mips.c (mips_default_arch): Honor MIPS_ISA_DEFAULT.
[gcc.git] / gcc / tree-ssa.c
1 /* Miscellaneous SSA utility functions.
2 Copyright (C) 2001, 2002, 2003, 2004, 2005, 2007, 2008, 2009, 2010, 2011
3 Free Software Foundation, Inc.
4
5 This file is part of GCC.
6
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.
11
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.
16
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/>. */
20
21 #include "config.h"
22 #include "system.h"
23 #include "coretypes.h"
24 #include "tm.h"
25 #include "tree.h"
26 #include "flags.h"
27 #include "tm_p.h"
28 #include "target.h"
29 #include "ggc.h"
30 #include "langhooks.h"
31 #include "basic-block.h"
32 #include "output.h"
33 #include "function.h"
34 #include "tree-pretty-print.h"
35 #include "gimple-pretty-print.h"
36 #include "bitmap.h"
37 #include "pointer-set.h"
38 #include "tree-flow.h"
39 #include "gimple.h"
40 #include "tree-inline.h"
41 #include "timevar.h"
42 #include "hashtab.h"
43 #include "tree-dump.h"
44 #include "tree-pass.h"
45 #include "diagnostic-core.h"
46
47 /* Pointer map of variable mappings, keyed by edge. */
48 static struct pointer_map_t *edge_var_maps;
49
50
51 /* Add a mapping with PHI RESULT and PHI DEF associated with edge E. */
52
53 void
54 redirect_edge_var_map_add (edge e, tree result, tree def, source_location locus)
55 {
56 void **slot;
57 edge_var_map_vector old_head, head;
58 edge_var_map new_node;
59
60 if (edge_var_maps == NULL)
61 edge_var_maps = pointer_map_create ();
62
63 slot = pointer_map_insert (edge_var_maps, e);
64 old_head = head = (edge_var_map_vector) *slot;
65 if (!head)
66 {
67 head = VEC_alloc (edge_var_map, heap, 5);
68 *slot = head;
69 }
70 new_node.def = def;
71 new_node.result = result;
72 new_node.locus = locus;
73
74 VEC_safe_push (edge_var_map, heap, head, &new_node);
75 if (old_head != head)
76 {
77 /* The push did some reallocation. Update the pointer map. */
78 *slot = head;
79 }
80 }
81
82
83 /* Clear the var mappings in edge E. */
84
85 void
86 redirect_edge_var_map_clear (edge e)
87 {
88 void **slot;
89 edge_var_map_vector head;
90
91 if (!edge_var_maps)
92 return;
93
94 slot = pointer_map_contains (edge_var_maps, e);
95
96 if (slot)
97 {
98 head = (edge_var_map_vector) *slot;
99 VEC_free (edge_var_map, heap, head);
100 *slot = NULL;
101 }
102 }
103
104
105 /* Duplicate the redirected var mappings in OLDE in NEWE.
106
107 Since we can't remove a mapping, let's just duplicate it. This assumes a
108 pointer_map can have multiple edges mapping to the same var_map (many to
109 one mapping), since we don't remove the previous mappings. */
110
111 void
112 redirect_edge_var_map_dup (edge newe, edge olde)
113 {
114 void **new_slot, **old_slot;
115 edge_var_map_vector head;
116
117 if (!edge_var_maps)
118 return;
119
120 new_slot = pointer_map_insert (edge_var_maps, newe);
121 old_slot = pointer_map_contains (edge_var_maps, olde);
122 if (!old_slot)
123 return;
124 head = (edge_var_map_vector) *old_slot;
125
126 if (head)
127 *new_slot = VEC_copy (edge_var_map, heap, head);
128 else
129 *new_slot = VEC_alloc (edge_var_map, heap, 5);
130 }
131
132
133 /* Return the variable mappings for a given edge. If there is none, return
134 NULL. */
135
136 edge_var_map_vector
137 redirect_edge_var_map_vector (edge e)
138 {
139 void **slot;
140
141 /* Hey, what kind of idiot would... you'd be surprised. */
142 if (!edge_var_maps)
143 return NULL;
144
145 slot = pointer_map_contains (edge_var_maps, e);
146 if (!slot)
147 return NULL;
148
149 return (edge_var_map_vector) *slot;
150 }
151
152 /* Used by redirect_edge_var_map_destroy to free all memory. */
153
154 static bool
155 free_var_map_entry (const void *key ATTRIBUTE_UNUSED,
156 void **value,
157 void *data ATTRIBUTE_UNUSED)
158 {
159 edge_var_map_vector head = (edge_var_map_vector) *value;
160 VEC_free (edge_var_map, heap, head);
161 return true;
162 }
163
164 /* Clear the edge variable mappings. */
165
166 void
167 redirect_edge_var_map_destroy (void)
168 {
169 if (edge_var_maps)
170 {
171 pointer_map_traverse (edge_var_maps, free_var_map_entry, NULL);
172 pointer_map_destroy (edge_var_maps);
173 edge_var_maps = NULL;
174 }
175 }
176
177
178 /* Remove the corresponding arguments from the PHI nodes in E's
179 destination block and redirect it to DEST. Return redirected edge.
180 The list of removed arguments is stored in a vector accessed
181 through edge_var_maps. */
182
183 edge
184 ssa_redirect_edge (edge e, basic_block dest)
185 {
186 gimple_stmt_iterator gsi;
187 gimple phi;
188
189 redirect_edge_var_map_clear (e);
190
191 /* Remove the appropriate PHI arguments in E's destination block. */
192 for (gsi = gsi_start_phis (e->dest); !gsi_end_p (gsi); gsi_next (&gsi))
193 {
194 tree def;
195 source_location locus ;
196
197 phi = gsi_stmt (gsi);
198 def = gimple_phi_arg_def (phi, e->dest_idx);
199 locus = gimple_phi_arg_location (phi, e->dest_idx);
200
201 if (def == NULL_TREE)
202 continue;
203
204 redirect_edge_var_map_add (e, gimple_phi_result (phi), def, locus);
205 }
206
207 e = redirect_edge_succ_nodup (e, dest);
208
209 return e;
210 }
211
212
213 /* Add PHI arguments queued in PENDING_STMT list on edge E to edge
214 E->dest. */
215
216 void
217 flush_pending_stmts (edge e)
218 {
219 gimple phi;
220 edge_var_map_vector v;
221 edge_var_map *vm;
222 int i;
223 gimple_stmt_iterator gsi;
224
225 v = redirect_edge_var_map_vector (e);
226 if (!v)
227 return;
228
229 for (gsi = gsi_start_phis (e->dest), i = 0;
230 !gsi_end_p (gsi) && VEC_iterate (edge_var_map, v, i, vm);
231 gsi_next (&gsi), i++)
232 {
233 tree def;
234
235 phi = gsi_stmt (gsi);
236 def = redirect_edge_var_map_def (vm);
237 add_phi_arg (phi, def, e, redirect_edge_var_map_location (vm));
238 }
239
240 redirect_edge_var_map_clear (e);
241 }
242
243 /* Given a tree for an expression for which we might want to emit
244 locations or values in debug information (generally a variable, but
245 we might deal with other kinds of trees in the future), return the
246 tree that should be used as the variable of a DEBUG_BIND STMT or
247 VAR_LOCATION INSN or NOTE. Return NULL if VAR is not to be tracked. */
248
249 tree
250 target_for_debug_bind (tree var)
251 {
252 if (!MAY_HAVE_DEBUG_STMTS)
253 return NULL_TREE;
254
255 if (TREE_CODE (var) != VAR_DECL
256 && TREE_CODE (var) != PARM_DECL)
257 return NULL_TREE;
258
259 if (DECL_HAS_VALUE_EXPR_P (var))
260 return target_for_debug_bind (DECL_VALUE_EXPR (var));
261
262 if (DECL_IGNORED_P (var))
263 return NULL_TREE;
264
265 if (!is_gimple_reg (var))
266 return NULL_TREE;
267
268 return var;
269 }
270
271 /* Called via walk_tree, look for SSA_NAMEs that have already been
272 released. */
273
274 static tree
275 find_released_ssa_name (tree *tp, int *walk_subtrees, void *data_)
276 {
277 struct walk_stmt_info *wi = (struct walk_stmt_info *) data_;
278
279 if (wi && wi->is_lhs)
280 return NULL_TREE;
281
282 if (TREE_CODE (*tp) == SSA_NAME)
283 {
284 if (SSA_NAME_IN_FREE_LIST (*tp))
285 return *tp;
286
287 *walk_subtrees = 0;
288 }
289 else if (IS_TYPE_OR_DECL_P (*tp))
290 *walk_subtrees = 0;
291
292 return NULL_TREE;
293 }
294
295 /* Insert a DEBUG BIND stmt before the DEF of VAR if VAR is referenced
296 by other DEBUG stmts, and replace uses of the DEF with the
297 newly-created debug temp. */
298
299 void
300 insert_debug_temp_for_var_def (gimple_stmt_iterator *gsi, tree var)
301 {
302 imm_use_iterator imm_iter;
303 use_operand_p use_p;
304 gimple stmt;
305 gimple def_stmt = NULL;
306 int usecount = 0;
307 tree value = NULL;
308
309 if (!MAY_HAVE_DEBUG_STMTS)
310 return;
311
312 /* If this name has already been registered for replacement, do nothing
313 as anything that uses this name isn't in SSA form. */
314 if (name_registered_for_update_p (var))
315 return;
316
317 /* Check whether there are debug stmts that reference this variable and,
318 if there are, decide whether we should use a debug temp. */
319 FOR_EACH_IMM_USE_FAST (use_p, imm_iter, var)
320 {
321 stmt = USE_STMT (use_p);
322
323 if (!gimple_debug_bind_p (stmt))
324 continue;
325
326 if (usecount++)
327 break;
328
329 if (gimple_debug_bind_get_value (stmt) != var)
330 {
331 /* Count this as an additional use, so as to make sure we
332 use a temp unless VAR's definition has a SINGLE_RHS that
333 can be shared. */
334 usecount++;
335 break;
336 }
337 }
338
339 if (!usecount)
340 return;
341
342 if (gsi)
343 def_stmt = gsi_stmt (*gsi);
344 else
345 def_stmt = SSA_NAME_DEF_STMT (var);
346
347 /* If we didn't get an insertion point, and the stmt has already
348 been removed, we won't be able to insert the debug bind stmt, so
349 we'll have to drop debug information. */
350 if (gimple_code (def_stmt) == GIMPLE_PHI)
351 {
352 value = degenerate_phi_result (def_stmt);
353 if (value && walk_tree (&value, find_released_ssa_name, NULL, NULL))
354 value = NULL;
355 /* error_mark_node is what fixup_noreturn_call changes PHI arguments
356 to. */
357 else if (value == error_mark_node)
358 value = NULL;
359 }
360 else if (is_gimple_assign (def_stmt))
361 {
362 bool no_value = false;
363
364 if (!dom_info_available_p (CDI_DOMINATORS))
365 {
366 struct walk_stmt_info wi;
367
368 memset (&wi, 0, sizeof (wi));
369
370 /* When removing blocks without following reverse dominance
371 order, we may sometimes encounter SSA_NAMEs that have
372 already been released, referenced in other SSA_DEFs that
373 we're about to release. Consider:
374
375 <bb X>:
376 v_1 = foo;
377
378 <bb Y>:
379 w_2 = v_1 + bar;
380 # DEBUG w => w_2
381
382 If we deleted BB X first, propagating the value of w_2
383 won't do us any good. It's too late to recover their
384 original definition of v_1: when it was deleted, it was
385 only referenced in other DEFs, it couldn't possibly know
386 it should have been retained, and propagating every
387 single DEF just in case it might have to be propagated
388 into a DEBUG STMT would probably be too wasteful.
