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1 /* Control flow graph manipulation code for GNU compiler.
2 Copyright (C) 1987, 1988, 1992, 1993, 1994, 1995, 1996, 1997, 1998,
3 1999, 2000, 2001, 2002, 2003 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 it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 2, or (at your option) any later
10 version.
11
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15 for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING. If not, write to the Free
19 Software Foundation, 59 Temple Place - Suite 330, Boston, MA
20 02111-1307, USA. */
21
22 /* This file contains low level functions to manipulate the CFG and
23 analyze it. All other modules should not transform the data structure
24 directly and use abstraction instead. The file is supposed to be
25 ordered bottom-up and should not contain any code dependent on a
26 particular intermediate language (RTL or trees).
27
28 Available functionality:
29 - Initialization/deallocation
30 init_flow, clear_edges
31 - Low level basic block manipulation
32 alloc_block, expunge_block
33 - Edge manipulation
34 make_edge, make_single_succ_edge, cached_make_edge, remove_edge
35 - Low level edge redirection (without updating instruction chain)
36 redirect_edge_succ, redirect_edge_succ_nodup, redirect_edge_pred
37 - Dumping and debugging
38 dump_flow_info, debug_flow_info, dump_edge_info
39 - Allocation of AUX fields for basic blocks
40 alloc_aux_for_blocks, free_aux_for_blocks, alloc_aux_for_block
41 - clear_bb_flags
42 - Consistency checking
43 verify_flow_info
44 - Dumping and debugging
45 print_rtl_with_bb, dump_bb, debug_bb, debug_bb_n
46 */
47 \f
48 #include "config.h"
49 #include "system.h"
50 #include "coretypes.h"
51 #include "tm.h"
52 #include "tree.h"
53 #include "rtl.h"
54 #include "hard-reg-set.h"
55 #include "basic-block.h"
56 #include "regs.h"
57 #include "flags.h"
58 #include "output.h"
59 #include "function.h"
60 #include "except.h"
61 #include "toplev.h"
62 #include "tm_p.h"
63 #include "obstack.h"
64 #include "alloc-pool.h"
65
66 /* The obstack on which the flow graph components are allocated. */
67
68 struct obstack flow_obstack;
69 static char *flow_firstobj;
70
71 /* Basic block object pool. */
72
73 static alloc_pool bb_pool;
74
75 /* Edge object pool. */
76
77 static alloc_pool edge_pool;
78
79 /* Number of basic blocks in the current function. */
80
81 int n_basic_blocks;
82
83 /* First free basic block number. */
84
85 int last_basic_block;
86
87 /* Number of edges in the current function. */
88
89 int n_edges;
90
91 /* The basic block array. */
92
93 varray_type basic_block_info;
94
95 /* The special entry and exit blocks. */
96
97 struct basic_block_def entry_exit_blocks[2]
98 = {{NULL, /* head */
99 NULL, /* end */
100 NULL, /* head_tree */
101 NULL, /* end_tree */
102 NULL, /* pred */
103 NULL, /* succ */
104 NULL, /* local_set */
105 NULL, /* cond_local_set */
106 NULL, /* global_live_at_start */
107 NULL, /* global_live_at_end */
108 NULL, /* aux */
109 ENTRY_BLOCK, /* index */
110 NULL, /* prev_bb */
111 EXIT_BLOCK_PTR, /* next_bb */
112 0, /* loop_depth */
113 NULL, /* loop_father */
114 0, /* count */
115 0, /* frequency */
116 0, /* flags */
117 NULL /* rbi */
118 },
119 {
120 NULL, /* head */
121 NULL, /* end */
122 NULL, /* head_tree */
123 NULL, /* end_tree */
124 NULL, /* pred */
125 NULL, /* succ */
126 NULL, /* local_set */
127 NULL, /* cond_local_set */
128 NULL, /* global_live_at_start */
129 NULL, /* global_live_at_end */
130 NULL, /* aux */
131 EXIT_BLOCK, /* index */
132 ENTRY_BLOCK_PTR, /* prev_bb */
133 NULL, /* next_bb */
