Fix a bug that broke -freorder-functions
[official-gcc.git] / gcc / profile.c
blob893e2cd17c774fd1e97af0ab3ed767cdc824eeac
1 /* Calculate branch probabilities, and basic block execution counts.
2 Copyright (C) 1990, 1991, 1992, 1993, 1994, 1996, 1997, 1998, 1999,
3 2000, 2001, 2002, 2003, 2004, 2005, 2007, 2008, 2009, 2010
4 Free Software Foundation, Inc.
5 Contributed by James E. Wilson, UC Berkeley/Cygnus Support;
6 based on some ideas from Dain Samples of UC Berkeley.
7 Further mangling by Bob Manson, Cygnus Support.
9 This file is part of GCC.
11 GCC is free software; you can redistribute it and/or modify it under
12 the terms of the GNU General Public License as published by the Free
13 Software Foundation; either version 3, or (at your option) any later
14 version.
16 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
17 WARRANTY; without even the implied warranty of MERCHANTABILITY or
18 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
19 for more details.
21 You should have received a copy of the GNU General Public License
22 along with GCC; see the file COPYING3. If not see
23 <http://www.gnu.org/licenses/>. */
25 /* Generate basic block profile instrumentation and auxiliary files.
26 Profile generation is optimized, so that not all arcs in the basic
27 block graph need instrumenting. First, the BB graph is closed with
28 one entry (function start), and one exit (function exit). Any
29 ABNORMAL_EDGE cannot be instrumented (because there is no control
30 path to place the code). We close the graph by inserting fake
31 EDGE_FAKE edges to the EXIT_BLOCK, from the sources of abnormal
32 edges that do not go to the exit_block. We ignore such abnormal
33 edges. Naturally these fake edges are never directly traversed,
34 and so *cannot* be directly instrumented. Some other graph
35 massaging is done. To optimize the instrumentation we generate the
36 BB minimal span tree, only edges that are not on the span tree
37 (plus the entry point) need instrumenting. From that information
38 all other edge counts can be deduced. By construction all fake
39 edges must be on the spanning tree. We also attempt to place
40 EDGE_CRITICAL edges on the spanning tree.
42 The auxiliary files generated are <dumpbase>.gcno (at compile time)
43 and <dumpbase>.gcda (at run time). The format is
44 described in full in gcov-io.h. */
46 /* ??? Register allocation should use basic block execution counts to
47 give preference to the most commonly executed blocks. */
49 /* ??? Should calculate branch probabilities before instrumenting code, since
50 then we can use arc counts to help decide which arcs to instrument. */
52 #include "config.h"
53 #include "system.h"
54 #include "coretypes.h"
55 #include "tm.h"
56 #include "rtl.h"
57 #include "flags.h"
58 #include "output.h"
59 #include "regs.h"
60 #include "expr.h"
61 #include "function.h"
62 #include "basic-block.h"
63 #include "diagnostic-core.h"
64 #include "coverage.h"
65 #include "value-prof.h"
66 #include "tree.h"
67 #include "cfghooks.h"
68 #include "tree-flow.h"
69 #include "timevar.h"
70 #include "cfgloop.h"
71 #include "tree-pass.h"
73 #include "profile.h"
75 struct bb_info {
76 unsigned int count_valid : 1;
78 /* Number of successor and predecessor edges. */
79 gcov_type succ_count;
80 gcov_type pred_count;
83 #define BB_INFO(b) ((struct bb_info *) (b)->aux)
86 /* Counter summary from the last set of coverage counts read. */
88 const struct gcov_ctr_summary *profile_info;
90 /* Collect statistics on the performance of this pass for the entire source
91 file. */
93 static int total_num_blocks;
94 static int total_num_edges;
95 static int total_num_edges_ignored;
96 static int total_num_edges_instrumented;
97 static int total_num_blocks_created;
98 static int total_num_passes;
99 static int total_num_times_called;
100 static int total_hist_br_prob[20];
101 static int total_num_branches;
103 /* Forward declarations. */
104 static void find_spanning_tree (struct edge_list *);
106 /* Add edge instrumentation code to the entire insn chain.