389
390 When dominator information is not readily available, we
391 check for and accept some loss of debug information. But
392 if it is available, there's no excuse for us to remove
393 blocks in the wrong order, so we don't even check for
394 dead SSA NAMEs. SSA verification shall catch any
395 errors. */
396 if ((!gsi && !gimple_bb (def_stmt))
397 || walk_gimple_op (def_stmt, find_released_ssa_name, &wi))
398 no_value = true;
399 }
400
401 if (!no_value)
402 value = gimple_assign_rhs_to_tree (def_stmt);
403 }
404
405 if (value)
406 {
407 /* If there's a single use of VAR, and VAR is the entire debug
408 expression (usecount would have been incremented again
409 otherwise), and the definition involves only constants and
410 SSA names, then we can propagate VALUE into this single use,
411 avoiding the temp.
412
413 We can also avoid using a temp if VALUE can be shared and
414 propagated into all uses, without generating expressions that
415 wouldn't be valid gimple RHSs.
416
417 Other cases that would require unsharing or non-gimple RHSs
418 are deferred to a debug temp, although we could avoid temps
419 at the expense of duplication of expressions. */
420
421 if (CONSTANT_CLASS_P (value)
422 || gimple_code (def_stmt) == GIMPLE_PHI
423 || (usecount == 1
424 && (!gimple_assign_single_p (def_stmt)
425 || is_gimple_min_invariant (value)))
426 || is_gimple_reg (value))
427 value = unshare_expr (value);
428 else
429 {
430 gimple def_temp;
431 tree vexpr = make_node (DEBUG_EXPR_DECL);
432
433 def_temp = gimple_build_debug_bind (vexpr,
434 unshare_expr (value),
435 def_stmt);
436
437 DECL_ARTIFICIAL (vexpr) = 1;
438 TREE_TYPE (vexpr) = TREE_TYPE (value);
439 if (DECL_P (value))
440 DECL_MODE (vexpr) = DECL_MODE (value);
441 else
442 DECL_MODE (vexpr) = TYPE_MODE (TREE_TYPE (value));
443
444 if (gsi)
445 gsi_insert_before (gsi, def_temp, GSI_SAME_STMT);
446 else
447 {
448 gimple_stmt_iterator ngsi = gsi_for_stmt (def_stmt);
449 gsi_insert_before (&ngsi, def_temp, GSI_SAME_STMT);
450 }
451
452 value = vexpr;
453 }
454 }
455
456 FOR_EACH_IMM_USE_STMT (stmt, imm_iter, var)
457 {
458 if (!gimple_debug_bind_p (stmt))
459 continue;
460
461 if (value)
462 {
463 FOR_EACH_IMM_USE_ON_STMT (use_p, imm_iter)
464 /* unshare_expr is not needed here. vexpr is either a
465 SINGLE_RHS, that can be safely shared, some other RHS
466 that was unshared when we found it had a single debug
467 use, or a DEBUG_EXPR_DECL, that can be safely
468 shared. */
469 SET_USE (use_p, value);
470 /* If we didn't replace uses with a debug decl fold the
471 resulting expression. Otherwise we end up with invalid IL. */
472 if (TREE_CODE (value) != DEBUG_EXPR_DECL)
473 fold_stmt_inplace (stmt);
474 }
475 else
476 gimple_debug_bind_reset_value (stmt);
477
478 update_stmt (stmt);
479 }
480 }
481
482
483 /* Insert a DEBUG BIND stmt before STMT for each DEF referenced by
484 other DEBUG stmts, and replace uses of the DEF with the
485 newly-created debug temp. */
486
487 void
488 insert_debug_temps_for_defs (gimple_stmt_iterator *gsi)
489 {
490 gimple stmt;
491 ssa_op_iter op_iter;
492 def_operand_p def_p;
493
494 if (!MAY_HAVE_DEBUG_STMTS)
495 return;
496
497 stmt = gsi_stmt (*gsi);
498
499 FOR_EACH_PHI_OR_STMT_DEF (def_p, stmt, op_iter, SSA_OP_DEF)
500 {
501 tree var = DEF_FROM_PTR (def_p);
502
503 if (TREE_CODE (var) != SSA_NAME)
504 continue;
505
506 insert_debug_temp_for_var_def (gsi, var);
507 }
508 }
509
510 /* Reset all debug stmts that use SSA_NAME(s) defined in STMT. */
511
512 void
513 reset_debug_uses (gimple stmt)
514 {
515 ssa_op_iter op_iter;
516 def_operand_p def_p;
517 imm_use_iterator imm_iter;
518 gimple use_stmt;
519
520 if (!MAY_HAVE_DEBUG_STMTS)
521 return;
522
523 FOR_EACH_PHI_OR_STMT_DEF (def_p, stmt, op_iter, SSA_OP_DEF)
524 {
525 tree var = DEF_FROM_PTR (def_p);
526
527 if (TREE_CODE (var) != SSA_NAME)
528 continue;
529
530 FOR_EACH_IMM_USE_STMT (use_stmt, imm_iter, var)
531 {
532 if (!gimple_debug_bind_p (use_stmt))
533 continue;
534
535 gimple_debug_bind_reset_value (use_stmt);
536 update_stmt (use_stmt);
537 }
538 }
539 }
540
541 /* Delete SSA DEFs for SSA versions in the TOREMOVE bitmap, removing
542 dominated stmts before their dominators, so that release_ssa_defs
543 stands a chance of propagating DEFs into debug bind stmts. */
544
545 void
546 release_defs_bitset (bitmap toremove)
547 {
548 unsigned j;
549 bitmap_iterator bi;
550
551 /* Performing a topological sort is probably overkill, this will
552 most likely run in slightly superlinear time, rather than the
553 pathological quadratic worst case. */
554 while (!bitmap_empty_p (toremove))
555 EXECUTE_IF_SET_IN_BITMAP (toremove, 0, j, bi)
556 {
557 bool remove_now = true;
558 tree var = ssa_name (j);
559 gimple stmt;
560 imm_use_iterator uit;
561
562 FOR_EACH_IMM_USE_STMT (stmt, uit, var)
563 {
564 ssa_op_iter dit;
565 def_operand_p def_p;
566
567 /* We can't propagate PHI nodes into debug stmts. */
568 if (gimple_code (stmt) == GIMPLE_PHI
569 || is_gimple_debug (stmt))
570 continue;
571
572 /* If we find another definition to remove that uses
573 the one we're looking at, defer the removal of this
574 one, so that it can be propagated into debug stmts
575 after the other is. */
576 FOR_EACH_SSA_DEF_OPERAND (def_p, stmt, dit, SSA_OP_DEF)
577 {
578 tree odef = DEF_FROM_PTR (def_p);
579
580 if (bitmap_bit_p (toremove, SSA_NAME_VERSION (odef)))
581 {
582 remove_now = false;
583 break;
584 }
585 }
586
587 if (!remove_now)
588 BREAK_FROM_IMM_USE_STMT (uit);
589 }
590
591 if (remove_now)
592 {
593 gimple def = SSA_NAME_DEF_STMT (var);
594 gimple_stmt_iterator gsi = gsi_for_stmt (def);
595
596 if (gimple_code (def) == GIMPLE_PHI)
597 remove_phi_node (&gsi, true);
598 else
599 {
600 gsi_remove (&gsi, true);
601 release_defs (def);
602 }
603
604 bitmap_clear_bit (toremove, j);
605 }
606 }
607 }
608
609 /* Return true if SSA_NAME is malformed and mark it visited.
610
611 IS_VIRTUAL is true if this SSA_NAME was found inside a virtual
612 operand. */
613
614 static bool
615 verify_ssa_name (tree ssa_name, bool is_virtual)
616 {
617 if (TREE_CODE (ssa_name) != SSA_NAME)
618 {
619 error ("expected an SSA_NAME object");
620 return true;
621 }
622
623 if (TREE_TYPE (ssa_name) != TREE_TYPE (SSA_NAME_VAR (ssa_name)))
624 {
625 error ("type mismatch between an SSA_NAME and its symbol");
626 return true;
627 }
628
629 if (SSA_NAME_IN_FREE_LIST (ssa_name))
630 {
631 error ("found an SSA_NAME that had been released into the free pool");
632 return true;
633 }
634
635 if (is_virtual && is_gimple_reg (ssa_name))
636 {
637 error ("found a virtual definition for a GIMPLE register");
638 return true;
639 }
640
641 if (is_virtual && SSA_NAME_VAR (ssa_name) != gimple_vop (cfun))
642 {
643 error ("virtual SSA name for non-VOP decl");
644 return true;
645 }
646
647 if (!is_virtual && !is_gimple_reg (ssa_name))
648 {
649 error ("found a real definition for a non-register");
650 return true;
651 }
652
653 if (SSA_NAME_IS_DEFAULT_DEF (ssa_name)
654 && !gimple_nop_p (SSA_NAME_DEF_STMT (ssa_name)))
655 {
656 error ("found a default name with a non-empty defining statement");
657 return true;
658 }
659
660 return false;
661 }
662
663
664 /* Return true if the definition of SSA_NAME at block BB is malformed.
665
666 STMT is the statement where SSA_NAME is created.
667
668 DEFINITION_BLOCK is an array of basic blocks indexed by SSA_NAME
669 version numbers. If DEFINITION_BLOCK[SSA_NAME_VERSION] is set,
670 it means that the block in that array slot contains the
671 definition of SSA_NAME.