134 0, /* loop_depth */
135 NULL, /* loop_father */
136 0, /* count */
137 0, /* frequency */
138 0, /* flags */
139 NULL /* rbi */
140 }
141 };
142
143 void debug_flow_info (void);
144 static void free_edge (edge);
145 \f
146 /* Called once at initialization time. */
147
148 void
149 init_flow (void)
150 {
151 static int initialized;
152
153 n_edges = 0;
154
155 if (!initialized)
156 {
157 gcc_obstack_init (&flow_obstack);
158 flow_firstobj = obstack_alloc (&flow_obstack, 0);
159 initialized = 1;
160 }
161 else
162 {
163 free_alloc_pool (bb_pool);
164 free_alloc_pool (edge_pool);
165 obstack_free (&flow_obstack, flow_firstobj);
166 flow_firstobj = obstack_alloc (&flow_obstack, 0);
167 }
168 bb_pool = create_alloc_pool ("Basic block pool",
169 sizeof (struct basic_block_def), 100);
170 edge_pool = create_alloc_pool ("Edge pool",
171 sizeof (struct edge_def), 100);
172 }
173 \f
174 /* Helper function for remove_edge and clear_edges. Frees edge structure
175 without actually unlinking it from the pred/succ lists. */
176
177 static void
178 free_edge (edge e)
179 {
180 n_edges--;
181 pool_free (edge_pool, e);
182 }
183
184 /* Free the memory associated with the edge structures. */
185
186 void
187 clear_edges (void)
188 {
189 basic_block bb;
190 edge e;
191
192 FOR_EACH_BB (bb)
193 {
194 edge e = bb->succ;
195
196 while (e)
197 {
198 edge next = e->succ_next;
199
200 free_edge (e);
201 e = next;
202 }
203
204 bb->succ = NULL;
205 bb->pred = NULL;
206 }
207
208 e = ENTRY_BLOCK_PTR->succ;
209 while (e)
210 {
211 edge next = e->succ_next;
212
213 free_edge (e);
214 e = next;
215 }
216
217 EXIT_BLOCK_PTR->pred = NULL;
218 ENTRY_BLOCK_PTR->succ = NULL;
219
220 if (n_edges)
221 abort ();
222 }
223 \f
224 /* Allocate memory for basic_block. */
225
226 basic_block
227 alloc_block (void)
228 {
229 basic_block bb;
230 bb = pool_alloc (bb_pool);
231 memset (bb, 0, sizeof (*bb));
232 return bb;
233 }
234
235 /* Link block B to chain after AFTER. */
236 void
237 link_block (basic_block b, basic_block after)
238 {
239 b->next_bb = after->next_bb;
240 b->prev_bb = after;
241 after->next_bb = b;
242 b->next_bb->prev_bb = b;
243 }
244
245 /* Unlink block B from chain. */
246 void
247 unlink_block (basic_block b)
248 {
249 b->next_bb->prev_bb = b->prev_bb;
250 b->prev_bb->next_bb = b->next_bb;
251 }
252
253 /* Sequentially order blocks and compact the arrays. */
254 void
255 compact_blocks (void)
256 {
257 int i;
258 basic_block bb;
259
260 i = 0;
261 FOR_EACH_BB (bb)
262 {
263 BASIC_BLOCK (i) = bb;
264 bb->index = i;
265 i++;
266 }
267
268 if (i != n_basic_blocks)
269 abort ();
270
271 last_basic_block = n_basic_blocks;
272 }
273
274 /* Remove block B from the basic block array. */
275
276 void
277 expunge_block (basic_block b)
278 {
279 unlink_block (b);
280 BASIC_BLOCK (b->index) = NULL;
281 n_basic_blocks--;
282 pool_free (bb_pool, b);
283 }
284 \f
285 /* Create an edge connecting SRC and DEST with flags FLAGS. Return newly
286 created edge. Use this only if you are sure that this edge can't
287 possibly already exist. */
288
289 edge
290 unchecked_make_edge (basic_block src, basic_block dst, int flags)
291 {
292 edge e;
293 e = pool_alloc (edge_pool);
294 memset (e, 0, sizeof (*e));
295 n_edges++;
296
297 e->succ_next = src->succ;
298 e->pred_next = dst->pred;
299 e->src = src;
300 e->dest = dst;
301 e->flags = flags;
302
303 src->succ = e;
304 dst->pred = e;
305
306 return e;
307 }
308
309 /* Create an edge connecting SRC and DST with FLAGS optionally using
310 edge cache CACHE. Return the new edge, NULL if already exist. */
311
312 edge
