1 /* Branch prediction routines for the GNU compiler.
2    Copyright (C) 2000-2022 Free Software Foundation, Inc.
3 
4 This file is part of GCC.
5 
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.
10 
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.
15 
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/>.  */
19 
20 /* References:
21 
22    [1] "Branch Prediction for Free"
23        Ball and Larus; PLDI '93.
24    [2] "Static Branch Frequency and Program Profile Analysis"
25        Wu and Larus; MICRO-27.
26    [3] "Corpus-based Static Branch Prediction"
27        Calder, Grunwald, Lindsay, Martin, Mozer, and Zorn; PLDI '95.  */
28 
29 
30 #include "config.h"
31 #include "system.h"
32 #include "coretypes.h"
33 #include "backend.h"
34 #include "rtl.h"
35 #include "tree.h"
36 #include "gimple.h"
37 #include "cfghooks.h"
38 #include "tree-pass.h"
39 #include "ssa.h"
40 #include "memmodel.h"
41 #include "emit-rtl.h"
42 #include "cgraph.h"
43 #include "coverage.h"
44 #include "diagnostic-core.h"
45 #include "gimple-predict.h"
46 #include "fold-const.h"
47 #include "calls.h"
48 #include "cfganal.h"
49 #include "profile.h"
50 #include "sreal.h"
51 #include "cfgloop.h"
52 #include "gimple-iterator.h"
53 #include "tree-cfg.h"
54 #include "tree-ssa-loop-niter.h"
55 #include "tree-ssa-loop.h"
56 #include "tree-scalar-evolution.h"
57 #include "ipa-utils.h"
58 #include "gimple-pretty-print.h"
59 #include "selftest.h"
60 #include "cfgrtl.h"
61 #include "stringpool.h"
62 #include "attribs.h"
63 
64 /* Enum with reasons why a predictor is ignored.  */
65 
66 enum predictor_reason
67 {
68   REASON_NONE,
69   REASON_IGNORED,
70   REASON_SINGLE_EDGE_DUPLICATE,
71   REASON_EDGE_PAIR_DUPLICATE
72 };
73 
74 /* String messages for the aforementioned enum.  */
75 
76 static const char *reason_messages[] = {"", " (ignored)",
77     " (single edge duplicate)", " (edge pair duplicate)"};
78 
79 
80 static void combine_predictions_for_insn (rtx_insn *, basic_block);
81 static void dump_prediction (FILE *, enum br_predictor, int, basic_block,
82                                    enum predictor_reason, edge);
83 static void predict_paths_leading_to (basic_block, enum br_predictor,
84                                               enum prediction,
85                                               class loop *in_loop = NULL);
86 static void predict_paths_leading_to_edge (edge, enum br_predictor,
87                                                      enum prediction,
88                                                      class loop *in_loop = NULL);
89 static bool can_predict_insn_p (const rtx_insn *);
90 static HOST_WIDE_INT get_predictor_value (br_predictor, HOST_WIDE_INT);
91 static void determine_unlikely_bbs ();
92 
93 /* Information we hold about each branch predictor.
94    Filled using information from predict.def.  */
95 
96 struct predictor_info
97 {
98   const char *const name;     /* Name used in the debugging dumps.  */
99   const int hitrate;                    /* Expected hitrate used by
100                                            predict_insn_def call.  */
101   const int flags;
102 };
103 
104 /* Use given predictor without Dempster-Shaffer theory if it matches
105    using first_match heuristics.  */
106 #define PRED_FLAG_FIRST_MATCH 1
107 
108 /* Recompute hitrate in percent to our representation.  */
109 
110 #define HITRATE(VAL) ((int) ((VAL) * REG_BR_PROB_BASE + 50) / 100)
111 
112 #define DEF_PREDICTOR(ENUM, NAME, HITRATE, FLAGS) {NAME, HITRATE, FLAGS},
113 static const struct predictor_info predictor_info[]= {
114 #include "predict.def"
115 
116   /* Upper bound on predictors.  */
117   {NULL, 0, 0}
118 };
119 #undef DEF_PREDICTOR
120 
121 static gcov_type min_count = -1;
122 
123 /* Determine the threshold for hot BB counts.  */
124 
125 gcov_type
get_hot_bb_threshold()126 get_hot_bb_threshold ()
127 {
128   if (min_count == -1)
129     {
130       const int hot_frac = param_hot_bb_count_fraction;
131       const gcov_type min_hot_count
132           = hot_frac
133             ? profile_info->sum_max / hot_frac
134             : (gcov_type)profile_count::max_count;
135       set_hot_bb_threshold (min_hot_count);
136       if (dump_file)
137           fprintf (dump_file, "Setting hotness threshold to %" PRId64 ".\n",
138                      min_hot_count);
139     }
140   return min_count;
141 }
142 
143 /* Set the threshold for hot BB counts.  */
144 
145 void
set_hot_bb_threshold(gcov_type min)146 set_hot_bb_threshold (gcov_type min)
147 {
148   min_count = min;
149 }
150 
151 /* Return TRUE if COUNT is considered to be hot in function FUN.  */
152 
153 bool
maybe_hot_count_p(struct function * fun,profile_count count)154 maybe_hot_count_p (struct function *fun, profile_count count)
155 {
156   if (!count.initialized_p ())
157     return true;
158   if (count.ipa () == profile_count::zero ())
159     return false;
160   if (!count.ipa_p ())
161     {
162       struct cgraph_node *node = cgraph_node::get (fun->decl);
163       if (!profile_info || profile_status_for_fn (fun) != PROFILE_READ)
164           {
165             if (node->frequency == NODE_FREQUENCY_UNLIKELY_EXECUTED)
166               return false;
167             if (node->frequency == NODE_FREQUENCY_HOT)
168               return true;
169           }
170       if (profile_status_for_fn (fun) == PROFILE_ABSENT)
171           return true;
172       if (node->frequency == NODE_FREQUENCY_EXECUTED_ONCE
173             && count < (ENTRY_BLOCK_PTR_FOR_FN (fun)->count.apply_scale (2, 3)))
174           return false;
175       if (count.apply_scale (param_hot_bb_frequency_fraction, 1)
176             < ENTRY_BLOCK_PTR_FOR_FN (fun)->count)
177           return false;
178       return true;
179     }
180   /* Code executed at most once is not hot.  */
181   if (count <= MAX (profile_info ? profile_info->runs : 1, 1))
182     return false;
183   return (count >= get_hot_bb_threshold ());
184 }
185 
186 /* Return true if basic block BB of function FUN can be CPU intensive
187    and should thus be optimized for maximum performance.  */
188 
189 bool
maybe_hot_bb_p(struct function * fun,const_basic_block bb)190 maybe_hot_bb_p (struct function *fun, const_basic_block bb)
191 {
192   gcc_checking_assert (fun);
193   return maybe_hot_count_p (fun, bb->count);
194 }
195 
196 /* Return true if edge E can be CPU intensive and should thus be optimized
197    for maximum performance.  */
198 
199 bool
maybe_hot_edge_p(edge e)200 maybe_hot_edge_p (edge e)
201 {
202   return maybe_hot_count_p (cfun, e->count ());
203 }
204 
205 /* Return true if COUNT is considered to be never executed in function FUN
206    or if function FUN is considered so in the static profile.  */
207 
208 static bool
probably_never_executed(struct function * fun,profile_count count)209 probably_never_executed (struct function *fun, profile_count count)
210 {
211   gcc_checking_assert (fun);
212   if (count.ipa () == profile_count::zero ())
213     return true;
214   /* Do not trust adjusted counts.  This will make us to drop int cold section
215      code with low execution count as a result of inlining. These low counts
216      are not safe even with read profile and may lead us to dropping
217      code which actually gets executed into cold section of binary that is not
218      desirable.  */
219   if (count.precise_p () && profile_status_for_fn (fun) == PROFILE_READ)
220     {
221       const int unlikely_frac = param_unlikely_bb_count_fraction;
222       if (count.apply_scale (unlikely_frac, 1) >= profile_info->runs)
223           return false;
224       return true;
225     }
226   if ((!profile_info || profile_status_for_fn (fun) != PROFILE_READ)
227       && (cgraph_node::get (fun->decl)->frequency
228             == NODE_FREQUENCY_UNLIKELY_EXECUTED))
229     return true;
230   return false;
231 }
232 
233 /* Return true if basic block BB of function FUN is probably never executed.  */
234 
235 bool
probably_never_executed_bb_p(struct function * fun,const_basic_block bb)236 probably_never_executed_bb_p (struct function *fun, const_basic_block bb)
237 {
238   return probably_never_executed (fun, bb->count);
239 }
240 
241 /* Return true if edge E is unlikely executed for obvious reasons.  */
242 
243 static bool
unlikely_executed_edge_p(edge e)244 unlikely_executed_edge_p (edge e)
245 {
246   return (e->src->count == profile_count::zero ()
247             || e->probability == profile_probability::never ())
248            || (e->flags & (EDGE_EH | EDGE_FAKE));
249 }
250 
251 /* Return true if edge E of function FUN is probably never executed.  */
252 
253 bool
probably_never_executed_edge_p(struct function * fun,edge e)254 probably_never_executed_edge_p (struct function *fun, edge e)
255 {
256   if (unlikely_executed_edge_p (e))
257     return true;
258   return probably_never_executed (fun, e->count ());
259 }
260 
261 /* Return true if function FUN should always be optimized for size.  */
262 
263 optimize_size_level
optimize_function_for_size_p(struct function * fun)264 optimize_function_for_size_p (struct function *fun)
265 {
266   if (!fun || !fun->decl)
267     return optimize_size ? OPTIMIZE_SIZE_MAX : OPTIMIZE_SIZE_NO;
268   cgraph_node *n = cgraph_node::get (fun->decl);
269   if (n)
270     return n->optimize_for_size_p ();
271   return OPTIMIZE_SIZE_NO;
272 }
273 
274 /* Return true if function FUN should always be optimized for speed.  */
275 
276 bool
optimize_function_for_speed_p(struct function * fun)277 optimize_function_for_speed_p (struct function *fun)
278 {
279   return !optimize_function_for_size_p (fun);
280 }
281 
282 /* Return the optimization type that should be used for function FUN.  */
283 
284 optimization_type
function_optimization_type(struct function * fun)285 function_optimization_type (struct function *fun)
286 {
287   return (optimize_function_for_speed_p (fun)
288             ? OPTIMIZE_FOR_SPEED
289             : OPTIMIZE_FOR_SIZE);
290 }
291 
292 /* Return TRUE if basic block BB should be optimized for size.  */
293 
294 optimize_size_level
optimize_bb_for_size_p(const_basic_block bb)295 optimize_bb_for_size_p (const_basic_block bb)
296 {
297   enum optimize_size_level ret = optimize_function_for_size_p (cfun);
298 
299   if (bb && ret < OPTIMIZE_SIZE_MAX && bb->count == profile_count::zero ())
300     ret = OPTIMIZE_SIZE_MAX;
301   if (bb && ret < OPTIMIZE_SIZE_BALANCED && !maybe_hot_bb_p (cfun, bb))
302     ret = OPTIMIZE_SIZE_BALANCED;
303   return ret;
304 }
305 
306 /* Return TRUE if basic block BB should be optimized for speed.  */
307 
308 bool
optimize_bb_for_speed_p(const_basic_block bb)309 optimize_bb_for_speed_p (const_basic_block bb)
310 {
311   return !optimize_bb_for_size_p (bb);
312 }
313 
314 /* Return the optimization type that should be used for basic block BB.  */
315 
316 optimization_type
bb_optimization_type(const_basic_block bb)317 bb_optimization_type (const_basic_block bb)
318 {
319   return (optimize_bb_for_speed_p (bb)
320             ? OPTIMIZE_FOR_SPEED
321             : OPTIMIZE_FOR_SIZE);
322 }
323 
324 /* Return TRUE if edge E should be optimized for size.  */
325 
326 optimize_size_level
optimize_edge_for_size_p(edge e)327 optimize_edge_for_size_p (edge e)
328 {
329   enum optimize_size_level ret = optimize_function_for_size_p (cfun);
330 
331   if (ret < OPTIMIZE_SIZE_MAX && unlikely_executed_edge_p (e))
332     ret = OPTIMIZE_SIZE_MAX;
333   if (ret < OPTIMIZE_SIZE_BALANCED && !maybe_hot_edge_p (e))
334     ret = OPTIMIZE_SIZE_BALANCED;
335   return ret;
336 }
337 
338 /* Return TRUE if edge E should be optimized for speed.  */
339 
340 bool
optimize_edge_for_speed_p(edge e)341 optimize_edge_for_speed_p (edge e)
342 {
343   return !optimize_edge_for_size_p (e);
344 }
345 
346 /* Return TRUE if the current function is optimized for size.  */
347 
348 optimize_size_level
optimize_insn_for_size_p(void)349 optimize_insn_for_size_p (void)
350 {
351   enum optimize_size_level ret = optimize_function_for_size_p (cfun);
352   if (ret < OPTIMIZE_SIZE_BALANCED && !crtl->maybe_hot_insn_p)
353     ret = OPTIMIZE_SIZE_BALANCED;
354   return ret;
355 }
356 
357 /* Return TRUE if the current function is optimized for speed.  */
358 
359 bool
optimize_insn_for_speed_p(void)360 optimize_insn_for_speed_p (void)
361 {
362   return !optimize_insn_for_size_p ();
363 }
364 
365 /* Return TRUE if LOOP should be optimized for size.  */
366 
367 optimize_size_level
optimize_loop_for_size_p(class loop * loop)368 optimize_loop_for_size_p (class loop *loop)
369 {
370   return optimize_bb_for_size_p (loop->header);
371 }
372 
373 /* Return TRUE if LOOP should be optimized for speed.  */
374 
375 bool
optimize_loop_for_speed_p(class loop * loop)376 optimize_loop_for_speed_p (class loop *loop)
377 {
378   return optimize_bb_for_speed_p (loop->header);
379 }
380 
381 /* Return TRUE if nest rooted at LOOP should be optimized for speed.  */
382 
383 bool
optimize_loop_nest_for_speed_p(class loop * loop)384 optimize_loop_nest_for_speed_p (class loop *loop)
385 {
386   class loop *l = loop;
387   if (optimize_loop_for_speed_p (loop))
388     return true;
389   l = loop->inner;
390   while (l && l != loop)
391     {
392       if (optimize_loop_for_speed_p (l))
393         return true;
394       if (l->inner)
395         l = l->inner;
396       else if (l->next)
397         l = l->next;
398       else
399         {
400             while (l != loop && !l->next)
401               l = loop_outer (l);
402             if (l != loop)
403               l = l->next;
404           }
405     }
406   return false;
407 }
408 
409 /* Return TRUE if nest rooted at LOOP should be optimized for size.  */
410 
411 optimize_size_level
optimize_loop_nest_for_size_p(class loop * loop)412 optimize_loop_nest_for_size_p (class loop *loop)
413 {
414   enum optimize_size_level ret = optimize_loop_for_size_p (loop);
415   class loop *l = loop;
416 
417   l = loop->inner;
418   while (l && l != loop)
419     {
420       if (ret == OPTIMIZE_SIZE_NO)
421           break;
422       ret = MIN (optimize_loop_for_size_p (l), ret);
423       if (l->inner)
424         l = l->inner;
425       else if (l->next)
426         l = l->next;
427       else
428         {
429             while (l != loop && !l->next)
430               l = loop_outer (l);
431             if (l != loop)
432               l = l->next;
433           }
434     }
435   return ret;
436 }
437 
438 /* Return true if edge E is likely to be well predictable by branch
439    predictor.  */
440 
441 bool
predictable_edge_p(edge e)442 predictable_edge_p (edge e)
443 {
444   if (!e->probability.initialized_p ())
445     return false;
446   if ((e->probability.to_reg_br_prob_base ()
447        <= param_predictable_branch_outcome * REG_BR_PROB_BASE / 100)
448       || (REG_BR_PROB_BASE - e->probability.to_reg_br_prob_base ()
449             <= param_predictable_branch_outcome * REG_BR_PROB_BASE / 100))
450     return true;
451   return false;
452 }
453 
454 
455 /* Set RTL expansion for BB profile.  */
456 
457 void
rtl_profile_for_bb(basic_block bb)458 rtl_profile_for_bb (basic_block bb)
459 {
460   crtl->maybe_hot_insn_p = maybe_hot_bb_p (cfun, bb);
461 }
462 
463 /* Set RTL expansion for edge profile.  */