108 F is the first insn of the chain.
109 NUM_BLOCKS is the number of basic blocks found in F. */
111 static unsigned
112 instrument_edges (struct edge_list *el)
114 unsigned num_instr_edges = 0;
115 int num_edges = NUM_EDGES (el);
116 basic_block bb;
118 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
120 edge e;
121 edge_iterator ei;
123 FOR_EACH_EDGE (e, ei, bb->succs)
125 struct edge_info *inf = EDGE_INFO (e);
127 if (!inf->ignore && !inf->on_tree)
129 gcc_assert (!(e->flags & EDGE_ABNORMAL));
130 if (dump_file)
131 fprintf (dump_file, "Edge %d to %d instrumented%s\n",
132 e->src->index, e->dest->index,
133 EDGE_CRITICAL_P (e) ? " (and split)" : "");
134 gimple_gen_edge_profiler (num_instr_edges++, e);
139 total_num_blocks_created += num_edges;
140 if (dump_file)
141 fprintf (dump_file, "%d edges instrumented\n", num_instr_edges);
142 return num_instr_edges;
145 /* Add code to measure histograms for values in list VALUES. */
146 static void
147 instrument_values (histogram_values values)
149 unsigned i, t;
151 /* Emit code to generate the histograms before the insns. */
153 for (i = 0; i < VEC_length (histogram_value, values); i++)
155 histogram_value hist = VEC_index (histogram_value, values, i);
156 switch (hist->type)
158 case HIST_TYPE_INTERVAL:
159 t = GCOV_COUNTER_V_INTERVAL;
160 break;
162 case HIST_TYPE_POW2:
163 t = GCOV_COUNTER_V_POW2;
164 break;
166 case HIST_TYPE_SINGLE_VALUE:
167 t = GCOV_COUNTER_V_SINGLE;
168 break;
170 case HIST_TYPE_CONST_DELTA:
171 t = GCOV_COUNTER_V_DELTA;
172 break;
174 case HIST_TYPE_INDIR_CALL:
175 t = GCOV_COUNTER_V_INDIR;
176 break;
178 case HIST_TYPE_AVERAGE:
179 t = GCOV_COUNTER_AVERAGE;
180 break;
182 case HIST_TYPE_IOR:
183 t = GCOV_COUNTER_IOR;
184 break;
186 default:
187 gcc_unreachable ();
189 if (!coverage_counter_alloc (t, hist->n_counters))
190 continue;
192 switch (hist->type)
194 case HIST_TYPE_INTERVAL:
195 gimple_gen_interval_profiler (hist, t, 0);
196 break;
198 case HIST_TYPE_POW2:
199 gimple_gen_pow2_profiler (hist, t, 0);
200 break;
202 case HIST_TYPE_SINGLE_VALUE:
203 gimple_gen_one_value_profiler (hist, t, 0);
204 break;
206 case HIST_TYPE_CONST_DELTA:
207 gimple_gen_const_delta_profiler (hist, t, 0);
208 break;
210 case HIST_TYPE_INDIR_CALL:
211 gimple_gen_ic_profiler (hist, t, 0);
212 break;
214 case HIST_TYPE_AVERAGE:
215 gimple_gen_average_profiler (hist, t, 0);
216 break;
218 case HIST_TYPE_IOR:
219 gimple_gen_ior_profiler (hist, t, 0);
220 break;
222 default:
223 gcc_unreachable ();
229 /* Computes hybrid profile for all matching entries in da_file.
231 CFG_CHECKSUM is the precomputed checksum for the CFG. */
233 static gcov_type *
234 get_exec_counts (unsigned cfg_checksum, unsigned lineno_checksum)
236 unsigned num_edges = 0;
237 basic_block bb;
238 gcov_type *counts;
240 /* Count the edges to be (possibly) instrumented. */
241 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
243 edge e;
244 edge_iterator ei;
246 FOR_EACH_EDGE (e, ei, bb->succs)
247 if (!EDGE_INFO (e)->ignore && !EDGE_INFO (e)->on_tree)
248 num_edges++;
251 counts = get_coverage_counts (GCOV_COUNTER_ARCS, num_edges, cfg_checksum,
252 lineno_checksum, &profile_info);
253 if (!counts)
254 return NULL;
256 if (dump_file && profile_info)
257 fprintf(dump_file, "Merged %u profiles with maximal count %u.\n",
258 profile_info->runs, (unsigned) profile_info->sum_max);
260 return counts;
264 static bool
265 is_edge_inconsistent (VEC(edge,gc) *edges)
267 edge e;
268 edge_iterator ei;
269 FOR_EACH_EDGE (e, ei, edges)
271 if (!EDGE_INFO (e)->ignore)
273 if (e->count < 0
274 && (!(e->flags & EDGE_FAKE)
275 || !block_ends_with_call_p (e->src)))
277 if (dump_file)
279 fprintf (dump_file,
280 "Edge %i->%i is inconsistent, count"HOST_WIDEST_INT_PRINT_DEC,
281 e->src->index, e->dest->index, e->count);
282 dump_bb (e->src, dump_file, 0);
283 dump_bb (e->dest, dump_file, 0);
285 return true;
289 return false;
292 static void
293 correct_negative_edge_counts (void)
295 basic_block bb;
296 edge e;
297 edge_iterator ei;
299 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
301 FOR_EACH_EDGE (e, ei, bb->succs)
303 if (e->count < 0)
304 e->count = 0;
309 /* Check consistency.