313 cached_make_edge (sbitmap *edge_cache, basic_block src, basic_block dst, int flags)
314 {
315 int use_edge_cache;
316 edge e;
317
318 /* Don't bother with edge cache for ENTRY or EXIT, if there aren't that
319 many edges to them, or we didn't allocate memory for it. */
320 use_edge_cache = (edge_cache
321 && src != ENTRY_BLOCK_PTR && dst != EXIT_BLOCK_PTR);
322
323 /* Make sure we don't add duplicate edges. */
324 switch (use_edge_cache)
325 {
326 default:
327 /* Quick test for non-existence of the edge. */
328 if (! TEST_BIT (edge_cache[src->index], dst->index))
329 break;
330
331 /* The edge exists; early exit if no work to do. */
332 if (flags == 0)
333 return NULL;
334
335 /* FALLTHRU */
336 case 0:
337 for (e = src->succ; e; e = e->succ_next)
338 if (e->dest == dst)
339 {
340 e->flags |= flags;
341 return NULL;
342 }
343 break;
344 }
345
346 e = unchecked_make_edge (src, dst, flags);
347
348 if (use_edge_cache)
349 SET_BIT (edge_cache[src->index], dst->index);
350
351 return e;
352 }
353
354 /* Create an edge connecting SRC and DEST with flags FLAGS. Return newly
355 created edge or NULL if already exist. */
356
357 edge
358 make_edge (basic_block src, basic_block dest, int flags)
359 {
360 return cached_make_edge (NULL, src, dest, flags);
361 }
362
363 /* Create an edge connecting SRC to DEST and set probability by knowing
364 that it is the single edge leaving SRC. */
365
366 edge
367 make_single_succ_edge (basic_block src, basic_block dest, int flags)
368 {
369 edge e = make_edge (src, dest, flags);
370
371 e->probability = REG_BR_PROB_BASE;
372 e->count = src->count;
373 return e;
374 }
375
376 /* This function will remove an edge from the flow graph. */
377
378 void
379 remove_edge (edge e)
380 {
381 edge last_pred = NULL;
382 edge last_succ = NULL;
383 edge tmp;
384 basic_block src, dest;
385
386 src = e->src;
387 dest = e->dest;
388 for (tmp = src->succ; tmp && tmp != e; tmp = tmp->succ_next)
389 last_succ = tmp;
390
391 if (!tmp)
392 abort ();
393 if (last_succ)
394 last_succ->succ_next = e->succ_next;
395 else
396 src->succ = e->succ_next;
397
398 for (tmp = dest->pred; tmp && tmp != e; tmp = tmp->pred_next)
399 last_pred = tmp;
400
401 if (!tmp)
402 abort ();
403 if (last_pred)
404 last_pred->pred_next = e->pred_next;
405 else
406 dest->pred = e->pred_next;
407
408 free_edge (e);
409 }
410
411 /* Redirect an edge's successor from one block to another. */
412
413 void
414 redirect_edge_succ (edge e, basic_block new_succ)
415 {
416 edge *pe;
417
418 /* Disconnect the edge from the old successor block. */
419 for (pe = &e->dest->pred; *pe != e; pe = &(*pe)->pred_next)
420 continue;
421 *pe = (*pe)->pred_next;
422
423 /* Reconnect the edge to the new successor block. */
424 e->pred_next = new_succ->pred;
425 new_succ->pred = e;
426 e->dest = new_succ;
427 }
428
429 /* Like previous but avoid possible duplicate edge. */
430
431 edge
432 redirect_edge_succ_nodup (edge e, basic_block new_succ)
433 {
434 edge s;
435
436 /* Check whether the edge is already present. */
437 for (s = e->src->succ; s; s = s->succ_next)
438 if (s->dest == new_succ && s != e)
439 break;
440
441 if (s)
442 {
443 s->flags |= e->flags;
444 s->probability += e->probability;
445 if (s->probability > REG_BR_PROB_BASE)
446 s->probability = REG_BR_PROB_BASE;
447 s->count += e->count;
448 remove_edge (e);
449 e = s;
450 }
451 else
452 redirect_edge_succ (e, new_succ);
453
454 return e;
455 }
456
457 /* Redirect an edge's predecessor from one block to another. */
458
459 void
460 redirect_edge_pred (edge e, basic_block new_pred)
461 {
462 edge *pe;
463
464 /* Disconnect the edge from the old predecessor block. */