672
673 IS_VIRTUAL is true if SSA_NAME is created by a VDEF. */
674
675 static bool
676 verify_def (basic_block bb, basic_block *definition_block, tree ssa_name,
677 gimple stmt, bool is_virtual)
678 {
679 if (verify_ssa_name (ssa_name, is_virtual))
680 goto err;
681
682 if (TREE_CODE (SSA_NAME_VAR (ssa_name)) == RESULT_DECL
683 && DECL_BY_REFERENCE (SSA_NAME_VAR (ssa_name)))
684 {
685 error ("RESULT_DECL should be read only when DECL_BY_REFERENCE is set");
686 goto err;
687 }
688
689 if (definition_block[SSA_NAME_VERSION (ssa_name)])
690 {
691 error ("SSA_NAME created in two different blocks %i and %i",
692 definition_block[SSA_NAME_VERSION (ssa_name)]->index, bb->index);
693 goto err;
694 }
695
696 definition_block[SSA_NAME_VERSION (ssa_name)] = bb;
697
698 if (SSA_NAME_DEF_STMT (ssa_name) != stmt)
699 {
700 error ("SSA_NAME_DEF_STMT is wrong");
701 fprintf (stderr, "Expected definition statement:\n");
702 print_gimple_stmt (stderr, SSA_NAME_DEF_STMT (ssa_name), 4, TDF_VOPS);
703 fprintf (stderr, "\nActual definition statement:\n");
704 print_gimple_stmt (stderr, stmt, 4, TDF_VOPS);
705 goto err;
706 }
707
708 return false;
709
710 err:
711 fprintf (stderr, "while verifying SSA_NAME ");
712 print_generic_expr (stderr, ssa_name, 0);
713 fprintf (stderr, " in statement\n");
714 print_gimple_stmt (stderr, stmt, 4, TDF_VOPS);
715
716 return true;
717 }
718
719
720 /* Return true if the use of SSA_NAME at statement STMT in block BB is
721 malformed.
722
723 DEF_BB is the block where SSA_NAME was found to be created.
724
725 IDOM contains immediate dominator information for the flowgraph.
726
727 CHECK_ABNORMAL is true if the caller wants to check whether this use
728 is flowing through an abnormal edge (only used when checking PHI
729 arguments).
730
731 If NAMES_DEFINED_IN_BB is not NULL, it contains a bitmap of ssa names
732 that are defined before STMT in basic block BB. */
733
734 static bool
735 verify_use (basic_block bb, basic_block def_bb, use_operand_p use_p,
736 gimple stmt, bool check_abnormal, bitmap names_defined_in_bb)
737 {
738 bool err = false;
739 tree ssa_name = USE_FROM_PTR (use_p);
740
741 if (!TREE_VISITED (ssa_name))
742 if (verify_imm_links (stderr, ssa_name))
743 err = true;
744
745 TREE_VISITED (ssa_name) = 1;
746
747 if (gimple_nop_p (SSA_NAME_DEF_STMT (ssa_name))
748 && SSA_NAME_IS_DEFAULT_DEF (ssa_name))
749 ; /* Default definitions have empty statements. Nothing to do. */
750 else if (!def_bb)
751 {
752 error ("missing definition");
753 err = true;
754 }
755 else if (bb != def_bb
756 && !dominated_by_p (CDI_DOMINATORS, bb, def_bb))
757 {
758 error ("definition in block %i does not dominate use in block %i",
759 def_bb->index, bb->index);
760 err = true;
761 }
762 else if (bb == def_bb
763 && names_defined_in_bb != NULL
764 && !bitmap_bit_p (names_defined_in_bb, SSA_NAME_VERSION (ssa_name)))
765 {
766 error ("definition in block %i follows the use", def_bb->index);
767 err = true;
768 }
769
770 if (check_abnormal
771 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (ssa_name))
772 {
773 error ("SSA_NAME_OCCURS_IN_ABNORMAL_PHI should be set");
774 err = true;
775 }
776
777 /* Make sure the use is in an appropriate list by checking the previous
778 element to make sure it's the same. */
779 if (use_p->prev == NULL)
780 {
781 error ("no immediate_use list");
782 err = true;
783 }
784 else
785 {
786 tree listvar;
787 if (use_p->prev->use == NULL)
788 listvar = use_p->prev->loc.ssa_name;
789 else
790 listvar = USE_FROM_PTR (use_p->prev);
791 if (listvar != ssa_name)
792 {
793 error ("wrong immediate use list");
794 err = true;
795 }
796 }
797
798 if (err)
799 {
800 fprintf (stderr, "for SSA_NAME: ");
801 print_generic_expr (stderr, ssa_name, TDF_VOPS);
802 fprintf (stderr, " in statement:\n");
803 print_gimple_stmt (stderr, stmt, 0, TDF_VOPS);
804 }
805
806 return err;
807 }
808
809
810 /* Return true if any of the arguments for PHI node PHI at block BB is
811 malformed.
812
813 DEFINITION_BLOCK is an array of basic blocks indexed by SSA_NAME
814 version numbers. If DEFINITION_BLOCK[SSA_NAME_VERSION] is set,
815 it means that the block in that array slot contains the
816 definition of SSA_NAME. */
817
818 static bool
819 verify_phi_args (gimple phi, basic_block bb, basic_block *definition_block)
820 {
821 edge e;
822 bool err = false;
823 size_t i, phi_num_args = gimple_phi_num_args (phi);
824
825 if (EDGE_COUNT (bb->preds) != phi_num_args)
826 {
827 error ("incoming edge count does not match number of PHI arguments");
828 err = true;
829 goto error;
830 }
831
832 for (i = 0; i < phi_num_args; i++)
833 {
834 use_operand_p op_p = gimple_phi_arg_imm_use_ptr (phi, i);
835 tree op = USE_FROM_PTR (op_p);
836
837 e = EDGE_PRED (bb, i);
838
839 if (op == NULL_TREE)
840 {
841 error ("PHI argument is missing for edge %d->%d",
842 e->src->index,
843 e->dest->index);
844 err = true;
845 goto error;
846 }
847
848 if (TREE_CODE (op) != SSA_NAME && !is_gimple_min_invariant (op))
849 {
850 error ("PHI argument is not SSA_NAME, or invariant");
851 err = true;
852 }
853
854 if (TREE_CODE (op) == SSA_NAME)
855 {
856 err = verify_ssa_name (op, !is_gimple_reg (gimple_phi_result (phi)));
857 err |= verify_use (e->src, definition_block[SSA_NAME_VERSION (op)],
858 op_p, phi, e->flags & EDGE_ABNORMAL, NULL);
859 }
860
861 if (TREE_CODE (op) == ADDR_EXPR)
862 {
863 tree base = TREE_OPERAND (op, 0);
864 while (handled_component_p (base))
865 base = TREE_OPERAND (base, 0);
866 if ((TREE_CODE (base) == VAR_DECL
867 || TREE_CODE (base) == PARM_DECL
868 || TREE_CODE (base) == RESULT_DECL)
869 && !TREE_ADDRESSABLE (base))
870 {
871 error ("address taken, but ADDRESSABLE bit not set");
872 err = true;
873 }
874 }
875
876 if (e->dest != bb)
877 {
878 error ("wrong edge %d->%d for PHI argument",
879 e->src->index, e->dest->index);
880 err = true;
881 }
882
883 if (err)
884 {
885 fprintf (stderr, "PHI argument\n");
886 print_generic_stmt (stderr, op, TDF_VOPS);
887 goto error;
888 }
889 }
890
891 error:
892 if (err)
893 {
894 fprintf (stderr, "for PHI node\n");
895 print_gimple_stmt (stderr, phi, 0, TDF_VOPS|TDF_MEMSYMS);
896 }
897
898
899 return err;
900 }
901
902
903 /* Verify common invariants in the SSA web.
