILS))
7740 fprintf (dump_file,
7741 "marking destination block %d reachable\n",
7742 e->dest->index);
7743 e->dest->flags |= BB_EXECUTABLE;
7747 for (gimple_stmt_iterator gsi = gsi_start_bb (bb);
7748 !gsi_end_p (gsi); gsi_next (&gsi))
7750 ssa_op_iter i;
7751 tree op;
7752 if (!bb_visited)
7754 FOR_EACH_SSA_TREE_OPERAND (op, gsi_stmt (gsi), i, SSA_OP_ALL_DEFS)
7756 vn_ssa_aux_t op_info = VN_INFO (op);
7757 gcc_assert (!op_info->visited);
7758 op_info->valnum = VN_TOP;
7759 op_info->visited = true;
7762 /* We somehow have to deal with uses that are not defined
7763 in the processed region. Forcing unvisited uses to
7764 varying here doesn't play well with def-use following during
7765 expression simplification, so we deal with this by checking
7766 the visited flag in SSA_VAL. */
7769 visit_stmt (gsi_stmt (gsi));
7771 gimple *last = gsi_stmt (gsi);
7772 e = NULL;
7773 switch (gimple_code (last))
7775 case GIMPLE_SWITCH:
7776 e = find_taken_edge (bb, vn_valueize (gimple_switch_index
7777 (as_a <gswitch *> (last))));
7778 break;
7779 case GIMPLE_COND:
7781 tree lhs = vn_valueize (gimple_cond_lhs (last));
7782 tree rhs = vn_valueize (gimple_cond_rhs (last));
7783 tree val = gimple_simplify (gimple_cond_code (last),
7784 boolean_type_node, lhs, rhs,
7785 NULL, vn_valueize);
7786 /* If the condition didn't simplfy see if we have recorded
7787 an expression from sofar taken edges. */
7788 if (! val || TREE_CODE (val) != INTEGER_CST)
7790 vn_nary_op_t vnresult;
7791 tree ops[2];
7792 ops[0] = lhs;
7793 ops[1] = rhs;
7794 val = vn_nary_op_lookup_pieces (2, gimple_cond_code (last),
7795 boolean_type_node, ops,
7796 &vnresult);
7797 /* Did we get a predicated value? */
7798 if (! val && vnresult && vnresult->predicated_values)
7800 val = vn_nary_op_get_predicated_value (vnresult, bb);
7801 if (val && dump_file && (dump_flags & TDF_DETAILS))
7803 fprintf (dump_file, "Got predicated value ");
7804 print_generic_expr (dump_file, val, TDF_NONE);
7805 fprintf (dump_file, " for ");
7806 print_gimple_stmt (dump_file, last, TDF_SLIM);
7810 if (val)
7811 e = find_taken_edge (bb, val);
7812 if (! e)
7814 /* If we didn't manage to compute the taken edge then
7815 push predicated expressions for the condition itself
7816 and related conditions to the hashtables. This allows
7817 simplification of redundant conditions which is
7818 important as early cleanup. */
7819 edge true_e, false_e;
7820 extract_true_false_edges_from_block (bb, &true_e, &false_e);
7821 enum tree_code code = gimple_cond_code (last);
7822 enum tree_code icode
7823 = invert_tree_comparison (code, HONOR_NANS (lhs));
7824 tree ops[2];
7825 ops[0] = lhs;
7826 ops[1] = rhs;
7827 if (do_region
7828 && bitmap_bit_p (exit_bbs, true_e->dest->index))
7829 true_e = NULL;
7830 if (do_region
7831 && bitmap_bit_p (exit_bbs, false_e->dest->index))
7832 false_e = NULL;
7833 if (true_e)
7834 vn_nary_op_insert_pieces_predicated
7835 (2, code, boolean_type_node, ops,
7836 boolean_true_node, 0, true_e);
7837 if (false_e)
7838 vn_nary_op_insert_pieces_predicated
7839 (2, code, boolean_type_node, ops,
