2015-06-11 Paul Thomas <pault@gcc.gnu.org>
[official-gcc.git] / gcc / cfg.c
blob9ca8987e07638e98bd899c19611ae2c74adbcb25
1 /* Control flow graph manipulation code for GNU compiler.
2 Copyright (C) 1987-2015 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 /* This file contains low level functions to manipulate the CFG and
21 analyze it. All other modules should not transform the data structure
22 directly and use abstraction instead. The file is supposed to be
23 ordered bottom-up and should not contain any code dependent on a
24 particular intermediate language (RTL or trees).
26 Available functionality:
27 - Initialization/deallocation
28 init_flow, clear_edges
29 - Low level basic block manipulation
30 alloc_block, expunge_block
31 - Edge manipulation
32 make_edge, make_single_succ_edge, cached_make_edge, remove_edge
33 - Low level edge redirection (without updating instruction chain)
34 redirect_edge_succ, redirect_edge_succ_nodup, redirect_edge_pred
35 - Dumping and debugging
36 dump_flow_info, debug_flow_info, dump_edge_info
37 - Allocation of AUX fields for basic blocks
38 alloc_aux_for_blocks, free_aux_for_blocks, alloc_aux_for_block
39 - clear_bb_flags
40 - Consistency checking
41 verify_flow_info
42 - Dumping and debugging
43 print_rtl_with_bb, dump_bb, debug_bb, debug_bb_n
45 TODO: Document these "Available functionality" functions in the files
46 that implement them.
49 #include "config.h"
50 #include "system.h"
51 #include "coretypes.h"
52 #include "obstack.h"
53 #include "alloc-pool.h"
54 #include "input.h"
55 #include "alias.h"
56 #include "symtab.h"
57 #include "options.h"
58 #include "tree.h"
59 #include "predict.h"
60 #include "tm.h"
61 #include "hard-reg-set.h"
62 #include "input.h"
63 #include "function.h"
64 #include "dominance.h"
65 #include "cfg.h"
66 #include "cfganal.h"
67 #include "basic-block.h"
68 #include "df.h"
69 #include "cfgloop.h" /* FIXME: For struct loop. */
70 #include "dumpfile.h"
73 #define RDIV(X,Y) (((X) + (Y) / 2) / (Y))
75 /* Called once at initialization time. */
77 void
78 init_flow (struct function *the_fun)
80 if (!the_fun->cfg)
81 the_fun->cfg = ggc_cleared_alloc<control_flow_graph> ();
82 n_edges_for_fn (the_fun) = 0;
83 ENTRY_BLOCK_PTR_FOR_FN (the_fun)
84 = ggc_cleared_alloc<basic_block_def> ();
85 ENTRY_BLOCK_PTR_FOR_FN (the_fun)->index = ENTRY_BLOCK;
86 EXIT_BLOCK_PTR_FOR_FN (the_fun)
87 = ggc_cleared_alloc<basic_block_def> ();
88 EXIT_BLOCK_PTR_FOR_FN (the_fun)->index = EXIT_BLOCK;
89 ENTRY_BLOCK_PTR_FOR_FN (the_fun)->next_bb
90 = EXIT_BLOCK_PTR_FOR_FN (the_fun);
91 EXIT_BLOCK_PTR_FOR_FN (the_fun)->prev_bb
92 = ENTRY_BLOCK_PTR_FOR_FN (the_fun);
95 /* Helper function for remove_edge and clear_edges. Frees edge structure
96 without actually removing it from the pred/succ arrays. */
98 static void
99 free_edge (edge e)
101 n_edges_for_fn (cfun)--;
102 ggc_free (e);
105 /* Free the memory associated with the edge structures. */
107 void
108 clear_edges (void)
110 basic_block bb;
111 edge e;
112 edge_iterator ei;
114 FOR_EACH_BB_FN (bb, cfun)
116 FOR_EACH_EDGE (e, ei, bb->succs)
117 free_edge (e);
118 vec_safe_truncate (bb->succs, 0);
119 vec_safe_truncate (bb->preds, 0);
122 FOR_EACH_EDGE (e, ei, ENTRY_BLOCK_PTR_FOR_FN (cfun)->succs)
123 free_edge (e);
124 vec_safe_truncate (EXIT_BLOCK_PTR_FOR_FN (cfun)->preds, 0);
125 vec_safe_truncate (ENTRY_BLOCK_PTR_FOR_FN (cfun)->succs, 0);
127 gcc_assert (!n_edges_for_fn (cfun));
130 /* Allocate memory for basic_block. */
132 basic_block
133 alloc_block (void)
135 basic_block bb;
136 bb = ggc_cleared_alloc<basic_block_def> ();
137 return bb;
140 /* Link block B to chain after AFTER. */
141 void
142 link_block (basic_block b, basic_block after)
144 b->next_bb = after->next_bb;
145 b->prev_bb = after;
146 after->next_bb = b;
147 b->next_bb->prev_bb = b;