464 
465 void
rtl_profile_for_edge(edge e)466 rtl_profile_for_edge (edge e)
467 {
468   crtl->maybe_hot_insn_p = maybe_hot_edge_p (e);
469 }
470 
471 /* Set RTL expansion to default mode (i.e. when profile info is not known).  */
472 void
default_rtl_profile(void)473 default_rtl_profile (void)
474 {
475   crtl->maybe_hot_insn_p = true;
476 }
477 
478 /* Return true if the one of outgoing edges is already predicted by
479    PREDICTOR.  */
480 
481 bool
rtl_predicted_by_p(const_basic_block bb,enum br_predictor predictor)482 rtl_predicted_by_p (const_basic_block bb, enum br_predictor predictor)
483 {
484   rtx note;
485   if (!INSN_P (BB_END (bb)))
486     return false;
487   for (note = REG_NOTES (BB_END (bb)); note; note = XEXP (note, 1))
488     if (REG_NOTE_KIND (note) == REG_BR_PRED
489           && INTVAL (XEXP (XEXP (note, 0), 0)) == (int)predictor)
490       return true;
491   return false;
492 }
493 
494 /*  Structure representing predictions in tree level. */
495 
496 struct edge_prediction {
497     struct edge_prediction *ep_next;
498     edge ep_edge;
499     enum br_predictor ep_predictor;
500     int ep_probability;
501 };
502 
503 /* This map contains for a basic block the list of predictions for the
504    outgoing edges.  */
505 
506 static hash_map<const_basic_block, edge_prediction *> *bb_predictions;
507 
508 /* Return true if the one of outgoing edges is already predicted by
509    PREDICTOR.  */
510 
511 bool
gimple_predicted_by_p(const_basic_block bb,enum br_predictor predictor)512 gimple_predicted_by_p (const_basic_block bb, enum br_predictor predictor)
513 {
514   struct edge_prediction *i;
515   edge_prediction **preds = bb_predictions->get (bb);
516 
517   if (!preds)
518     return false;
519 
520   for (i = *preds; i; i = i->ep_next)
521     if (i->ep_predictor == predictor)
522       return true;
523   return false;
524 }
525 
526 /* Return true if the one of outgoing edges is already predicted by
527    PREDICTOR for edge E predicted as TAKEN.  */
528 
529 bool
edge_predicted_by_p(edge e,enum br_predictor predictor,bool taken)530 edge_predicted_by_p (edge e, enum br_predictor predictor, bool taken)
531 {
532   struct edge_prediction *i;
533   basic_block bb = e->src;
534   edge_prediction **preds = bb_predictions->get (bb);
535   if (!preds)
536     return false;
537 
538   int probability = predictor_info[(int) predictor].hitrate;
539 
540   if (taken != TAKEN)
541     probability = REG_BR_PROB_BASE - probability;
542 
543   for (i = *preds; i; i = i->ep_next)
544     if (i->ep_predictor == predictor
545           && i->ep_edge == e
546           && i->ep_probability == probability)
547       return true;
548   return false;
549 }
550 
551 /* Same predicate as above, working on edges.  */
552 bool
edge_probability_reliable_p(const_edge e)553 edge_probability_reliable_p (const_edge e)
554 {
555   return e->probability.probably_reliable_p ();
556 }
557 
558 /* Same predicate as edge_probability_reliable_p, working on notes.  */
559 bool
br_prob_note_reliable_p(const_rtx note)560 br_prob_note_reliable_p (const_rtx note)
561 {
562   gcc_assert (REG_NOTE_KIND (note) == REG_BR_PROB);
563   return profile_probability::from_reg_br_prob_note
564                      (XINT (note, 0)).probably_reliable_p ();
565 }
566 
567 static void
predict_insn(rtx_insn * insn,enum br_predictor predictor,int probability)568 predict_insn (rtx_insn *insn, enum br_predictor predictor, int probability)
569 {
570   gcc_assert (any_condjump_p (insn));
571   if (!flag_guess_branch_prob)
572     return;
573 
574   add_reg_note (insn, REG_BR_PRED,
575                     gen_rtx_CONCAT (VOIDmode,
576                                         GEN_INT ((int) predictor),
577                                         GEN_INT ((int) probability)));
578 }
579 
580 /* Predict insn by given predictor.  */
581 
582 void
predict_insn_def(rtx_insn * insn,enum br_predictor predictor,enum prediction taken)583 predict_insn_def (rtx_insn *insn, enum br_predictor predictor,
584                       enum prediction taken)
585 {
586    int probability = predictor_info[(int) predictor].hitrate;
587    gcc_assert (probability != PROB_UNINITIALIZED);
588 
589    if (taken != TAKEN)
590      probability = REG_BR_PROB_BASE - probability;
591 
592    predict_insn (insn, predictor, probability);
593 }
594 
595 /* Predict edge E with given probability if possible.  */
596 
597 void
rtl_predict_edge(edge e,enum br_predictor predictor,int probability)598 rtl_predict_edge (edge e, enum br_predictor predictor, int probability)
599 {
600   rtx_insn *last_insn;
601   last_insn = BB_END (e->src);
602 
603   /* We can store the branch prediction information only about
604      conditional jumps.  */
605   if (!any_condjump_p (last_insn))
606     return;
607 
608   /* We always store probability of branching.  */
609   if (e->flags & EDGE_FALLTHRU)
610     probability = REG_BR_PROB_BASE - probability;
611 
612   predict_insn (last_insn, predictor, probability);
613 }
614 
615 /* Predict edge E with the given PROBABILITY.  */
616 void
gimple_predict_edge(edge e,enum br_predictor predictor,int probability)617 gimple_predict_edge (edge e, enum br_predictor predictor, int probability)
618 {
619   if (e->src != ENTRY_BLOCK_PTR_FOR_FN (cfun)
620       && EDGE_COUNT (e->src->succs) > 1
621       && flag_guess_branch_prob
622       && optimize)
623     {
624       struct edge_prediction *i = XNEW (struct edge_prediction);
625       edge_prediction *&preds = bb_predictions->get_or_insert (e->src);
626 
627       i->ep_next = preds;
628       preds = i;
629       i->ep_probability = probability;
630       i->ep_predictor = predictor;
631       i->ep_edge = e;
632     }
633 }
634 
635 /* Filter edge predictions PREDS by a function FILTER: if FILTER return false
636    the prediction is removed.
637    DATA are passed to the filter function.  */
638 
639 static void
filter_predictions(edge_prediction ** preds,bool (* filter)(edge_prediction *,void *),void * data)640 filter_predictions (edge_prediction **preds,
641                         bool (*filter) (edge_prediction *, void *), void *data)
642 {
643   if (!bb_predictions)
644     return;
645 
646   if (preds)
647     {
648       struct edge_prediction **prediction = preds;
649       struct edge_prediction *next;
650 
651       while (*prediction)
652           {
653             if ((*filter) (*prediction, data))
654               prediction = &((*prediction)->ep_next);
655             else
656               {
657                 next = (*prediction)->ep_next;
658                 free (*prediction);
659                 *prediction = next;
660               }
661           }
662     }
663 }
664 
665 /* Filter function predicate that returns true for a edge predicate P
666    if its edge is equal to DATA.  */
667 
668 static bool
not_equal_edge_p(edge_prediction * p,void * data)669 not_equal_edge_p (edge_prediction *p, void *data)
670 {
671   return p->ep_edge != (edge)data;
672 }
673 
674 /* Remove all predictions on given basic block that are attached
675    to edge E.  */
676 void
remove_predictions_associated_with_edge(edge e)677 remove_predictions_associated_with_edge (edge e)
678 {
679   if (!bb_predictions)
680     return;
681 
682   edge_prediction **preds = bb_predictions->get (e->src);
683   filter_predictions (preds, not_equal_edge_p, e);
684 }
685 
686 /* Clears the list of predictions stored for BB.  */
687 
688 static void
clear_bb_predictions(basic_block bb)689 clear_bb_predictions (basic_block bb)
690 {
691   edge_prediction **preds = bb_predictions->get (bb);
692   struct edge_prediction *pred, *next;
693 
694   if (!preds)
695     return;
696 
697   for (pred = *preds; pred; pred = next)
698     {
699       next = pred->ep_next;
700       free (pred);
701     }
702   *preds = NULL;
703 }
704 
705 /* Return true when we can store prediction on insn INSN.
706    At the moment we represent predictions only on conditional
707    jumps, not at computed jump or other complicated cases.  */
708 static bool
can_predict_insn_p(const rtx_insn * insn)709 can_predict_insn_p (const rtx_insn *insn)
710 {
711   return (JUMP_P (insn)
712             && any_condjump_p (insn)
713             && EDGE_COUNT (BLOCK_FOR_INSN (insn)->succs) >= 2);
714 }
715 
716 /* Predict edge E by given predictor if possible.  */
717 
718 void
predict_edge_def(edge e,enum br_predictor predictor,enum prediction taken)719 predict_edge_def (edge e, enum br_predictor predictor,
720                       enum prediction taken)
721 {
722    int probability = predictor_info[(int) predictor].hitrate;
723 
724    if (taken != TAKEN)
725      probability = REG_BR_PROB_BASE - probability;
726 
727    predict_edge (e, predictor, probability);
728 }
729 
730 /* Invert all branch predictions or probability notes in the INSN.  This needs
731    to be done each time we invert the condition used by the jump.  */
732 
733 void
invert_br_probabilities(rtx insn)734 invert_br_probabilities (rtx insn)
735 {
736   rtx note;
737 
738   for (note = REG_NOTES (insn); note; note = XEXP (note, 1))
739     if (REG_NOTE_KIND (note) == REG_BR_PROB)
740       XINT (note, 0) = profile_probability::from_reg_br_prob_note
741                                (XINT (note, 0)).invert ().to_reg_br_prob_note ();
742     else if (REG_NOTE_KIND (note) == REG_BR_PRED)
743       XEXP (XEXP (note, 0), 1)
744           = GEN_INT (REG_BR_PROB_BASE - INTVAL (XEXP (XEXP (note, 0), 1)));
745 }
746 
747 /* Dump information about the branch prediction to the output file.  */
748 
749 static void
dump_prediction(FILE * file,enum br_predictor predictor,int probability,basic_block bb,enum predictor_reason reason=REASON_NONE,edge ep_edge=NULL)750 dump_prediction (FILE *file, enum br_predictor predictor, int probability,
751                      basic_block bb, enum predictor_reason reason = REASON_NONE,
752                      edge ep_edge = NULL)
753 {
754   edge e = ep_edge;
755   edge_iterator ei;
756 
757   if (!file)
758     return;
759 
760   if (e == NULL)
761     FOR_EACH_EDGE (e, ei, bb->succs)
762       if (! (e->flags & EDGE_FALLTHRU))
763           break;
764 
765   char edge_info_str[128];
766   if (ep_edge)
767     sprintf (edge_info_str, " of edge %d->%d", ep_edge->src->index,
768                ep_edge->dest->index);
769   else
770     edge_info_str[0] = '\0';
771 
772   fprintf (file, "  %s heuristics%s%s: %.2f%%",
773              predictor_info[predictor].name,
774              edge_info_str, reason_messages[reason],
775              probability * 100.0 / REG_BR_PROB_BASE);
776 
777   if (bb->count.initialized_p ())
778     {
779       fprintf (file, "  exec ");
780       bb->count.dump (file);
781       if (e)
782           {
783             fprintf (file, " hit ");
784             e->count ().dump (file);
785             fprintf (file, " (%.1f%%)", e->count ().to_gcov_type() * 100.0
786                        / bb->count.to_gcov_type ());
787           }
788     }
789 
790   fprintf (file, "\n");
791 
792   /* Print output that be easily read by analyze_brprob.py script. We are
793      interested only in counts that are read from GCDA files.  */
794   if (dump_file && (dump_flags & TDF_DETAILS)
795       && bb->count.precise_p ()
796       && reason == REASON_NONE)
797     {
798       fprintf (file, ";;heuristics;%s;%" PRId64 ";%" PRId64 ";%.1f;\n",
799                  predictor_info[predictor].name,
800                  bb->count.to_gcov_type (), e->count ().to_gcov_type (),
801                  probability * 100.0 / REG_BR_PROB_BASE);
802     }
803 }
804 
805 /* Return true if STMT is known to be unlikely executed.  */
806 
807 static bool
unlikely_executed_stmt_p(gimple * stmt)808 unlikely_executed_stmt_p (gimple *stmt)
809 {
810   if (!is_gimple_call (stmt))
811     return false;
812   /* NORETURN attribute alone is not strong enough: exit() may be quite
813      likely executed once during program run.  */
814   if (gimple_call_fntype (stmt)
815       && lookup_attribute ("cold",
816                                  TYPE_ATTRIBUTES (gimple_call_fntype (stmt)))
817       && !lookup_attribute ("cold", DECL_ATTRIBUTES (current_function_decl)))
818     return true;
819   tree decl = gimple_call_fndecl (stmt);
820   if (!decl)
821     return false;
822   if (lookup_attribute ("cold", DECL_ATTRIBUTES (decl))
823       && !lookup_attribute ("cold", DECL_ATTRIBUTES (current_function_decl)))
824     return true;
825 
826   cgraph_node *n = cgraph_node::get (decl);
827   if (!n)
828     return false;
829 
830   availability avail;
831   n = n->ultimate_alias_target (&avail);
832   if (avail < AVAIL_AVAILABLE)
833     return false;
834   if (!n->analyzed
835       || n->decl == current_function_decl)
836     return false;
837   return n->frequency == NODE_FREQUENCY_UNLIKELY_EXECUTED;
838 }
839 
840 /* Return true if BB is unlikely executed.  */
841 
842 static bool
unlikely_executed_bb_p(basic_block bb)843 unlikely_executed_bb_p (basic_block bb)
844 {
845   if (bb->count == profile_count::zero ())
846     return true;
847   if (bb == ENTRY_BLOCK_PTR_FOR_FN (cfun) || bb == EXIT_BLOCK_PTR_FOR_FN (cfun))
848     return false;
849   for (gimple_stmt_iterator gsi = gsi_start_bb (bb);
850        !gsi_end_p (gsi); gsi_next (&gsi))
851     {
852       if (unlikely_executed_stmt_p (gsi_stmt (gsi)))
853         return true;
854       if (stmt_can_terminate_bb_p (gsi_stmt (gsi)))
855           return false;
856     }
857   return false;
858 }
859 
860 /* We cannot predict the probabilities of outgoing edges of bb.  Set them
861    evenly and hope for the best.  If UNLIKELY_EDGES is not null, distribute
862    even probability for all edges not mentioned in the set.  These edges
863    are given PROB_VERY_UNLIKELY probability.  Similarly for LIKELY_EDGES,
864    if we have exactly one likely edge, make the other edges predicted
865    as not probable.  */
866 
867 static void
set_even_probabilities(basic_block bb,hash_set<edge> * unlikely_edges=NULL,hash_set<edge_prediction * > * likely_edges=NULL)868 set_even_probabilities (basic_block bb,
869                               hash_set<edge> *unlikely_edges = NULL,
870                               hash_set<edge_prediction *> *likely_edges = NULL)
871 {
872   unsigned nedges = 0, unlikely_count = 0;
873   edge e = NULL;
874   edge_iterator ei;
875   profile_probability all = profile_probability::always ();
876 
877   FOR_EACH_EDGE (e, ei, bb->succs)
878     if (e->probability.initialized_p ())
879       all -= e->probability;
880     else if (!unlikely_executed_edge_p (e))
881       {
882           nedges++;
883         if (unlikely_edges != NULL && unlikely_edges->contains (e))
884             {
885               all -= profile_probability::very_unlikely ();
886               unlikely_count++;
887             }
888       }
889 
890   /* Make the distribution even if all edges are unlikely.  */
891   unsigned likely_count = likely_edges ? likely_edges->elements () : 0;
892   if (unlikely_count == nedges)
893     {
894       unlikely_edges = NULL;
895       unlikely_count = 0;
896     }
897 
898   /* If we have one likely edge, then use its probability and distribute
899      remaining probabilities as even.  */