7840 boolean_false_node, 0, false_e);
7841 if (icode != ERROR_MARK)
7843 if (true_e)
7844 vn_nary_op_insert_pieces_predicated
7845 (2, icode, boolean_type_node, ops,
7846 boolean_false_node, 0, true_e);
7847 if (false_e)
7848 vn_nary_op_insert_pieces_predicated
7849 (2, icode, boolean_type_node, ops,
7850 boolean_true_node, 0, false_e);
7852 /* Relax for non-integers, inverted condition handled
7853 above. */
7854 if (INTEGRAL_TYPE_P (TREE_TYPE (lhs)))
7856 if (true_e)
7857 insert_related_predicates_on_edge (code, ops, true_e);
7858 if (false_e)
7859 insert_related_predicates_on_edge (icode, ops, false_e);
7862 break;
7864 case GIMPLE_GOTO:
7865 e = find_taken_edge (bb, vn_valueize (gimple_goto_dest (last)));
7866 break;
7867 default:
7868 e = NULL;
7870 if (e)
7872 todo = TODO_cleanup_cfg;
7873 if (!(e->flags & EDGE_EXECUTABLE))
7875 if (dump_file && (dump_flags & TDF_DETAILS))
7876 fprintf (dump_file,
7877 "marking known outgoing %sedge %d -> %d executable\n",
7878 e->flags & EDGE_DFS_BACK ? "back-" : "",
7879 e->src->index, e->dest->index);
7880 e->flags |= EDGE_EXECUTABLE;
7881 e->dest->flags |= BB_EXECUTABLE;
7883 else if (!(e->dest->flags & BB_EXECUTABLE))
7885 if (dump_file && (dump_flags & TDF_DETAILS))
7886 fprintf (dump_file,
7887 "marking destination block %d reachable\n",
7888 e->dest->index);
7889 e->dest->flags |= BB_EXECUTABLE;
7892 else if (gsi_one_before_end_p (gsi))
7894 FOR_EACH_EDGE (e, ei, bb->succs)
7896 if (!(e->flags & EDGE_EXECUTABLE))
7898 if (dump_file && (dump_flags & TDF_DETAILS))
7899 fprintf (dump_file,
7900 "marking outgoing edge %d -> %d executable\n",
7901 e->src->index, e->dest->index);
7902 e->flags |= EDGE_EXECUTABLE;
7903 e->dest->flags |= BB_EXECUTABLE;
7905 else if (!(e->dest->flags & BB_EXECUTABLE))
7907 if (dump_file && (dump_flags & TDF_DETAILS))
7908 fprintf (dump_file,
7909 "marking destination block %d reachable\n",
7910 e->dest->index);
7911 e->dest->flags |= BB_EXECUTABLE;
7916 /* Eliminate. That also pushes to avail. */
7917 if (eliminate && ! iterate)
7918 avail.eliminate_stmt (bb, &gsi);
7919 else
7920 /* If not eliminating, make all not already available defs
7921 available. */
7922 FOR_EACH_SSA_TREE_OPERAND (op, gsi_stmt (gsi), i, SSA_OP_DEF)
7923 if (! avail.eliminate_avail (bb, op))
7924 avail.eliminate_push_avail (bb, op);
7927 /* Eliminate in destination PHI arguments. Always substitute in dest
7928 PHIs, even for non-executable edges. This handles region
7929 exits PHIs. */
7930 if (!iterate && eliminate)
7931 FOR_EACH_EDGE (e, ei, bb->succs)
7932 for (gphi_iterator gsi = gsi_start_phis (e->dest);
7933 !gsi_end_p (gsi); gsi_next (&gsi))
7935 gphi *phi = gsi.phi ();
7936 use_operand_p use_p = PHI_ARG_DEF_PTR_FROM_EDGE (phi, e);
7937 tree arg = USE_FROM_PTR (use_p);
7938 if (TREE_CODE (arg) != SSA_NAME
7939 || virtual_operand_p (arg))
7940 continue;
7941 tree sprime;
7942 if (SSA_NAME_IS_DEFAULT_DEF (arg))
7944 sprime = SSA_VAL (arg);
7945 gcc_assert (TREE_CODE (sprime) != SSA_NAME
7946 || SSA_NAME_IS_DEFAULT_DEF (sprime));
7948 else
7949 /* Look for sth available at the definition block of the argument.