465 for (pe = &e->src->succ; *pe != e; pe = &(*pe)->succ_next)
466 continue;
467
468 *pe = (*pe)->succ_next;
469
470 /* Reconnect the edge to the new predecessor block. */
471 e->succ_next = new_pred->succ;
472 new_pred->succ = e;
473 e->src = new_pred;
474 }
475
476 void
477 clear_bb_flags (void)
478 {
479 basic_block bb;
480
481 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
482 bb->flags = 0;
483 }
484 \f
485 void
486 dump_flow_info (FILE *file)
487 {
488 int i;
489 int max_regno = max_reg_num ();
490 basic_block bb;
491 static const char * const reg_class_names[] = REG_CLASS_NAMES;
492
493 fprintf (file, "%d registers.\n", max_regno);
494 for (i = FIRST_PSEUDO_REGISTER; i < max_regno; i++)
495 if (REG_N_REFS (i))
496 {
497 enum reg_class class, altclass;
498
499 fprintf (file, "\nRegister %d used %d times across %d insns",
500 i, REG_N_REFS (i), REG_LIVE_LENGTH (i));
501 if (REG_BASIC_BLOCK (i) >= 0)
502 fprintf (file, " in block %d", REG_BASIC_BLOCK (i));
503 if (REG_N_SETS (i))
504 fprintf (file, "; set %d time%s", REG_N_SETS (i),
505 (REG_N_SETS (i) == 1) ? "" : "s");
506 if (regno_reg_rtx[i] != NULL && REG_USERVAR_P (regno_reg_rtx[i]))
507 fprintf (file, "; user var");
508 if (REG_N_DEATHS (i) != 1)
509 fprintf (file, "; dies in %d places", REG_N_DEATHS (i));
510 if (REG_N_CALLS_CROSSED (i) == 1)
511 fprintf (file, "; crosses 1 call");
512 else if (REG_N_CALLS_CROSSED (i))
513 fprintf (file, "; crosses %d calls", REG_N_CALLS_CROSSED (i));
514 if (regno_reg_rtx[i] != NULL
515 && PSEUDO_REGNO_BYTES (i) != UNITS_PER_WORD)
516 fprintf (file, "; %d bytes", PSEUDO_REGNO_BYTES (i));
517
518 class = reg_preferred_class (i);
519 altclass = reg_alternate_class (i);
520 if (class != GENERAL_REGS || altclass != ALL_REGS)
521 {
522 if (altclass == ALL_REGS || class == ALL_REGS)
523 fprintf (file, "; pref %s", reg_class_names[(int) class]);
524 else if (altclass == NO_REGS)
525 fprintf (file, "; %s or none", reg_class_names[(int) class]);
526 else
527 fprintf (file, "; pref %s, else %s",
528 reg_class_names[(int) class],
529 reg_class_names[(int) altclass]);
530 }
531
532 if (regno_reg_rtx[i] != NULL && REG_POINTER (regno_reg_rtx[i]))
533 fprintf (file, "; pointer");
534 fprintf (file, ".\n");
535 }
536
537 fprintf (file, "\n%d basic blocks, %d edges.\n", n_basic_blocks, n_edges);
538 FOR_EACH_BB (bb)
539 {
540 edge e;
541 int sum;
542 gcov_type lsum;
543
544 fprintf (file, "\nBasic block %d: first insn %d, last %d, ",
545 bb->index, INSN_UID (bb->head), INSN_UID (bb->end));
546 fprintf (file, "prev %d, next %d, ",
547 bb->prev_bb->index, bb->next_bb->index);
548 fprintf (file, "loop_depth %d, count ", bb->loop_depth);
549 fprintf (file, HOST_WIDEST_INT_PRINT_DEC, bb->count);
550 fprintf (file, ", freq %i", bb->frequency);
551 if (maybe_hot_bb_p (bb))
552 fprintf (file, ", maybe hot");
553 if (probably_never_executed_bb_p (bb))
554 fprintf (file, ", probably never executed");
555 fprintf (file, ".\n");
556
557 fprintf (file, "Predecessors: ");
558 for (e = bb->pred; e; e = e->pred_next)
559 dump_edge_info (file, e, 0);
560
561 fprintf (file, "\nSuccessors: ");
562 for (e = bb->succ; e; e = e->succ_next)
563 dump_edge_info (file, e, 1);
564
565 fprintf (file, "\nRegisters live at start:");
566 dump_regset (bb->global_live_at_start, file);
567
568 fprintf (file, "\nRegisters live at end:");
569 dump_regset (bb->global_live_at_end, file);
570
571 putc ('\n', file);
572
573 /* Check the consistency of profile information. We can't do that
574 in verify_flow_info, as the counts may get invalid for incompletely
575 solved graphs, later eliminating of conditionals or roundoff errors.