904 TODO: verify the variable annotations. */
905
906 DEBUG_FUNCTION void
907 verify_ssa (bool check_modified_stmt)
908 {
909 size_t i;
910 basic_block bb;
911 basic_block *definition_block = XCNEWVEC (basic_block, num_ssa_names);
912 ssa_op_iter iter;
913 tree op;
914 enum dom_state orig_dom_state = dom_info_state (CDI_DOMINATORS);
915 bitmap names_defined_in_bb = BITMAP_ALLOC (NULL);
916
917 gcc_assert (!need_ssa_update_p (cfun));
918
919 verify_gimple_in_cfg (cfun);
920
921 timevar_push (TV_TREE_SSA_VERIFY);
922
923 /* Keep track of SSA names present in the IL. */
924 for (i = 1; i < num_ssa_names; i++)
925 {
926 tree name = ssa_name (i);
927 if (name)
928 {
929 gimple stmt;
930 TREE_VISITED (name) = 0;
931
932 stmt = SSA_NAME_DEF_STMT (name);
933 if (!gimple_nop_p (stmt))
934 {
935 basic_block bb = gimple_bb (stmt);
936 verify_def (bb, definition_block,
937 name, stmt, !is_gimple_reg (name));
938
939 }
940 }
941 }
942
943 calculate_dominance_info (CDI_DOMINATORS);
944
945 /* Now verify all the uses and make sure they agree with the definitions
946 found in the previous pass. */
947 FOR_EACH_BB (bb)
948 {
949 edge e;
950 gimple phi;
951 edge_iterator ei;
952 gimple_stmt_iterator gsi;
953
954 /* Make sure that all edges have a clear 'aux' field. */
955 FOR_EACH_EDGE (e, ei, bb->preds)
956 {
957 if (e->aux)
958 {
959 error ("AUX pointer initialized for edge %d->%d", e->src->index,
960 e->dest->index);
961 goto err;
962 }
963 }
964
965 /* Verify the arguments for every PHI node in the block. */
966 for (gsi = gsi_start_phis (bb); !gsi_end_p (gsi); gsi_next (&gsi))
967 {
968 phi = gsi_stmt (gsi);
969 if (verify_phi_args (phi, bb, definition_block))
970 goto err;
971
972 bitmap_set_bit (names_defined_in_bb,
973 SSA_NAME_VERSION (gimple_phi_result (phi)));
974 }
975
976 /* Now verify all the uses and vuses in every statement of the block. */
977 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
978 {
979 gimple stmt = gsi_stmt (gsi);
980 use_operand_p use_p;
981 bool has_err;
982 int count;
983 unsigned i;
984
985 if (check_modified_stmt && gimple_modified_p (stmt))
986 {
987 error ("stmt (%p) marked modified after optimization pass: ",
988 (void *)stmt);
989 print_gimple_stmt (stderr, stmt, 0, TDF_VOPS);
990 goto err;
991 }
992
993 if (is_gimple_assign (stmt)
994 && TREE_CODE (gimple_assign_lhs (stmt)) != SSA_NAME)
995 {
996 tree lhs, base_address;
997
998 lhs = gimple_assign_lhs (stmt);
999 base_address = get_base_address (lhs);
1000
1001 if (base_address
1002 && SSA_VAR_P (base_address)
1003 && !gimple_vdef (stmt)
1004 && optimize > 0)
1005 {
1006 error ("statement makes a memory store, but has no VDEFS");
1007 print_gimple_stmt (stderr, stmt, 0, TDF_VOPS);
1008 goto err;
1009 }
1010 }
1011 else if (gimple_debug_bind_p (stmt)
1012 && !gimple_debug_bind_has_value_p (stmt))
1013 continue;
1014
1015 /* Verify the single virtual operand and its constraints. */
1016 has_err = false;
1017 if (gimple_vdef (stmt))
1018 {
1019 if (gimple_vdef_op (stmt) == NULL_DEF_OPERAND_P)
1020 {
1021 error ("statement has VDEF operand not in defs list");
1022 has_err = true;
1023 }
1024 if (!gimple_vuse (stmt))
1025 {
1026 error ("statement has VDEF but no VUSE operand");
1027 has_err = true;
1028 }
1029 else if (SSA_NAME_VAR (gimple_vdef (stmt))
1030 != SSA_NAME_VAR (gimple_vuse (stmt)))
1031 {
1032 error ("VDEF and VUSE do not use the same symbol");
1033 has_err = true;
1034 }
1035 has_err |= verify_ssa_name (gimple_vdef (stmt), true);
1036 }
1037 if (gimple_vuse (stmt))
1038 {
1039 if (gimple_vuse_op (stmt) == NULL_USE_OPERAND_P)
1040 {
1041 error ("statement has VUSE operand not in uses list");
1042 has_err = true;
1043 }
1044 has_err |= verify_ssa_name (gimple_vuse (stmt), true);
1045 }
1046 if (has_err)
1047 {
1048 error ("in statement");
1049 print_gimple_stmt (stderr, stmt, 0, TDF_VOPS|TDF_MEMSYMS);
1050 goto err;
1051 }
1052
1053 count = 0;
1054 FOR_EACH_SSA_TREE_OPERAND (op, stmt, iter, SSA_OP_USE|SSA_OP_DEF)
1055 {
1056 if (verify_ssa_name (op, false))
1057 {
1058 error ("in statement");
1059 print_gimple_stmt (stderr, stmt, 0, TDF_VOPS|TDF_MEMSYMS);
1060 goto err;
1061 }
1062 count++;
1063 }
1064
1065 for (i = 0; i < gimple_num_ops (stmt); i++)
1066 {
1067 op = gimple_op (stmt, i);
1068 if (op && TREE_CODE (op) == SSA_NAME && --count < 0)
1069 {
1070 error ("number of operands and imm-links don%'t agree"
1071 " in statement");
1072 print_gimple_stmt (stderr, stmt, 0, TDF_VOPS|TDF_MEMSYMS);
1073 goto err;
1074 }
1075 }
1076
1077 FOR_EACH_SSA_USE_OPERAND (use_p, stmt, iter, SSA_OP_USE|SSA_OP_VUSE)
1078 {
1079 op = USE_FROM_PTR (use_p);
1080 if (verify_use (bb, definition_block[SSA_NAME_VERSION (op)],
1081 use_p, stmt, false, names_defined_in_bb))
1082 goto err;
1083 }
1084
1085 FOR_EACH_SSA_TREE_OPERAND (op, stmt, iter, SSA_OP_ALL_DEFS)
1086 {
1087 if (SSA_NAME_DEF_STMT (op) != stmt)
1088 {
1089 error ("SSA_NAME_DEF_STMT is wrong");
1090 fprintf (stderr, "Expected definition statement:\n");
1091 print_gimple_stmt (stderr, stmt, 4, TDF_VOPS);
1092 fprintf (stderr, "\nActual definition statement:\n");
1093 print_gimple_stmt (stderr, SSA_NAME_DEF_STMT (op),
1094 4, TDF_VOPS);
1095 goto err;
1096 }
1097 bitmap_set_bit (names_defined_in_bb, SSA_NAME_VERSION (op));
1098 }
1099 }
1100
1101 bitmap_clear (names_defined_in_bb);
1102 }
1103
1104 free (definition_block);
1105
1106 /* Restore the dominance information to its prior known state, so
1107 that we do not perturb the compiler's subsequent behavior. */
1108 if (orig_dom_state == DOM_NONE)
1109 free_dominance_info (CDI_DOMINATORS);
1110 else
1111 set_dom_info_availability (CDI_DOMINATORS, orig_dom_state);
1112
1113 BITMAP_FREE (names_defined_in_bb);
1114 timevar_pop (TV_TREE_SSA_VERIFY);
1115 return;
1116
1117 err:
1118 internal_error ("verify_ssa failed");
1119 }
1120
1121 /* Return true if the uid in both int tree maps are equal. */
1122
1123 int
1124 int_tree_map_eq (const void *va, const void *vb)
1125 {
1126 const struct int_tree_map *a = (const struct int_tree_map *) va;
1127 const struct int_tree_map *b = (const struct int_tree_map *) vb;
1128 return (a->uid == b->uid);
1129 }
1130
1131 /* Hash a UID in a int_tree_map. */
1132
1133 unsigned int
1134 int_tree_map_hash (const void *item)
1135 {
1136 return ((const struct int_tree_map *)item)->uid;
1137 }
1138
1139 /* Return true if the DECL_UID in both trees are equal. */
1140
1141 int
1142 uid_decl_map_eq (const void *va, const void *vb)
1143 {
1144 const_tree a = (const_tree) va;
1145 const_tree b = (const_tree) vb;
1146 return (a->decl_minimal.uid == b->decl_minimal.uid);
1147 }
1148
1149 /* Hash a tree in a uid_decl_map. */
1150
1151 unsigned int
1152 uid_decl_map_hash (const void *item)
1153 {
1154 return ((const_tree)item)->decl_minimal.uid;
1155 }
1156
1157 /* Return true if the DECL_UID in both trees are equal. */
1158
1159 static int
1160 uid_ssaname_map_eq (const void *va, const void *vb)
1161 {
1162 const_tree a = (const_tree) va;
1163 const_tree b = (const_tree) vb;
1164 return (a->ssa_name.var->decl_minimal.uid == b->ssa_name.var->decl_minimal.uid);
1165 }
1166
1167 /* Hash a tree in a uid_decl_map. */
1168
1169 static unsigned int
1170 uid_ssaname_map_hash (const void *item)
1171 {
1172 return ((const_tree)item)->ssa_name.var->decl_minimal.uid;
1173 }
1174
1175
1176 /* Initialize global DFA and SSA structures. */
1177
1178 void
1179 init_tree_ssa (struct function *fn)
1180 {
1181 fn->gimple_df = ggc_alloc_cleared_gimple_df ();
1182 fn->gimple_df->referenced_vars = htab_create_ggc (20, uid_decl_map_hash,
1183 uid_decl_map_eq, NULL);
1184 fn->gimple_df->default_defs = htab_create_ggc (20, uid_ssaname_map_hash,
1185 uid_ssaname_map_eq, NULL);
1186 pt_solution_reset (&fn->gimple_df->escaped);
1187 init_ssanames (fn, 0);
1188 init_phinodes ();
1189 }
1190
1191
1192 /* Deallocate memory associated with SSA data structures for FNDECL. */
1193
1194 void
1195 delete_tree_ssa (void)
1196 {
1197 referenced_var_iterator rvi;
1198 tree var;
1199
1200 /* Remove annotations from every referenced local variable. */
1201 FOR_EACH_REFERENCED_VAR (cfun, var, rvi)
1202 {
1203 if (is_global_var (var))
1204 continue;
1205 if (var_ann (var))
1206 {
1207 ggc_free (var_ann (var));
1208 *DECL_VAR_ANN_PTR (var) = NULL;
1209 }
1210 }
1211 htab_delete (gimple_referenced_vars (cfun));
1212 cfun->gimple_df->referenced_vars = NULL;
1213
1214 fini_ssanames ();
1215 fini_phinodes ();
1216
1217 /* We no longer maintain the SSA operand cache at this point. */
1218 if (ssa_operands_active ())
1219 fini_ssa_operands ();
1220
1221 htab_delete (cfun->gimple_df->default_defs);
1222 cfun->gimple_df->default_defs = NULL;
1223 pt_solution_reset (&cfun->gimple_df->escaped);
1224 if (cfun->gimple_df->decls_to_pointers != NULL)
1225 pointer_map_destroy (cfun->gimple_df->decls_to_pointers);
1226 cfun->gimple_df->decls_to_pointers = NULL;
1227 cfun->gimple_df->modified_noreturn_calls = NULL;
1228 cfun->gimple_df = NULL;
1229
1230 /* We no longer need the edge variable maps. */
1231 redirect_edge_var_map_destroy ();
1232 }
1233
1234 /* Return true if the conversion from INNER_TYPE to OUTER_TYPE is a
1235 useless type conversion, otherwise return false.
1236
1237 This function implicitly defines the middle-end type system. With
1238 the notion of 'a < b' meaning that useless_type_conversion_p (a, b)
1239 holds and 'a > b' meaning that useless_type_conversion_p (b, a) holds,
1240 the following invariants shall be fulfilled:
1241
1242 1) useless_type_conversion_p is transitive.
1243 If a < b and b < c then a < c.
1244
1245 2) useless_type_conversion_p is not symmetric.
1246 From a < b does not follow a > b.
1247
1248 3) Types define the available set of operations applicable to values.