7950 This avoids inconsistencies between availability there which
7951 decides if the stmt can be removed and availability at the
7952 use site. The SSA property ensures that things available
7953 at the definition are also available at uses. */
7954 sprime = avail.eliminate_avail (gimple_bb (SSA_NAME_DEF_STMT (arg)),
7955 arg);
7956 if (sprime
7957 && sprime != arg
7958 && may_propagate_copy (arg, sprime))
7959 propagate_value (use_p, sprime);
7962 vn_context_bb = NULL;
7963 return todo;
7966 /* Unwind state per basic-block. */
7968 struct unwind_state
7970 /* Times this block has been visited. */
7971 unsigned visited;
7972 /* Whether to handle this as iteration point or whether to treat
7973 incoming backedge PHI values as varying. */
7974 bool iterate;
7975 /* Maximum RPO index this block is reachable from. */
7976 int max_rpo;
7977 /* Unwind state. */
7978 void *ob_top;
7979 vn_reference_t ref_top;
7980 vn_phi_t phi_top;
7981 vn_nary_op_t nary_top;
7982 vn_avail *avail_top;
7985 /* Unwind the RPO VN state for iteration. */
7987 static void
7988 do_unwind (unwind_state *to, rpo_elim &avail)
7990 gcc_assert (to->iterate);
7991 for (; last_inserted_nary != to->nary_top;
7992 last_inserted_nary = last_inserted_nary->next)
7994 vn_nary_op_t *slot;
7995 slot = valid_info->nary->find_slot_with_hash
7996 (last_inserted_nary, last_inserted_nary->hashcode, NO_INSERT);
7997 /* Predication causes the need to restore previous state. */
7998 if ((*slot)->unwind_to)
7999 *slot = (*slot)->unwind_to;
8000 else
8001 valid_info->nary->clear_slot (slot);
8003 for (; last_inserted_phi != to->phi_top;
8004 last_inserted_phi = last_inserted_phi->next)
8006 vn_phi_t *slot;
8007 slot = valid_info->phis->find_slot_with_hash
8008 (last_inserted_phi, last_inserted_phi->hashcode, NO_INSERT);
8009 valid_info->phis->clear_slot (slot);
8011 for (; last_inserted_ref != to->ref_top;
8012 last_inserted_ref = last_inserted_ref->next)
8014 vn_reference_t *slot;
8015 slot = valid_info->references->find_slot_with_hash
8016 (last_inserted_ref, last_inserted_ref->hashcode, NO_INSERT);
8017 (*slot)->operands.release ();
8018 valid_info->references->clear_slot (slot);
8020 obstack_free (&vn_tables_obstack, to->ob_top);
8022 /* Prune [rpo_idx, ] from avail. */
8023 for (; last_pushed_avail && last_pushed_avail->avail != to->avail_top;)
8025 vn_ssa_aux_t val = last_pushed_avail;
8026 vn_avail *av = val->avail;
8027 val->avail = av->next;
8028 last_pushed_avail = av->next_undo;
8029 av->next = avail.m_avail_freelist;
8030 avail.m_avail_freelist = av;
8034 /* Do VN on a SEME region specified by ENTRY and EXIT_BBS in FN.