576 It is still practical to have them reported for debugging of simple
577 testcases. */
578 sum = 0;
579 for (e = bb->succ; e; e = e->succ_next)
580 sum += e->probability;
581 if (bb->succ && abs (sum - REG_BR_PROB_BASE) > 100)
582 fprintf (file, "Invalid sum of outgoing probabilities %.1f%%\n",
583 sum * 100.0 / REG_BR_PROB_BASE);
584 sum = 0;
585 for (e = bb->pred; e; e = e->pred_next)
586 sum += EDGE_FREQUENCY (e);
587 if (abs (sum - bb->frequency) > 100)
588 fprintf (file,
589 "Invalid sum of incomming frequencies %i, should be %i\n",
590 sum, bb->frequency);
591 lsum = 0;
592 for (e = bb->pred; e; e = e->pred_next)
593 lsum += e->count;
594 if (lsum - bb->count > 100 || lsum - bb->count < -100)
595 fprintf (file, "Invalid sum of incomming counts %i, should be %i\n",
596 (int)lsum, (int)bb->count);
597 lsum = 0;
598 for (e = bb->succ; e; e = e->succ_next)
599 lsum += e->count;
600 if (bb->succ && (lsum - bb->count > 100 || lsum - bb->count < -100))
601 fprintf (file, "Invalid sum of incomming counts %i, should be %i\n",
602 (int)lsum, (int)bb->count);
603 }
604
605 putc ('\n', file);
606 }
607
608 void
609 debug_flow_info (void)
610 {
611 dump_flow_info (stderr);
612 }
613
614 void
615 dump_edge_info (FILE *file, edge e, int do_succ)
616 {
617 basic_block side = (do_succ ? e->dest : e->src);
618
619 if (side == ENTRY_BLOCK_PTR)
620 fputs (" ENTRY", file);
621 else if (side == EXIT_BLOCK_PTR)
622 fputs (" EXIT", file);
623 else
624 fprintf (file, " %d", side->index);
625
626 if (e->probability)
627 fprintf (file, " [%.1f%%] ", e->probability * 100.0 / REG_BR_PROB_BASE);
628
629 if (e->count)
630 {
631 fprintf (file, " count:");
632 fprintf (file, HOST_WIDEST_INT_PRINT_DEC, e->count);
633 }
634
635 if (e->flags)
636 {
637 static const char * const bitnames[] = {
638 "fallthru", "ab", "abcall", "eh", "fake", "dfs_back",
639 "can_fallthru", "irreducible", "sibcall", "loop_exit"
640 };
641 int comma = 0;
642 int i, flags = e->flags;
643
644 fputs (" (", file);
645 for (i = 0; flags; i++)
646 if (flags & (1 << i))
647 {
648 flags &= ~(1 << i);
649
650 if (comma)
651 fputc (',', file);
652 if (i < (int) ARRAY_SIZE (bitnames))
653 fputs (bitnames[i], file);
654 else
655 fprintf (file, "%d", i);
656 comma = 1;
657 }
658
659 fputc (')', file);
660 }
661 }
662 \f
663 /* Simple routines to easily allocate AUX fields of basic blocks. */
664
665 static struct obstack block_aux_obstack;
666 static void *first_block_aux_obj = 0;
667 static struct obstack edge_aux_obstack;
668 static void *first_edge_aux_obj = 0;
669
670 /* Allocate a memory block of SIZE as BB->aux. The obstack must
671 be first initialized by alloc_aux_for_blocks. */
672
673 inline void
674 alloc_aux_for_block (basic_block bb, int size)
675 {
676 /* Verify that aux field is clear. */
677 if (bb->aux || !first_block_aux_obj)
678 abort ();
679 bb->aux = obstack_alloc (&block_aux_obstack, size);
680 memset (bb->aux, 0, size);
681 }
682
683 /* Initialize the block_aux_obstack and if SIZE is nonzero, call
684 alloc_aux_for_block for each basic block. */
685
686 void
687 alloc_aux_for_blocks (int size)
688 {
689 static int initialized;
690
691 if (!initialized)
692 {
693 gcc_obstack_init (&block_aux_obstack);
694 initialized = 1;
695 }
696
697 /* Check whether AUX data are still allocated. */
698 else if (first_block_aux_obj)
699 abort ();
700 first_block_aux_obj = obstack_alloc (&block_aux_obstack, 0);
701 if (size)
702 {
703 basic_block bb;