150 /* Unlink block B from chain. */
151 void
152 unlink_block (basic_block b)
154 b->next_bb->prev_bb = b->prev_bb;
155 b->prev_bb->next_bb = b->next_bb;
156 b->prev_bb = NULL;
157 b->next_bb = NULL;
160 /* Sequentially order blocks and compact the arrays. */
161 void
162 compact_blocks (void)
164 int i;
166 SET_BASIC_BLOCK_FOR_FN (cfun, ENTRY_BLOCK, ENTRY_BLOCK_PTR_FOR_FN (cfun));
167 SET_BASIC_BLOCK_FOR_FN (cfun, EXIT_BLOCK, EXIT_BLOCK_PTR_FOR_FN (cfun));
169 if (df)
170 df_compact_blocks ();
171 else
173 basic_block bb;
175 i = NUM_FIXED_BLOCKS;
176 FOR_EACH_BB_FN (bb, cfun)
178 SET_BASIC_BLOCK_FOR_FN (cfun, i, bb);
179 bb->index = i;
180 i++;
182 gcc_assert (i == n_basic_blocks_for_fn (cfun));
184 for (; i < last_basic_block_for_fn (cfun); i++)
185 SET_BASIC_BLOCK_FOR_FN (cfun, i, NULL);
187 last_basic_block_for_fn (cfun) = n_basic_blocks_for_fn (cfun);
190 /* Remove block B from the basic block array. */
192 void
193 expunge_block (basic_block b)
195 unlink_block (b);
196 SET_BASIC_BLOCK_FOR_FN (cfun, b->index, NULL);
197 n_basic_blocks_for_fn (cfun)--;
198 /* We should be able to ggc_free here, but we are not.
199 The dead SSA_NAMES are left pointing to dead statements that are pointing
200 to dead basic blocks making garbage collector to die.
201 We should be able to release all dead SSA_NAMES and at the same time we should
202 clear out BB pointer of dead statements consistently. */
205 /* Connect E to E->src. */
207 static inline void
208 connect_src (edge e)
210 vec_safe_push (e->src->succs, e);
211 df_mark_solutions_dirty ();
214 /* Connect E to E->dest. */
216 static inline void
217 connect_dest (edge e)
219 basic_block dest = e->dest;
220 vec_safe_push (dest->preds, e);
221 e->dest_idx = EDGE_COUNT (dest->preds) - 1;
222 df_mark_solutions_dirty ();
225 /* Disconnect edge E from E->src. */
227 static inline void
228 disconnect_src (edge e)
230 basic_block src = e->src;
231 edge_iterator ei;
232 edge tmp;
234 for (ei = ei_start (src->succs); (tmp = ei_safe_edge (ei)); )
236 if (tmp == e)
238 src->succs->unordered_remove (ei.index);
239 df_mark_solutions_dirty ();
240 return;
242 else
243 ei_next (&ei);
246 gcc_unreachable ();
249 /* Disconnect edge E from E->dest. */
251 static inline void
252 disconnect_dest (edge e)
254 basic_block dest = e->dest;
255 unsigned int dest_idx = e->dest_idx;
257 dest->preds->unordered_remove (dest_idx);
259 /* If we removed an edge in the middle of the edge vector, we need
260 to update dest_idx of the edge that moved into the "hole". */
261 if (dest_idx < EDGE_COUNT (dest->preds))
262 EDGE_PRED (dest, dest_idx)->dest_idx = dest_idx;
263 df_mark_solutions_dirty ();
266 /* Create an edge connecting SRC and DEST with flags FLAGS. Return newly
267 created edge. Use this only if you are sure that this edge can't
268 possibly already exist. */
270 edge
271 unchecked_make_edge (basic_block src, basic_block dst, int flags)
273 edge e;
274 e = ggc_cleared_alloc<edge_def> ();
275 n_edges_for_fn (cfun)++;
277 e->src = src;
278 e->dest = dst;
279 e->flags = flags;
281 connect_src (e);
282 connect_dest (e);
284 execute_on_growing_pred (e);
285 return e;
288 /* Create an edge connecting SRC and DST with FLAGS optionally using
289 edge cache CACHE. Return the new edge, NULL if already exist. */
291 edge
292 cached_make_edge (sbitmap edge_cache, basic_block src, basic_block dst, int flags)
294 if (edge_cache == NULL
295 || src == ENTRY_BLOCK_PTR_FOR_FN (cfun)
296 || dst == EXIT_BLOCK_PTR_FOR_FN (cfun))
297 return make_edge (src, dst, flags);
299 /* Does the requested edge already exist? */
300 if (! bitmap_bit_p (edge_cache, dst->index))
302 /* The edge does not exist. Create one and update the
303 cache. */
304 bitmap_set_bit (edge_cache, dst->index);
305 return unchecked_make_edge (src, dst, flags);
308 /* At this point, we know that the requested edge exists. Adjust