310 Return true if inconsistency is found. */
311 static bool
312 is_inconsistent (void)
314 basic_block bb;
315 bool inconsistent = false;
316 FOR_EACH_BB (bb)
318 inconsistent |= is_edge_inconsistent (bb->preds);
319 if (!dump_file && inconsistent)
320 return true;
321 inconsistent |= is_edge_inconsistent (bb->succs);
322 if (!dump_file && inconsistent)
323 return true;
324 if (bb->count < 0)
326 if (dump_file)
328 fprintf (dump_file, "BB %i count is negative "
329 HOST_WIDEST_INT_PRINT_DEC,
330 bb->index,
331 bb->count);
332 dump_bb (bb, dump_file, 0);
334 inconsistent = true;
336 if (bb->count != sum_edge_counts (bb->preds))
338 if (dump_file)
340 fprintf (dump_file, "BB %i count does not match sum of incoming edges "
341 HOST_WIDEST_INT_PRINT_DEC" should be " HOST_WIDEST_INT_PRINT_DEC,
342 bb->index,
343 bb->count,
344 sum_edge_counts (bb->preds));
345 dump_bb (bb, dump_file, 0);
347 inconsistent = true;
349 if (bb->count != sum_edge_counts (bb->succs) &&
350 ! (find_edge (bb, EXIT_BLOCK_PTR) != NULL && block_ends_with_call_p (bb)))
352 if (dump_file)
354 fprintf (dump_file, "BB %i count does not match sum of outgoing edges "
355 HOST_WIDEST_INT_PRINT_DEC" should be " HOST_WIDEST_INT_PRINT_DEC,
356 bb->index,
357 bb->count,
358 sum_edge_counts (bb->succs));
359 dump_bb (bb, dump_file, 0);
361 inconsistent = true;
363 if (!dump_file && inconsistent)
364 return true;
367 return inconsistent;
370 /* Set each basic block count to the sum of its outgoing edge counts */
371 static void
372 set_bb_counts (void)
374 basic_block bb;
375 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
377 bb->count = sum_edge_counts (bb->succs);
378 gcc_assert (bb->count >= 0);
382 /* Reads profile data and returns total number of edge counts read */
383 static int
384 read_profile_edge_counts (gcov_type *exec_counts)
386 basic_block bb;
387 int num_edges = 0;
388 int exec_counts_pos = 0;
389 /* For each edge not on the spanning tree, set its execution count from
390 the .da file. */
391 /* The first count in the .da file is the number of times that the function
392 was entered. This is the exec_count for block zero. */
394 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
396 edge e;
397 edge_iterator ei;
399 FOR_EACH_EDGE (e, ei, bb->succs)
400 if (!EDGE_INFO (e)->ignore && !EDGE_INFO (e)->on_tree)
402 num_edges++;
403 if (exec_counts)
405 e->count = exec_counts[exec_counts_pos++];
406 if (e->count > profile_info->sum_max)
408 if (flag_profile_correction)
410 static bool informed = 0;
411 if (!informed)
412 inform (input_location,
413 "corrupted profile info: edge count exceeds maximal count");
414 informed = 1;
416 else
417 error ("corrupted profile info: edge from %i to %i exceeds maximal count",
418 bb->index, e->dest->index);
421 else
422 e->count = 0;
424 EDGE_INFO (e)->count_valid = 1;
425 BB_INFO (bb)->succ_count--;
426 BB_INFO (e->dest)->pred_count--;
427 if (dump_file)
429 fprintf (dump_file, "\nRead edge from %i to %i, count:",
430 bb->index, e->dest->index);
431 fprintf (dump_file, HOST_WIDEST_INT_PRINT_DEC,
432 (HOST_WIDEST_INT) e->count);
437 return num_edges;
440 /* Compute the branch probabilities for the various branches.
441 Annotate them accordingly.
443 CFG_CHECKSUM is the precomputed checksum for the CFG. */
445 static void
446 compute_branch_probabilities (unsigned cfg_checksum, unsigned lineno_checksum)
448 basic_block bb;
449 int i;
450 int num_edges = 0;
451 int changes;
452 int passes;
453 int hist_br_prob[20];
454 int num_branches;
455 gcov_type *exec_counts = get_exec_counts (cfg_checksum, lineno_checksum);
456 int inconsistent = 0;
458 /* Very simple sanity checks so we catch bugs in our profiling code. */
459 if (!profile_info)
460 return;
461 if (profile_info->run_max * profile_info->runs < profile_info->sum_max)
463 error ("corrupted profile info: run_max * runs < sum_max");
464 exec_counts = NULL;
467 if (profile_info->sum_all < profile_info->sum_max)
469 error ("corrupted profile info: sum_all is smaller than sum_max");
470 exec_counts = NULL;
473 /* Attach extra info block to each bb. */
474 alloc_aux_for_blocks (sizeof (struct bb_info));
475 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
477 edge e;
478 edge_iterator ei;
480 FOR_EACH_EDGE (e, ei, bb->succs)
481 if (!EDGE_INFO (e)->ignore)
482 BB_INFO (bb)->succ_count++;
483 FOR_EACH_EDGE (e, ei, bb->preds)
484 if (!EDGE_INFO (e)->ignore)
485 BB_INFO (bb)->pred_count++;
488 /* Avoid predicting entry on exit nodes. */
489 BB_INFO (EXIT_BLOCK_PTR)->succ_count = 2;
490 BB_INFO (ENTRY_BLOCK_PTR)->pred_count = 2;
492 num_edges = read_profile_edge_counts (exec_counts);
494 if (dump_file)
495 fprintf (dump_file, "\n%d edge counts read\n", num_edges);
497 /* For every block in the file,
498 - if every exit/entrance edge has a known count, then set the block count
499 - if the block count is known, and every exit/entrance edge but one has
500 a known execution count, then set the count of the remaining edge
502 As edge counts are set, decrement the succ/pred count, but don't delete
503 the edge, that way we can easily tell when all edges are known, or only
504 one edge is unknown. */
506 /* The order that the basic blocks are iterated through is important.
507 Since the code that finds spanning trees starts with block 0, low numbered
508 edges are put on the spanning tree in preference to high numbered edges.
509 Hence, most instrumented edges are at the end. Graph solving works much
510 faster if we propagate numbers from the end to the start.