1249 A type conversion is useless if the operations for the target type
1250 is a subset of the operations for the source type. For example
1251 casts to void* are useless, casts from void* are not (void* can't
1252 be dereferenced or offsetted, but copied, hence its set of operations
1253 is a strict subset of that of all other data pointer types). Casts
1254 to const T* are useless (can't be written to), casts from const T*
1255 to T* are not. */
1256
1257 bool
1258 useless_type_conversion_p (tree outer_type, tree inner_type)
1259 {
1260 /* Do the following before stripping toplevel qualifiers. */
1261 if (POINTER_TYPE_P (inner_type)
1262 && POINTER_TYPE_P (outer_type))
1263 {
1264 /* Do not lose casts between pointers to different address spaces. */
1265 if (TYPE_ADDR_SPACE (TREE_TYPE (outer_type))
1266 != TYPE_ADDR_SPACE (TREE_TYPE (inner_type)))
1267 return false;
1268
1269 /* Do not lose casts to restrict qualified pointers. */
1270 if ((TYPE_RESTRICT (outer_type)
1271 != TYPE_RESTRICT (inner_type))
1272 && TYPE_RESTRICT (outer_type))
1273 return false;
1274
1275 /* If the outer type is (void *), the conversion is not necessary. */
1276 if (VOID_TYPE_P (TREE_TYPE (outer_type)))
1277 return true;
1278 }
1279
1280 /* From now on qualifiers on value types do not matter. */
1281 inner_type = TYPE_MAIN_VARIANT (inner_type);
1282 outer_type = TYPE_MAIN_VARIANT (outer_type);
1283
1284 if (inner_type == outer_type)
1285 return true;
1286
1287 /* If we know the canonical types, compare them. */
1288 if (TYPE_CANONICAL (inner_type)
1289 && TYPE_CANONICAL (inner_type) == TYPE_CANONICAL (outer_type))
1290 return true;
1291
1292 /* Changes in machine mode are never useless conversions unless we
1293 deal with aggregate types in which case we defer to later checks. */
1294 if (TYPE_MODE (inner_type) != TYPE_MODE (outer_type)
1295 && !AGGREGATE_TYPE_P (inner_type))
1296 return false;
1297
1298 /* If both the inner and outer types are integral types, then the
1299 conversion is not necessary if they have the same mode and
1300 signedness and precision, and both or neither are boolean. */
1301 if (INTEGRAL_TYPE_P (inner_type)
1302 && INTEGRAL_TYPE_P (outer_type))
1303 {
1304 /* Preserve changes in signedness or precision. */
1305 if (TYPE_UNSIGNED (inner_type) != TYPE_UNSIGNED (outer_type)
1306 || TYPE_PRECISION (inner_type) != TYPE_PRECISION (outer_type))
1307 return false;
1308
1309 /* Preserve conversions to BOOLEAN_TYPE if it is not of precision
1310 one. */
1311 if (TREE_CODE (inner_type) != BOOLEAN_TYPE
1312 && TREE_CODE (outer_type) == BOOLEAN_TYPE
1313 && TYPE_PRECISION (outer_type) != 1)
1314 return false;
1315
1316 /* We don't need to preserve changes in the types minimum or
1317 maximum value in general as these do not generate code
1318 unless the types precisions are different. */
1319 return true;
1320 }
1321
1322 /* Scalar floating point types with the same mode are compatible. */
1323 else if (SCALAR_FLOAT_TYPE_P (inner_type)
1324 && SCALAR_FLOAT_TYPE_P (outer_type))
1325 return true;
1326
1327 /* Fixed point types with the same mode are compatible. */
1328 else if (FIXED_POINT_TYPE_P (inner_type)
1329 && FIXED_POINT_TYPE_P (outer_type))
1330 return true;
1331
1332 /* We need to take special care recursing to pointed-to types. */
1333 else if (POINTER_TYPE_P (inner_type)
1334 && POINTER_TYPE_P (outer_type))
1335 {
1336 /* Do not lose casts to function pointer types. */
1337 if ((TREE_CODE (TREE_TYPE (outer_type)) == FUNCTION_TYPE
1338 || TREE_CODE (TREE_TYPE (outer_type)) == METHOD_TYPE)
1339 && !(TREE_CODE (TREE_TYPE (inner_type)) == FUNCTION_TYPE
1340 || TREE_CODE (TREE_TYPE (inner_type)) == METHOD_TYPE))
1341 return false;
1342
1343 /* We do not care for const qualification of the pointed-to types
1344 as const qualification has no semantic value to the middle-end. */
1345
1346 /* Otherwise pointers/references are equivalent. */
1347 return true;
1348 }
1349
1350 /* Recurse for complex types. */
1351 else if (TREE_CODE (inner_type) == COMPLEX_TYPE
1352 && TREE_CODE (outer_type) == COMPLEX_TYPE)
1353 return useless_type_conversion_p (TREE_TYPE (outer_type),
1354 TREE_TYPE (inner_type));
1355
1356 /* Recurse for vector types with the same number of subparts. */
1357 else if (TREE_CODE (inner_type) == VECTOR_TYPE
1358 && TREE_CODE (outer_type) == VECTOR_TYPE
1359 && TYPE_PRECISION (inner_type) == TYPE_PRECISION (outer_type))
1360 return useless_type_conversion_p (TREE_TYPE (outer_type),
1361 TREE_TYPE (inner_type));
1362
1363 else if (TREE_CODE (inner_type) == ARRAY_TYPE
1364 && TREE_CODE (outer_type) == ARRAY_TYPE)
1365 {
1366 /* Preserve string attributes. */
1367 if (TYPE_STRING_FLAG (inner_type) != TYPE_STRING_FLAG (outer_type))
1368 return false;
1369
1370 /* Conversions from array types with unknown extent to
1371 array types with known extent are not useless. */
1372 if (!TYPE_DOMAIN (inner_type)
1373 && TYPE_DOMAIN (outer_type))
1374 return false;
1375
1376 /* Nor are conversions from array types with non-constant size to
1377 array types with constant size or to different size. */
1378 if (TYPE_SIZE (outer_type)
1379 && TREE_CODE (TYPE_SIZE (outer_type)) == INTEGER_CST
1380 && (!TYPE_SIZE (inner_type)
1381 || TREE_CODE (TYPE_SIZE (inner_type)) != INTEGER_CST
1382 || !tree_int_cst_equal (TYPE_SIZE (outer_type),
1383 TYPE_SIZE (inner_type))))
1384 return false;
1385
1386 /* Check conversions between arrays with partially known extents.
1387 If the array min/max values are constant they have to match.
1388 Otherwise allow conversions to unknown and variable extents.
1389 In particular this declares conversions that may change the
1390 mode to BLKmode as useless. */
1391 if (TYPE_DOMAIN (inner_type)
1392 && TYPE_DOMAIN (outer_type)
1393 && TYPE_DOMAIN (inner_type) != TYPE_DOMAIN (outer_type))
1394 {
1395 tree inner_min = TYPE_MIN_VALUE (TYPE_DOMAIN (inner_type));
1396 tree outer_min = TYPE_MIN_VALUE (TYPE_DOMAIN (outer_type));
1397 tree inner_max = TYPE_MAX_VALUE (TYPE_DOMAIN (inner_type));
1398 tree outer_max = TYPE_MAX_VALUE (TYPE_DOMAIN (outer_type));
1399
1400 /* After gimplification a variable min/max value carries no
1401 additional information compared to a NULL value. All that
1402 matters has been lowered to be part of the IL. */
1403 if (inner_min && TREE_CODE (inner_min) != INTEGER_CST)
1404 inner_min = NULL_TREE;
1405 if (outer_min && TREE_CODE (outer_min) != INTEGER_CST)
1406 outer_min = NULL_TREE;
1407 if (inner_max && TREE_CODE (inner_max) != INTEGER_CST)
1408 inner_max = NULL_TREE;
1409 if (outer_max && TREE_CODE (outer_max) != INTEGER_CST)
1410 outer_max = NULL_TREE;
1411
1412 /* Conversions NULL / variable <- cst are useless, but not
1413 the other way around. */
1414 if (outer_min
1415 && (!inner_min
1416 || !tree_int_cst_equal (inner_min, outer_min)))
1417 return false;
1418 if (outer_max
1419 && (!inner_max
1420 || !tree_int_cst_equal (inner_max, outer_max)))
1421 return false;
1422 }
1423
1424 /* Recurse on the element check. */
1425 return useless_type_conversion_p (TREE_TYPE (outer_type),
1426 TREE_TYPE (inner_type));
1427 }
1428
1429 else if ((TREE_CODE (inner_type) == FUNCTION_TYPE
1430 || TREE_CODE (inner_type) == METHOD_TYPE)
1431 && TREE_CODE (inner_type) == TREE_CODE (outer_type))
1432 {
1433 tree outer_parm, inner_parm;
1434
1435 /* If the return types are not compatible bail out. */
1436 if (!useless_type_conversion_p (TREE_TYPE (outer_type),
1437 TREE_TYPE (inner_type)))
1438 return false;
1439
1440 /* Method types should belong to a compatible base class. */
1441 if (TREE_CODE (inner_type) == METHOD_TYPE
1442 && !useless_type_conversion_p (TYPE_METHOD_BASETYPE (outer_type),
1443 TYPE_METHOD_BASETYPE (inner_type)))
1444 return false;
1445
1446 /* A conversion to an unprototyped argument list is ok. */
1447 if (!prototype_p (outer_type))
1448 return true;
1449
1450 /* If the unqualified argument types are compatible the conversion
1451 is useless. */
1452 if (TYPE_ARG_TYPES (outer_type) == TYPE_ARG_TYPES (inner_type))
1453 return true;
1454
1455 for (outer_parm = TYPE_ARG_TYPES (outer_type),
1456 inner_parm = TYPE_ARG_TYPES (inner_type);
1457 outer_parm && inner_parm;
1458 outer_parm = TREE_CHAIN (outer_parm),
1459 inner_parm = TREE_CHAIN (inner_parm))
1460 if (!useless_type_conversion_p
1461 (TYPE_MAIN_VARIANT (TREE_VALUE (outer_parm)),
1462 TYPE_MAIN_VARIANT (TREE_VALUE (inner_parm))))
1463 return false;
1464
1465 /* If there is a mismatch in the number of arguments the functions
1466 are not compatible. */
1467 if (outer_parm || inner_parm)
1468 return false;
1469
1470 /* Defer to the target if necessary. */
1471 if (TYPE_ATTRIBUTES (inner_type) || TYPE_ATTRIBUTES (outer_type))
1472 return comp_type_attributes (outer_type, inner_type) != 0;
1473
1474 return true;
1475 }
1476
1477 /* For aggregates we rely on TYPE_CANONICAL exclusively and require
1478 explicit conversions for types involving to be structurally
1479 compared types. */
1480 else if (AGGREGATE_TYPE_P (inner_type)
1481 && TREE_CODE (inner_type) == TREE_CODE (outer_type))
1482 return false;
1483
1484 return false;
1485 }
1486
1487 /* Return true if a conversion from either type of TYPE1 and TYPE2
1488 to the other is not required. Otherwise return false. */
1489
1490 bool
1491 types_compatible_p (tree type1, tree type2)
1492 {
1493 return (type1 == type2
1494 || (useless_type_conversion_p (type1, type2)
1495 && useless_type_conversion_p (type2, type1)));
1496 }
1497
1498 /* Return true if EXPR is a useless type conversion, otherwise return
1499 false. */
1500
1501 bool
1502 tree_ssa_useless_type_conversion (tree expr)
1503 {
1504 /* If we have an assignment that merely uses a NOP_EXPR to change
1505 the top of the RHS to the type of the LHS and the type conversion
1506 is "safe", then strip away the type conversion so that we can
1507 enter LHS = RHS into the const_and_copies table. */
1508 if (CONVERT_EXPR_P (expr)
1509 || TREE_CODE (expr) == VIEW_CONVERT_EXPR
1510 || TREE_CODE (expr) == NON_LVALUE_EXPR)
1511 return useless_type_conversion_p
1512 (TREE_TYPE (expr),
1513 TREE_TYPE (TREE_OPERAND (expr, 0)));
1514
1515 return false;
1516 }
1517
1518 /* Strip conversions from EXP according to
1519 tree_ssa_useless_type_conversion and return the resulting
1520 expression. */
1521
1522 tree
1523 tree_ssa_strip_useless_type_conversions (tree exp)
1524 {
1525 while (tree_ssa_useless_type_conversion (exp))
1526 exp = TREE_OPERAND (exp, 0);
1527 return exp;
1528 }
1529
1530
1531 /* Internal helper for walk_use_def_chains. VAR, FN and DATA are as
1532 described in walk_use_def_chains.