309 flags if necessary. */
310 if (flags)
312 edge e = find_edge (src, dst);
313 e->flags |= flags;
316 return NULL;
319 /* Create an edge connecting SRC and DEST with flags FLAGS. Return newly
320 created edge or NULL if already exist. */
322 edge
323 make_edge (basic_block src, basic_block dest, int flags)
325 edge e = find_edge (src, dest);
327 /* Make sure we don't add duplicate edges. */
328 if (e)
330 e->flags |= flags;
331 return NULL;
334 return unchecked_make_edge (src, dest, flags);
337 /* Create an edge connecting SRC to DEST and set probability by knowing
338 that it is the single edge leaving SRC. */
340 edge
341 make_single_succ_edge (basic_block src, basic_block dest, int flags)
343 edge e = make_edge (src, dest, flags);
345 e->probability = REG_BR_PROB_BASE;
346 e->count = src->count;
347 return e;
350 /* This function will remove an edge from the flow graph. */
352 void
353 remove_edge_raw (edge e)
355 remove_predictions_associated_with_edge (e);
356 execute_on_shrinking_pred (e);
358 disconnect_src (e);
359 disconnect_dest (e);
361 free_edge (e);
364 /* Redirect an edge's successor from one block to another. */
366 void
367 redirect_edge_succ (edge e, basic_block new_succ)
369 execute_on_shrinking_pred (e);
371 disconnect_dest (e);
373 e->dest = new_succ;
375 /* Reconnect the edge to the new successor block. */
376 connect_dest (e);
378 execute_on_growing_pred (e);
381 /* Redirect an edge's predecessor from one block to another. */
383 void
384 redirect_edge_pred (edge e, basic_block new_pred)
386 disconnect_src (e);
388 e->src = new_pred;
390 /* Reconnect the edge to the new predecessor block. */
391 connect_src (e);
394 /* Clear all basic block flags that do not have to be preserved. */
395 void
396 clear_bb_flags (void)
398 basic_block bb;
400 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR_FOR_FN (cfun), NULL, next_bb)
401 bb->flags &= BB_FLAGS_TO_PRESERVE;
404 /* Check the consistency of profile information. We can't do that
405 in verify_flow_info, as the counts may get invalid for incompletely
406 solved graphs, later eliminating of conditionals or roundoff errors.
407 It is still practical to have them reported for debugging of simple
408 testcases. */
409 static void
410 check_bb_profile (basic_block bb, FILE * file, int indent, int flags)
412 edge e;
413 int sum = 0;
414 gcov_type lsum;
415 edge_iterator ei;
416 struct function *fun = DECL_STRUCT_FUNCTION (current_function_decl);
417 char *s_indent = (char *) alloca ((size_t) indent + 1);
418 memset ((void *) s_indent, ' ', (size_t) indent);
419 s_indent[indent] = '\0';
421 if (profile_status_for_fn (fun) == PROFILE_ABSENT)
422 return;
424 if (bb != EXIT_BLOCK_PTR_FOR_FN (fun))
426 FOR_EACH_EDGE (e, ei, bb->succs)
427 sum += e->probability;
428 if (EDGE_COUNT (bb->succs) && abs (sum - REG_BR_PROB_BASE) > 100)
429 fprintf (file, "%s%sInvalid sum of outgoing probabilities %.1f%%\n",
430 (flags & TDF_COMMENT) ? ";; " : "", s_indent,
431 sum * 100.0 / REG_BR_PROB_BASE);
432 lsum = 0;
433 FOR_EACH_EDGE (e, ei, bb->succs)
434 lsum += e->count;
435 if (EDGE_COUNT (bb->succs)
436 && (lsum - bb->count > 100 || lsum - bb->count < -100))
437 fprintf (file, "%s%sInvalid sum of outgoing counts %i, should be %i\n",
438 (flags & TDF_COMMENT) ? ";; " : "", s_indent,
439 (int) lsum, (int) bb->count);
441 if (bb != ENTRY_BLOCK_PTR_FOR_FN (fun))
443 sum = 0;
444 FOR_EACH_EDGE (e, ei, bb->preds)
445 sum += EDGE_FREQUENCY (e);
446 if (abs (sum - bb->frequency) > 100)
447 fprintf (file,
448 "%s%sInvalid sum of incoming frequencies %i, should be %i\n",
449 (flags & TDF_COMMENT) ? ";; " : "", s_indent,
450 sum, bb->frequency);
451 lsum = 0;
452 FOR_EACH_EDGE (e, ei, bb->preds)
453 lsum += e->count;
454 if (lsum - bb->count > 100 || lsum - bb->count < -100)