900   if (likely_count == 1)
901     {
902       FOR_EACH_EDGE (e, ei, bb->succs)
903           if (e->probability.initialized_p ())
904             ;
905           else if (!unlikely_executed_edge_p (e))
906             {
907               edge_prediction *prediction = *likely_edges->begin ();
908               int p = prediction->ep_probability;
909               profile_probability prob
910                 = profile_probability::from_reg_br_prob_base (p);
911 
912               if (prediction->ep_edge == e)
913                 e->probability = prob;
914               else if (unlikely_edges != NULL && unlikely_edges->contains (e))
915                 e->probability = profile_probability::very_unlikely ();
916               else
917                 {
918                     profile_probability remainder = prob.invert ();
919                     remainder -= profile_probability::very_unlikely ()
920                       .apply_scale (unlikely_count, 1);
921                     int count = nedges - unlikely_count - 1;
922                     gcc_assert (count >= 0);
923 
924                     e->probability = remainder.apply_scale (1, count);
925                 }
926             }
927           else
928             e->probability = profile_probability::never ();
929     }
930   else
931     {
932       /* Make all unlikely edges unlikely and the rest will have even
933            probability.  */
934       unsigned scale = nedges - unlikely_count;
935       FOR_EACH_EDGE (e, ei, bb->succs)
936           if (e->probability.initialized_p ())
937             ;
938           else if (!unlikely_executed_edge_p (e))
939             {
940               if (unlikely_edges != NULL && unlikely_edges->contains (e))
941                 e->probability = profile_probability::very_unlikely ();
942               else
943                 e->probability = all.apply_scale (1, scale);
944             }
945           else
946             e->probability = profile_probability::never ();
947     }
948 }
949 
950 /* Add REG_BR_PROB note to JUMP with PROB.  */
951 
952 void
add_reg_br_prob_note(rtx_insn * jump,profile_probability prob)953 add_reg_br_prob_note (rtx_insn *jump, profile_probability prob)
954 {
955   gcc_checking_assert (JUMP_P (jump) && !find_reg_note (jump, REG_BR_PROB, 0));
956   add_int_reg_note (jump, REG_BR_PROB, prob.to_reg_br_prob_note ());
957 }
958 
959 /* Combine all REG_BR_PRED notes into single probability and attach REG_BR_PROB
960    note if not already present.  Remove now useless REG_BR_PRED notes.  */
961 
962 static void
combine_predictions_for_insn(rtx_insn * insn,basic_block bb)963 combine_predictions_for_insn (rtx_insn *insn, basic_block bb)
964 {
965   rtx prob_note;
966   rtx *pnote;
967   rtx note;
968   int best_probability = PROB_EVEN;
969   enum br_predictor best_predictor = END_PREDICTORS;
970   int combined_probability = REG_BR_PROB_BASE / 2;
971   int d;
972   bool first_match = false;
973   bool found = false;
974 
975   if (!can_predict_insn_p (insn))
976     {
977       set_even_probabilities (bb);
978       return;
979     }
980 
981   prob_note = find_reg_note (insn, REG_BR_PROB, 0);
982   pnote = &REG_NOTES (insn);
983   if (dump_file)
984     fprintf (dump_file, "Predictions for insn %i bb %i\n", INSN_UID (insn),
985                bb->index);
986 
987   /* We implement "first match" heuristics and use probability guessed
988      by predictor with smallest index.  */
989   for (note = REG_NOTES (insn); note; note = XEXP (note, 1))
990     if (REG_NOTE_KIND (note) == REG_BR_PRED)
991       {
992           enum br_predictor predictor = ((enum br_predictor)
993                                                INTVAL (XEXP (XEXP (note, 0), 0)));
994           int probability = INTVAL (XEXP (XEXP (note, 0), 1));
995 
996           found = true;
997           if (best_predictor > predictor
998               && predictor_info[predictor].flags & PRED_FLAG_FIRST_MATCH)
999             best_probability = probability, best_predictor = predictor;
1000 
1001           d = (combined_probability * probability
1002                + (REG_BR_PROB_BASE - combined_probability)
1003                * (REG_BR_PROB_BASE - probability));
1004 
1005           /* Use FP math to avoid overflows of 32bit integers.  */
1006           if (d == 0)
1007             /* If one probability is 0% and one 100%, avoid division by zero.  */
1008             combined_probability = REG_BR_PROB_BASE / 2;
1009           else
1010             combined_probability = (((double) combined_probability) * probability
1011                                           * REG_BR_PROB_BASE / d + 0.5);
1012       }
1013 
1014   /* Decide which heuristic to use.  In case we didn't match anything,
1015      use no_prediction heuristic, in case we did match, use either
1016      first match or Dempster-Shaffer theory depending on the flags.  */
1017 
1018   if (best_predictor != END_PREDICTORS)
1019     first_match = true;
1020 
1021   if (!found)
1022     dump_prediction (dump_file, PRED_NO_PREDICTION,
1023                          combined_probability, bb);
1024   else
1025     {
1026       if (!first_match)
1027           dump_prediction (dump_file, PRED_DS_THEORY, combined_probability,
1028                                bb, !first_match ? REASON_NONE : REASON_IGNORED);
1029       else
1030           dump_prediction (dump_file, PRED_FIRST_MATCH, best_probability,
1031                                bb, first_match ? REASON_NONE : REASON_IGNORED);
1032     }
1033 
1034   if (first_match)
1035     combined_probability = best_probability;
1036   dump_prediction (dump_file, PRED_COMBINED, combined_probability, bb);
1037 
1038   while (*pnote)
1039     {
1040       if (REG_NOTE_KIND (*pnote) == REG_BR_PRED)
1041           {
1042             enum br_predictor predictor = ((enum br_predictor)
1043                                                    INTVAL (XEXP (XEXP (*pnote, 0), 0)));
1044             int probability = INTVAL (XEXP (XEXP (*pnote, 0), 1));
1045 
1046             dump_prediction (dump_file, predictor, probability, bb,
1047                                  (!first_match || best_predictor == predictor)
1048                                  ? REASON_NONE : REASON_IGNORED);
1049             *pnote = XEXP (*pnote, 1);
1050           }
1051       else
1052           pnote = &XEXP (*pnote, 1);
1053     }
1054 
1055   if (!prob_note)
1056     {
1057       profile_probability p
1058            = profile_probability::from_reg_br_prob_base (combined_probability);
1059       add_reg_br_prob_note (insn, p);
1060 
1061       /* Save the prediction into CFG in case we are seeing non-degenerated
1062            conditional jump.  */
1063       if (!single_succ_p (bb))
1064           {
1065             BRANCH_EDGE (bb)->probability = p;
1066             FALLTHRU_EDGE (bb)->probability
1067               = BRANCH_EDGE (bb)->probability.invert ();
1068           }
1069     }
1070   else if (!single_succ_p (bb))
1071     {
1072       profile_probability prob = profile_probability::from_reg_br_prob_note
1073                                                   (XINT (prob_note, 0));
1074 
1075       BRANCH_EDGE (bb)->probability = prob;
1076       FALLTHRU_EDGE (bb)->probability = prob.invert ();
1077     }
1078   else
1079     single_succ_edge (bb)->probability = profile_probability::always ();
1080 }
1081 
1082 /* Edge prediction hash traits.  */
1083 
1084 struct predictor_hash: pointer_hash <edge_prediction>
1085 {
1086 
1087   static inline hashval_t hash (const edge_prediction *);
1088   static inline bool equal (const edge_prediction *, const edge_prediction *);
1089 };
1090 
1091 /* Calculate hash value of an edge prediction P based on predictor and
1092    normalized probability.  */
1093 
1094 inline hashval_t
hash(const edge_prediction * p)1095 predictor_hash::hash (const edge_prediction *p)
1096 {
1097   inchash::hash hstate;
1098   hstate.add_int (p->ep_predictor);
1099 
1100   int prob = p->ep_probability;
1101   if (prob > REG_BR_PROB_BASE / 2)
1102     prob = REG_BR_PROB_BASE - prob;
1103 
1104   hstate.add_int (prob);
1105 
1106   return hstate.end ();
1107 }
1108 
1109 /* Return true whether edge predictions P1 and P2 use the same predictor and
1110    have equal (or opposed probability).  */
1111 
1112 inline bool
equal(const edge_prediction * p1,const edge_prediction * p2)1113 predictor_hash::equal (const edge_prediction *p1, const edge_prediction *p2)
1114 {
1115   return (p1->ep_predictor == p2->ep_predictor
1116             && (p1->ep_probability == p2->ep_probability
1117                 || p1->ep_probability == REG_BR_PROB_BASE - p2->ep_probability));
1118 }
1119 
1120 struct predictor_hash_traits: predictor_hash,
1121   typed_noop_remove <edge_prediction *> {};
1122 
1123 /* Return true if edge prediction P is not in DATA hash set.  */
1124 
1125 static bool
not_removed_prediction_p(edge_prediction * p,void * data)1126 not_removed_prediction_p (edge_prediction *p, void *data)
1127 {
1128   hash_set<edge_prediction *> *remove = (hash_set<edge_prediction *> *) data;
1129   return !remove->contains (p);
1130 }
1131 
1132 /* Prune predictions for a basic block BB.  Currently we do following
1133    clean-up steps:
1134 
1135    1) remove duplicate prediction that is guessed with the same probability
1136       (different than 1/2) to both edge
1137    2) remove duplicates for a prediction that belongs with the same probability
1138       to a single edge
1139 
1140   */
1141 
1142 static void
prune_predictions_for_bb(basic_block bb)1143 prune_predictions_for_bb (basic_block bb)
1144 {
1145   edge_prediction **preds = bb_predictions->get (bb);
1146 
1147   if (preds)
1148     {
1149       hash_table <predictor_hash_traits> s (13);
1150       hash_set <edge_prediction *> remove;
1151 
1152       /* Step 1: identify predictors that should be removed.  */
1153       for (edge_prediction *pred = *preds; pred; pred = pred->ep_next)
1154           {
1155             edge_prediction *existing = s.find (pred);
1156             if (existing)
1157               {
1158                 if (pred->ep_edge == existing->ep_edge
1159                       && pred->ep_probability == existing->ep_probability)
1160                     {
1161                       /* Remove a duplicate predictor.  */
1162                       dump_prediction (dump_file, pred->ep_predictor,
1163                                            pred->ep_probability, bb,
1164                                            REASON_SINGLE_EDGE_DUPLICATE, pred->ep_edge);
1165 
1166                       remove.add (pred);
1167                     }
1168                 else if (pred->ep_edge != existing->ep_edge
1169                            && pred->ep_probability == existing->ep_probability
1170                            && pred->ep_probability != REG_BR_PROB_BASE / 2)
1171                     {
1172                       /* Remove both predictors as they predict the same
1173                          for both edges.  */
1174                       dump_prediction (dump_file, existing->ep_predictor,
1175                                            pred->ep_probability, bb,
1176                                            REASON_EDGE_PAIR_DUPLICATE,
1177                                            existing->ep_edge);
1178                       dump_prediction (dump_file, pred->ep_predictor,
1179                                            pred->ep_probability, bb,
1180                                            REASON_EDGE_PAIR_DUPLICATE,
1181                                            pred->ep_edge);
1182 
1183                       remove.add (existing);
1184                       remove.add (pred);
1185                     }
1186               }
1187 
1188             edge_prediction **slot2 = s.find_slot (pred, INSERT);
1189             *slot2 = pred;
1190           }
1191 
1192       /* Step 2: Remove predictors.  */
1193       filter_predictions (preds, not_removed_prediction_p, &remove);
1194     }
1195 }
1196 
1197 /* Combine predictions into single probability and store them into CFG.
1198    Remove now useless prediction entries.
1199    If DRY_RUN is set, only produce dumps and do not modify profile.  */
1200 
1201 static void
combine_predictions_for_bb(basic_block bb,bool dry_run)1202 combine_predictions_for_bb (basic_block bb, bool dry_run)
1203 {
1204   int best_probability = PROB_EVEN;
1205   enum br_predictor best_predictor = END_PREDICTORS;
1206   int combined_probability = REG_BR_PROB_BASE / 2;
1207   int d;
1208   bool first_match = false;
1209   bool found = false;
1210   struct edge_prediction *pred;
1211   int nedges = 0;
1212   edge e, first = NULL, second = NULL;
1213   edge_iterator ei;
1214   int nzero = 0;
1215   int nunknown = 0;
1216 
1217   FOR_EACH_EDGE (e, ei, bb->succs)
1218     {
1219       if (!unlikely_executed_edge_p (e))
1220         {
1221             nedges ++;
1222             if (first && !second)
1223               second = e;
1224             if (!first)
1225               first = e;
1226         }
1227       else if (!e->probability.initialized_p ())
1228         e->probability = profile_probability::never ();
1229      if (!e->probability.initialized_p ())
1230         nunknown++;
1231      else if (e->probability == profile_probability::never ())
1232           nzero++;
1233     }
1234 
1235   /* When there is no successor or only one choice, prediction is easy.
1236 
1237      When we have a basic block with more than 2 successors, the situation
1238      is more complicated as DS theory cannot be used literally.
1239      More precisely, let's assume we predicted edge e1 with probability p1,
1240      thus: m1({b1}) = p1.  As we're going to combine more than 2 edges, we
1241      need to find probability of e.g. m1({b2}), which we don't know.
1242      The only approximation is to equally distribute 1-p1 to all edges
1243      different from b1.
1244 
1245      According to numbers we've got from SPEC2006 benchark, there's only
1246      one interesting reliable predictor (noreturn call), which can be
1247      handled with a bit easier approach.  */
1248   if (nedges != 2)
1249     {
1250       hash_set<edge> unlikely_edges (4);
1251       hash_set<edge_prediction *> likely_edges (4);
1252 
1253       /* Identify all edges that have a probability close to very unlikely.
1254            Doing the approach for very unlikely doesn't worth for doing as
1255            there's no such probability in SPEC2006 benchmark.  */
1256       edge_prediction **preds = bb_predictions->get (bb);
1257       if (preds)
1258           for (pred = *preds; pred; pred = pred->ep_next)
1259             {
1260               if (pred->ep_probability <= PROB_VERY_UNLIKELY
1261                     || pred->ep_predictor == PRED_COLD_LABEL)
1262                 unlikely_edges.add (pred->ep_edge);
1263               else if (pred->ep_probability >= PROB_VERY_LIKELY
1264                          || pred->ep_predictor == PRED_BUILTIN_EXPECT
1265                          || pred->ep_predictor == PRED_HOT_LABEL)
1266                 likely_edges.add (pred);
1267             }
1268 
1269       /* It can happen that an edge is both in likely_edges and unlikely_edges.