1533
1534 VISITED is a pointer set used to mark visited SSA_NAMEs to avoid
1535 infinite loops. We used to have a bitmap for this to just mark
1536 SSA versions we had visited. But non-sparse bitmaps are way too
1537 expensive, while sparse bitmaps may cause quadratic behavior.
1538
1539 IS_DFS is true if the caller wants to perform a depth-first search
1540 when visiting PHI nodes. A DFS will visit each PHI argument and
1541 call FN after each one. Otherwise, all the arguments are
1542 visited first and then FN is called with each of the visited
1543 arguments in a separate pass. */
1544
1545 static bool
1546 walk_use_def_chains_1 (tree var, walk_use_def_chains_fn fn, void *data,
1547 struct pointer_set_t *visited, bool is_dfs)
1548 {
1549 gimple def_stmt;
1550
1551 if (pointer_set_insert (visited, var))
1552 return false;
1553
1554 def_stmt = SSA_NAME_DEF_STMT (var);
1555
1556 if (gimple_code (def_stmt) != GIMPLE_PHI)
1557 {
1558 /* If we reached the end of the use-def chain, call FN. */
1559 return fn (var, def_stmt, data);
1560 }
1561 else
1562 {
1563 size_t i;
1564
1565 /* When doing a breadth-first search, call FN before following the
1566 use-def links for each argument. */
1567 if (!is_dfs)
1568 for (i = 0; i < gimple_phi_num_args (def_stmt); i++)
1569 if (fn (gimple_phi_arg_def (def_stmt, i), def_stmt, data))
1570 return true;
1571
1572 /* Follow use-def links out of each PHI argument. */
1573 for (i = 0; i < gimple_phi_num_args (def_stmt); i++)
1574 {
1575 tree arg = gimple_phi_arg_def (def_stmt, i);
1576
1577 /* ARG may be NULL for newly introduced PHI nodes. */
1578 if (arg
1579 && TREE_CODE (arg) == SSA_NAME
1580 && walk_use_def_chains_1 (arg, fn, data, visited, is_dfs))
1581 return true;
1582 }
1583
1584 /* When doing a depth-first search, call FN after following the
1585 use-def links for each argument. */
1586 if (is_dfs)
1587 for (i = 0; i < gimple_phi_num_args (def_stmt); i++)
1588 if (fn (gimple_phi_arg_def (def_stmt, i), def_stmt, data))
1589 return true;
1590 }
1591
1592 return false;
1593 }
1594
1595
1596
1597 /* Walk use-def chains starting at the SSA variable VAR. Call
1598 function FN at each reaching definition found. FN takes three
1599 arguments: VAR, its defining statement (DEF_STMT) and a generic
1600 pointer to whatever state information that FN may want to maintain
1601 (DATA). FN is able to stop the walk by returning true, otherwise
1602 in order to continue the walk, FN should return false.
1603
1604 Note, that if DEF_STMT is a PHI node, the semantics are slightly
1605 different. The first argument to FN is no longer the original
1606 variable VAR, but the PHI argument currently being examined. If FN
1607 wants to get at VAR, it should call PHI_RESULT (PHI).
1608
1609 If IS_DFS is true, this function will:
1610
1611 1- walk the use-def chains for all the PHI arguments, and,
1612 2- call (*FN) (ARG, PHI, DATA) on all the PHI arguments.
1613
1614 If IS_DFS is false, the two steps above are done in reverse order
1615 (i.e., a breadth-first search). */
1616
1617 void
1618 walk_use_def_chains (tree var, walk_use_def_chains_fn fn, void *data,
1619 bool is_dfs)
1620 {
1621 gimple def_stmt;
1622
1623 gcc_assert (TREE_CODE (var) == SSA_NAME);
1624
1625 def_stmt = SSA_NAME_DEF_STMT (var);
1626
1627 /* We only need to recurse if the reaching definition comes from a PHI
1628 node. */
1629 if (gimple_code (def_stmt) != GIMPLE_PHI)
1630 (*fn) (var, def_stmt, data);
1631 else
1632 {
1633 struct pointer_set_t *visited = pointer_set_create ();
1634 walk_use_def_chains_1 (var, fn, data, visited, is_dfs);
1635 pointer_set_destroy (visited);
1636 }
1637 }
1638
1639 \f
1640 /* Emit warnings for uninitialized variables. This is done in two passes.
1641
1642 The first pass notices real uses of SSA names with undefined values.
1643 Such uses are unconditionally uninitialized, and we can be certain that
1644 such a use is a mistake. This pass is run before most optimizations,
1645 so that we catch as many as we can.
1646
1647 The second pass follows PHI nodes to find uses that are potentially
1648 uninitialized. In this case we can't necessarily prove that the use
1649 is really uninitialized. This pass is run after most optimizations,
1650 so that we thread as many jumps and possible, and delete as much dead
1651 code as possible, in order to reduce false positives. We also look
1652 again for plain uninitialized variables, since optimization may have
1653 changed conditionally uninitialized to unconditionally uninitialized. */
1654
1655 /* Emit a warning for T, an SSA_NAME, being uninitialized. The exact
1656 warning text is in MSGID and LOCUS may contain a location or be null.
1657 WC is the warning code. */
1658
1659 void
1660 warn_uninit (enum opt_code wc, tree t, const char *gmsgid, void *data)
1661 {
1662 tree var = SSA_NAME_VAR (t);
1663 gimple context = (gimple) data;
1664 location_t location;
1665 expanded_location xloc, floc;
1666
1667 if (!ssa_undefined_value_p (t))
1668 return;
1669
1670 /* TREE_NO_WARNING either means we already warned, or the front end
1671 wishes to suppress the warning. */
1672 if (TREE_NO_WARNING (var))
1673 return;
1674
1675 /* Do not warn if it can be initialized outside this module. */
1676 if (is_global_var (var))
1677 return;
1678
1679 location = (context != NULL && gimple_has_location (context))
1680 ? gimple_location (context)
1681 : DECL_SOURCE_LOCATION (var);
1682 xloc = expand_location (location);
1683 floc = expand_location (DECL_SOURCE_LOCATION (cfun->decl));
1684 if (warning_at (location, wc, gmsgid, var))
1685 {
1686 TREE_NO_WARNING (var) = 1;
1687
1688 if (location == DECL_SOURCE_LOCATION (var))
1689 return;
1690 if (xloc.file != floc.file
1691 || xloc.line < floc.line
1692 || xloc.line > LOCATION_LINE (cfun->function_end_locus))
1693 inform (DECL_SOURCE_LOCATION (var), "%qD was declared here", var);
1694 }
1695 }
1696
1697 struct walk_data {
1698 gimple stmt;
1699 bool always_executed;
1700 bool warn_possibly_uninitialized;
1701 };
1702
1703 /* Called via walk_tree, look for SSA_NAMEs that have empty definitions
1704 and warn about them. */
1705
1706 static tree
1707 warn_uninitialized_var (tree *tp, int *walk_subtrees, void *data_)
1708 {
1709 struct walk_stmt_info *wi = (struct walk_stmt_info *) data_;
1710 struct walk_data *data = (struct walk_data *) wi->info;
1711 tree t = *tp;
1712
1713 /* We do not care about LHS. */
1714 if (wi->is_lhs)
1715 {
1716 /* Except for operands of dereferences. */
1717 if (!INDIRECT_REF_P (t)
1718 && TREE_CODE (t) != MEM_REF)
1719 return NULL_TREE;
1720 t = TREE_OPERAND (t, 0);
1721 }
1722
1723 switch (TREE_CODE (t))
1724 {
1725 case ADDR_EXPR:
1726 /* Taking the address of an uninitialized variable does not
1727 count as using it. */
1728 *walk_subtrees = 0;
1729 break;
1730
1731 case VAR_DECL:
1732 {
1733 /* A VAR_DECL in the RHS of a gimple statement may mean that
1734 this variable is loaded from memory. */
1735 use_operand_p vuse;
1736 tree op;
1737
1738 /* If there is not gimple stmt,
1739 or alias information has not been computed,
1740 then we cannot check VUSE ops. */
1741 if (data->stmt == NULL)
1742 return NULL_TREE;
1743
1744 /* If the load happens as part of a call do not warn about it. */
1745 if (is_gimple_call (data->stmt))
1746 return NULL_TREE;
1747
1748 vuse = gimple_vuse_op (data->stmt);
1749 if (vuse == NULL_USE_OPERAND_P)
1750 return NULL_TREE;
1751
1752 op = USE_FROM_PTR (vuse);
1753 if (t != SSA_NAME_VAR (op)
1754 || !SSA_NAME_IS_DEFAULT_DEF (op))
1755 return NULL_TREE;
1756 /* If this is a VUSE of t and it is the default definition,
1757 then warn about op. */
1758 t = op;
1759 /* Fall through into SSA_NAME. */
1760 }
1761
1762 case SSA_NAME:
1763 /* We only do data flow with SSA_NAMEs, so that's all we
1764 can warn about. */
1765 if (data->always_executed)
1766 warn_uninit (OPT_Wuninitialized,
1767 t, "%qD is used uninitialized in this function",
1768 data->stmt);
1769 else if (data->warn_possibly_uninitialized)
1770 warn_uninit (OPT_Wuninitialized,
1771 t, "%qD may be used uninitialized in this function",
1772 data->stmt);
1773 *walk_subtrees = 0;
1774 break;
1775
1776 case REALPART_EXPR:
1777 case IMAGPART_EXPR:
1778 /* The total store transformation performed during gimplification
1779 creates uninitialized variable uses. If all is well, these will
1780 be optimized away, so don't warn now. */
1781 if (TREE_CODE (TREE_OPERAND (t, 0)) == SSA_NAME)
1782 *walk_subtrees = 0;
1783 break;
1784
1785 default:
1786 if (IS_TYPE_OR_DECL_P (t))
1787 *walk_subtrees = 0;
1788 break;
1789 }
1790
1791 return NULL_TREE;
1792 }
1793
1794 unsigned int
1795 warn_uninitialized_vars (bool warn_possibly_uninitialized)
1796 {
1797 gimple_stmt_iterator gsi;
1798 basic_block bb;
1799 struct walk_data data;
1800
1801 data.warn_possibly_uninitialized = warn_possibly_uninitialized;
1802
1803
1804 FOR_EACH_BB (bb)
1805 {
1806 data.always_executed = dominated_by_p (CDI_POST_DOMINATORS,
1807 single_succ (ENTRY_BLOCK_PTR), bb);
1808 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
1809 {
1810 struct walk_stmt_info wi;
1811 data.stmt = gsi_stmt (gsi);
1812 if (is_gimple_debug (data.stmt))
1813 continue;
1814 memset (&wi, 0, sizeof (wi));
1815 wi.info = &data;
1816 walk_gimple_op (gsi_stmt (gsi), warn_uninitialized_var, &wi);
1817 }
1818 }
1819
1820 return 0;
1821 }
1822
1823 static unsigned int
1824 execute_early_warn_uninitialized (void)
1825 {
1826 /* Currently, this pass runs always but
1827 execute_late_warn_uninitialized only runs with optimization. With
1828 optimization we want to warn about possible uninitialized as late
1829 as possible, thus don't do it here. However, without
1830 optimization we need to warn here about "may be uninitialized".