455 fprintf (file, "%s%sInvalid sum of incoming counts %i, should be %i\n",
456 (flags & TDF_COMMENT) ? ";; " : "", s_indent,
457 (int) lsum, (int) bb->count);
459 if (BB_PARTITION (bb) == BB_COLD_PARTITION)
461 /* Warn about inconsistencies in the partitioning that are
462 currently caused by profile insanities created via optimization. */
463 if (!probably_never_executed_bb_p (fun, bb))
464 fprintf (file, "%s%sBlock in cold partition with hot count\n",
465 (flags & TDF_COMMENT) ? ";; " : "", s_indent);
466 FOR_EACH_EDGE (e, ei, bb->preds)
468 if (!probably_never_executed_edge_p (fun, e))
469 fprintf (file,
470 "%s%sBlock in cold partition with incoming hot edge\n",
471 (flags & TDF_COMMENT) ? ";; " : "", s_indent);
476 void
477 dump_edge_info (FILE *file, edge e, int flags, int do_succ)
479 basic_block side = (do_succ ? e->dest : e->src);
480 bool do_details = false;
482 if ((flags & TDF_DETAILS) != 0
483 && (flags & TDF_SLIM) == 0)
484 do_details = true;
486 if (side->index == ENTRY_BLOCK)
487 fputs (" ENTRY", file);
488 else if (side->index == EXIT_BLOCK)
489 fputs (" EXIT", file);
490 else
491 fprintf (file, " %d", side->index);
493 if (e->probability && do_details)
494 fprintf (file, " [%.1f%%] ", e->probability * 100.0 / REG_BR_PROB_BASE);
496 if (e->count && do_details)
498 fputs (" count:", file);
499 fprintf (file, "%" PRId64, e->count);
502 if (e->flags && do_details)
504 static const char * const bitnames[] =
506 #define DEF_EDGE_FLAG(NAME,IDX) #NAME ,
507 #include "cfg-flags.def"
508 NULL
509 #undef DEF_EDGE_FLAG
511 bool comma = false;
512 int i, flags = e->flags;
514 gcc_assert (e->flags <= EDGE_ALL_FLAGS);
515 fputs (" (", file);
516 for (i = 0; flags; i++)
517 if (flags & (1 << i))
519 flags &= ~(1 << i);
521 if (comma)
522 fputc (',', file);
523 fputs (bitnames[i], file);
524 comma = true;
527 fputc (')', file);
531 DEBUG_FUNCTION void
532 debug (edge_def &ref)
534 /* FIXME (crowl): Is this desireable? */
535 dump_edge_info (stderr, &ref, 0, false);
536 dump_edge_info (stderr, &ref, 0, true);
539 DEBUG_FUNCTION void
540 debug (edge_def *ptr)
542 if (ptr)
543 debug (*ptr);
544 else
545 fprintf (stderr, "<nil>\n");
548 /* Simple routines to easily allocate AUX fields of basic blocks. */
550 static struct obstack block_aux_obstack;
551 static void *first_block_aux_obj = 0;
552 static struct obstack edge_aux_obstack;
553 static void *first_edge_aux_obj = 0;
555 /* Allocate a memory block of SIZE as BB->aux. The obstack must
556 be first initialized by alloc_aux_for_blocks. */
558 static void
559 alloc_aux_for_block (basic_block bb, int size)
561 /* Verify that aux field is clear. */
562 gcc_assert (!bb->aux && first_block_aux_obj);
563 bb->aux = obstack_alloc (&block_aux_obstack, size);
564 memset (bb->aux, 0, size);
567 /* Initialize the block_aux_obstack and if SIZE is nonzero, call
568 alloc_aux_for_block for each basic block. */
570 void
571 alloc_aux_for_blocks (int size)
573 static int initialized;
575 if (!initialized)
577 gcc_obstack_init (&block_aux_obstack);
578 initialized = 1;
580 else
581 /* Check whether AUX data are still allocated. */
582 gcc_assert (!first_block_aux_obj);
584 first_block_aux_obj = obstack_alloc (&block_aux_obstack, 0);
585 if (size)
587 basic_block bb;
589 FOR_ALL_BB_FN (bb, cfun)
590 alloc_aux_for_block (bb, size);
594 /* Clear AUX pointers of all blocks. */
596 void
597 clear_aux_for_blocks (void)
599 basic_block bb;
601 FOR_ALL_BB_FN (bb, cfun)
602 bb->aux = NULL;
605 /* Free data allocated in block_aux_obstack and clear AUX pointers
606 of all blocks. */
608 void
609 free_aux_for_blocks (void)
611 gcc_assert (first_block_aux_obj);
612 obstack_free (&block_aux_obstack, first_block_aux_obj);
613 first_block_aux_obj = NULL;
615 clear_aux_for_blocks ();
618 /* Allocate a memory edge of SIZE as E->aux. The obstack must