704
705 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
706 alloc_aux_for_block (bb, size);
707 }
708 }
709
710 /* Clear AUX pointers of all blocks. */
711
712 void
713 clear_aux_for_blocks (void)
714 {
715 basic_block bb;
716
717 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
718 bb->aux = NULL;
719 }
720
721 /* Free data allocated in block_aux_obstack and clear AUX pointers
722 of all blocks. */
723
724 void
725 free_aux_for_blocks (void)
726 {
727 if (!first_block_aux_obj)
728 abort ();
729 obstack_free (&block_aux_obstack, first_block_aux_obj);
730 first_block_aux_obj = NULL;
731
732 clear_aux_for_blocks ();
733 }
734
735 /* Allocate a memory edge of SIZE as BB->aux. The obstack must
736 be first initialized by alloc_aux_for_edges. */
737
738 inline void
739 alloc_aux_for_edge (edge e, int size)
740 {
741 /* Verify that aux field is clear. */
742 if (e->aux || !first_edge_aux_obj)
743 abort ();
744 e->aux = obstack_alloc (&edge_aux_obstack, size);
745 memset (e->aux, 0, size);
746 }
747
748 /* Initialize the edge_aux_obstack and if SIZE is nonzero, call
749 alloc_aux_for_edge for each basic edge. */
750
751 void
752 alloc_aux_for_edges (int size)
753 {
754 static int initialized;
755
756 if (!initialized)
757 {
758 gcc_obstack_init (&edge_aux_obstack);
759 initialized = 1;
760 }
761
762 /* Check whether AUX data are still allocated. */
763 else if (first_edge_aux_obj)
764 abort ();
765
766 first_edge_aux_obj = obstack_alloc (&edge_aux_obstack, 0);
767 if (size)
768 {
769 basic_block bb;
770
771 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, EXIT_BLOCK_PTR, next_bb)
772 {
773 edge e;
774
775 for (e = bb->succ; e; e = e->succ_next)
776 alloc_aux_for_edge (e, size);
777 }
778 }
779 }
780
781 /* Clear AUX pointers of all edges. */
782
783 void
784 clear_aux_for_edges (void)
785 {
786 basic_block bb;
787 edge e;
788
789 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, EXIT_BLOCK_PTR, next_bb)
790 {
791 for (e = bb->succ; e; e = e->succ_next)
792 e->aux = NULL;
793 }
794 }
795
796 /* Free data allocated in edge_aux_obstack and clear AUX pointers
797 of all edges. */
798
799 void
800 free_aux_for_edges (void)
801 {
802 if (!first_edge_aux_obj)
803 abort ();
804 obstack_free (&edge_aux_obstack, first_edge_aux_obj);
805 first_edge_aux_obj = NULL;
806
807 clear_aux_for_edges ();
808 }
809
810 /* Verify the CFG consistency.
811
812 Currently it does following checks edge and basic block list correctness
813 and calls into IL dependent checking then. */
814 void
815 verify_flow_info (void)
816 {
817 size_t *edge_checksum;
818 int num_bb_notes, err = 0;
819 basic_block bb, last_bb_seen;
820 basic_block *last_visited;
821
822 last_visited = xcalloc (last_basic_block + 2, sizeof (basic_block));
823 edge_checksum = xcalloc (last_basic_block + 2, sizeof (size_t));
824
825 /* Check bb chain & numbers. */
826 last_bb_seen = ENTRY_BLOCK_PTR;
827 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR->next_bb, NULL, next_bb)
828 {
829 if (bb != EXIT_BLOCK_PTR
830 && bb != BASIC_BLOCK (bb->index))
831 {
832 error ("bb %d on wrong place", bb->index);
833 err = 1;
834 }
835
836 if (bb->prev_bb != last_bb_seen)
837 {
838 error ("prev_bb of %d should be %d, not %d",
839 bb->index, last_bb_seen->index, bb->prev_bb->index);
840 err = 1;
841 }
842
843 last_bb_seen = bb;
844 }
845
846 /* Now check the basic blocks (boundaries etc.) */
847 FOR_EACH_BB_REVERSE (bb)
848 {
849 int n_fallthru = 0;