1831 */
1832 calculate_dominance_info (CDI_POST_DOMINATORS);
1833
1834 warn_uninitialized_vars (/*warn_possibly_uninitialized=*/!optimize);
1835
1836 /* Post-dominator information can not be reliably updated. Free it
1837 after the use. */
1838
1839 free_dominance_info (CDI_POST_DOMINATORS);
1840 return 0;
1841 }
1842
1843 static bool
1844 gate_warn_uninitialized (void)
1845 {
1846 return warn_uninitialized != 0;
1847 }
1848
1849 struct gimple_opt_pass pass_early_warn_uninitialized =
1850 {
1851 {
1852 GIMPLE_PASS,
1853 "*early_warn_uninitialized", /* name */
1854 gate_warn_uninitialized, /* gate */
1855 execute_early_warn_uninitialized, /* execute */
1856 NULL, /* sub */
1857 NULL, /* next */
1858 0, /* static_pass_number */
1859 TV_TREE_UNINIT, /* tv_id */
1860 PROP_ssa, /* properties_required */
1861 0, /* properties_provided */
1862 0, /* properties_destroyed */
1863 0, /* todo_flags_start */
1864 0 /* todo_flags_finish */
1865 }
1866 };
1867
1868
1869 /* If necessary, rewrite the base of the reference tree *TP from
1870 a MEM_REF to a plain or converted symbol. */
1871
1872 static void
1873 maybe_rewrite_mem_ref_base (tree *tp)
1874 {
1875 tree sym;
1876
1877 while (handled_component_p (*tp))
1878 tp = &TREE_OPERAND (*tp, 0);
1879 if (TREE_CODE (*tp) == MEM_REF
1880 && TREE_CODE (TREE_OPERAND (*tp, 0)) == ADDR_EXPR
1881 && (sym = TREE_OPERAND (TREE_OPERAND (*tp, 0), 0))
1882 && DECL_P (sym)
1883 && !TREE_ADDRESSABLE (sym)
1884 && symbol_marked_for_renaming (sym))
1885 {
1886 if (TREE_CODE (TREE_TYPE (sym)) == VECTOR_TYPE
1887 && useless_type_conversion_p (TREE_TYPE (*tp),
1888 TREE_TYPE (TREE_TYPE (sym)))
1889 && multiple_of_p (sizetype, TREE_OPERAND (*tp, 1),
1890 TYPE_SIZE_UNIT (TREE_TYPE (*tp))))
1891 {
1892 *tp = build3 (BIT_FIELD_REF, TREE_TYPE (*tp), sym,
1893 TYPE_SIZE (TREE_TYPE (*tp)),
1894 int_const_binop (MULT_EXPR,
1895 bitsize_int (BITS_PER_UNIT),
1896 TREE_OPERAND (*tp, 1)));
1897 }
1898 else if (TREE_CODE (TREE_TYPE (sym)) == COMPLEX_TYPE
1899 && useless_type_conversion_p (TREE_TYPE (*tp),
1900 TREE_TYPE (TREE_TYPE (sym))))
1901 {
1902 *tp = build1 (integer_zerop (TREE_OPERAND (*tp, 1))
1903 ? REALPART_EXPR : IMAGPART_EXPR,
1904 TREE_TYPE (*tp), sym);
1905 }
1906 else if (integer_zerop (TREE_OPERAND (*tp, 1)))
1907 {
1908 if (!useless_type_conversion_p (TREE_TYPE (*tp),
1909 TREE_TYPE (sym)))
1910 *tp = build1 (VIEW_CONVERT_EXPR,
1911 TREE_TYPE (*tp), sym);
1912 else
1913 *tp = sym;
1914 }
1915 }
1916 }
1917
1918 /* For a tree REF return its base if it is the base of a MEM_REF
1919 that cannot be rewritten into SSA form. Otherwise return NULL_TREE. */
1920
1921 static tree
1922 non_rewritable_mem_ref_base (tree ref)
1923 {
1924 tree base = ref;
1925
1926 /* A plain decl does not need it set. */
1927 if (DECL_P (ref))
1928 return NULL_TREE;
1929
1930 while (handled_component_p (base))
1931 base = TREE_OPERAND (base, 0);
1932
1933 /* But watch out for MEM_REFs we cannot lower to a
1934 VIEW_CONVERT_EXPR or a BIT_FIELD_REF. */
1935 if (TREE_CODE (base) == MEM_REF
1936 && TREE_CODE (TREE_OPERAND (base, 0)) == ADDR_EXPR)
1937 {
1938 tree decl = TREE_OPERAND (TREE_OPERAND (base, 0), 0);
1939 if ((TREE_CODE (TREE_TYPE (decl)) == VECTOR_TYPE
1940 || TREE_CODE (TREE_TYPE (decl)) == COMPLEX_TYPE)
1941 && useless_type_conversion_p (TREE_TYPE (base),
1942 TREE_TYPE (TREE_TYPE (decl)))
1943 && double_int_fits_in_uhwi_p (mem_ref_offset (base))
1944 && double_int_ucmp
1945 (tree_to_double_int (TYPE_SIZE_UNIT (TREE_TYPE (decl))),
1946 mem_ref_offset (base)) == 1
1947 && multiple_of_p (sizetype, TREE_OPERAND (base, 1),
1948 TYPE_SIZE_UNIT (TREE_TYPE (base))))
1949 return NULL_TREE;
1950 if (DECL_P (decl)
1951 && (!integer_zerop (TREE_OPERAND (base, 1))
1952 || (DECL_SIZE (decl)
1953 != TYPE_SIZE (TREE_TYPE (base)))
1954 || TREE_THIS_VOLATILE (decl) != TREE_THIS_VOLATILE (base)))
1955 return decl;
1956 }
1957
1958 return NULL_TREE;
1959 }
1960
1961 /* For an lvalue tree LHS return true if it cannot be rewritten into SSA form.
1962 Otherwise return true. */
1963
1964 static bool
1965 non_rewritable_lvalue_p (tree lhs)
1966 {
1967 /* A plain decl is always rewritable. */
1968 if (DECL_P (lhs))
1969 return false;
1970
1971 /* A decl that is wrapped inside a MEM-REF that covers
1972 it full is also rewritable.