619 be first initialized by alloc_aux_for_edges. */
621 void
622 alloc_aux_for_edge (edge e, int size)
624 /* Verify that aux field is clear. */
625 gcc_assert (!e->aux && first_edge_aux_obj);
626 e->aux = obstack_alloc (&edge_aux_obstack, size);
627 memset (e->aux, 0, size);
630 /* Initialize the edge_aux_obstack and if SIZE is nonzero, call
631 alloc_aux_for_edge for each basic edge. */
633 void
634 alloc_aux_for_edges (int size)
636 static int initialized;
638 if (!initialized)
640 gcc_obstack_init (&edge_aux_obstack);
641 initialized = 1;
643 else
644 /* Check whether AUX data are still allocated. */
645 gcc_assert (!first_edge_aux_obj);
647 first_edge_aux_obj = obstack_alloc (&edge_aux_obstack, 0);
648 if (size)
650 basic_block bb;
652 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR_FOR_FN (cfun),
653 EXIT_BLOCK_PTR_FOR_FN (cfun), next_bb)
655 edge e;
656 edge_iterator ei;
658 FOR_EACH_EDGE (e, ei, bb->succs)
659 alloc_aux_for_edge (e, size);
664 /* Clear AUX pointers of all edges. */
666 void
667 clear_aux_for_edges (void)
669 basic_block bb;
670 edge e;
672 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR_FOR_FN (cfun),
673 EXIT_BLOCK_PTR_FOR_FN (cfun), next_bb)
675 edge_iterator ei;
676 FOR_EACH_EDGE (e, ei, bb->succs)
677 e->aux = NULL;
681 /* Free data allocated in edge_aux_obstack and clear AUX pointers
682 of all edges. */
684 void
685 free_aux_for_edges (void)
687 gcc_assert (first_edge_aux_obj);
688 obstack_free (&edge_aux_obstack, first_edge_aux_obj);
689 first_edge_aux_obj = NULL;
691 clear_aux_for_edges ();
694 DEBUG_FUNCTION void
695 debug_bb (basic_block bb)
697 dump_bb (stderr, bb, 0, dump_flags);
700 DEBUG_FUNCTION basic_block
701 debug_bb_n (int n)
703 basic_block bb = BASIC_BLOCK_FOR_FN (cfun, n);
704 debug_bb (bb);
705 return bb;
708 /* Dumps cfg related information about basic block BB to OUTF.
709 If HEADER is true, dump things that appear before the instructions
710 contained in BB. If FOOTER is true, dump things that appear after.
711 Flags are the TDF_* masks as documented in dumpfile.h.
712 NB: With TDF_DETAILS, it is assumed that cfun is available, so
713 that maybe_hot_bb_p and probably_never_executed_bb_p don't ICE. */
715 void
716 dump_bb_info (FILE *outf, basic_block bb, int indent, int flags,
717 bool do_header, bool do_footer)
719 edge_iterator ei;
720 edge e;
721 static const char * const bb_bitnames[] =
723 #define DEF_BASIC_BLOCK_FLAG(NAME,IDX) #NAME ,
724 #include "cfg-flags.def"
725 NULL
726 #undef DEF_BASIC_BLOCK_FLAG
728 const unsigned n_bitnames = sizeof (bb_bitnames) / sizeof (char *);
729 bool first;
730 char *s_indent = (char *) alloca ((size_t) indent + 1);
731 memset ((void *) s_indent, ' ', (size_t) indent);
732 s_indent[indent] = '\0';
734 gcc_assert (bb->flags <= BB_ALL_FLAGS);
736 if (do_header)
738 unsigned i;
740 if (flags & TDF_COMMENT)
741 fputs (";; ", outf);
742 fprintf (outf, "%sbasic block %d, loop depth %d",
743 s_indent, bb->index, bb_loop_depth (bb));
744 if (flags & TDF_DETAILS)
746 struct function *fun = DECL_STRUCT_FUNCTION (current_function_decl);
747 fprintf (outf, ", count " "%" PRId64,
748 (int64_t) bb->count);
749 fprintf (outf, ", freq %i", bb->frequency);
750 if (maybe_hot_bb_p (fun, bb))
751 fputs (", maybe hot", outf);
752 if (probably_never_executed_bb_p (fun, bb))
753 fputs (", probably never executed", outf);
755 fputc ('\n', outf);
757 if (flags & TDF_DETAILS)
759 check_bb_profile (bb, outf, indent, flags);
760 if (flags & TDF_COMMENT)
761 fputs (";; ", outf);
762 fprintf (outf, "%s prev block ", s_indent);
763 if (bb->prev_bb)
764 fprintf (outf, "%d", bb->prev_bb->index);
765 else
766 fprintf (outf, "(nil)");
767 fprintf (outf, ", next block ");
768 if (bb->next_bb)
769 fprintf (outf, "%d", bb->next_bb->index);
770 else
771 fprintf (outf, "(nil)");
773 fputs (", flags:", outf);