8035 If ITERATE is true then treat backedges optimistically as not
8036 executed and iterate. If ELIMINATE is true then perform
8037 elimination, otherwise leave that to the caller. */
8039 static unsigned
8040 do_rpo_vn_1 (function *fn, edge entry, bitmap exit_bbs,
8041 bool iterate, bool eliminate, vn_lookup_kind kind)
8043 unsigned todo = 0;
8044 default_vn_walk_kind = kind;
8046 /* We currently do not support region-based iteration when
8047 elimination is requested. */
8048 gcc_assert (!entry || !iterate || !eliminate);
8049 /* When iterating we need loop info up-to-date. */
8050 gcc_assert (!iterate || !loops_state_satisfies_p (LOOPS_NEED_FIXUP));
8052 bool do_region = entry != NULL;
8053 if (!do_region)
8055 entry = single_succ_edge (ENTRY_BLOCK_PTR_FOR_FN (fn));
8056 exit_bbs = BITMAP_ALLOC (NULL);
8057 bitmap_set_bit (exit_bbs, EXIT_BLOCK);
8060 /* Clear EDGE_DFS_BACK on "all" entry edges, RPO order compute will
8061 re-mark those that are contained in the region. */
8062 edge_iterator ei;
8063 edge e;
8064 FOR_EACH_EDGE (e, ei, entry->dest->preds)
8065 e->flags &= ~EDGE_DFS_BACK;
8067 int *rpo = XNEWVEC (int, n_basic_blocks_for_fn (fn) - NUM_FIXED_BLOCKS);
8068 auto_vec<std::pair<int, int> > toplevel_scc_extents;
8069 int n = rev_post_order_and_mark_dfs_back_seme
8070 (fn, entry, exit_bbs, true, rpo, !iterate ? &toplevel_scc_extents : NULL);
8072 if (!do_region)
8073 BITMAP_FREE (exit_bbs);
8075 /* If there are any non-DFS_BACK edges into entry->dest skip
8076 processing PHI nodes for that block. This supports
8077 value-numbering loop bodies w/o the actual loop. */
8078 FOR_EACH_EDGE (e, ei, entry->dest->preds)
8079 if (e != entry
8080 && !(e->flags & EDGE_DFS_BACK))
8081 break;
8082 bool skip_entry_phis = e != NULL;
8083 if (skip_entry_phis && dump_file && (dump_flags & TDF_DETAILS))
8084 fprintf (dump_file, "Region does not contain all edges into "
8085 "the entry block, skipping its PHIs.\n");
8087 int *bb_to_rpo = XNEWVEC (int, last_basic_block_for_fn (fn));
8088 for (int i = 0; i < n; ++i)
8089 bb_to_rpo[rpo[i]] = i;
8091 unwind_state *rpo_state = XNEWVEC (unwind_state, n);
8093 rpo_elim avail (entry->dest);
8094 rpo_avail = &avail;
8096 /* Verify we have no extra entries into the region. */
8097 if (flag_checking && do_region)
8099 auto_bb_flag bb_in_region (fn);
8100 for (int i = 0; i < n; ++i)
8102 basic_block bb = BASIC_BLOCK_FOR_FN (fn, rpo[i]);
8103 bb->flags |= bb_in_region;
8105 /* We can't merge the first two loops because we cannot rely
8106 on EDGE_DFS_BACK for edges not within the region. But if
8107 we decide to always have the bb_in_region flag we can
8108 do the checking during the RPO walk itself (but then it's
8109 also easy to handle MEME conservatively). */
8110 for (int i = 0; i < n; ++i)
8112 basic_block bb = BASIC_BLOCK_FOR_FN (fn, rpo[i]);
8113 edge e;
8114 edge_iterator ei;
8115 FOR_EACH_EDGE (e, ei, bb->preds)
8116 gcc_assert (e == entry
8117 || (skip_entry_phis && bb == entry->dest)
8118 || (e->src->flags & bb_in_region));
8120 for (int i = 0; i < n; ++i)
8122 basic_block bb = BASIC_BLOCK_FOR_FN (fn, rpo[i]);
8123 bb->flags &= ~bb_in_region;
8127 /* Create the VN state. For the initial size of the various hashtables
8128 use a heuristic based on region size and number of SSA names. */