512 This takes an average of slightly more than 3 passes. */
514 changes = 1;
515 passes = 0;
516 while (changes)
518 passes++;
519 changes = 0;
520 FOR_BB_BETWEEN (bb, EXIT_BLOCK_PTR, NULL, prev_bb)
522 struct bb_info *bi = BB_INFO (bb);
523 if (! bi->count_valid)
525 if (bi->succ_count == 0)
527 edge e;
528 edge_iterator ei;
529 gcov_type total = 0;
531 FOR_EACH_EDGE (e, ei, bb->succs)
532 total += e->count;
533 bb->count = total;
534 bi->count_valid = 1;
535 changes = 1;
537 else if (bi->pred_count == 0)
539 edge e;
540 edge_iterator ei;
541 gcov_type total = 0;
543 FOR_EACH_EDGE (e, ei, bb->preds)
544 total += e->count;
545 bb->count = total;
546 bi->count_valid = 1;
547 changes = 1;
550 if (bi->count_valid)
552 if (bi->succ_count == 1)
554 edge e;
555 edge_iterator ei;
556 gcov_type total = 0;
558 /* One of the counts will be invalid, but it is zero,
559 so adding it in also doesn't hurt. */
560 FOR_EACH_EDGE (e, ei, bb->succs)
561 total += e->count;
563 /* Search for the invalid edge, and set its count. */
564 FOR_EACH_EDGE (e, ei, bb->succs)
565 if (! EDGE_INFO (e)->count_valid && ! EDGE_INFO (e)->ignore)
566 break;
568 /* Calculate count for remaining edge by conservation. */
569 total = bb->count - total;
571 gcc_assert (e);
572 EDGE_INFO (e)->count_valid = 1;
573 e->count = total;
574 bi->succ_count--;
576 BB_INFO (e->dest)->pred_count--;
577 changes = 1;
579 if (bi->pred_count == 1)
581 edge e;
582 edge_iterator ei;
583 gcov_type total = 0;
585 /* One of the counts will be invalid, but it is zero,
586 so adding it in also doesn't hurt. */
587 FOR_EACH_EDGE (e, ei, bb->preds)
588 total += e->count;
590 /* Search for the invalid edge, and set its count. */
591 FOR_EACH_EDGE (e, ei, bb->preds)
592 if (!EDGE_INFO (e)->count_valid && !EDGE_INFO (e)->ignore)
593 break;
595 /* Calculate count for remaining edge by conservation. */
596 total = bb->count - total + e->count;
598 gcc_assert (e);
599 EDGE_INFO (e)->count_valid = 1;
600 e->count = total;
601 bi->pred_count--;
603 BB_INFO (e->src)->succ_count--;
604 changes = 1;
609 if (dump_file)
610 dump_flow_info (dump_file, dump_flags);
612 total_num_passes += passes;
613 if (dump_file)
614 fprintf (dump_file, "Graph solving took %d passes.\n\n", passes);
616 /* If the graph has been correctly solved, every block will have a
617 succ and pred count of zero. */
618 FOR_EACH_BB (bb)
620 gcc_assert (!BB_INFO (bb)->succ_count && !BB_INFO (bb)->pred_count);
623 /* Check for inconsistent basic block counts */
624 inconsistent = is_inconsistent ();
626 if (inconsistent)
628 if (flag_profile_correction)
630 /* Inconsistency detected. Make it flow-consistent. */
631 static int informed = 0;
632 if (informed == 0)
634 informed = 1;
635 inform (input_location, "correcting inconsistent profile data");
637 correct_negative_edge_counts ();
638 /* Set bb counts to the sum of the outgoing edge counts */
639 set_bb_counts ();
640 if (dump_file)
641 fprintf (dump_file, "\nCalling mcf_smooth_cfg\n");
642 mcf_smooth_cfg ();
644 else
645 error ("corrupted profile info: profile data is not flow-consistent");
648 /* For every edge, calculate its branch probability and add a reg_note
649 to the branch insn to indicate this. */
651 for (i = 0; i < 20; i++)
652 hist_br_prob[i] = 0;
653 num_branches = 0;
655 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
657 edge e;
658 edge_iterator ei;
660 if (bb->count < 0)
662 error ("corrupted profile info: number of iterations for basic block %d thought to be %i",
663 bb->index, (int)bb->count);
664 bb->count = 0;
666 FOR_EACH_EDGE (e, ei, bb->succs)
668 /* Function may return twice in the cased the called function is
669 setjmp or calls fork, but we can't represent this by extra
670 edge from the entry, since extra edge from the exit is
671 already present. We get negative frequency from the entry
672 point. */
673 if ((e->count < 0
674 && e->dest == EXIT_BLOCK_PTR)
675 || (e->count > bb->count
676 && e->dest != EXIT_BLOCK_PTR))
678 if (block_ends_with_call_p (bb))
679 e->count = e->count < 0 ? 0 : bb->count;
681 if (e->count < 0 || e->count > bb->count)
683 error ("corrupted profile info: number of executions for edge %d-%d thought to be %i",
684 e->src->index, e->dest->index,
685 (int)e->count);
686 e->count = bb->count / 2;
689 if (bb->count)
691 FOR_EACH_EDGE (e, ei, bb->succs)
692 e->probability = (e->count * REG_BR_PROB_BASE + bb->count / 2) / bb->count;
693 if (bb->index >= NUM_FIXED_BLOCKS
694 && block_ends_with_condjump_p (bb)
695 && EDGE_COUNT (bb->succs) >= 2)
697 int prob;
698 edge e;
699 int index;
701 /* Find the branch edge. It is possible that we do have fake
702 edges here. */
703 FOR_EACH_EDGE (e, ei, bb->succs)
704 if (!(e->flags & (EDGE_FAKE | EDGE_FALLTHRU)))
705 break;
707 prob = e->probability;
708 index = prob * 20 / REG_BR_PROB_BASE;
710 if (index == 20)
711 index = 19;
712 hist_br_prob[index]++;
714 num_branches++;
717 /* As a last resort, distribute the probabilities evenly.