774 first = true;
775 for (i = 0; i < n_bitnames; i++)
776 if (bb->flags & (1 << i))
778 if (first)
779 fputs (" (", outf);
780 else
781 fputs (", ", outf);
782 first = false;
783 fputs (bb_bitnames[i], outf);
785 if (!first)
786 fputc (')', outf);
787 fputc ('\n', outf);
790 if (flags & TDF_COMMENT)
791 fputs (";; ", outf);
792 fprintf (outf, "%s pred: ", s_indent);
793 first = true;
794 FOR_EACH_EDGE (e, ei, bb->preds)
796 if (! first)
798 if (flags & TDF_COMMENT)
799 fputs (";; ", outf);
800 fprintf (outf, "%s ", s_indent);
802 first = false;
803 dump_edge_info (outf, e, flags, 0);
804 fputc ('\n', outf);
806 if (first)
807 fputc ('\n', outf);
810 if (do_footer)
812 if (flags & TDF_COMMENT)
813 fputs (";; ", outf);
814 fprintf (outf, "%s succ: ", s_indent);
815 first = true;
816 FOR_EACH_EDGE (e, ei, bb->succs)
818 if (! first)
820 if (flags & TDF_COMMENT)
821 fputs (";; ", outf);
822 fprintf (outf, "%s ", s_indent);
824 first = false;
825 dump_edge_info (outf, e, flags, 1);
826 fputc ('\n', outf);
828 if (first)
829 fputc ('\n', outf);
833 /* Dumps a brief description of cfg to FILE. */
835 void
836 brief_dump_cfg (FILE *file, int flags)
838 basic_block bb;
840 FOR_EACH_BB_FN (bb, cfun)
842 dump_bb_info (file, bb, 0,
843 flags & (TDF_COMMENT | TDF_DETAILS),
844 true, true);
848 /* An edge originally destinating BB of FREQUENCY and COUNT has been proved to
849 leave the block by TAKEN_EDGE. Update profile of BB such that edge E can be
850 redirected to destination of TAKEN_EDGE.
852 This function may leave the profile inconsistent in the case TAKEN_EDGE
853 frequency or count is believed to be lower than FREQUENCY or COUNT
854 respectively. */
855 void
856 update_bb_profile_for_threading (basic_block bb, int edge_frequency,
857 gcov_type count, edge taken_edge)
859 edge c;
860 int prob;
861 edge_iterator ei;
863 bb->count -= count;
864 if (bb->count < 0)
866 if (dump_file)
867 fprintf (dump_file, "bb %i count became negative after threading",
868 bb->index);
869 bb->count = 0;
872 /* Compute the probability of TAKEN_EDGE being reached via threaded edge.
873 Watch for overflows. */
874 if (bb->frequency)
875 prob = GCOV_COMPUTE_SCALE (edge_frequency, bb->frequency);
876 else
877 prob = 0;
878 if (prob > taken_edge->probability)
880 if (dump_file)
881 fprintf (dump_file, "Jump threading proved probability of edge "
882 "%i->%i too small (it is %i, should be %i).\n",
883 taken_edge->src->index, taken_edge->dest->index,
884 taken_edge->probability, prob);
885 prob = taken_edge->probability;
888 /* Now rescale the probabilities. */
889 taken_edge->probability -= prob;
890 prob = REG_BR_PROB_BASE - prob;
891 bb->frequency -= edge_frequency;
892 if (bb->frequency < 0)
893 bb->frequency = 0;
894 if (prob <= 0)
896 if (dump_file)
897 fprintf (dump_file, "Edge frequencies of bb %i has been reset, "
898 "frequency of block should end up being 0, it is %i\n",
899 bb->index, bb->frequency);
900 EDGE_SUCC (bb, 0)->probability = REG_BR_PROB_BASE;
901 ei = ei_start (bb->succs);
902 ei_next (&ei);
903 for (; (c = ei_safe_edge (ei)); ei_next (&ei))
904 c->probability = 0;
906 else if (prob != REG_BR_PROB_BASE)
908 int scale = RDIV (65536 * REG_BR_PROB_BASE, prob);
910 FOR_EACH_EDGE (c, ei, bb->succs)
912 /* Protect from overflow due to additional scaling. */
913 if (c->probability > prob)
914 c->probability = REG_BR_PROB_BASE;
915 else
917 c->probability = RDIV (c->probability * scale, 65536);
918 if (c->probability > REG_BR_PROB_BASE)
919 c->probability = REG_BR_PROB_BASE;
924 gcc_assert (bb == taken_edge->src);
925 taken_edge->count -= count;
926 if (taken_edge->count < 0)
928 if (dump_file)
929 fprintf (dump_file, "edge %i->%i count became negative after threading",
930 taken_edge->src->index, taken_edge->dest->index);
931 taken_edge->count = 0;