1270            Clear both sets in that situation.  */
1271       for (hash_set<edge_prediction *>::iterator it = likely_edges.begin ();
1272              it != likely_edges.end (); ++it)
1273           if (unlikely_edges.contains ((*it)->ep_edge))
1274             {
1275               likely_edges.empty ();
1276               unlikely_edges.empty ();
1277               break;
1278             }
1279 
1280       if (!dry_run)
1281           set_even_probabilities (bb, &unlikely_edges, &likely_edges);
1282       clear_bb_predictions (bb);
1283       if (dump_file)
1284           {
1285             fprintf (dump_file, "Predictions for bb %i\n", bb->index);
1286             if (unlikely_edges.is_empty ())
1287               fprintf (dump_file,
1288                          "%i edges in bb %i predicted to even probabilities\n",
1289                          nedges, bb->index);
1290             else
1291               {
1292                 fprintf (dump_file,
1293                            "%i edges in bb %i predicted with some unlikely edges\n",
1294                            nedges, bb->index);
1295                 FOR_EACH_EDGE (e, ei, bb->succs)
1296                     if (!unlikely_executed_edge_p (e))
1297                       dump_prediction (dump_file, PRED_COMBINED,
1298                        e->probability.to_reg_br_prob_base (), bb, REASON_NONE, e);
1299               }
1300           }
1301       return;
1302     }
1303 
1304   if (dump_file)
1305     fprintf (dump_file, "Predictions for bb %i\n", bb->index);
1306 
1307   prune_predictions_for_bb (bb);
1308 
1309   edge_prediction **preds = bb_predictions->get (bb);
1310 
1311   if (preds)
1312     {
1313       /* We implement "first match" heuristics and use probability guessed
1314            by predictor with smallest index.  */
1315       for (pred = *preds; pred; pred = pred->ep_next)
1316           {
1317             enum br_predictor predictor = pred->ep_predictor;
1318             int probability = pred->ep_probability;
1319 
1320             if (pred->ep_edge != first)
1321               probability = REG_BR_PROB_BASE - probability;
1322 
1323             found = true;
1324             /* First match heuristics would be widly confused if we predicted
1325                both directions.  */
1326             if (best_predictor > predictor
1327               && predictor_info[predictor].flags & PRED_FLAG_FIRST_MATCH)
1328               {
1329               struct edge_prediction *pred2;
1330                 int prob = probability;
1331 
1332                 for (pred2 = (struct edge_prediction *) *preds;
1333                        pred2; pred2 = pred2->ep_next)
1334                  if (pred2 != pred && pred2->ep_predictor == pred->ep_predictor)
1335                    {
1336                        int probability2 = pred2->ep_probability;
1337 
1338                        if (pred2->ep_edge != first)
1339                          probability2 = REG_BR_PROB_BASE - probability2;
1340 
1341                        if ((probability < REG_BR_PROB_BASE / 2) !=
1342                            (probability2 < REG_BR_PROB_BASE / 2))
1343                          break;
1344 
1345                        /* If the same predictor later gave better result, go for it! */
1346                        if ((probability >= REG_BR_PROB_BASE / 2 && (probability2 > probability))
1347                            || (probability <= REG_BR_PROB_BASE / 2 && (probability2 < probability)))
1348                          prob = probability2;
1349                      }
1350                 if (!pred2)
1351                   best_probability = prob, best_predictor = predictor;
1352               }
1353 
1354             d = (combined_probability * probability
1355                  + (REG_BR_PROB_BASE - combined_probability)
1356                  * (REG_BR_PROB_BASE - probability));
1357 
1358             /* Use FP math to avoid overflows of 32bit integers.  */
1359             if (d == 0)
1360               /* If one probability is 0% and one 100%, avoid division by zero.  */
1361               combined_probability = REG_BR_PROB_BASE / 2;
1362             else
1363               combined_probability = (((double) combined_probability)
1364                                             * probability
1365                                             * REG_BR_PROB_BASE / d + 0.5);
1366           }
1367     }
1368 
1369   /* Decide which heuristic to use.  In case we didn't match anything,
1370      use no_prediction heuristic, in case we did match, use either
1371      first match or Dempster-Shaffer theory depending on the flags.  */
1372 
1373   if (best_predictor != END_PREDICTORS)
1374     first_match = true;
1375 
1376   if (!found)
1377     dump_prediction (dump_file, PRED_NO_PREDICTION, combined_probability, bb);
1378   else
1379     {
1380       if (!first_match)
1381           dump_prediction (dump_file, PRED_DS_THEORY, combined_probability, bb,
1382                                !first_match ? REASON_NONE : REASON_IGNORED);
1383       else
1384           dump_prediction (dump_file, PRED_FIRST_MATCH, best_probability, bb,
1385                                first_match ? REASON_NONE : REASON_IGNORED);
1386     }
1387 
1388   if (first_match)
1389     combined_probability = best_probability;
1390   dump_prediction (dump_file, PRED_COMBINED, combined_probability, bb);
1391 
1392   if (preds)
1393     {
1394       for (pred = (struct edge_prediction *) *preds; pred; pred = pred->ep_next)
1395           {
1396             enum br_predictor predictor = pred->ep_predictor;
1397             int probability = pred->ep_probability;
1398 
1399             dump_prediction (dump_file, predictor, probability, bb,
1400                                  (!first_match || best_predictor == predictor)
1401                                  ? REASON_NONE : REASON_IGNORED, pred->ep_edge);
1402           }
1403     }
1404   clear_bb_predictions (bb);
1405 
1406 
1407   /* If we have only one successor which is unknown, we can compute missing
1408      probability.  */
1409   if (nunknown == 1)
1410     {
1411       profile_probability prob = profile_probability::always ();
1412       edge missing = NULL;
1413 
1414       FOR_EACH_EDGE (e, ei, bb->succs)
1415           if (e->probability.initialized_p ())
1416             prob -= e->probability;
1417           else if (missing == NULL)
1418             missing = e;
1419           else
1420             gcc_unreachable ();
1421        missing->probability = prob;
1422     }
1423   /* If nothing is unknown, we have nothing to update.  */
1424   else if (!nunknown && nzero != (int)EDGE_COUNT (bb->succs))
1425     ;
1426   else if (!dry_run)
1427     {
1428       first->probability
1429            = profile_probability::from_reg_br_prob_base (combined_probability);
1430       second->probability = first->probability.invert ();
1431     }
1432 }
1433 
1434 /* Check if T1 and T2 satisfy the IV_COMPARE condition.
1435    Return the SSA_NAME if the condition satisfies, NULL otherwise.
1436 
1437    T1 and T2 should be one of the following cases:
1438      1. T1 is SSA_NAME, T2 is NULL
1439      2. T1 is SSA_NAME, T2 is INTEGER_CST between [-4, 4]
1440      3. T2 is SSA_NAME, T1 is INTEGER_CST between [-4, 4]  */
1441 
1442 static tree
strips_small_constant(tree t1,tree t2)1443 strips_small_constant (tree t1, tree t2)
1444 {
1445   tree ret = NULL;
1446   int value = 0;
1447 
1448   if (!t1)
1449     return NULL;
1450   else if (TREE_CODE (t1) == SSA_NAME)
1451     ret = t1;
1452   else if (tree_fits_shwi_p (t1))
1453     value = tree_to_shwi (t1);
1454   else
1455     return NULL;
1456 
1457   if (!t2)
1458     return ret;
1459   else if (tree_fits_shwi_p (t2))
1460     value = tree_to_shwi (t2);
1461   else if (TREE_CODE (t2) == SSA_NAME)
1462     {
1463       if (ret)
1464         return NULL;
1465       else
1466         ret = t2;
1467     }
1468 
1469   if (value <= 4 && value >= -4)
1470     return ret;
1471   else
1472     return NULL;
1473 }
1474 
1475 /* Return the SSA_NAME in T or T's operands.
1476    Return NULL if SSA_NAME cannot be found.  */
1477 
1478 static tree
get_base_value(tree t)1479 get_base_value (tree t)
1480 {
1481   if (TREE_CODE (t) == SSA_NAME)
1482     return t;
1483 
1484   if (!BINARY_CLASS_P (t))
1485     return NULL;
1486 
1487   switch (TREE_OPERAND_LENGTH (t))
1488     {
1489     case 1:
1490       return strips_small_constant (TREE_OPERAND (t, 0), NULL);
1491     case 2:
1492       return strips_small_constant (TREE_OPERAND (t, 0),
1493                                             TREE_OPERAND (t, 1));
1494     default:
1495       return NULL;
1496     }
1497 }
1498 
1499 /* Check the compare STMT in LOOP. If it compares an induction
1500    variable to a loop invariant, return true, and save
1501    LOOP_INVARIANT, COMPARE_CODE and LOOP_STEP.
1502    Otherwise return false and set LOOP_INVAIANT to NULL.  */
1503 
1504 static bool
is_comparison_with_loop_invariant_p(gcond * stmt,class loop * loop,tree * loop_invariant,enum tree_code * compare_code,tree * loop_step,tree * loop_iv_base)1505 is_comparison_with_loop_invariant_p (gcond *stmt, class loop *loop,
1506                                              tree *loop_invariant,
1507                                              enum tree_code *compare_code,
1508                                              tree *loop_step,
1509                                              tree *loop_iv_base)
1510 {
1511   tree op0, op1, bound, base;
1512   affine_iv iv0, iv1;
1513   enum tree_code code;
1514   tree step;
1515 
1516   code = gimple_cond_code (stmt);
1517   *loop_invariant = NULL;
1518 
1519   switch (code)
1520     {
1521     case GT_EXPR:
1522     case GE_EXPR:
1523     case NE_EXPR:
1524     case LT_EXPR:
1525     case LE_EXPR:
1526     case EQ_EXPR:
1527       break;
1528 
1529     default:
1530       return false;
1531     }
1532 
1533   op0 = gimple_cond_lhs (stmt);
1534   op1 = gimple_cond_rhs (stmt);
1535 
1536   if ((TREE_CODE (op0) != SSA_NAME && TREE_CODE (op0) != INTEGER_CST)
1537        || (TREE_CODE (op1) != SSA_NAME && TREE_CODE (op1) != INTEGER_CST))
1538     return false;
1539   if (!simple_iv (loop, loop_containing_stmt (stmt), op0, &iv0, true))
1540     return false;
1541   if (!simple_iv (loop, loop_containing_stmt (stmt), op1, &iv1, true))
1542     return false;
1543   if (TREE_CODE (iv0.step) != INTEGER_CST
1544       || TREE_CODE (iv1.step) != INTEGER_CST)
1545     return false;
1546   if ((integer_zerop (iv0.step) && integer_zerop (iv1.step))
1547       || (!integer_zerop (iv0.step) && !integer_zerop (iv1.step)))
1548     return false;
1549 
1550   if (integer_zerop (iv0.step))
1551     {
1552       if (code != NE_EXPR && code != EQ_EXPR)
1553           code = invert_tree_comparison (code, false);
1554       bound = iv0.base;
1555       base = iv1.base;
1556       if (tree_fits_shwi_p (iv1.step))
1557           step = iv1.step;
1558       else
1559           return false;
1560     }
1561   else
1562     {
1563       bound = iv1.base;
1564       base = iv0.base;
1565       if (tree_fits_shwi_p (iv0.step))
1566           step = iv0.step;
1567       else
1568           return false;
1569     }
1570 
1571   if (TREE_CODE (bound) != INTEGER_CST)
1572     bound = get_base_value (bound);
1573   if (!bound)
1574     return false;
1575   if (TREE_CODE (base) != INTEGER_CST)
1576     base = get_base_value (base);
1577   if (!base)
1578     return false;
1579 
1580   *loop_invariant = bound;
1581   *compare_code = code;
1582   *loop_step = step;
1583   *loop_iv_base = base;
1584   return true;
1585 }
1586 
1587 /* Compare two SSA_NAMEs: returns TRUE if T1 and T2 are value coherent.  */
1588 
1589 static bool
expr_coherent_p(tree t1,tree t2)1590 expr_coherent_p (tree t1, tree t2)
1591 {
1592   gimple *stmt;
1593   tree ssa_name_1 = NULL;
1594   tree ssa_name_2 = NULL;
1595 
1596   gcc_assert (TREE_CODE (t1) == SSA_NAME || TREE_CODE (t1) == INTEGER_CST);
1597   gcc_assert (TREE_CODE (t2) == SSA_NAME || TREE_CODE (t2) == INTEGER_CST);
1598 
1599   if (t1 == t2)
1600     return true;
1601 
1602   if (TREE_CODE (t1) == INTEGER_CST && TREE_CODE (t2) == INTEGER_CST)
1603     return true;
1604   if (TREE_CODE (t1) == INTEGER_CST || TREE_CODE (t2) == INTEGER_CST)
1605     return false;
1606 
1607   /* Check to see if t1 is expressed/defined with t2.  */
1608   stmt = SSA_NAME_DEF_STMT (t1);
1609   gcc_assert (stmt != NULL);
1610   if (is_gimple_assign (stmt))
1611     {
1612       ssa_name_1 = SINGLE_SSA_TREE_OPERAND (stmt, SSA_OP_USE);
1613       if (ssa_name_1 && ssa_name_1 == t2)
1614           return true;
1615     }
1616 
1617   /* Check to see if t2 is expressed/defined with t1.  */
1618   stmt = SSA_NAME_DEF_STMT (t2);
1619   gcc_assert (stmt != NULL);
1620   if (is_gimple_assign (stmt))
1621     {
1622       ssa_name_2 = SINGLE_SSA_TREE_OPERAND (stmt, SSA_OP_USE);
1623       if (ssa_name_2 && ssa_name_2 == t1)
1624           return true;
1625     }
1626 
1627   /* Compare if t1 and t2's def_stmts are identical.  */
1628   if (ssa_name_2 != NULL && ssa_name_1 == ssa_name_2)
1629     return true;
1630   else
1631     return false;
1632 }
1633 
1634 /* Return true if E is predicted by one of loop heuristics.  */
1635 
1636 static bool
predicted_by_loop_heuristics_p(basic_block bb)1637 predicted_by_loop_heuristics_p (basic_block bb)
1638 {
1639   struct edge_prediction *i;
1640   edge_prediction **preds = bb_predictions->get (bb);
1641 
1642   if (!preds)
1643     return false;
1644 
1645   for (i = *preds; i; i = i->ep_next)
1646     if (i->ep_predictor == PRED_LOOP_ITERATIONS_GUESSED
1647           || i->ep_predictor == PRED_LOOP_ITERATIONS_MAX
1648           || i->ep_predictor == PRED_LOOP_ITERATIONS
1649           || i->ep_predictor == PRED_LOOP_EXIT
1650           || i->ep_predictor == PRED_LOOP_EXIT_WITH_RECURSION
1651           || i->ep_predictor == PRED_LOOP_EXTRA_EXIT)
1652       return true;
1653   return false;
1654 }
1655 
1656 /* Predict branch probability of BB when BB contains a branch that compares
1657    an induction variable in LOOP with LOOP_IV_BASE_VAR to LOOP_BOUND_VAR. The
1658    loop exit is compared using LOOP_BOUND_CODE, with step of LOOP_BOUND_STEP.
1659 
1660    E.g.
1661      for (int i = 0; i < bound; i++) {
1662        if (i < bound - 2)
1663            computation_1();
1664        else
1665            computation_2();
1666      }
1667 
1668   In this loop, we will predict the branch inside the loop to be taken.  */
1669 
1670 static void
predict_iv_comparison(class loop * loop,basic_block bb,tree loop_bound_var,tree loop_iv_base_var,enum tree_code loop_bound_code,int loop_bound_step)1671 predict_iv_comparison (class loop *loop, basic_block bb,
1672                            tree loop_bound_var,
1673                            tree loop_iv_base_var,
1674                            enum tree_code loop_bound_code,
1675                            int loop_bound_step)
1676 {
1677   gimple *stmt;
1678   tree compare_var, compare_base;
1679   enum tree_code compare_code;
1680   tree compare_step_var;
1681   edge then_edge;
1682   edge_iterator ei;
1683 
1684   if (predicted_by_loop_heuristics_p (bb))
1685     return;
1686 
1687   stmt = last_stmt (bb);
1688   if (!stmt || gimple_code (stmt) != GIMPLE_COND)
1689     return;
1690   if (!is_comparison_with_loop_invariant_p (as_a <gcond *> (stmt),
1691                                                       loop, &compare_var,
1692                                                       &compare_code,
1693                                                       &compare_step_var,
1694                                                       &compare_base))
1695     return;
1696 
1697   /* Find the taken edge.  */
1698   FOR_EACH_EDGE (then_edge, ei, bb->succs)
1699     if (then_edge->flags & EDGE_TRUE_VALUE)
1700       break;
1701 
1702   /* When comparing an IV to a loop invariant, NE is more likely to be
1703      taken while EQ is more likely to be not-taken.  */
1704   if (compare_code == NE_EXPR)
1705     {
1706       predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, TAKEN);
1707       return;
1708     }
1709   else if (compare_code == EQ_EXPR)
1710     {
1711       predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, NOT_TAKEN);
1712       return;
1713     }
1714 
1715   if (!expr_coherent_p (loop_iv_base_var, compare_base))
1716     return;
1717 
1718   /* If loop bound, base and compare bound are all constants, we can
1719      calculate the probability directly.  */
1720   if (tree_fits_shwi_p (loop_bound_var)
1721       && tree_fits_shwi_p (compare_var)
1722       && tree_fits_shwi_p (compare_base))
1723     {
1724       int probability;
1725       wi::overflow_type overflow;
1726       bool overall_overflow = false;
1727       widest_int compare_count, tem;
1728 
1729       /* (loop_bound - base) / compare_step */
1730       tem = wi::sub (wi::to_widest (loop_bound_var),
1731                          wi::to_widest (compare_base), SIGNED, &overflow);
1732       overall_overflow |= overflow;
1733       widest_int loop_count = wi::div_trunc (tem,
1734                                                        wi::to_widest (compare_step_var),
1735                                                        SIGNED, &overflow);
1736       overall_overflow |= overflow;
1737 
1738       if (!wi::neg_p (wi::to_widest (compare_step_var))
1739           ^ (compare_code == LT_EXPR || compare_code == LE_EXPR))
1740           {
1741             /* (loop_bound - compare_bound) / compare_step */
1742             tem = wi::sub (wi::to_widest (loop_bound_var),
1743                                wi::to_widest (compare_var), SIGNED, &overflow);
1744             overall_overflow |= overflow;
1745             compare_count = wi::div_trunc (tem, wi::to_widest (compare_step_var),
1746                                                    SIGNED, &overflow);
1747             overall_overflow |= overflow;
1748           }
1749       else
1750         {
1751             /* (compare_bound - base) / compare_step */
1752             tem = wi::sub (wi::to_widest (compare_var),
1753                                wi::to_widest (compare_base), SIGNED, &overflow);
1754             overall_overflow |= overflow;
1755           compare_count = wi::div_trunc (tem, wi::to_widest (compare_step_var),
1756                                                    SIGNED, &overflow);
1757             overall_overflow |= overflow;
1758           }
1759       if (compare_code == LE_EXPR || compare_code == GE_EXPR)
1760           ++compare_count;
1761       if (loop_bound_code == LE_EXPR || loop_bound_code == GE_EXPR)
1762           ++loop_count;
1763       if (wi::neg_p (compare_count))
1764         compare_count = 0;
1765       if (wi::neg_p (loop_count))
1766         loop_count = 0;
1767       if (loop_count == 0)
1768           probability = 0;
1769       else if (wi::cmps (compare_count, loop_count) == 1)
1770           probability = REG_BR_PROB_BASE;
1771       else
1772         {
1773             tem = compare_count * REG_BR_PROB_BASE;
1774             tem = wi::udiv_trunc (tem, loop_count);
1775             probability = tem.to_uhwi ();
1776           }
1777 
1778       /* FIXME: The branch prediction seems broken. It has only 20% hitrate.  */
1779       if (!overall_overflow)
1780         predict_edge (then_edge, PRED_LOOP_IV_COMPARE, probability);
1781 
1782       return;
1783     }
1784 
1785   if (expr_coherent_p (loop_bound_var, compare_var))
1786     {
1787       if ((loop_bound_code == LT_EXPR || loop_bound_code == LE_EXPR)
1788             && (compare_code == LT_EXPR || compare_code == LE_EXPR))
1789           predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, TAKEN);
1790       else if ((loop_bound_code == GT_EXPR || loop_bound_code == GE_EXPR)
1791                  && (compare_code == GT_EXPR || compare_code == GE_EXPR))
1792           predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, TAKEN);
1793       else if (loop_bound_code == NE_EXPR)
1794           {
1795             /* If the loop backedge condition is "(i != bound)", we do
1796                the comparison based on the step of IV:
1797                * step < 0 : backedge condition is like (i > bound)
1798                * step > 0 : backedge condition is like (i < bound)  */
1799             gcc_assert (loop_bound_step != 0);
1800             if (loop_bound_step > 0
1801                 && (compare_code == LT_EXPR
1802                       || compare_code == LE_EXPR))
1803               predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, TAKEN);
1804             else if (loop_bound_step < 0
1805                        && (compare_code == GT_EXPR
1806                            || compare_code == GE_EXPR))
1807               predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, TAKEN);
1808             else
1809               predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, NOT_TAKEN);
1810           }
1811       else
1812           /* The branch is predicted not-taken if loop_bound_code is
1813              opposite with compare_code.  */
1814           predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, NOT_TAKEN);
1815     }
1816   else if (expr_coherent_p (loop_iv_base_var, compare_var))
1817     {
1818       /* For cases like:
1819              for (i = s; i < h; i++)
1820                if (i > s + 2) ....