718 Use simple heuristics that if there are normal edges,
719 give all abnormals frequency of 0, otherwise distribute the
720 frequency over abnormals (this is the case of noreturn
721 calls). */
722 else if (profile_status == PROFILE_ABSENT)
724 int total = 0;
726 FOR_EACH_EDGE (e, ei, bb->succs)
727 if (!(e->flags & (EDGE_COMPLEX | EDGE_FAKE)))
728 total ++;
729 if (total)
731 FOR_EACH_EDGE (e, ei, bb->succs)
732 if (!(e->flags & (EDGE_COMPLEX | EDGE_FAKE)))
733 e->probability = REG_BR_PROB_BASE / total;
734 else
735 e->probability = 0;
737 else
739 total += EDGE_COUNT (bb->succs);
740 FOR_EACH_EDGE (e, ei, bb->succs)
741 e->probability = REG_BR_PROB_BASE / total;
743 if (bb->index >= NUM_FIXED_BLOCKS
744 && block_ends_with_condjump_p (bb)
745 && EDGE_COUNT (bb->succs) >= 2)
746 num_branches++;
749 counts_to_freqs ();
750 profile_status = PROFILE_READ;
751 compute_function_frequency ();
753 if (dump_file)
755 fprintf (dump_file, "%d branches\n", num_branches);
756 if (num_branches)
757 for (i = 0; i < 10; i++)
758 fprintf (dump_file, "%d%% branches in range %d-%d%%\n",
759 (hist_br_prob[i] + hist_br_prob[19-i]) * 100 / num_branches,
760 5 * i, 5 * i + 5);
762 total_num_branches += num_branches;
763 for (i = 0; i < 20; i++)
764 total_hist_br_prob[i] += hist_br_prob[i];
766 fputc ('\n', dump_file);
767 fputc ('\n', dump_file);
770 free_aux_for_blocks ();
773 /* Load value histograms values whose description is stored in VALUES array
774 from .gcda file.
776 CFG_CHECKSUM is the precomputed checksum for the CFG. */
778 static void
779 compute_value_histograms (histogram_values values, unsigned cfg_checksum,
780 unsigned lineno_checksum)
782 unsigned i, j, t, any;
783 unsigned n_histogram_counters[GCOV_N_VALUE_COUNTERS];
784 gcov_type *histogram_counts[GCOV_N_VALUE_COUNTERS];
785 gcov_type *act_count[GCOV_N_VALUE_COUNTERS];
786 gcov_type *aact_count;
788 for (t = 0; t < GCOV_N_VALUE_COUNTERS; t++)
789 n_histogram_counters[t] = 0;
791 for (i = 0; i < VEC_length (histogram_value, values); i++)
793 histogram_value hist = VEC_index (histogram_value, values, i);
794 n_histogram_counters[(int) hist->type] += hist->n_counters;
797 any = 0;
798 for (t = 0; t < GCOV_N_VALUE_COUNTERS; t++)
800 if (!n_histogram_counters[t])
802 histogram_counts[t] = NULL;
803 continue;
806 histogram_counts[t] =
807 get_coverage_counts (COUNTER_FOR_HIST_TYPE (t),
808 n_histogram_counters[t], cfg_checksum,
809 lineno_checksum, NULL);
810 if (histogram_counts[t])
811 any = 1;
812 act_count[t] = histogram_counts[t];
814 if (!any)
815 return;
817 for (i = 0; i < VEC_length (histogram_value, values); i++)
819 histogram_value hist = VEC_index (histogram_value, values, i);
820 gimple stmt = hist->hvalue.stmt;
822 t = (int) hist->type;
824 aact_count = act_count[t];
825 act_count[t] += hist->n_counters;
827 gimple_add_histogram_value (cfun, stmt, hist);
828 hist->hvalue.counters = XNEWVEC (gcov_type, hist->n_counters);
829 for (j = 0; j < hist->n_counters; j++)
830 hist->hvalue.counters[j] = aact_count[j];
833 for (t = 0; t < GCOV_N_VALUE_COUNTERS; t++)
834 free (histogram_counts[t]);
837 /* The entry basic block will be moved around so that it has index=1,
838 there is nothing at index 0 and the exit is at n_basic_block. */
839 #define BB_TO_GCOV_INDEX(bb) ((bb)->index - 1)
840 /* When passed NULL as file_name, initialize.
841 When passed something else, output the necessary commands to change
842 line to LINE and offset to FILE_NAME. */
843 static void
844 output_location (char const *file_name, int line,
845 gcov_position_t *offset, basic_block bb)
847 static char const *prev_file_name;
848 static int prev_line;
849 bool name_differs, line_differs;
851 if (!file_name)
853 prev_file_name = NULL;
854 prev_line = -1;
855 return;
858 name_differs = !prev_file_name || filename_cmp (file_name, prev_file_name);
859 line_differs = prev_line != line;
861 if (name_differs || line_differs)
863 if (!*offset)
865 *offset = gcov_write_tag (GCOV_TAG_LINES);
866 gcov_write_unsigned (BB_TO_GCOV_INDEX (bb));
867 name_differs = line_differs=true;
870 /* If this is a new source file, then output the
871 file's name to the .bb file. */
872 if (name_differs)
874 prev_file_name = file_name;
875 gcov_write_unsigned (0);
876 gcov_write_string (prev_file_name);
878 if (line_differs)
880 gcov_write_unsigned (line);
881 prev_line = line;
886 /* Instrument and/or analyze program behavior based on program flow graph.
887 In either case, this function builds a flow graph for the function being
888 compiled. The flow graph is stored in BB_GRAPH.
890 When FLAG_PROFILE_ARCS is nonzero, this function instruments the edges in
891 the flow graph that are needed to reconstruct the dynamic behavior of the
892 flow graph.
894 When FLAG_BRANCH_PROBABILITIES is nonzero, this function reads auxiliary
895 information from a data file containing edge count information from previous
896 executions of the function being compiled. In this case, the flow graph is
897 annotated with actual execution counts, which are later propagated into the
898 rtl for optimization purposes.