935 /* Multiply all frequencies of basic blocks in array BBS of length NBBS
936 by NUM/DEN, in int arithmetic. May lose some accuracy. */
937 void
938 scale_bbs_frequencies_int (basic_block *bbs, int nbbs, int num, int den)
940 int i;
941 edge e;
942 if (num < 0)
943 num = 0;
945 /* Scale NUM and DEN to avoid overflows. Frequencies are in order of
946 10^4, if we make DEN <= 10^3, we can afford to upscale by 100
947 and still safely fit in int during calculations. */
948 if (den > 1000)
950 if (num > 1000000)
951 return;
953 num = RDIV (1000 * num, den);
954 den = 1000;
956 if (num > 100 * den)
957 return;
959 for (i = 0; i < nbbs; i++)
961 edge_iterator ei;
962 bbs[i]->frequency = RDIV (bbs[i]->frequency * num, den);
963 /* Make sure the frequencies do not grow over BB_FREQ_MAX. */
964 if (bbs[i]->frequency > BB_FREQ_MAX)
965 bbs[i]->frequency = BB_FREQ_MAX;
966 bbs[i]->count = RDIV (bbs[i]->count * num, den);
967 FOR_EACH_EDGE (e, ei, bbs[i]->succs)
968 e->count = RDIV (e->count * num, den);
972 /* numbers smaller than this value are safe to multiply without getting
973 64bit overflow. */
974 #define MAX_SAFE_MULTIPLIER (1 << (sizeof (int64_t) * 4 - 1))
976 /* Multiply all frequencies of basic blocks in array BBS of length NBBS
977 by NUM/DEN, in gcov_type arithmetic. More accurate than previous
978 function but considerably slower. */
979 void
980 scale_bbs_frequencies_gcov_type (basic_block *bbs, int nbbs, gcov_type num,
981 gcov_type den)
983 int i;
984 edge e;
985 gcov_type fraction = RDIV (num * 65536, den);
987 gcc_assert (fraction >= 0);
989 if (num < MAX_SAFE_MULTIPLIER)
990 for (i = 0; i < nbbs; i++)
992 edge_iterator ei;
993 bbs[i]->frequency = RDIV (bbs[i]->frequency * num, den);
994 if (bbs[i]->count <= MAX_SAFE_MULTIPLIER)
995 bbs[i]->count = RDIV (bbs[i]->count * num, den);
996 else
997 bbs[i]->count = RDIV (bbs[i]->count * fraction, 65536);
998 FOR_EACH_EDGE (e, ei, bbs[i]->succs)
999 if (bbs[i]->count <= MAX_SAFE_MULTIPLIER)
1000 e->count = RDIV (e->count * num, den);
1001 else
1002 e->count = RDIV (e->count * fraction, 65536);
1004 else
1005 for (i = 0; i < nbbs; i++)
1007 edge_iterator ei;
1008 if (sizeof (gcov_type) > sizeof (int))
1009 bbs[i]->frequency = RDIV (bbs[i]->frequency * num, den);
1010 else
1011 bbs[i]->frequency = RDIV (bbs[i]->frequency * fraction, 65536);
1012 bbs[i]->count = RDIV (bbs[i]->count * fraction, 65536);
1013 FOR_EACH_EDGE (e, ei, bbs[i]->succs)
1014 e->count = RDIV (e->count * fraction, 65536);
1018 /* Helper types for hash tables. */
1020 struct htab_bb_copy_original_entry
1022 /* Block we are attaching info to. */
1023 int index1;
1024 /* Index of original or copy (depending on the hashtable) */
1025 int index2;
1028 struct bb_copy_hasher : typed_noop_remove <htab_bb_copy_original_entry>
1030 typedef htab_bb_copy_original_entry *value_type;
1031 typedef htab_bb_copy_original_entry *compare_type;
1032 static inline hashval_t hash (const htab_bb_copy_original_entry *);
1033 static inline bool equal (const htab_bb_copy_original_entry *existing,
1034 const htab_bb_copy_original_entry * candidate);
1037 inline hashval_t
1038 bb_copy_hasher::hash (const htab_bb_copy_original_entry *data)
1040 return data->index1;
1043 inline bool
1044 bb_copy_hasher::equal (const htab_bb_copy_original_entry *data,
1045 const htab_bb_copy_original_entry *data2)
1047 return data->index1 == data2->index1;
1050 /* Data structures used to maintain mapping between basic blocks and
1051 copies. */
1052 static hash_table<bb_copy_hasher> *bb_original;
1053 static hash_table<bb_copy_hasher> *bb_copy;
1055 /* And between loops and copies. */
1056 static hash_table<bb_copy_hasher> *loop_copy;
1057 static pool_allocator<htab_bb_copy_original_entry> *original_copy_bb_pool;
1059 /* Initialize the data structures to maintain mapping between blocks
1060 and its copies. */