1973 ??? The following could be relaxed allowing component
1974 references that do not change the access size. */
1975 if (TREE_CODE (lhs) == MEM_REF
1976 && TREE_CODE (TREE_OPERAND (lhs, 0)) == ADDR_EXPR
1977 && integer_zerop (TREE_OPERAND (lhs, 1)))
1978 {
1979 tree decl = TREE_OPERAND (TREE_OPERAND (lhs, 0), 0);
1980 if (DECL_P (decl)
1981 && DECL_SIZE (decl) == TYPE_SIZE (TREE_TYPE (lhs))
1982 && (TREE_THIS_VOLATILE (decl) == TREE_THIS_VOLATILE (lhs)))
1983 return false;
1984 }
1985
1986 return true;
1987 }
1988
1989 /* When possible, clear TREE_ADDRESSABLE bit or set DECL_GIMPLE_REG_P bit and
1990 mark the variable VAR for conversion into SSA. Return true when updating
1991 stmts is required. */
1992
1993 static bool
1994 maybe_optimize_var (tree var, bitmap addresses_taken, bitmap not_reg_needs)
1995 {
1996 bool update_vops = false;
1997
1998 /* Global Variables, result decls cannot be changed. */
1999 if (is_global_var (var)
2000 || TREE_CODE (var) == RESULT_DECL
2001 || bitmap_bit_p (addresses_taken, DECL_UID (var)))
2002 return false;
2003
2004 /* If the variable is not in the list of referenced vars then we
2005 do not need to touch it nor can we rename it. */
2006 if (!referenced_var_lookup (cfun, DECL_UID (var)))
2007 return false;
2008
2009 if (TREE_ADDRESSABLE (var)
2010 /* Do not change TREE_ADDRESSABLE if we need to preserve var as
2011 a non-register. Otherwise we are confused and forget to
2012 add virtual operands for it. */
2013 && (!is_gimple_reg_type (TREE_TYPE (var))
2014 || !bitmap_bit_p (not_reg_needs, DECL_UID (var))))
2015 {
2016 TREE_ADDRESSABLE (var) = 0;
2017 if (is_gimple_reg (var))
2018 mark_sym_for_renaming (var);
2019 update_vops = true;
2020 if (dump_file)
2021 {
2022 fprintf (dump_file, "No longer having address taken: ");
2023 print_generic_expr (dump_file, var, 0);
2024 fprintf (dump_file, "\n");
2025 }
2026 }
2027
2028 if (!DECL_GIMPLE_REG_P (var)
2029 && !bitmap_bit_p (not_reg_needs, DECL_UID (var))
2030 && (TREE_CODE (TREE_TYPE (var)) == COMPLEX_TYPE
2031 || TREE_CODE (TREE_TYPE (var)) == VECTOR_TYPE)
2032 && !TREE_THIS_VOLATILE (var)
2033 && (TREE_CODE (var) != VAR_DECL || !DECL_HARD_REGISTER (var)))
2034 {
2035 DECL_GIMPLE_REG_P (var) = 1;
2036 mark_sym_for_renaming (var);
2037 update_vops = true;
2038 if (dump_file)
2039 {
2040 fprintf (dump_file, "Now a gimple register: ");
2041 print_generic_expr (dump_file, var, 0);
2042 fprintf (dump_file, "\n");
2043 }
2044 }
2045
2046 return update_vops;
2047 }
2048
2049 /* Compute TREE_ADDRESSABLE and DECL_GIMPLE_REG_P for local variables. */
2050
2051 void
2052 execute_update_addresses_taken (void)
2053 {
2054 gimple_stmt_iterator gsi;
2055 basic_block bb;
2056 bitmap addresses_taken = BITMAP_ALLOC (NULL);
2057 bitmap not_reg_needs = BITMAP_ALLOC (NULL);
2058 bool update_vops = false;
2059 tree var;
2060 unsigned i;
2061
2062 timevar_push (TV_ADDRESS_TAKEN);
2063
2064 /* Collect into ADDRESSES_TAKEN all variables whose address is taken within
2065 the function body. */
2066 FOR_EACH_BB (bb)
2067 {
2068 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
2069 {
2070 gimple stmt = gsi_stmt (gsi);
2071 enum gimple_code code = gimple_code (stmt);
2072 tree decl;
2073
2074 /* Note all addresses taken by the stmt. */
2075 gimple_ior_addresses_taken (addresses_taken, stmt);
2076
2077 /* If we have a call or an assignment, see if the lhs contains
2078 a local decl that requires not to be a gimple register. */
2079 if (code == GIMPLE_ASSIGN || code == GIMPLE_CALL)
2080 {
2081 tree lhs = gimple_get_lhs (stmt);
2082 if (lhs
2083 && TREE_CODE (lhs) != SSA_NAME
2084 && non_rewritable_lvalue_p (lhs))
2085 {
2086 decl = get_base_address (lhs);
2087 if (DECL_P (decl))
2088 bitmap_set_bit (not_reg_needs, DECL_UID (decl));
2089 }
2090 }
2091
2092 if (gimple_assign_single_p (stmt))
2093 {
2094 tree rhs = gimple_assign_rhs1 (stmt);
2095 if ((decl = non_rewritable_mem_ref_base (rhs)))
2096 bitmap_set_bit (not_reg_needs, DECL_UID (decl));
2097 }
2098
2099 else if (code == GIMPLE_CALL)
2100 {
2101 for (i = 0; i < gimple_call_num_args (stmt); ++i)
2102 {
2103 tree arg = gimple_call_arg (stmt, i);
2104 if ((decl = non_rewritable_mem_ref_base (arg)))
2105 bitmap_set_bit (not_reg_needs, DECL_UID (decl));
2106 }
2107 }
2108
2109 else if (code == GIMPLE_ASM)
2110 {
2111 for (i = 0; i < gimple_asm_noutputs (stmt); ++i)
2112 {
2113 tree link = gimple_asm_output_op (stmt, i);
2114 tree lhs = TREE_VALUE (link);
2115 if (TREE_CODE (lhs) != SSA_NAME)
2116 {
2117 decl = get_base_address (lhs);
2118 if (DECL_P (decl)
2119 && (non_rewritable_lvalue_p (lhs)
2120 /* We cannot move required conversions from
2121 the lhs to the rhs in asm statements, so
2122 require we do not need any. */
2123 || !useless_type_conversion_p
2124 (TREE_TYPE (lhs), TREE_TYPE (decl))))
2125 bitmap_set_bit (not_reg_needs, DECL_UID (decl));
2126 }
2127 }
2128 for (i = 0; i < gimple_asm_ninputs (stmt); ++i)
2129 {
2130 tree link = gimple_asm_input_op (stmt, i);
2131 if ((decl = non_rewritable_mem_ref_base (TREE_VALUE (link))))
2132 bitmap_set_bit (not_reg_needs, DECL_UID (decl));
2133 }
2134 }
2135 }
2136
2137 for (gsi = gsi_start_phis (bb); !gsi_end_p (gsi); gsi_next (&gsi))
2138 {
2139 size_t i;
2140 gimple phi = gsi_stmt (gsi);
2141
2142 for (i = 0; i < gimple_phi_num_args (phi); i++)
2143 {
2144 tree op = PHI_ARG_DEF (phi, i), var;
2145 if (TREE_CODE (op) == ADDR_EXPR
2146 && (var = get_base_address (TREE_OPERAND (op, 0))) != NULL
2147 && DECL_P (var))
2148 bitmap_set_bit (addresses_taken, DECL_UID (var));
2149 }
2150 }
2151 }
2152
2153 /* We cannot iterate over all referenced vars because that can contain
2154 unused vars from BLOCK trees, which causes code generation differences
2155 for -g vs. -g0. */
2156 for (var = DECL_ARGUMENTS (cfun->decl); var; var = DECL_CHAIN (var))
2157 update_vops |= maybe_optimize_var (var, addresses_taken, not_reg_needs);
2158
2159 FOR_EACH_VEC_ELT (tree, cfun->local_decls, i, var)
2160 update_vops |= maybe_optimize_var (var, addresses_taken, not_reg_needs);
2161
2162 /* Operand caches need to be recomputed for operands referencing the updated
2163 variables. */
2164 if (update_vops)
2165 {
2166 FOR_EACH_BB (bb)
2167 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
2168 {
2169 gimple stmt = gsi_stmt (gsi);
2170
2171 /* Re-write TARGET_MEM_REFs of symbols we want to
2172 rewrite into SSA form. */
2173 if (gimple_assign_single_p (stmt))
2174 {
2175 tree lhs = gimple_assign_lhs (stmt);
2176 tree rhs, *rhsp = gimple_assign_rhs1_ptr (stmt);
2177 tree sym;
2178
2179 /* We shouldn't have any fancy wrapping of
2180 component-refs on the LHS, but look through
2181 VIEW_CONVERT_EXPRs as that is easy. */
2182 while (TREE_CODE (lhs) == VIEW_CONVERT_EXPR)
2183 lhs = TREE_OPERAND (lhs, 0);
2184 if (TREE_CODE (lhs) == MEM_REF
2185 && TREE_CODE (TREE_OPERAND (lhs, 0)) == ADDR_EXPR
2186 && integer_zerop (TREE_OPERAND (lhs, 1))
2187 && (sym = TREE_OPERAND (TREE_OPERAND (lhs, 0), 0))
2188 && DECL_P (sym)
2189 && !TREE_ADDRESSABLE (sym)
2190 && symbol_marked_for_renaming (sym))
2191 lhs = sym;
2192 else
2193 lhs = gimple_assign_lhs (stmt);
2194
2195 /* Rewrite the RHS and make sure the resulting assignment
2196 is validly typed. */
2197 maybe_rewrite_mem_ref_base (rhsp);
2198 rhs = gimple_assign_rhs1 (stmt);
2199 if (gimple_assign_lhs (stmt) != lhs
2200 && !useless_type_conversion_p (TREE_TYPE (lhs),
2201 TREE_TYPE (rhs)))
2202 rhs = fold_build1 (VIEW_CONVERT_EXPR,
2203 TREE_TYPE (lhs), rhs);
2204
2205 if (gimple_assign_lhs (stmt) != lhs)
2206 gimple_assign_set_lhs (stmt, lhs);
2207
2208 if (gimple_assign_rhs1 (stmt) != rhs)
2209 {
2210 gimple_stmt_iterator gsi = gsi_for_stmt (stmt);
2211 gimple_assign_set_rhs_from_tree (&gsi, rhs);
2212 }
2213 }
2214
2215 else if (gimple_code (stmt) == GIMPLE_CALL)
2216 {
2217 unsigned i;
2218 for (i = 0; i < gimple_call_num_args (stmt); ++i)
2219 {
2220 tree *argp = gimple_call_arg_ptr (stmt, i);
2221 maybe_rewrite_mem_ref_base (argp);
2222 }
2223 }
2224
2225 else if (gimple_code (stmt) == GIMPLE_ASM)
2226 {
2227 unsigned i;
2228 for (i = 0; i < gimple_asm_noutputs (stmt); ++i)
2229 {
2230 tree link = gimple_asm_output_op (stmt, i);
2231 maybe_rewrite_mem_ref_base (&TREE_VALUE (link));
2232 }
2233 for (i = 0; i < gimple_asm_ninputs (stmt); ++i)
2234 {
2235 tree link = gimple_asm_input_op (stmt, i);
2236 maybe_rewrite_mem_ref_base (&TREE_VALUE (link));
2237 }
2238 }
2239
2240 else if (gimple_debug_bind_p (stmt)
2241 && gimple_debug_bind_has_value_p (stmt))
2242 {
2243 tree *valuep = gimple_debug_bind_get_value_ptr (stmt);
2244 tree decl;
2245 maybe_rewrite_mem_ref_base (valuep);
2246 decl = non_rewritable_mem_ref_base (*valuep);
2247 if (decl && symbol_marked_for_renaming (decl))
2248 gimple_debug_bind_reset_value (stmt);
2249 }
2250
2251 if (gimple_references_memory_p (stmt)
2252 || is_gimple_debug (stmt))
2253 update_stmt (stmt);
2254 }
2255
2256 /* Update SSA form here, we are called as non-pass as well. */
2257 update_ssa (TODO_update_ssa);
2258 }
2259
2260 BITMAP_FREE (not_reg_needs);
2261 BITMAP_FREE (addresses_taken);
2262 timevar_pop (TV_ADDRESS_TAKEN);
2263 }
2264
2265 struct gimple_opt_pass pass_update_address_taken =
2266 {
2267 {
2268 GIMPLE_PASS,
2269 "addressables", /* name */
2270 NULL, /* gate */
2271 NULL, /* execute */
2272 NULL, /* sub */
2273 NULL, /* next */
2274 0, /* static_pass_number */
2275 TV_ADDRESS_TAKEN, /* tv_id */
2276 PROP_ssa, /* properties_required */
2277 0, /* properties_provided */
2278 0, /* properties_destroyed */
2279 0, /* todo_flags_start */
2280 TODO_update_address_taken
2281 | TODO_dump_func /* todo_flags_finish */
2282 }
2283 };