900 Main entry point of this file. */
902 void
903 branch_prob (void)
905 basic_block bb;
906 unsigned i;
907 unsigned num_edges, ignored_edges;
908 unsigned num_instrumented;
909 struct edge_list *el;
910 histogram_values values = NULL;
911 unsigned cfg_checksum, lineno_checksum;
913 total_num_times_called++;
915 flow_call_edges_add (NULL);
916 add_noreturn_fake_exit_edges ();
918 /* We can't handle cyclic regions constructed using abnormal edges.
919 To avoid these we replace every source of abnormal edge by a fake
920 edge from entry node and every destination by fake edge to exit.
921 This keeps graph acyclic and our calculation exact for all normal
922 edges except for exit and entrance ones.
924 We also add fake exit edges for each call and asm statement in the
925 basic, since it may not return. */
927 FOR_EACH_BB (bb)
929 int need_exit_edge = 0, need_entry_edge = 0;
930 int have_exit_edge = 0, have_entry_edge = 0;
931 edge e;
932 edge_iterator ei;
934 /* Functions returning multiple times are not handled by extra edges.
935 Instead we simply allow negative counts on edges from exit to the
936 block past call and corresponding probabilities. We can't go
937 with the extra edges because that would result in flowgraph that
938 needs to have fake edges outside the spanning tree. */
940 FOR_EACH_EDGE (e, ei, bb->succs)
942 gimple_stmt_iterator gsi;
943 gimple last = NULL;
945 /* It may happen that there are compiler generated statements
946 without a locus at all. Go through the basic block from the
947 last to the first statement looking for a locus. */
948 for (gsi = gsi_last_nondebug_bb (bb);
949 !gsi_end_p (gsi);
950 gsi_prev_nondebug (&gsi))
952 last = gsi_stmt (gsi);
953 if (gimple_has_location (last))
954 break;
957 /* Edge with goto locus might get wrong coverage info unless
958 it is the only edge out of BB.
959 Don't do that when the locuses match, so
960 if (blah) goto something;
961 is not computed twice. */
962 if (last
963 && gimple_has_location (last)
964 && e->goto_locus != UNKNOWN_LOCATION
965 && !single_succ_p (bb)
966 && (LOCATION_FILE (e->goto_locus)
967 != LOCATION_FILE (gimple_location (last))
968 || (LOCATION_LINE (e->goto_locus)
969 != LOCATION_LINE (gimple_location (last)))))
971 basic_block new_bb = split_edge (e);
972 edge ne = single_succ_edge (new_bb);
973 ne->goto_locus = e->goto_locus;
974 ne->goto_block = e->goto_block;
976 if ((e->flags & (EDGE_ABNORMAL | EDGE_ABNORMAL_CALL))
977 && e->dest != EXIT_BLOCK_PTR)
978 need_exit_edge = 1;
979 if (e->dest == EXIT_BLOCK_PTR)
980 have_exit_edge = 1;
982 FOR_EACH_EDGE (e, ei, bb->preds)
984 if ((e->flags & (EDGE_ABNORMAL | EDGE_ABNORMAL_CALL))
985 && e->src != ENTRY_BLOCK_PTR)
986 need_entry_edge = 1;
987 if (e->src == ENTRY_BLOCK_PTR)
988 have_entry_edge = 1;
991 if (need_exit_edge && !have_exit_edge)
993 if (dump_file)
994 fprintf (dump_file, "Adding fake exit edge to bb %i\n",
995 bb->index);
996 make_edge (bb, EXIT_BLOCK_PTR, EDGE_FAKE);
998 if (need_entry_edge && !have_entry_edge)
1000 if (dump_file)
1001 fprintf (dump_file, "Adding fake entry edge to bb %i\n",
1002 bb->index);
1003 make_edge (ENTRY_BLOCK_PTR, bb, EDGE_FAKE);
1007 el = create_edge_list ();
1008 num_edges = NUM_EDGES (el);
1009 alloc_aux_for_edges (sizeof (struct edge_info));
1011 /* The basic blocks are expected to be numbered sequentially. */
1012 compact_blocks ();
1014 ignored_edges = 0;
1015 for (i = 0 ; i < num_edges ; i++)
1017 edge e = INDEX_EDGE (el, i);
1018 e->count = 0;
1020 /* Mark edges we've replaced by fake edges above as ignored. */
1021 if ((e->flags & (EDGE_ABNORMAL | EDGE_ABNORMAL_CALL))
1022 && e->src != ENTRY_BLOCK_PTR && e->dest != EXIT_BLOCK_PTR)
1024 EDGE_INFO (e)->ignore = 1;
1025 ignored_edges++;
1029 /* Create spanning tree from basic block graph, mark each edge that is
1030 on the spanning tree. We insert as many abnormal and critical edges
1031 as possible to minimize number of edge splits necessary. */
1033 find_spanning_tree (el);
1035 /* Fake edges that are not on the tree will not be instrumented, so
1036 mark them ignored. */
1037 for (num_instrumented = i = 0; i < num_edges; i++)
1039 edge e = INDEX_EDGE (el, i);
1040 struct edge_info *inf = EDGE_INFO (e);
1042 if (inf->ignore || inf->on_tree)
1043 /*NOP*/;
1044 else if (e->flags & EDGE_FAKE)
1046 inf->ignore = 1;
1047 ignored_edges++;
1049 else
1050 num_instrumented++;
1053 total_num_blocks += n_basic_blocks;
1054 if (dump_file)
1055 fprintf (dump_file, "%d basic blocks\n", n_basic_blocks);
1057 total_num_edges += num_edges;
1058 if (dump_file)
1059 fprintf (dump_file, "%d edges\n", num_edges);
1061 total_num_edges_ignored += ignored_edges;
1062 if (dump_file)
1063 fprintf (dump_file, "%d ignored edges\n", ignored_edges);
1066 /* Compute two different checksums. Note that we want to compute
1067 the checksum in only once place, since it depends on the shape
1068 of the control flow which can change during
1069 various transformations. */
1070 cfg_checksum = coverage_compute_cfg_checksum ();
1071 lineno_checksum = coverage_compute_lineno_checksum ();
1073 /* Write the data from which gcov can reconstruct the basic block
1074 graph. */
1076 /* Basic block flags */
1077 if (coverage_begin_output (lineno_checksum, cfg_checksum))
1079 gcov_position_t offset;
1081 offset = gcov_write_tag (GCOV_TAG_BLOCKS);
1082 for (i = 0; i != (unsigned) (n_basic_blocks); i++)
1083 gcov_write_unsigned (0);
1084 gcov_write_length (offset);
1087 /* Keep all basic block indexes nonnegative in the gcov output.