8129 unsigned region_size = (((unsigned HOST_WIDE_INT)n * num_ssa_names)
8130 / (n_basic_blocks_for_fn (fn) - NUM_FIXED_BLOCKS));
8131 VN_TOP = create_tmp_var_raw (void_type_node, "vn_top");
8132 next_value_id = 1;
8133 next_constant_value_id = -1;
8135 vn_ssa_aux_hash = new hash_table <vn_ssa_aux_hasher> (region_size * 2);
8136 gcc_obstack_init (&vn_ssa_aux_obstack);
8138 gcc_obstack_init (&vn_tables_obstack);
8139 gcc_obstack_init (&vn_tables_insert_obstack);
8140 valid_info = XCNEW (struct vn_tables_s);
8141 allocate_vn_table (valid_info, region_size);
8142 last_inserted_ref = NULL;
8143 last_inserted_phi = NULL;
8144 last_inserted_nary = NULL;
8145 last_pushed_avail = NULL;
8147 vn_valueize = rpo_vn_valueize;
8149 /* Initialize the unwind state and edge/BB executable state. */
8150 unsigned curr_scc = 0;
8151 for (int i = 0; i < n; ++i)
8153 basic_block bb = BASIC_BLOCK_FOR_FN (fn, rpo[i]);
8154 rpo_state[i].visited = 0;
8155 rpo_state[i].max_rpo = i;
8156 if (!iterate && curr_scc < toplevel_scc_extents.length ())
8158 if (i >= toplevel_scc_extents[curr_scc].first
8159 && i <= toplevel_scc_extents[curr_scc].second)
8160 rpo_state[i].max_rpo = toplevel_scc_extents[curr_scc].second;
8161 if (i == toplevel_scc_extents[curr_scc].second)
8162 curr_scc++;
8164 bb->flags &= ~BB_EXECUTABLE;
8165 bool has_backedges = false;
8166 edge e;
8167 edge_iterator ei;
8168 FOR_EACH_EDGE (e, ei, bb->preds)
8170 if (e->flags & EDGE_DFS_BACK)
8171 has_backedges = true;
8172 e->flags &= ~EDGE_EXECUTABLE;
8173 if (iterate || e == entry || (skip_entry_phis && bb == entry->dest))
8174 continue;
8176 rpo_state[i].iterate = iterate && has_backedges;
8178 entry->flags |= EDGE_EXECUTABLE;
8179 entry->dest->flags |= BB_EXECUTABLE;
8181 /* As heuristic to improve compile-time we handle only the N innermost
8182 loops and the outermost one optimistically. */
8183 if (iterate)
8185 unsigned max_depth = param_rpo_vn_max_loop_depth;
8186 for (auto loop : loops_list (cfun, LI_ONLY_INNERMOST))
8187 if (loop_depth (loop) > max_depth)
8188 for (unsigned i = 2;
8189 i < loop_depth (loop) - max_depth; ++i)
8191 basic_block header = superloop_at_depth (loop, i)->header;
8192 bool non_latch_backedge = false;
8193 edge e;
8194 edge_iterator ei;
8195 FOR_EACH_EDGE (e, ei, header->preds)
8196 if (e->flags & EDGE_DFS_BACK)
8198 /* There can be a non-latch backedge into the header
8199 which is part of an outer irreducible region. We
8200 cannot avoid iterating this block then. */
8201 if (!dominated_by_p (CDI_DOMINATORS,
8202 e->src, e->dest))
8204 if (dump_file && (dump_flags & TDF_DETAILS))
8205 fprintf (dump_file, "non-latch backedge %d -> %d "
8206 "forces iteration of loop %d\n",
8207 e->src->index, e->dest->index, loop->num);
8208 non_latch_backedge = true;
8210 else
8211 e->flags |= EDGE_EXECUTABLE;
8213 rpo_state[bb_to_rpo[header->index]].iterate = non_latch_backedge;
8217 uint64_t nblk = 0;
8218 int idx = 0;
8219 if (iterate)
8220 /* Go and process all blocks, iterating as necessary. */
8223 basic_block bb = BASIC_BLOCK_FOR_FN (fn, rpo[idx]);
8225 /* If the block has incoming backedges remember unwind state. This
8226 is required even for non-executable blocks since in irreducible
8227 regions we might reach them via the backedge and re-start iterating
8228 from there.