1821            The branch should be predicted taken.  */
1822       if (loop_bound_step > 0
1823             && (compare_code == GT_EXPR || compare_code == GE_EXPR))
1824           predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, TAKEN);
1825       else if (loop_bound_step < 0
1826                  && (compare_code == LT_EXPR || compare_code == LE_EXPR))
1827           predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, TAKEN);
1828       else
1829           predict_edge_def (then_edge, PRED_LOOP_IV_COMPARE_GUESS, NOT_TAKEN);
1830     }
1831 }
1832 
1833 /* Predict for extra loop exits that will lead to EXIT_EDGE. The extra loop
1834    exits are resulted from short-circuit conditions that will generate an
1835    if_tmp. E.g.:
1836 
1837    if (foo() || global > 10)
1838      break;
1839 
1840    This will be translated into:
1841 
1842    BB3:
1843      loop header...
1844    BB4:
1845      if foo() goto BB6 else goto BB5
1846    BB5:
1847      if global > 10 goto BB6 else goto BB7
1848    BB6:
1849      goto BB7
1850    BB7:
1851      iftmp = (PHI 0(BB5), 1(BB6))
1852      if iftmp == 1 goto BB8 else goto BB3
1853    BB8:
1854      outside of the loop...
1855 
1856    The edge BB7->BB8 is loop exit because BB8 is outside of the loop.
1857    From the dataflow, we can infer that BB4->BB6 and BB5->BB6 are also loop
1858    exits. This function takes BB7->BB8 as input, and finds out the extra loop
1859    exits to predict them using PRED_LOOP_EXTRA_EXIT.  */
1860 
1861 static void
predict_extra_loop_exits(class loop * loop,edge exit_edge)1862 predict_extra_loop_exits (class loop *loop, edge exit_edge)
1863 {
1864   unsigned i;
1865   bool check_value_one;
1866   gimple *lhs_def_stmt;
1867   gphi *phi_stmt;
1868   tree cmp_rhs, cmp_lhs;
1869   gimple *last;
1870   gcond *cmp_stmt;
1871 
1872   last = last_stmt (exit_edge->src);
1873   if (!last)
1874     return;
1875   cmp_stmt = dyn_cast <gcond *> (last);
1876   if (!cmp_stmt)
1877     return;
1878 
1879   cmp_rhs = gimple_cond_rhs (cmp_stmt);
1880   cmp_lhs = gimple_cond_lhs (cmp_stmt);
1881   if (!TREE_CONSTANT (cmp_rhs)
1882       || !(integer_zerop (cmp_rhs) || integer_onep (cmp_rhs)))
1883     return;
1884   if (TREE_CODE (cmp_lhs) != SSA_NAME)
1885     return;
1886 
1887   /* If check_value_one is true, only the phi_args with value '1' will lead
1888      to loop exit. Otherwise, only the phi_args with value '0' will lead to
1889      loop exit.  */
1890   check_value_one = (((integer_onep (cmp_rhs))
1891                         ^ (gimple_cond_code (cmp_stmt) == EQ_EXPR))
1892                         ^ ((exit_edge->flags & EDGE_TRUE_VALUE) != 0));
1893 
1894   lhs_def_stmt = SSA_NAME_DEF_STMT (cmp_lhs);
1895   if (!lhs_def_stmt)
1896     return;
1897 
1898   phi_stmt = dyn_cast <gphi *> (lhs_def_stmt);
1899   if (!phi_stmt)
1900     return;
1901 
1902   for (i = 0; i < gimple_phi_num_args (phi_stmt); i++)
1903     {
1904       edge e1;
1905       edge_iterator ei;
1906       tree val = gimple_phi_arg_def (phi_stmt, i);
1907       edge e = gimple_phi_arg_edge (phi_stmt, i);
1908 
1909       if (!TREE_CONSTANT (val) || !(integer_zerop (val) || integer_onep (val)))
1910           continue;
1911       if ((check_value_one ^ integer_onep (val)) == 1)
1912           continue;
1913       if (EDGE_COUNT (e->src->succs) != 1)
1914           {
1915             predict_paths_leading_to_edge (e, PRED_LOOP_EXTRA_EXIT, NOT_TAKEN,
1916                                                    loop);
1917             continue;
1918           }
1919 
1920       FOR_EACH_EDGE (e1, ei, e->src->preds)
1921           predict_paths_leading_to_edge (e1, PRED_LOOP_EXTRA_EXIT, NOT_TAKEN,
1922                                                loop);
1923     }
1924 }
1925 
1926 
1927 /* Predict edge probabilities by exploiting loop structure.  */
1928 
1929 static void
predict_loops(void)1930 predict_loops (void)
1931 {
1932   basic_block bb;
1933   hash_set <class loop *> with_recursion(10);
1934 
1935   FOR_EACH_BB_FN (bb, cfun)
1936     {
1937       gimple_stmt_iterator gsi;
1938       tree decl;
1939 
1940       for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
1941           if (is_gimple_call (gsi_stmt (gsi))
1942               && (decl = gimple_call_fndecl (gsi_stmt (gsi))) != NULL
1943               && recursive_call_p (current_function_decl, decl))
1944             {
1945               class loop *loop = bb->loop_father;
1946               while (loop && !with_recursion.add (loop))
1947                 loop = loop_outer (loop);
1948             }
1949     }
1950 
1951   /* Try to predict out blocks in a loop that are not part of a
1952      natural loop.  */
1953   for (auto loop : loops_list (cfun, LI_FROM_INNERMOST))
1954     {
1955       basic_block bb, *bbs;
1956       unsigned j, n_exits = 0;
1957       class tree_niter_desc niter_desc;
1958       edge ex;
1959       class nb_iter_bound *nb_iter;
1960       enum tree_code loop_bound_code = ERROR_MARK;
1961       tree loop_bound_step = NULL;
1962       tree loop_bound_var = NULL;
1963       tree loop_iv_base = NULL;
1964       gcond *stmt = NULL;
1965       bool recursion = with_recursion.contains (loop);
1966 
1967       auto_vec<edge> exits = get_loop_exit_edges (loop);
1968       FOR_EACH_VEC_ELT (exits, j, ex)
1969           if (!unlikely_executed_edge_p (ex) && !(ex->flags & EDGE_ABNORMAL_CALL))
1970             n_exits ++;
1971       if (!n_exits)
1972           continue;
1973 
1974       if (dump_file && (dump_flags & TDF_DETAILS))
1975           fprintf (dump_file, "Predicting loop %i%s with %i exits.\n",
1976                      loop->num, recursion ? " (with recursion)":"", n_exits);
1977       if (dump_file && (dump_flags & TDF_DETAILS)
1978             && max_loop_iterations_int (loop) >= 0)
1979           {
1980             fprintf (dump_file,
1981                        "Loop %d iterates at most %i times.\n", loop->num,
1982                        (int)max_loop_iterations_int (loop));
1983           }
1984       if (dump_file && (dump_flags & TDF_DETAILS)
1985             && likely_max_loop_iterations_int (loop) >= 0)
1986           {
1987             fprintf (dump_file, "Loop %d likely iterates at most %i times.\n",
1988                        loop->num, (int)likely_max_loop_iterations_int (loop));
1989           }
1990 
1991       FOR_EACH_VEC_ELT (exits, j, ex)
1992           {
1993             tree niter = NULL;
1994             HOST_WIDE_INT nitercst;
1995             int max = param_max_predicted_iterations;
1996             int probability;
1997             enum br_predictor predictor;
1998             widest_int nit;
1999 
2000             if (unlikely_executed_edge_p (ex)
2001                 || (ex->flags & EDGE_ABNORMAL_CALL))
2002               continue;
2003             /* Loop heuristics do not expect exit conditional to be inside
2004                inner loop.  We predict from innermost to outermost loop.  */
2005             if (predicted_by_loop_heuristics_p (ex->src))
2006               {
2007                 if (dump_file && (dump_flags & TDF_DETAILS))
2008                     fprintf (dump_file, "Skipping exit %i->%i because "
2009                                "it is already predicted.\n",
2010                                ex->src->index, ex->dest->index);
2011                 continue;
2012               }
2013             predict_extra_loop_exits (loop, ex);
2014 
2015             if (number_of_iterations_exit (loop, ex, &niter_desc, false, false))
2016               niter = niter_desc.niter;
2017             if (!niter || TREE_CODE (niter_desc.niter) != INTEGER_CST)
2018               niter = loop_niter_by_eval (loop, ex);
2019             if (dump_file && (dump_flags & TDF_DETAILS)
2020                 && TREE_CODE (niter) == INTEGER_CST)
2021               {
2022                 fprintf (dump_file, "Exit %i->%i %d iterates ",
2023                            ex->src->index, ex->dest->index,
2024                            loop->num);
2025                 print_generic_expr (dump_file, niter, TDF_SLIM);
2026                 fprintf (dump_file, " times.\n");
2027               }
2028 
2029             if (TREE_CODE (niter) == INTEGER_CST)
2030               {
2031                 if (tree_fits_uhwi_p (niter)
2032                       && max
2033                       && compare_tree_int (niter, max - 1) == -1)
2034                     nitercst = tree_to_uhwi (niter) + 1;
2035                 else
2036                     nitercst = max;
2037                 predictor = PRED_LOOP_ITERATIONS;
2038               }
2039             /* If we have just one exit and we can derive some information about
2040                the number of iterations of the loop from the statements inside
2041                the loop, use it to predict this exit.  */
2042             else if (n_exits == 1
2043                        && estimated_stmt_executions (loop, &nit))
2044               {
2045                 if (wi::gtu_p (nit, max))
2046                     nitercst = max;
2047                 else
2048                     nitercst = nit.to_shwi ();
2049                 predictor = PRED_LOOP_ITERATIONS_GUESSED;
2050               }
2051             /* If we have likely upper bound, trust it for very small iteration
2052                counts.  Such loops would otherwise get mispredicted by standard
2053                LOOP_EXIT heuristics.  */
2054             else if (n_exits == 1
2055                        && likely_max_stmt_executions (loop, &nit)
2056                        && wi::ltu_p (nit,
2057                                          RDIV (REG_BR_PROB_BASE,
2058                                                REG_BR_PROB_BASE
2059                                                    - predictor_info
2060                                                              [recursion
2061                                                               ? PRED_LOOP_EXIT_WITH_RECURSION
2062                                                               : PRED_LOOP_EXIT].hitrate)))
2063               {
2064                 nitercst = nit.to_shwi ();
2065                 predictor = PRED_LOOP_ITERATIONS_MAX;
2066               }
2067             else
2068               {
2069                 if (dump_file && (dump_flags & TDF_DETAILS))
2070                     fprintf (dump_file, "Nothing known about exit %i->%i.\n",
2071                                ex->src->index, ex->dest->index);
2072                 continue;
2073               }
2074 
2075             if (dump_file && (dump_flags & TDF_DETAILS))
2076               fprintf (dump_file, "Recording prediction to %i iterations by %s.\n",
2077                          (int)nitercst, predictor_info[predictor].name);
2078             /* If the prediction for number of iterations is zero, do not
2079                predict the exit edges.  */
2080             if (nitercst == 0)
2081               continue;
2082 
2083             probability = RDIV (REG_BR_PROB_BASE, nitercst);
2084             predict_edge (ex, predictor, probability);
2085           }
2086 
2087       /* Find information about loop bound variables.  */
2088       for (nb_iter = loop->bounds; nb_iter;
2089              nb_iter = nb_iter->next)
2090           if (nb_iter->stmt
2091               && gimple_code (nb_iter->stmt) == GIMPLE_COND)
2092             {
2093               stmt = as_a <gcond *> (nb_iter->stmt);
2094               break;
2095             }
2096       if (!stmt && last_stmt (loop->header)
2097             && gimple_code (last_stmt (loop->header)) == GIMPLE_COND)
2098           stmt = as_a <gcond *> (last_stmt (loop->header));
2099       if (stmt)
2100           is_comparison_with_loop_invariant_p (stmt, loop,
2101                                                        &loop_bound_var,
2102                                                        &loop_bound_code,
2103                                                        &loop_bound_step,
2104                                                        &loop_iv_base);
2105 
2106       bbs = get_loop_body (loop);
2107 
2108       for (j = 0; j < loop->num_nodes; j++)
2109           {
2110             edge e;
2111             edge_iterator ei;
2112 
2113             bb = bbs[j];
2114 
2115             /* Bypass loop heuristics on continue statement.  These
2116                statements construct loops via "non-loop" constructs
2117                in the source language and are better to be handled
2118                separately.  */
2119             if (predicted_by_p (bb, PRED_CONTINUE))
2120               {
2121                 if (dump_file && (dump_flags & TDF_DETAILS))
2122                     fprintf (dump_file, "BB %i predicted by continue.\n",
2123                                bb->index);
2124                 continue;
2125               }
2126 
2127             /* If we already used more reliable loop exit predictors, do not
2128                bother with PRED_LOOP_EXIT.  */
2129             if (!predicted_by_loop_heuristics_p (bb))
2130               {
2131                 /* For loop with many exits we don't want to predict all exits
2132                    with the pretty large probability, because if all exits are
2133                      considered in row, the loop would be predicted to iterate
2134                      almost never.  The code to divide probability by number of
2135                      exits is very rough.  It should compute the number of exits
2136                      taken in each patch through function (not the overall number
2137                      of exits that might be a lot higher for loops with wide switch
2138                      statements in them) and compute n-th square root.