850 edge e;
851
852 if (bb->count < 0)
853 {
854 error ("verify_flow_info: Wrong count of block %i %i",
855 bb->index, (int)bb->count);
856 err = 1;
857 }
858 if (bb->frequency < 0)
859 {
860 error ("verify_flow_info: Wrong frequency of block %i %i",
861 bb->index, bb->frequency);
862 err = 1;
863 }
864 for (e = bb->succ; e; e = e->succ_next)
865 {
866 if (last_visited [e->dest->index + 2] == bb)
867 {
868 error ("verify_flow_info: Duplicate edge %i->%i",
869 e->src->index, e->dest->index);
870 err = 1;
871 }
872 if (e->probability < 0 || e->probability > REG_BR_PROB_BASE)
873 {
874 error ("verify_flow_info: Wrong probability of edge %i->%i %i",
875 e->src->index, e->dest->index, e->probability);
876 err = 1;
877 }
878 if (e->count < 0)
879 {
880 error ("verify_flow_info: Wrong count of edge %i->%i %i",
881 e->src->index, e->dest->index, (int)e->count);
882 err = 1;
883 }
884
885 last_visited [e->dest->index + 2] = bb;
886
887 if (e->flags & EDGE_FALLTHRU)
888 n_fallthru++;
889
890 if (e->src != bb)
891 {
892 error ("verify_flow_info: Basic block %d succ edge is corrupted",
893 bb->index);
894 fprintf (stderr, "Predecessor: ");
895 dump_edge_info (stderr, e, 0);
896 fprintf (stderr, "\nSuccessor: ");
897 dump_edge_info (stderr, e, 1);
898 fprintf (stderr, "\n");
899 err = 1;
900 }
901
902 edge_checksum[e->dest->index + 2] += (size_t) e;
903 }
904 if (n_fallthru > 1)
905 {
906 error ("Wrong amount of branch edges after unconditional jump %i", bb->index);
907 err = 1;
908 }
909
910 for (e = bb->pred; e; e = e->pred_next)
911 {
912 if (e->dest != bb)
913 {
914 error ("basic block %d pred edge is corrupted", bb->index);
915 fputs ("Predecessor: ", stderr);
916 dump_edge_info (stderr, e, 0);
917 fputs ("\nSuccessor: ", stderr);
918 dump_edge_info (stderr, e, 1);
919 fputc ('\n', stderr);
920 err = 1;
921 }
922 edge_checksum[e->dest->index + 2] -= (size_t) e;
923 }
924 }
925
926 /* Complete edge checksumming for ENTRY and EXIT. */
927 {
928 edge e;
929
930 for (e = ENTRY_BLOCK_PTR->succ; e ; e = e->succ_next)
931 edge_checksum[e->dest->index + 2] += (size_t) e;
932
933 for (e = EXIT_BLOCK_PTR->pred; e ; e = e->pred_next)
934 edge_checksum[e->dest->index + 2] -= (size_t) e;
935 }
936
937 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
938 if (edge_checksum[bb->index + 2])
939 {
940 error ("basic block %i edge lists are corrupted", bb->index);
941 err = 1;
942 }
943
944 num_bb_notes = 0;
945 last_bb_seen = ENTRY_BLOCK_PTR;
946
947 /* Clean up. */
948 free (last_visited);
949 free (edge_checksum);
950 err |= cfg_hooks->cfgh_verify_flow_info ();
951 if (err)
952 internal_error ("verify_flow_info failed");
953 }
954
955 /* Print out one basic block with live information at start and end. */
956
957 void
958 dump_bb (basic_block bb, FILE *outf)
959 {
960 edge e;
961
962 fprintf (outf, ";; Basic block %d, loop depth %d, count ",
963 bb->index, bb->loop_depth);
964 fprintf (outf, HOST_WIDEST_INT_PRINT_DEC, (HOST_WIDEST_INT) bb->count);
965 putc ('\n', outf);
966
967 cfg_hooks->dump_bb (bb, outf);
968
969 fputs (";; Successors: ", outf);
970 for (e = bb->succ; e; e = e->succ_next)
971 dump_edge_info (outf, e, 1);
972 putc ('\n', outf);
973 }
974
975 void
976 debug_bb (basic_block bb)
977 {
978 dump_bb (bb, stderr);
979 }
980
981 basic_block
982 debug_bb_n (int n)
983 {
984 basic_block bb = BASIC_BLOCK (n);
985 dump_bb (bb, stderr);
986 return bb;
987 }
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