8229 Note we can individually mark blocks with incoming backedges to
8230 not iterate where we then handle PHIs conservatively. We do that
8231 heuristically to reduce compile-time for degenerate cases. */
8232 if (rpo_state[idx].iterate)
8234 rpo_state[idx].ob_top = obstack_alloc (&vn_tables_obstack, 0);
8235 rpo_state[idx].ref_top = last_inserted_ref;
8236 rpo_state[idx].phi_top = last_inserted_phi;
8237 rpo_state[idx].nary_top = last_inserted_nary;
8238 rpo_state[idx].avail_top
8239 = last_pushed_avail ? last_pushed_avail->avail : NULL;
8242 if (!(bb->flags & BB_EXECUTABLE))
8244 if (dump_file && (dump_flags & TDF_DETAILS))
8245 fprintf (dump_file, "Block %d: BB%d found not executable\n",
8246 idx, bb->index);
8247 idx++;
8248 continue;
8251 if (dump_file && (dump_flags & TDF_DETAILS))
8252 fprintf (dump_file, "Processing block %d: BB%d\n", idx, bb->index);
8253 nblk++;
8254 todo |= process_bb (avail, bb,
8255 rpo_state[idx].visited != 0,
8256 rpo_state[idx].iterate,
8257 iterate, eliminate, do_region, exit_bbs, false);
8258 rpo_state[idx].visited++;
8260 /* Verify if changed values flow over executable outgoing backedges
8261 and those change destination PHI values (that's the thing we
8262 can easily verify). Reduce over all such edges to the farthest
8263 away PHI. */
8264 int iterate_to = -1;
8265 edge_iterator ei;
8266 edge e;
8267 FOR_EACH_EDGE (e, ei, bb->succs)
8268 if ((e->flags & (EDGE_DFS_BACK|EDGE_EXECUTABLE))
8269 == (EDGE_DFS_BACK|EDGE_EXECUTABLE)
8270 && rpo_state[bb_to_rpo[e->dest->index]].iterate)
8272 int destidx = bb_to_rpo[e->dest->index];
8273 if (!rpo_state[destidx].visited)
8275 if (dump_file && (dump_flags & TDF_DETAILS))
8276 fprintf (dump_file, "Unvisited destination %d\n",
8277 e->dest->index);
8278 if (iterate_to == -1 || destidx < iterate_to)
8279 iterate_to = destidx;
8280 continue;
8282 if (dump_file && (dump_flags & TDF_DETAILS))
8283 fprintf (dump_file, "Looking for changed values of backedge"
8284 " %d->%d destination PHIs\n",
8285 e->src->index, e->dest->index);
8286 vn_context_bb = e->dest;
8287 gphi_iterator gsi;
8288 for (gsi = gsi_start_phis (e->dest);
8289 !gsi_end_p (gsi); gsi_next (&gsi))
8291 bool inserted = false;
8292 /* While we'd ideally just iterate on value changes
8293 we CSE PHIs and do that even across basic-block
8294 boundaries. So even hashtable state changes can
8295 be important (which is roughly equivalent to
8296 PHI argument value changes). To not excessively
8297 iterate because of that we track whether a PHI
8298 was CSEd to with GF_PLF_1. */
8299 bool phival_changed;
8300 if ((phival_changed = visit_phi (gsi.phi (),
8301 &inserted, false))
8302 || (inserted && gimple_plf (gsi.phi (), GF_PLF_1)))
8304 if (!phival_changed
8305 && dump_file && (dump_flags & TDF_DETAILS))
8306 fprintf (dump_file, "PHI was CSEd and hashtable "
8307 "state (changed)\n");
8308 if (iterate_to == -1 || destidx < iterate_to)
8309 iterate_to = destidx;
8310 break;
8313 vn_context_bb = NULL;
8315 if (iterate_to != -1)
8317 do_unwind (&rpo_state[iterate_to], avail);
8318 idx = iterate_to;
8319 if (dump_file && (dump_flags & TDF_DETAILS))
8320 fprintf (dump_file, "Iterating to %d BB%d\n",
8321 iterate_to, rpo[iterate_to]);
8322 continue;
8325 idx++;
8327 while (idx < n);
8329 else /* !iterate */
8331 /* Process all blocks greedily with a worklist that enforces RPO
8332 processing of reachable blocks. */
8333 auto_bitmap worklist;
8334 bitmap_set_bit (worklist, 0);
8335 while (!bitmap_empty_p (worklist))
8337 int idx = bitmap_first_set_bit (worklist);
8338 bitmap_clear_bit (worklist, idx);
8339 basic_block bb = BASIC_BLOCK_FOR_FN (fn, rpo[idx]);
8340 gcc_assert ((bb->flags & BB_EXECUTABLE)
8341 && !rpo_state[idx].visited);
8343 if (dump_file && (dump_flags & TDF_DETAILS))
8344 fprintf (dump_file, "Processing block %d: BB%d\n", idx, bb->index);
8346 /* When we run into predecessor edges where we cannot trust its
8347 executable state mark them executable so PHI processing will
8348 be conservative.