2139 
2140                      We limit the minimal probability by 2% to avoid
2141                      EDGE_PROBABILITY_RELIABLE from trusting the branch prediction
2142                      as this was causing regression in perl benchmark containing such
2143                      a wide loop.  */
2144 
2145                 int probability = ((REG_BR_PROB_BASE
2146                                       - predictor_info
2147                                              [recursion
2148                                               ? PRED_LOOP_EXIT_WITH_RECURSION
2149                                               : PRED_LOOP_EXIT].hitrate)
2150                                          / n_exits);
2151                 if (probability < HITRATE (2))
2152                     probability = HITRATE (2);
2153                 FOR_EACH_EDGE (e, ei, bb->succs)
2154                     if (e->dest->index < NUM_FIXED_BLOCKS
2155                         || !flow_bb_inside_loop_p (loop, e->dest))
2156                       {
2157                         if (dump_file && (dump_flags & TDF_DETAILS))
2158                           fprintf (dump_file,
2159                                      "Predicting exit %i->%i with prob %i.\n",
2160                                      e->src->index, e->dest->index, probability);
2161                         predict_edge (e,
2162                                           recursion ? PRED_LOOP_EXIT_WITH_RECURSION
2163                                         : PRED_LOOP_EXIT, probability);
2164                       }
2165               }
2166             if (loop_bound_var)
2167               predict_iv_comparison (loop, bb, loop_bound_var, loop_iv_base,
2168                                            loop_bound_code,
2169                                            tree_to_shwi (loop_bound_step));
2170           }
2171 
2172       /* In the following code
2173            for (loop1)
2174              if (cond)
2175                for (loop2)
2176                  body;
2177            guess that cond is unlikely.  */
2178       if (loop_outer (loop)->num)
2179           {
2180             basic_block bb = NULL;
2181             edge preheader_edge = loop_preheader_edge (loop);
2182 
2183             if (single_pred_p (preheader_edge->src)
2184                 && single_succ_p (preheader_edge->src))
2185               preheader_edge = single_pred_edge (preheader_edge->src);
2186 
2187             gimple *stmt = last_stmt (preheader_edge->src);
2188             /* Pattern match fortran loop preheader:
2189                _16 = BUILTIN_EXPECT (_15, 1, PRED_FORTRAN_LOOP_PREHEADER);
2190                _17 = (logical(kind=4)) _16;
2191                if (_17 != 0)
2192                  goto <bb 11>;
2193                else
2194                  goto <bb 13>;
2195 
2196                Loop guard branch prediction says nothing about duplicated loop
2197                headers produced by fortran frontend and in this case we want
2198                to predict paths leading to this preheader.  */
2199 
2200             if (stmt
2201                 && gimple_code (stmt) == GIMPLE_COND
2202                 && gimple_cond_code (stmt) == NE_EXPR
2203                 && TREE_CODE (gimple_cond_lhs (stmt)) == SSA_NAME
2204                 && integer_zerop (gimple_cond_rhs (stmt)))
2205                {
2206                  gimple *call_stmt = SSA_NAME_DEF_STMT (gimple_cond_lhs (stmt));
2207                  if (gimple_code (call_stmt) == GIMPLE_ASSIGN
2208                        && CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (call_stmt))
2209                        && TREE_CODE (gimple_assign_rhs1 (call_stmt)) == SSA_NAME)
2210                      call_stmt = SSA_NAME_DEF_STMT (gimple_assign_rhs1 (call_stmt));
2211                  if (gimple_call_internal_p (call_stmt, IFN_BUILTIN_EXPECT)
2212                        && TREE_CODE (gimple_call_arg (call_stmt, 2)) == INTEGER_CST
2213                        && tree_fits_uhwi_p (gimple_call_arg (call_stmt, 2))
2214                        && tree_to_uhwi (gimple_call_arg (call_stmt, 2))
2215                               == PRED_FORTRAN_LOOP_PREHEADER)
2216                      bb = preheader_edge->src;
2217                }
2218             if (!bb)
2219               {
2220                 if (!dominated_by_p (CDI_DOMINATORS,
2221                                            loop_outer (loop)->latch, loop->header))
2222                     predict_paths_leading_to_edge (loop_preheader_edge (loop),
2223                                                          recursion
2224                                                          ? PRED_LOOP_GUARD_WITH_RECURSION
2225                                                          : PRED_LOOP_GUARD,
2226                                                          NOT_TAKEN,
2227                                                          loop_outer (loop));
2228               }
2229             else
2230               {
2231                 if (!dominated_by_p (CDI_DOMINATORS,
2232                                            loop_outer (loop)->latch, bb))
2233                     predict_paths_leading_to (bb,
2234                                                     recursion
2235                                                     ? PRED_LOOP_GUARD_WITH_RECURSION
2236                                                     : PRED_LOOP_GUARD,
2237                                                     NOT_TAKEN,
2238                                                     loop_outer (loop));
2239               }
2240           }
2241 
2242       /* Free basic blocks from get_loop_body.  */
2243       free (bbs);
2244     }
2245 }
2246 
2247 /* Attempt to predict probabilities of BB outgoing edges using local
2248    properties.  */
2249 static void
bb_estimate_probability_locally(basic_block bb)2250 bb_estimate_probability_locally (basic_block bb)
2251 {
2252   rtx_insn *last_insn = BB_END (bb);
2253   rtx cond;
2254 
2255   if (! can_predict_insn_p (last_insn))
2256     return;
2257   cond = get_condition (last_insn, NULL, false, false);
2258   if (! cond)
2259     return;
2260 
2261   /* Try "pointer heuristic."
2262      A comparison ptr == 0 is predicted as false.
2263      Similarly, a comparison ptr1 == ptr2 is predicted as false.  */
2264   if (COMPARISON_P (cond)
2265       && ((REG_P (XEXP (cond, 0)) && REG_POINTER (XEXP (cond, 0)))
2266             || (REG_P (XEXP (cond, 1)) && REG_POINTER (XEXP (cond, 1)))))
2267     {
2268       if (GET_CODE (cond) == EQ)
2269           predict_insn_def (last_insn, PRED_POINTER, NOT_TAKEN);
2270       else if (GET_CODE (cond) == NE)
2271           predict_insn_def (last_insn, PRED_POINTER, TAKEN);
2272     }
2273   else
2274 
2275   /* Try "opcode heuristic."
2276      EQ tests are usually false and NE tests are usually true. Also,
2277      most quantities are positive, so we can make the appropriate guesses
2278      about signed comparisons against zero.  */
2279     switch (GET_CODE (cond))
2280       {
2281       case CONST_INT:
2282           /* Unconditional branch.  */
2283           predict_insn_def (last_insn, PRED_UNCONDITIONAL,
2284                                 cond == const0_rtx ? NOT_TAKEN : TAKEN);
2285           break;
2286 
2287       case EQ:
2288       case UNEQ:
2289           /* Floating point comparisons appears to behave in a very
2290              unpredictable way because of special role of = tests in
2291              FP code.  */
2292           if (FLOAT_MODE_P (GET_MODE (XEXP (cond, 0))))
2293             ;
2294           /* Comparisons with 0 are often used for booleans and there is
2295              nothing useful to predict about them.  */
2296           else if (XEXP (cond, 1) == const0_rtx
2297                      || XEXP (cond, 0) == const0_rtx)
2298             ;
2299           else
2300             predict_insn_def (last_insn, PRED_OPCODE_NONEQUAL, NOT_TAKEN);
2301           break;
2302 
2303       case NE:
2304       case LTGT:
2305           /* Floating point comparisons appears to behave in a very
2306              unpredictable way because of special role of = tests in
2307              FP code.  */
2308           if (FLOAT_MODE_P (GET_MODE (XEXP (cond, 0))))
2309             ;
2310           /* Comparisons with 0 are often used for booleans and there is
2311              nothing useful to predict about them.  */
2312           else if (XEXP (cond, 1) == const0_rtx
2313                      || XEXP (cond, 0) == const0_rtx)
2314             ;
2315           else
2316             predict_insn_def (last_insn, PRED_OPCODE_NONEQUAL, TAKEN);
2317           break;
2318 
2319       case ORDERED:
2320           predict_insn_def (last_insn, PRED_FPOPCODE, TAKEN);
2321           break;
2322 
2323       case UNORDERED:
2324           predict_insn_def (last_insn, PRED_FPOPCODE, NOT_TAKEN);
2325           break;
2326 
2327       case LE:
2328       case LT:
2329           if (XEXP (cond, 1) == const0_rtx || XEXP (cond, 1) == const1_rtx
2330               || XEXP (cond, 1) == constm1_rtx)
2331             predict_insn_def (last_insn, PRED_OPCODE_POSITIVE, NOT_TAKEN);
2332           break;
2333 
2334       case GE:
2335       case GT:
2336           if (XEXP (cond, 1) == const0_rtx || XEXP (cond, 1) == const1_rtx
2337               || XEXP (cond, 1) == constm1_rtx)
2338             predict_insn_def (last_insn, PRED_OPCODE_POSITIVE, TAKEN);
2339           break;
2340 
2341       default:
2342           break;
2343       }
2344 }
2345 
2346 /* Set edge->probability for each successor edge of BB.  */
2347 void
guess_outgoing_edge_probabilities(basic_block bb)2348 guess_outgoing_edge_probabilities (basic_block bb)
2349 {
2350   bb_estimate_probability_locally (bb);
2351   combine_predictions_for_insn (BB_END (bb), bb);
2352 }
2353 
2354 static tree expr_expected_value (tree, bitmap, enum br_predictor *predictor,
2355                                          HOST_WIDE_INT *probability);
2356 
2357 /* Helper function for expr_expected_value.  */
2358 
2359 static tree
expr_expected_value_1(tree type,tree op0,enum tree_code code,tree op1,bitmap visited,enum br_predictor * predictor,HOST_WIDE_INT * probability)2360 expr_expected_value_1 (tree type, tree op0, enum tree_code code,
2361                            tree op1, bitmap visited, enum br_predictor *predictor,
2362                            HOST_WIDE_INT *probability)
2363 {
2364   gimple *def;
2365 
2366   /* Reset returned probability value.  */
2367   *probability = -1;
2368   *predictor = PRED_UNCONDITIONAL;
2369 
2370   if (get_gimple_rhs_class (code) == GIMPLE_SINGLE_RHS)
2371     {
2372       if (TREE_CONSTANT (op0))
2373           return op0;
2374 
2375       if (code == IMAGPART_EXPR)
2376           {
2377             if (TREE_CODE (TREE_OPERAND (op0, 0)) == SSA_NAME)
2378               {
2379                 def = SSA_NAME_DEF_STMT (TREE_OPERAND (op0, 0));
2380                 if (is_gimple_call (def)
2381                       && gimple_call_internal_p (def)
2382                       && (gimple_call_internal_fn (def)
2383                           == IFN_ATOMIC_COMPARE_EXCHANGE))
2384                     {
2385                       /* Assume that any given atomic operation has low contention,
2386                          and thus the compare-and-swap operation succeeds.  */
2387                       *predictor = PRED_COMPARE_AND_SWAP;
2388                       return build_one_cst (TREE_TYPE (op0));
2389                     }
2390               }
2391           }
2392 
2393       if (code != SSA_NAME)
2394           return NULL_TREE;
2395 
2396       def = SSA_NAME_DEF_STMT (op0);
2397 
2398       /* If we were already here, break the infinite cycle.  */
2399       if (!bitmap_set_bit (visited, SSA_NAME_VERSION (op0)))
2400           return NULL;
2401 
2402       if (gimple_code (def) == GIMPLE_PHI)
2403           {
2404             /* All the arguments of the PHI node must have the same constant
2405                length.  */
2406             int i, n = gimple_phi_num_args (def);
2407             tree val = NULL, new_val;
2408 
2409             for (i = 0; i < n; i++)
2410               {
2411                 tree arg = PHI_ARG_DEF (def, i);
2412                 enum br_predictor predictor2;
2413 
2414                 /* If this PHI has itself as an argument, we cannot
2415                      determine the string length of this argument.  However,
2416                      if we can find an expected constant value for the other
2417                      PHI args then we can still be sure that this is
2418                      likely a constant.  So be optimistic and just
2419                      continue with the next argument.  */
2420                 if (arg == PHI_RESULT (def))
2421                     continue;
2422 
2423                 HOST_WIDE_INT probability2;
2424                 new_val = expr_expected_value (arg, visited, &predictor2,
2425                                                        &probability2);
2426 
2427                 /* It is difficult to combine value predictors.  Simply assume
2428                      that later predictor is weaker and take its prediction.  */
2429                 if (*predictor < predictor2)
2430                     {
2431                       *predictor = predictor2;
2432                       *probability = probability2;
2433                     }
2434                 if (!new_val)
2435                     return NULL;
2436                 if (!val)
2437                     val = new_val;
2438                 else if (!operand_equal_p (val, new_val, false))
2439                     return NULL;
2440               }
2441             return val;
2442           }
2443       if (is_gimple_assign (def))
2444           {
2445             if (gimple_assign_lhs (def) != op0)
2446               return NULL;
2447 
2448             return expr_expected_value_1 (TREE_TYPE (gimple_assign_lhs (def)),
2449                                                   gimple_assign_rhs1 (def),
2450                                                   gimple_assign_rhs_code (def),
2451                                                   gimple_assign_rhs2 (def),
2452                                                   visited, predictor, probability);
2453           }
2454 
2455       if (is_gimple_call (def))
2456           {
2457             tree decl = gimple_call_fndecl (def);
2458             if (!decl)
2459               {
2460                 if (gimple_call_internal_p (def)
2461                       && gimple_call_internal_fn (def) == IFN_BUILTIN_EXPECT)
2462                     {
2463                       gcc_assert (gimple_call_num_args (def) == 3);
2464                       tree val = gimple_call_arg (def, 0);
2465                       if (TREE_CONSTANT (val))
2466                         return val;
2467                       tree val2 = gimple_call_arg (def, 2);
2468                       gcc_assert (TREE_CODE (val2) == INTEGER_CST
2469                                     && tree_fits_uhwi_p (val2)
2470                                     && tree_to_uhwi (val2) < END_PREDICTORS);
2471                       *predictor = (enum br_predictor) tree_to_uhwi (val2);
2472                       if (*predictor == PRED_BUILTIN_EXPECT)
2473                         *probability
2474                           = HITRATE (param_builtin_expect_probability);
2475                       return gimple_call_arg (def, 1);
2476                     }
2477                 return NULL;
2478               }
2479 
2480             if (DECL_IS_MALLOC (decl) || DECL_IS_OPERATOR_NEW_P (decl))
2481               {
2482                 if (predictor)
2483                     *predictor = PRED_MALLOC_NONNULL;
2484                 return boolean_true_node;
2485               }
2486 
2487             if (DECL_BUILT_IN_CLASS (decl) == BUILT_IN_NORMAL)
2488               switch (DECL_FUNCTION_CODE (decl))
2489                 {
2490                 case BUILT_IN_EXPECT:
2491                     {
2492                       tree val;
2493                       if (gimple_call_num_args (def) != 2)
2494                         return NULL;
2495                       val = gimple_call_arg (def, 0);
2496                       if (TREE_CONSTANT (val))
2497                         return val;
2498                       *predictor = PRED_BUILTIN_EXPECT;
2499                       *probability
2500                         = HITRATE (param_builtin_expect_probability);
2501                       return gimple_call_arg (def, 1);
2502                     }
2503                 case BUILT_IN_EXPECT_WITH_PROBABILITY:
2504                     {
2505                       tree val;
2506                       if (gimple_call_num_args (def) != 3)
2507                         return NULL;
2508                       val = gimple_call_arg (def, 0);
2509                       if (TREE_CONSTANT (val))
2510                         return val;
2511                       /* Compute final probability as:
2512                          probability * REG_BR_PROB_BASE.  */
2513                       tree prob = gimple_call_arg (def, 2);
2514                       tree t = TREE_TYPE (prob);
2515                       tree base = build_int_cst (integer_type_node,
2516                                                        REG_BR_PROB_BASE);
2517                       base = build_real_from_int_cst (t, base);
2518                       tree r = fold_build2_initializer_loc (UNKNOWN_LOCATION,
2519                                                                       MULT_EXPR, t, prob, base);
2520                       if (TREE_CODE (r) != REAL_CST)
2521                         {
2522                           error_at (gimple_location (def),
2523                                         "probability %qE must be "
2524                                         "constant floating-point expression", prob);
2525                           return NULL;
2526                         }
2527                       HOST_WIDE_INT probi
2528                         = real_to_integer (TREE_REAL_CST_PTR (r));
2529                       if (probi >= 0 && probi <= REG_BR_PROB_BASE)
2530                         {
2531                           *predictor = PRED_BUILTIN_EXPECT_WITH_PROBABILITY;
2532                           *probability = probi;
2533                         }
2534                       else
2535                         error_at (gimple_location (def),
2536                                     "probability %qE is outside "
2537                                     "the range [0.0, 1.0]", prob);
2538 
2539                       return gimple_call_arg (def, 1);
2540                     }
2541 
2542                 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_N:
2543                 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_1:
2544                 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_2:
2545                 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_4:
2546                 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_8:
2547                 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_16:
2548                 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE:
2549                 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_N:
2550                 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_1:
2551                 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_2:
2552                 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_4:
2553                 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_8:
2554                 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_16:
2555                     /* Assume that any given atomic operation has low contention,
2556                        and thus the compare-and-swap operation succeeds.  */
2557                     *predictor = PRED_COMPARE_AND_SWAP;
2558                     return boolean_true_node;
2559                 case BUILT_IN_REALLOC:
2560                     if (predictor)
2561                       *predictor = PRED_MALLOC_NONNULL;
2562                     return boolean_true_node;
2563                 default:
2564                     break;
2565               }
2566           }
2567 
2568       return NULL;
2569     }
2570 
2571   if (get_gimple_rhs_class (code) == GIMPLE_BINARY_RHS)
2572     {
2573       tree res;
2574       enum br_predictor predictor2;
2575       HOST_WIDE_INT probability2;
2576       op0 = expr_expected_value (op0, visited, predictor, probability);
2577       if (!op0)
2578           return NULL;
2579       op1 = expr_expected_value (op1, visited, &predictor2, &probability2);
2580       if (!op1)
2581           return NULL;
2582       res = fold_build2 (code, type, op0, op1);
2583       if (TREE_CODE (res) == INTEGER_CST
2584             && TREE_CODE (op0) == INTEGER_CST
2585             && TREE_CODE (op1) == INTEGER_CST)
2586           {
2587             /* Combine binary predictions.  */
2588             if (*probability != -1 || probability2 != -1)
2589               {
2590                 HOST_WIDE_INT p1 = get_predictor_value (*predictor, *probability);
2591                 HOST_WIDE_INT p2 = get_predictor_value (predictor2, probability2);
2592                 *probability = RDIV (p1 * p2, REG_BR_PROB_BASE);
2593               }
2594 
2595             if (*predictor < predictor2)
2596               *predictor = predictor2;
2597 
2598             return res;
2599           }
2600       return NULL;
2601     }
2602   if (get_gimple_rhs_class (code) == GIMPLE_UNARY_RHS)
2603     {
2604       tree res;
2605       op0 = expr_expected_value (op0, visited, predictor, probability);
2606       if (!op0)
2607           return NULL;
2608       res = fold_build1 (code, type, op0);
2609       if (TREE_CONSTANT (res))
2610           return res;
2611       return NULL;
2612     }
2613   return NULL;
2614 }
2615 
2616 /* Return constant EXPR will likely have at execution time, NULL if unknown.