1061 void
1062 initialize_original_copy_tables (void)
1065 original_copy_bb_pool = new pool_allocator<htab_bb_copy_original_entry>
1066 ("original_copy", 10);
1067 bb_original = new hash_table<bb_copy_hasher> (10);
1068 bb_copy = new hash_table<bb_copy_hasher> (10);
1069 loop_copy = new hash_table<bb_copy_hasher> (10);
1072 /* Free the data structures to maintain mapping between blocks and
1073 its copies. */
1074 void
1075 free_original_copy_tables (void)
1077 gcc_assert (original_copy_bb_pool);
1078 delete bb_copy;
1079 bb_copy = NULL;
1080 delete bb_original;
1081 bb_copy = NULL;
1082 delete loop_copy;
1083 loop_copy = NULL;
1084 delete original_copy_bb_pool;
1085 original_copy_bb_pool = NULL;
1088 /* Removes the value associated with OBJ from table TAB. */
1090 static void
1091 copy_original_table_clear (hash_table<bb_copy_hasher> *tab, unsigned obj)
1093 htab_bb_copy_original_entry **slot;
1094 struct htab_bb_copy_original_entry key, *elt;
1096 if (!original_copy_bb_pool)
1097 return;
1099 key.index1 = obj;
1100 slot = tab->find_slot (&key, NO_INSERT);
1101 if (!slot)
1102 return;
1104 elt = *slot;
1105 tab->clear_slot (slot);
1106 original_copy_bb_pool->remove (elt);
1109 /* Sets the value associated with OBJ in table TAB to VAL.
1110 Do nothing when data structures are not initialized. */
1112 static void
1113 copy_original_table_set (hash_table<bb_copy_hasher> *tab,
1114 unsigned obj, unsigned val)
1116 struct htab_bb_copy_original_entry **slot;
1117 struct htab_bb_copy_original_entry key;
1119 if (!original_copy_bb_pool)
1120 return;
1122 key.index1 = obj;
1123 slot = tab->find_slot (&key, INSERT);
1124 if (!*slot)
1126 *slot = original_copy_bb_pool->allocate ();
1127 (*slot)->index1 = obj;
1129 (*slot)->index2 = val;
1132 /* Set original for basic block. Do nothing when data structures are not
1133 initialized so passes not needing this don't need to care. */
1134 void
1135 set_bb_original (basic_block bb, basic_block original)
1137 copy_original_table_set (bb_original, bb->index, original->index);
1140 /* Get the original basic block. */
1141 basic_block
1142 get_bb_original (basic_block bb)
1144 struct htab_bb_copy_original_entry *entry;
1145 struct htab_bb_copy_original_entry key;
1147 gcc_assert (original_copy_bb_pool);
1149 key.index1 = bb->index;
1150 entry = bb_original->find (&key);
1151 if (entry)
1152 return BASIC_BLOCK_FOR_FN (cfun, entry->index2);
1153 else
1154 return NULL;
1157 /* Set copy for basic block. Do nothing when data structures are not
1158 initialized so passes not needing this don't need to care. */
1159 void
1160 set_bb_copy (basic_block bb, basic_block copy)
1162 copy_original_table_set (bb_copy, bb->index, copy->index);
1165 /* Get the copy of basic block. */
1166 basic_block
1167 get_bb_copy (basic_block bb)
1169 struct htab_bb_copy_original_entry *entry;
1170 struct htab_bb_copy_original_entry key;
1172 gcc_assert (original_copy_bb_pool);
1174 key.index1 = bb->index;
1175 entry = bb_copy->find (&key);
1176 if (entry)
1177 return BASIC_BLOCK_FOR_FN (cfun, entry->index2);
1178 else
1179 return NULL;
1182 /* Set copy for LOOP to COPY. Do nothing when data structures are not
1183 initialized so passes not needing this don't need to care. */
1185 void
1186 set_loop_copy (struct loop *loop, struct loop *copy)
1188 if (!copy)
1189 copy_original_table_clear (loop_copy, loop->num);
1190 else
1191 copy_original_table_set (loop_copy, loop->num, copy->num);
1194 /* Get the copy of LOOP. */
1196 struct loop *
1197 get_loop_copy (struct loop *loop)
1199 struct htab_bb_copy_original_entry *entry;
1200 struct htab_bb_copy_original_entry key;
1202 gcc_assert (original_copy_bb_pool);
1204 key.index1 = loop->num;
1205 entry = loop_copy->find (&key);
1206 if (entry)
1207 return get_loop (cfun, entry->index2);
1208 else
1209 return NULL;