8349 ??? Do we need to force arguments flowing over that edge
8350 to be varying or will they even always be? */
8351 edge_iterator ei;
8352 edge e;
8353 FOR_EACH_EDGE (e, ei, bb->preds)
8354 if (!(e->flags & EDGE_EXECUTABLE)
8355 && (bb == entry->dest
8356 || (!rpo_state[bb_to_rpo[e->src->index]].visited
8357 && (rpo_state[bb_to_rpo[e->src->index]].max_rpo
8358 >= (int)idx))))
8360 if (dump_file && (dump_flags & TDF_DETAILS))
8361 fprintf (dump_file, "Cannot trust state of predecessor "
8362 "edge %d -> %d, marking executable\n",
8363 e->src->index, e->dest->index);
8364 e->flags |= EDGE_EXECUTABLE;
8367 nblk++;
8368 todo |= process_bb (avail, bb, false, false, false, eliminate,
8369 do_region, exit_bbs,
8370 skip_entry_phis && bb == entry->dest);
8371 rpo_state[idx].visited++;
8373 FOR_EACH_EDGE (e, ei, bb->succs)
8374 if ((e->flags & EDGE_EXECUTABLE)
8375 && e->dest->index != EXIT_BLOCK
8376 && (!do_region || !bitmap_bit_p (exit_bbs, e->dest->index))
8377 && !rpo_state[bb_to_rpo[e->dest->index]].visited)
8378 bitmap_set_bit (worklist, bb_to_rpo[e->dest->index]);
8382 /* If statistics or dump file active. */
8383 int nex = 0;
8384 unsigned max_visited = 1;
8385 for (int i = 0; i < n; ++i)
8387 basic_block bb = BASIC_BLOCK_FOR_FN (fn, rpo[i]);
8388 if (bb->flags & BB_EXECUTABLE)
8389 nex++;
8390 statistics_histogram_event (cfun, "RPO block visited times",
8391 rpo_state[i].visited);
8392 if (rpo_state[i].visited > max_visited)
8393 max_visited = rpo_state[i].visited;
8395 unsigned nvalues = 0, navail = 0;
8396 for (hash_table<vn_ssa_aux_hasher>::iterator i = vn_ssa_aux_hash->begin ();
8397 i != vn_ssa_aux_hash->end (); ++i)
8399 nvalues++;
8400 vn_avail *av = (*i)->avail;
8401 while (av)
8403 navail++;
8404 av = av->next;
8407 statistics_counter_event (cfun, "RPO blocks", n);
8408 statistics_counter_event (cfun, "RPO blocks visited", nblk);
8409 statistics_counter_event (cfun, "RPO blocks executable", nex);
8410 statistics_histogram_event (cfun, "RPO iterations", 10*nblk / nex);
8411 statistics_histogram_event (cfun, "RPO num values", nvalues);
8412 statistics_histogram_event (cfun, "RPO num avail", navail);
8413 statistics_histogram_event (cfun, "RPO num lattice",
8414 vn_ssa_aux_hash->elements ());
8415 if (dump_file && (dump_flags & (TDF_DETAILS|TDF_STATS)))
8417 fprintf (dump_file, "RPO iteration over %d blocks visited %" PRIu64
8418 " blocks in total discovering %d executable blocks iterating "
8419 "%d.%d times, a block was visited max. %u times\n",
8420 n, nblk, nex,
8421 (int)((10*nblk / nex)/10), (int)((10*nblk / nex)%10),
8422 max_visited);
8423 fprintf (dump_file, "RPO tracked %d values available at %d locations "
8424 "and %" PRIu64 " lattice elements\n",
8425 nvalues, navail, (uint64_t) vn_ssa_aux_hash->elements ());
8428 if (eliminate)
8430 /* When !iterate we already performed elimination during the RPO
8431 walk. */
8432 if (iterate)
8434 /* Elimination for region-based VN needs to be done within the
8435 RPO walk. */
8436 gcc_assert (! do_region);
8437 /* Note we can't use avail.walk here because that gets confused
8438 by the existing availability and it will be less efficient
8439 as well. */
8440 todo |= eliminate_with_rpo_vn (NULL);
8442 else
8443 todo |= avail.eliminate_cleanup (do_region);
8446 vn_valueize = NULL;
8447 rpo_avail = NULL;
8449 XDELETEVEC (bb_to_rpo);
8450 XDELETEVEC (rpo);
8451 XDELETEVEC (rpo_state);
8453 return todo;
8456 /* Region-based entry for RPO VN. Performs value-numbering and elimination
8457 on the SEME region specified by ENTRY and EXIT_BBS. If ENTRY is not
8458 the only edge into the region at ENTRY->dest PHI nodes in ENTRY->dest
8459 are not considered.