2617    The function is used by builtin_expect branch predictor so the evidence
2618    must come from this construct and additional possible constant folding.
2619 
2620    We may want to implement more involved value guess (such as value range
2621    propagation based prediction), but such tricks shall go to new
2622    implementation.  */
2623 
2624 static tree
expr_expected_value(tree expr,bitmap visited,enum br_predictor * predictor,HOST_WIDE_INT * probability)2625 expr_expected_value (tree expr, bitmap visited,
2626                          enum br_predictor *predictor,
2627                          HOST_WIDE_INT *probability)
2628 {
2629   enum tree_code code;
2630   tree op0, op1;
2631 
2632   if (TREE_CONSTANT (expr))
2633     {
2634       *predictor = PRED_UNCONDITIONAL;
2635       *probability = -1;
2636       return expr;
2637     }
2638 
2639   extract_ops_from_tree (expr, &code, &op0, &op1);
2640   return expr_expected_value_1 (TREE_TYPE (expr),
2641                                         op0, code, op1, visited, predictor,
2642                                         probability);
2643 }
2644 
2645 
2646 /* Return probability of a PREDICTOR.  If the predictor has variable
2647    probability return passed PROBABILITY.  */
2648 
2649 static HOST_WIDE_INT
get_predictor_value(br_predictor predictor,HOST_WIDE_INT probability)2650 get_predictor_value (br_predictor predictor, HOST_WIDE_INT probability)
2651 {
2652   switch (predictor)
2653     {
2654     case PRED_BUILTIN_EXPECT:
2655     case PRED_BUILTIN_EXPECT_WITH_PROBABILITY:
2656       gcc_assert (probability != -1);
2657       return probability;
2658     default:
2659       gcc_assert (probability == -1);
2660       return predictor_info[(int) predictor].hitrate;
2661     }
2662 }
2663 
2664 /* Predict using opcode of the last statement in basic block.  */
2665 static void
tree_predict_by_opcode(basic_block bb)2666 tree_predict_by_opcode (basic_block bb)
2667 {
2668   gimple *stmt = last_stmt (bb);
2669   edge then_edge;
2670   tree op0, op1;
2671   tree type;
2672   tree val;
2673   enum tree_code cmp;
2674   edge_iterator ei;
2675   enum br_predictor predictor;
2676   HOST_WIDE_INT probability;
2677 
2678   if (!stmt)
2679     return;
2680 
2681   if (gswitch *sw = dyn_cast <gswitch *> (stmt))
2682     {
2683       tree index = gimple_switch_index (sw);
2684       tree val = expr_expected_value (index, auto_bitmap (),
2685                                               &predictor, &probability);
2686       if (val && TREE_CODE (val) == INTEGER_CST)
2687           {
2688             edge e = find_taken_edge_switch_expr (sw, val);
2689             if (predictor == PRED_BUILTIN_EXPECT)
2690               {
2691                 int percent = param_builtin_expect_probability;
2692                 gcc_assert (percent >= 0 && percent <= 100);
2693                 predict_edge (e, PRED_BUILTIN_EXPECT,
2694                                   HITRATE (percent));
2695               }
2696             else
2697               predict_edge_def (e, predictor, TAKEN);
2698           }
2699     }
2700 
2701   if (gimple_code (stmt) != GIMPLE_COND)
2702     return;
2703   FOR_EACH_EDGE (then_edge, ei, bb->succs)
2704     if (then_edge->flags & EDGE_TRUE_VALUE)
2705       break;
2706   op0 = gimple_cond_lhs (stmt);
2707   op1 = gimple_cond_rhs (stmt);
2708   cmp = gimple_cond_code (stmt);
2709   type = TREE_TYPE (op0);
2710   val = expr_expected_value_1 (boolean_type_node, op0, cmp, op1, auto_bitmap (),
2711                                      &predictor, &probability);
2712   if (val && TREE_CODE (val) == INTEGER_CST)
2713     {
2714       HOST_WIDE_INT prob = get_predictor_value (predictor, probability);
2715       if (integer_zerop (val))
2716           prob = REG_BR_PROB_BASE - prob;
2717       predict_edge (then_edge, predictor, prob);
2718     }
2719   /* Try "pointer heuristic."
2720      A comparison ptr == 0 is predicted as false.
2721      Similarly, a comparison ptr1 == ptr2 is predicted as false.  */
2722   if (POINTER_TYPE_P (type))
2723     {
2724       if (cmp == EQ_EXPR)
2725           predict_edge_def (then_edge, PRED_TREE_POINTER, NOT_TAKEN);
2726       else if (cmp == NE_EXPR)
2727           predict_edge_def (then_edge, PRED_TREE_POINTER, TAKEN);
2728     }
2729   else
2730 
2731   /* Try "opcode heuristic."
2732      EQ tests are usually false and NE tests are usually true. Also,
2733      most quantities are positive, so we can make the appropriate guesses
2734      about signed comparisons against zero.  */
2735     switch (cmp)
2736       {
2737       case EQ_EXPR:
2738       case UNEQ_EXPR:
2739           /* Floating point comparisons appears to behave in a very
2740              unpredictable way because of special role of = tests in
2741              FP code.  */
2742           if (FLOAT_TYPE_P (type))
2743             ;
2744           /* Comparisons with 0 are often used for booleans and there is
2745              nothing useful to predict about them.  */
2746           else if (integer_zerop (op0) || integer_zerop (op1))
2747             ;
2748           else
2749             predict_edge_def (then_edge, PRED_TREE_OPCODE_NONEQUAL, NOT_TAKEN);
2750           break;
2751 
2752       case NE_EXPR:
2753       case LTGT_EXPR:
2754           /* Floating point comparisons appears to behave in a very
2755              unpredictable way because of special role of = tests in
2756              FP code.  */
2757           if (FLOAT_TYPE_P (type))
2758             ;
2759           /* Comparisons with 0 are often used for booleans and there is
2760              nothing useful to predict about them.  */
2761           else if (integer_zerop (op0)
2762                      || integer_zerop (op1))
2763             ;
2764           else
2765             predict_edge_def (then_edge, PRED_TREE_OPCODE_NONEQUAL, TAKEN);
2766           break;
2767 
2768       case ORDERED_EXPR:
2769           predict_edge_def (then_edge, PRED_TREE_FPOPCODE, TAKEN);
2770           break;
2771 
2772       case UNORDERED_EXPR:
2773           predict_edge_def (then_edge, PRED_TREE_FPOPCODE, NOT_TAKEN);
2774           break;
2775 
2776       case LE_EXPR:
2777       case LT_EXPR:
2778           if (integer_zerop (op1)
2779               || integer_onep (op1)
2780               || integer_all_onesp (op1)
2781               || real_zerop (op1)
2782               || real_onep (op1)
2783               || real_minus_onep (op1))
2784             predict_edge_def (then_edge, PRED_TREE_OPCODE_POSITIVE, NOT_TAKEN);
2785           break;
2786 
2787       case GE_EXPR:
2788       case GT_EXPR:
2789           if (integer_zerop (op1)
2790               || integer_onep (op1)
2791               || integer_all_onesp (op1)
2792               || real_zerop (op1)
2793               || real_onep (op1)
2794               || real_minus_onep (op1))
2795             predict_edge_def (then_edge, PRED_TREE_OPCODE_POSITIVE, TAKEN);
2796           break;
2797 
2798       default:
2799           break;
2800       }
2801 }
2802 
2803 /* Returns TRUE if the STMT is exit(0) like statement. */
2804 
2805 static bool
is_exit_with_zero_arg(const gimple * stmt)2806 is_exit_with_zero_arg (const gimple *stmt)
2807 {
2808   /* This is not exit, _exit or _Exit. */
2809   if (!gimple_call_builtin_p (stmt, BUILT_IN_EXIT)
2810       && !gimple_call_builtin_p (stmt, BUILT_IN__EXIT)
2811       && !gimple_call_builtin_p (stmt, BUILT_IN__EXIT2))
2812     return false;
2813 
2814   /* Argument is an interger zero. */
2815   return integer_zerop (gimple_call_arg (stmt, 0));
2816 }
2817 
2818 /* Try to guess whether the value of return means error code.  */
2819 
2820 static enum br_predictor
return_prediction(tree val,enum prediction * prediction)2821 return_prediction (tree val, enum prediction *prediction)
2822 {
2823   /* VOID.  */
2824   if (!val)
2825     return PRED_NO_PREDICTION;
2826   /* Different heuristics for pointers and scalars.  */
2827   if (POINTER_TYPE_P (TREE_TYPE (val)))
2828     {
2829       /* NULL is usually not returned.  */
2830       if (integer_zerop (val))
2831           {
2832             *prediction = NOT_TAKEN;
2833             return PRED_NULL_RETURN;
2834           }
2835     }
2836   else if (INTEGRAL_TYPE_P (TREE_TYPE (val)))
2837     {
2838       /* Negative return values are often used to indicate
2839          errors.  */
2840       if (TREE_CODE (val) == INTEGER_CST
2841             && tree_int_cst_sgn (val) < 0)
2842           {
2843             *prediction = NOT_TAKEN;
2844             return PRED_NEGATIVE_RETURN;
2845           }
2846       /* Constant return values seems to be commonly taken.
2847          Zero/one often represent booleans so exclude them from the
2848            heuristics.  */
2849       if (TREE_CONSTANT (val)
2850             && (!integer_zerop (val) && !integer_onep (val)))
2851           {
2852             *prediction = NOT_TAKEN;
2853             return PRED_CONST_RETURN;
2854           }
2855     }
2856   return PRED_NO_PREDICTION;
2857 }
2858 
2859 /* Return zero if phi result could have values other than -1, 0 or 1,
2860    otherwise return a bitmask, with bits 0, 1 and 2 set if -1, 0 and 1
2861    values are used or likely.  */
2862 
2863 static int
zero_one_minusone(gphi * phi,int limit)2864 zero_one_minusone (gphi *phi, int limit)
2865 {
2866   int phi_num_args = gimple_phi_num_args (phi);
2867   int ret = 0;
2868   for (int i = 0; i < phi_num_args; i++)
2869     {
2870       tree t = PHI_ARG_DEF (phi, i);
2871       if (TREE_CODE (t) != INTEGER_CST)
2872           continue;
2873       wide_int w = wi::to_wide (t);
2874       if (w == -1)
2875           ret |= 1;
2876       else if (w == 0)
2877           ret |= 2;
2878       else if (w == 1)
2879           ret |= 4;
2880       else
2881           return 0;
2882     }
2883   for (int i = 0; i < phi_num_args; i++)
2884     {
2885       tree t = PHI_ARG_DEF (phi, i);
2886       if (TREE_CODE (t) == INTEGER_CST)
2887           continue;
2888       if (TREE_CODE (t) != SSA_NAME)
2889           return 0;
2890       gimple *g = SSA_NAME_DEF_STMT (t);
2891       if (gimple_code (g) == GIMPLE_PHI && limit > 0)
2892           if (int r = zero_one_minusone (as_a <gphi *> (g), limit - 1))
2893             {
2894               ret |= r;
2895               continue;
2896             }
2897       if (!is_gimple_assign (g))
2898           return 0;
2899       if (gimple_assign_cast_p (g))
2900           {
2901             tree rhs1 = gimple_assign_rhs1 (g);
2902             if (TREE_CODE (rhs1) != SSA_NAME
2903                 || !INTEGRAL_TYPE_P (TREE_TYPE (rhs1))
2904                 || TYPE_PRECISION (TREE_TYPE (rhs1)) != 1
2905                 || !TYPE_UNSIGNED (TREE_TYPE (rhs1)))
2906               return 0;
2907             ret |= (2 | 4);
2908             continue;
2909           }
2910       if (TREE_CODE_CLASS (gimple_assign_rhs_code (g)) != tcc_comparison)
2911           return 0;
2912       ret |= (2 | 4);
2913     }
2914   return ret;
2915 }
2916 
2917 /* Find the basic block with return expression and look up for possible
2918    return value trying to apply RETURN_PREDICTION heuristics.  */
2919 static void
apply_return_prediction(void)2920 apply_return_prediction (void)
2921 {
2922   greturn *return_stmt = NULL;
2923   tree return_val;
2924   edge e;
2925   gphi *phi;
2926   int phi_num_args, i;
2927   enum br_predictor pred;
2928   enum prediction direction;
2929   edge_iterator ei;
2930 
2931   FOR_EACH_EDGE (e, ei, EXIT_BLOCK_PTR_FOR_FN (cfun)->preds)
2932     {
2933       gimple *last = last_stmt (e->src);
2934       if (last
2935             && gimple_code (last) == GIMPLE_RETURN)
2936           {
2937             return_stmt = as_a <greturn *> (last);
2938             break;
2939           }
2940     }
2941   if (!e)
2942     return;
2943   return_val = gimple_return_retval (return_stmt);
2944   if (!return_val)
2945     return;
2946   if (TREE_CODE (return_val) != SSA_NAME
2947       || !SSA_NAME_DEF_STMT (return_val)
2948       || gimple_code (SSA_NAME_DEF_STMT (return_val)) != GIMPLE_PHI)
2949     return;
2950   phi = as_a <gphi *> (SSA_NAME_DEF_STMT (return_val));
2951   phi_num_args = gimple_phi_num_args (phi);
2952   pred = return_prediction (PHI_ARG_DEF (phi, 0), &direction);
2953 
2954   /* Avoid the case where the function returns -1, 0 and 1 values and
2955      nothing else.  Those could be qsort etc. comparison functions
2956      where the negative return isn't less probable than positive.