1088 Index 0 is used for entry block, last index is for exit block.
1090 ENTRY_BLOCK_PTR->index = 1;
1091 EXIT_BLOCK_PTR->index = last_basic_block;
1093 /* Arcs */
1094 if (coverage_begin_output (lineno_checksum, cfg_checksum))
1096 gcov_position_t offset;
1098 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, EXIT_BLOCK_PTR, next_bb)
1100 edge e;
1101 edge_iterator ei;
1103 offset = gcov_write_tag (GCOV_TAG_ARCS);
1104 gcov_write_unsigned (BB_TO_GCOV_INDEX (bb));
1106 FOR_EACH_EDGE (e, ei, bb->succs)
1108 struct edge_info *i = EDGE_INFO (e);
1109 if (!i->ignore)
1111 unsigned flag_bits = 0;
1113 if (i->on_tree)
1114 flag_bits |= GCOV_ARC_ON_TREE;
1115 if (e->flags & EDGE_FAKE)
1116 flag_bits |= GCOV_ARC_FAKE;
1117 if (e->flags & EDGE_FALLTHRU)
1118 flag_bits |= GCOV_ARC_FALLTHROUGH;
1119 /* On trees we don't have fallthru flags, but we can
1120 recompute them from CFG shape. */
1121 if (e->flags & (EDGE_TRUE_VALUE | EDGE_FALSE_VALUE)
1122 && e->src->next_bb == e->dest)
1123 flag_bits |= GCOV_ARC_FALLTHROUGH;
1125 gcov_write_unsigned (BB_TO_GCOV_INDEX (e->dest));
1126 gcov_write_unsigned (flag_bits);
1130 gcov_write_length (offset);
1134 /* Line numbers. */
1135 if (coverage_begin_output (lineno_checksum, cfg_checksum))
1137 /* Initialize the output. */
1138 output_location (NULL, 0, NULL, NULL);
1140 FOR_EACH_BB (bb)
1142 gimple_stmt_iterator gsi;
1143 gcov_position_t offset = 0;
1145 if (bb == ENTRY_BLOCK_PTR->next_bb)
1147 expanded_location curr_location =
1148 expand_location (DECL_SOURCE_LOCATION (current_function_decl));
1149 output_location (curr_location.file, curr_location.line,
1150 &offset, bb);
1153 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
1155 gimple stmt = gsi_stmt (gsi);
1156 if (gimple_has_location (stmt))
1157 output_location (gimple_filename (stmt), gimple_lineno (stmt),
1158 &offset, bb);
1161 /* Notice GOTO expressions eliminated while constructing the CFG. */
1162 if (single_succ_p (bb)
1163 && single_succ_edge (bb)->goto_locus != UNKNOWN_LOCATION)
1165 expanded_location curr_location
1166 = expand_location (single_succ_edge (bb)->goto_locus);
1167 output_location (curr_location.file, curr_location.line,
1168 &offset, bb);
1171 if (offset)
1173 /* A file of NULL indicates the end of run. */
1174 gcov_write_unsigned (0);
1175 gcov_write_string (NULL);
1176 gcov_write_length (offset);
1181 ENTRY_BLOCK_PTR->index = ENTRY_BLOCK;
1182 EXIT_BLOCK_PTR->index = EXIT_BLOCK;
1183 #undef BB_TO_GCOV_INDEX
1185 if (flag_profile_values)
1186 gimple_find_values_to_profile (&values);
1188 if (flag_branch_probabilities)
1190 compute_branch_probabilities (cfg_checksum, lineno_checksum);
1191 if (flag_profile_values)
1192 compute_value_histograms (values, cfg_checksum, lineno_checksum);
1195 remove_fake_edges ();
1197 /* For each edge not on the spanning tree, add counting code. */
1198 if (profile_arc_flag
1199 && coverage_counter_alloc (GCOV_COUNTER_ARCS, num_instrumented))
1201 unsigned n_instrumented;
1203 gimple_init_edge_profiler ();
1205 n_instrumented = instrument_edges (el);
1207 gcc_assert (n_instrumented == num_instrumented);
1209 if (flag_profile_values)
1210 instrument_values (values);
1212 /* Commit changes done by instrumentation. */
1213 gsi_commit_edge_inserts ();
1216 free_aux_for_edges ();
1218 VEC_free (histogram_value, heap, values);
1219 free_edge_list (el);
1220 coverage_end_function (lineno_checksum, cfg_checksum);
1223 /* Union find algorithm implementation for the basic blocks using
1224 aux fields. */
1226 static basic_block
1227 find_group (basic_block bb)
1229 basic_block group = bb, bb1;
1231 while ((basic_block) group->aux != group)
1232 group = (basic_block) group->aux;
1234 /* Compress path. */
1235 while ((basic_block) bb->aux != group)
1237 bb1 = (basic_block) bb->aux;
1238 bb->aux = (void *) group;
1239 bb = bb1;
1241 return group;
1244 static void
1245 union_groups (basic_block bb1, basic_block bb2)
1247 basic_block bb1g = find_group (bb1);
1248 basic_block bb2g = find_group (bb2);
1250 /* ??? I don't have a place for the rank field. OK. Lets go w/o it,
1251 this code is unlikely going to be performance problem anyway. */