8460 If ITERATE is true then treat backedges optimistically as not
8461 executed and iterate. If ELIMINATE is true then perform
8462 elimination, otherwise leave that to the caller.
8463 KIND specifies the amount of work done for handling memory operations. */
8465 unsigned
8466 do_rpo_vn (function *fn, edge entry, bitmap exit_bbs,
8467 bool iterate, bool eliminate, vn_lookup_kind kind)
8469 auto_timevar tv (TV_TREE_RPO_VN);
8470 unsigned todo = do_rpo_vn_1 (fn, entry, exit_bbs, iterate, eliminate, kind);
8471 free_rpo_vn ();
8472 return todo;
8476 namespace {
8478 const pass_data pass_data_fre =
8480 GIMPLE_PASS, /* type */
8481 "fre", /* name */
8482 OPTGROUP_NONE, /* optinfo_flags */
8483 TV_TREE_FRE, /* tv_id */
8484 ( PROP_cfg | PROP_ssa ), /* properties_required */
8485 0, /* properties_provided */
8486 0, /* properties_destroyed */
8487 0, /* todo_flags_start */
8488 0, /* todo_flags_finish */
8491 class pass_fre : public gimple_opt_pass
8493 public:
8494 pass_fre (gcc::context *ctxt)
8495 : gimple_opt_pass (pass_data_fre, ctxt), may_iterate (true)
8498 /* opt_pass methods: */
8499 opt_pass * clone () final override { return new pass_fre (m_ctxt); }
8500 void set_pass_param (unsigned int n, bool param) final override
8502 gcc_assert (n == 0);
8503 may_iterate = param;
8505 bool gate (function *) final override
8507 return flag_tree_fre != 0 && (may_iterate || optimize > 1);
8509 unsigned int execute (function *) final override;
8511 private:
8512 bool may_iterate;
8513 }; // class pass_fre
8515 unsigned int
8516 pass_fre::execute (function *fun)
8518 unsigned todo = 0;
8520 /* At -O[1g] use the cheap non-iterating mode. */
8521 bool iterate_p = may_iterate && (optimize > 1);
8522 calculate_dominance_info (CDI_DOMINATORS);
8523 if (iterate_p)
8524 loop_optimizer_init (AVOID_CFG_MODIFICATIONS);
8526 todo = do_rpo_vn_1 (fun, NULL, NULL, iterate_p, true, VN_WALKREWRITE);
8527 free_rpo_vn ();
8529 if (iterate_p)
8530 loop_optimizer_finalize ();
8532 if (scev_initialized_p ())
8533 scev_reset_htab ();
8535 /* For late FRE after IVOPTs and unrolling, see if we can
8536 remove some TREE_ADDRESSABLE and rewrite stuff into SSA. */
8537 if (!may_iterate)
8538 todo |= TODO_update_address_taken;
8540 return todo;
8543 } // anon namespace
8545 gimple_opt_pass *
8546 make_pass_fre (gcc::context *ctxt)
8548 return new pass_fre (ctxt);
8551 #undef BB_EXECUTABLE