1252 gcc_assert (bb1g != bb2g);
1254 bb1g->aux = bb2g;
1257 /* This function searches all of the edges in the program flow graph, and puts
1258 as many bad edges as possible onto the spanning tree. Bad edges include
1259 abnormals edges, which can't be instrumented at the moment. Since it is
1260 possible for fake edges to form a cycle, we will have to develop some
1261 better way in the future. Also put critical edges to the tree, since they
1262 are more expensive to instrument. */
1264 static void
1265 find_spanning_tree (struct edge_list *el)
1267 int i;
1268 int num_edges = NUM_EDGES (el);
1269 basic_block bb;
1271 /* We use aux field for standard union-find algorithm. */
1272 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
1273 bb->aux = bb;
1275 /* Add fake edge exit to entry we can't instrument. */
1276 union_groups (EXIT_BLOCK_PTR, ENTRY_BLOCK_PTR);
1278 /* First add all abnormal edges to the tree unless they form a cycle. Also
1279 add all edges to EXIT_BLOCK_PTR to avoid inserting profiling code behind
1280 setting return value from function. */
1281 for (i = 0; i < num_edges; i++)
1283 edge e = INDEX_EDGE (el, i);
1284 if (((e->flags & (EDGE_ABNORMAL | EDGE_ABNORMAL_CALL | EDGE_FAKE))
1285 || e->dest == EXIT_BLOCK_PTR)
1286 && !EDGE_INFO (e)->ignore
1287 && (find_group (e->src) != find_group (e->dest)))
1289 if (dump_file)
1290 fprintf (dump_file, "Abnormal edge %d to %d put to tree\n",
1291 e->src->index, e->dest->index);
1292 EDGE_INFO (e)->on_tree = 1;
1293 union_groups (e->src, e->dest);
1297 /* Now insert all critical edges to the tree unless they form a cycle. */
1298 for (i = 0; i < num_edges; i++)
1300 edge e = INDEX_EDGE (el, i);
1301 if (EDGE_CRITICAL_P (e) && !EDGE_INFO (e)->ignore
1302 && find_group (e->src) != find_group (e->dest))
1304 if (dump_file)
1305 fprintf (dump_file, "Critical edge %d to %d put to tree\n",
1306 e->src->index, e->dest->index);
1307 EDGE_INFO (e)->on_tree = 1;
1308 union_groups (e->src, e->dest);
1312 /* And now the rest. */
1313 for (i = 0; i < num_edges; i++)
1315 edge e = INDEX_EDGE (el, i);
1316 if (!EDGE_INFO (e)->ignore
1317 && find_group (e->src) != find_group (e->dest))
1319 if (dump_file)
1320 fprintf (dump_file, "Normal edge %d to %d put to tree\n",
1321 e->src->index, e->dest->index);
1322 EDGE_INFO (e)->on_tree = 1;
1323 union_groups (e->src, e->dest);
1327 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, NULL, next_bb)
1328 bb->aux = NULL;
1331 /* Perform file-level initialization for branch-prob processing. */
1333 void
1334 init_branch_prob (void)
1336 int i;
1338 total_num_blocks = 0;
1339 total_num_edges = 0;
1340 total_num_edges_ignored = 0;
1341 total_num_edges_instrumented = 0;
1342 total_num_blocks_created = 0;
1343 total_num_passes = 0;
1344 total_num_times_called = 0;
1345 total_num_branches = 0;
1346 for (i = 0; i < 20; i++)
1347 total_hist_br_prob[i] = 0;
1350 /* Performs file-level cleanup after branch-prob processing
1351 is completed. */
1353 void
1354 end_branch_prob (void)
1356 if (dump_file)
1358 fprintf (dump_file, "\n");
1359 fprintf (dump_file, "Total number of blocks: %d\n",
1360 total_num_blocks);
1361 fprintf (dump_file, "Total number of edges: %d\n", total_num_edges);
1362 fprintf (dump_file, "Total number of ignored edges: %d\n",
1363 total_num_edges_ignored);
1364 fprintf (dump_file, "Total number of instrumented edges: %d\n",
1365 total_num_edges_instrumented);
1366 fprintf (dump_file, "Total number of blocks created: %d\n",
1367 total_num_blocks_created);
1368 fprintf (dump_file, "Total number of graph solution passes: %d\n",
1369 total_num_passes);
1370 if (total_num_times_called != 0)
1371 fprintf (dump_file, "Average number of graph solution passes: %d\n",
1372 (total_num_passes + (total_num_times_called >> 1))
1373 / total_num_times_called);
1374 fprintf (dump_file, "Total number of branches: %d\n",
1375 total_num_branches);
1376 if (total_num_branches)
1378 int i;
1380 for (i = 0; i < 10; i++)
1381 fprintf (dump_file, "%d%% branches in range %d-%d%%\n",
1382 (total_hist_br_prob[i] + total_hist_br_prob[19-i]) * 100
1383 / total_num_branches, 5*i, 5*i+5);