2957      For this require that the function returns at least -1 or 1
2958      or -1 and a boolean value or comparison result, so that functions
2959      returning just -1 and 0 are treated as if -1 represents error value.  */
2960   if (INTEGRAL_TYPE_P (TREE_TYPE (return_val))
2961       && !TYPE_UNSIGNED (TREE_TYPE (return_val))
2962       && TYPE_PRECISION (TREE_TYPE (return_val)) > 1)
2963     if (int r = zero_one_minusone (phi, 3))
2964       if ((r & (1 | 4)) == (1 | 4))
2965           return;
2966 
2967   /* Avoid the degenerate case where all return values form the function
2968      belongs to same category (ie they are all positive constants)
2969      so we can hardly say something about them.  */
2970   for (i = 1; i < phi_num_args; i++)
2971     if (pred != return_prediction (PHI_ARG_DEF (phi, i), &direction))
2972       break;
2973   if (i != phi_num_args)
2974     for (i = 0; i < phi_num_args; i++)
2975       {
2976           pred = return_prediction (PHI_ARG_DEF (phi, i), &direction);
2977           if (pred != PRED_NO_PREDICTION)
2978             predict_paths_leading_to_edge (gimple_phi_arg_edge (phi, i), pred,
2979                                                  direction);
2980       }
2981 }
2982 
2983 /* Look for basic block that contains unlikely to happen events
2984    (such as noreturn calls) and mark all paths leading to execution
2985    of this basic blocks as unlikely.  */
2986 
2987 static void
tree_bb_level_predictions(void)2988 tree_bb_level_predictions (void)
2989 {
2990   basic_block bb;
2991   bool has_return_edges = false;
2992   edge e;
2993   edge_iterator ei;
2994 
2995   FOR_EACH_EDGE (e, ei, EXIT_BLOCK_PTR_FOR_FN (cfun)->preds)
2996     if (!unlikely_executed_edge_p (e) && !(e->flags & EDGE_ABNORMAL_CALL))
2997       {
2998         has_return_edges = true;
2999           break;
3000       }
3001 
3002   apply_return_prediction ();
3003 
3004   FOR_EACH_BB_FN (bb, cfun)
3005     {
3006       gimple_stmt_iterator gsi;
3007 
3008       for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
3009           {
3010             gimple *stmt = gsi_stmt (gsi);
3011             tree decl;
3012 
3013             if (is_gimple_call (stmt))
3014               {
3015                 if (gimple_call_noreturn_p (stmt)
3016                       && has_return_edges
3017                       && !is_exit_with_zero_arg (stmt))
3018                     predict_paths_leading_to (bb, PRED_NORETURN,
3019                                                     NOT_TAKEN);
3020                 decl = gimple_call_fndecl (stmt);
3021                 if (decl
3022                       && lookup_attribute ("cold",
3023                                                DECL_ATTRIBUTES (decl)))
3024                     predict_paths_leading_to (bb, PRED_COLD_FUNCTION,
3025                                                     NOT_TAKEN);
3026                 if (decl && recursive_call_p (current_function_decl, decl))
3027                     predict_paths_leading_to (bb, PRED_RECURSIVE_CALL,
3028                                                     NOT_TAKEN);
3029               }
3030             else if (gimple_code (stmt) == GIMPLE_PREDICT)
3031               {
3032                 predict_paths_leading_to (bb, gimple_predict_predictor (stmt),
3033                                                   gimple_predict_outcome (stmt));
3034                 /* Keep GIMPLE_PREDICT around so early inlining will propagate
3035                    hints to callers.  */
3036               }
3037           }
3038     }
3039 }
3040 
3041 /* Callback for hash_map::traverse, asserts that the pointer map is
3042    empty.  */
3043 
3044 bool
assert_is_empty(const_basic_block const &,edge_prediction * const & value,void *)3045 assert_is_empty (const_basic_block const &, edge_prediction *const &value,
3046                      void *)
3047 {
3048   gcc_assert (!value);
3049   return true;
3050 }
3051 
3052 /* Predict branch probabilities and estimate profile for basic block BB.
3053    When LOCAL_ONLY is set do not use any global properties of CFG.  */
3054 
3055 static void
tree_estimate_probability_bb(basic_block bb,bool local_only)3056 tree_estimate_probability_bb (basic_block bb, bool local_only)
3057 {
3058   edge e;
3059   edge_iterator ei;
3060 
3061   FOR_EACH_EDGE (e, ei, bb->succs)
3062     {
3063       /* Look for block we are guarding (ie we dominate it,
3064            but it doesn't postdominate us).  */
3065       if (e->dest != EXIT_BLOCK_PTR_FOR_FN (cfun) && e->dest != bb
3066             && !local_only
3067             && dominated_by_p (CDI_DOMINATORS, e->dest, e->src)
3068             && !dominated_by_p (CDI_POST_DOMINATORS, e->src, e->dest))
3069           {
3070             gimple_stmt_iterator bi;
3071 
3072             /* The call heuristic claims that a guarded function call
3073                is improbable.  This is because such calls are often used
3074                to signal exceptional situations such as printing error
3075                messages.  */
3076             for (bi = gsi_start_bb (e->dest); !gsi_end_p (bi);
3077                  gsi_next (&bi))
3078               {
3079                 gimple *stmt = gsi_stmt (bi);
3080                 if (is_gimple_call (stmt)
3081                       && !gimple_inexpensive_call_p (as_a <gcall *>  (stmt))
3082                       /* Constant and pure calls are hardly used to signalize
3083                          something exceptional.  */
3084                       && gimple_has_side_effects (stmt))
3085                     {
3086                       if (gimple_call_fndecl (stmt))
3087                         predict_edge_def (e, PRED_CALL, NOT_TAKEN);
3088                       else if (virtual_method_call_p (gimple_call_fn (stmt)))
3089                         predict_edge_def (e, PRED_POLYMORPHIC_CALL, NOT_TAKEN);
3090                       else
3091                         predict_edge_def (e, PRED_INDIR_CALL, TAKEN);
3092                       break;
3093                     }
3094               }
3095           }
3096     }
3097   tree_predict_by_opcode (bb);
3098 }
3099 
3100 /* Predict branch probabilities and estimate profile of the tree CFG.
3101    This function can be called from the loop optimizers to recompute
3102    the profile information.
3103    If DRY_RUN is set, do not modify CFG and only produce dump files.  */
3104 
3105 void
tree_estimate_probability(bool dry_run)3106 tree_estimate_probability (bool dry_run)
3107 {
3108   basic_block bb;
3109 
3110   connect_infinite_loops_to_exit ();
3111   /* We use loop_niter_by_eval, which requires that the loops have
3112      preheaders.  */
3113   create_preheaders (CP_SIMPLE_PREHEADERS);
3114   calculate_dominance_info (CDI_POST_DOMINATORS);
3115   /* Decide which edges are known to be unlikely.  This improves later
3116      branch prediction. */
3117   determine_unlikely_bbs ();
3118 
3119   bb_predictions = new hash_map<const_basic_block, edge_prediction *>;
3120   tree_bb_level_predictions ();
3121   record_loop_exits ();
3122 
3123   if (number_of_loops (cfun) > 1)
3124     predict_loops ();
3125 
3126   FOR_EACH_BB_FN (bb, cfun)
3127     tree_estimate_probability_bb (bb, false);
3128 
3129   FOR_EACH_BB_FN (bb, cfun)
3130     combine_predictions_for_bb (bb, dry_run);
3131 
3132   if (flag_checking)
3133     bb_predictions->traverse<void *, assert_is_empty> (NULL);
3134 
3135   delete bb_predictions;
3136   bb_predictions = NULL;
3137 
3138   if (!dry_run)
3139     estimate_bb_frequencies (false);
3140   free_dominance_info (CDI_POST_DOMINATORS);
3141   remove_fake_exit_edges ();
3142 }
3143 
3144 /* Set edge->probability for each successor edge of BB.  */
3145 void
tree_guess_outgoing_edge_probabilities(basic_block bb)3146 tree_guess_outgoing_edge_probabilities (basic_block bb)
3147 {
3148   bb_predictions = new hash_map<const_basic_block, edge_prediction *>;
3149   tree_estimate_probability_bb (bb, true);
3150   combine_predictions_for_bb (bb, false);
3151   if (flag_checking)
3152     bb_predictions->traverse<void *, assert_is_empty> (NULL);
3153   delete bb_predictions;
3154   bb_predictions = NULL;
3155 }
3156 
3157 /* Filter function predicate that returns true for a edge predicate P
3158    if its edge is equal to DATA.  */
3159 
3160 static bool
not_loop_guard_equal_edge_p(edge_prediction * p,void * data)3161 not_loop_guard_equal_edge_p (edge_prediction *p, void *data)
3162 {
3163   return p->ep_edge != (edge)data || p->ep_predictor != PRED_LOOP_GUARD;
3164 }
3165 
3166 /* Predict edge E with PRED unless it is already predicted by some predictor
3167    considered equivalent.  */
3168 
3169 static void
maybe_predict_edge(edge e,enum br_predictor pred,enum prediction taken)3170 maybe_predict_edge (edge e, enum br_predictor pred, enum prediction taken)
3171 {
3172   if (edge_predicted_by_p (e, pred, taken))
3173     return;
3174   if (pred == PRED_LOOP_GUARD
3175       && edge_predicted_by_p (e, PRED_LOOP_GUARD_WITH_RECURSION, taken))
3176     return;
3177   /* Consider PRED_LOOP_GUARD_WITH_RECURSION superrior to LOOP_GUARD.  */
3178   if (pred == PRED_LOOP_GUARD_WITH_RECURSION)
3179     {
3180       edge_prediction **preds = bb_predictions->get (e->src);
3181       if (preds)
3182           filter_predictions (preds, not_loop_guard_equal_edge_p, e);
3183     }
3184   predict_edge_def (e, pred, taken);
3185 }
3186 /* Predict edges to successors of CUR whose sources are not postdominated by
3187    BB by PRED and recurse to all postdominators.  */
3188 
3189 static void
predict_paths_for_bb(basic_block cur,basic_block bb,enum br_predictor pred,enum prediction taken,bitmap visited,class loop * in_loop=NULL)3190 predict_paths_for_bb (basic_block cur, basic_block bb,
3191                           enum br_predictor pred,
3192                           enum prediction taken,
3193                           bitmap visited, class loop *in_loop = NULL)
3194 {
3195   edge e;
3196   edge_iterator ei;
3197   basic_block son;
3198 
3199   /* If we exited the loop or CUR is unconditional in the loop, there is
3200      nothing to do.  */
3201   if (in_loop
3202       && (!flow_bb_inside_loop_p (in_loop, cur)
3203             || dominated_by_p (CDI_DOMINATORS, in_loop->latch, cur)))
3204     return;
3205 
3206   /* We are looking for all edges forming edge cut induced by
3207      set of all blocks postdominated by BB.  */
3208   FOR_EACH_EDGE (e, ei, cur->preds)
3209     if (e->src->index >= NUM_FIXED_BLOCKS
3210           && !dominated_by_p (CDI_POST_DOMINATORS, e->src, bb))
3211     {
3212       edge e2;
3213       edge_iterator ei2;
3214       bool found = false;
3215 
3216       /* Ignore fake edges and eh, we predict them as not taken anyway.  */
3217       if (unlikely_executed_edge_p (e))
3218           continue;
3219       gcc_assert (bb == cur || dominated_by_p (CDI_POST_DOMINATORS, cur, bb));
3220 
3221       /* See if there is an edge from e->src that is not abnormal
3222            and does not lead to BB and does not exit the loop.  */
3223       FOR_EACH_EDGE (e2, ei2, e->src->succs)
3224           if (e2 != e
3225               && !unlikely_executed_edge_p (e2)
3226               && !dominated_by_p (CDI_POST_DOMINATORS, e2->dest, bb)
3227               && (!in_loop || !loop_exit_edge_p (in_loop, e2)))
3228             {
3229               found = true;
3230               break;
3231             }
3232 
3233       /* If there is non-abnormal path leaving e->src, predict edge
3234            using predictor.  Otherwise we need to look for paths
3235            leading to e->src.
3236 
3237            The second may lead to infinite loop in the case we are predicitng
3238            regions that are only reachable by abnormal edges.  We simply
3239            prevent visiting given BB twice.  */
3240       if (found)
3241           maybe_predict_edge (e, pred, taken);
3242       else if (bitmap_set_bit (visited, e->src->index))
3243           predict_paths_for_bb (e->src, e->src, pred, taken, visited, in_loop);
3244     }
3245   for (son = first_dom_son (CDI_POST_DOMINATORS, cur);
3246        son;
3247        son = next_dom_son (CDI_POST_DOMINATORS, son))
3248     predict_paths_for_bb (son, bb, pred, taken, visited, in_loop);
3249 }
3250 
3251 /* Sets branch probabilities according to PREDiction and
3252    FLAGS.  */
3253 
3254 static void
predict_paths_leading_to(basic_block bb,enum br_predictor pred,enum prediction taken,class loop * in_loop)3255 predict_paths_leading_to (basic_block bb, enum br_predictor pred,
3256                                 enum prediction taken, class loop *in_loop)
3257 {
3258   predict_paths_for_bb (bb, bb, pred, taken, auto_bitmap (), in_loop);
3259 }
3260 
3261 /* Like predict_paths_leading_to but take edge instead of basic block.  */
3262 
3263 static void
predict_paths_leading_to_edge(edge e,enum br_predictor pred,enum prediction taken,class loop * in_loop)3264 predict_paths_leading_to_edge (edge e, enum br_predictor pred,
3265                                      enum prediction taken, class loop *in_loop)
3266 {
3267   bool has_nonloop_edge = false;
3268   edge_iterator ei;
3269   edge e2;
3270 
3271   basic_block bb = e->src;
3272   FOR_EACH_EDGE (e2, ei, bb->succs)
3273     if (e2->dest != e->src && e2->dest != e->dest
3274           && !unlikely_executed_edge_p (e2)
3275           && !dominated_by_p (CDI_POST_DOMINATORS, e->src, e2->dest))
3276       {
3277           has_nonloop_edge = true;
3278           break;
3279       }
3280 
3281   if (!has_nonloop_edge)
3282     predict_paths_for_bb (bb, bb, pred, taken, auto_bitmap (), in_loop);
3283   else
3284     maybe_predict_edge (e, pred, taken);
3285 }
3286 
3287 /* This is used to carry information about basic blocks.  It is
3288    attached to the AUX field of the standard CFG block.  */
3289 
3290 class block_info
3291 {
3292 public:
3293   /* Estimated frequency of execution of basic_block.  */
3294   sreal frequency;
3295 
3296   /* To keep queue of basic blocks to process.  */
3297   basic_block next;
3298 
3299   /* Number of predecessors we need to visit first.  */
3300   int npredecessors;
3301 };
3302 
3303 /* Similar information for edges.  */
3304 class edge_prob_info
3305 {
3306 public:
3307   /* In case edge is a loopback edge, the probability edge will be reached
3308      in case header is.  Estimated number of iterations of the loop can be
3309      then computed as 1 / (1 - back_edge_prob).  */
3310   sreal back_edge_prob;
3311   /* True if the edge is a loopback edge in the natural loop.  */
3312   unsigned int back_edge:1;
3313 };
3314 
3315 #define BLOCK_INFO(B)         ((block_info *) (B)->aux)
3316 #undef EDGE_INFO
3317 #define EDGE_INFO(E)          ((edge_prob_info *) (E)->aux)
3318 
3319 /* Helper function for estimate_bb_frequencies.
3320    Propagate the frequencies in blocks marked in
3321    TOVISIT, starting in HEAD.  */
3322 
3323 static void
propagate_freq(basic_block head,bitmap tovisit,sreal max_cyclic_prob)3324 propagate_freq (basic_block head, bitmap tovisit,
3325                     sreal max_cyclic_prob)
3326 {
3327   basic_block bb;
3328   basic_block last;
3329   unsigned i;
3330   edge e;
3331   basic_block nextbb;
3332   bitmap_iterator bi;
3333 
3334   /* For each basic block we need to visit count number of his predecessors
3335      we need to visit first.  */
3336   EXECUTE_IF_SET_IN_BITMAP (tovisit, 0, i, bi)
3337     {
3338       edge_iterator ei;
3339       int count = 0;
3340 
3341       bb = BASIC_BLOCK_FOR_FN (cfun, i);
3342 
3343       FOR_EACH_EDGE (e, ei, bb->preds)
3344           {
3345             bool visit = bitmap_bit_p (tovisit, e->src->index);
3346 
3347             if (visit && !(e->flags & EDGE_DFS_BACK))
3348               count++;
3349             else if (visit && dump_file && !EDGE_INFO (e)->back_edge)
3350               fprintf (dump_file,
3351                          "Irreducible region hit, ignoring edge to %i->%i\n",
3352                          e->src->index, bb->index);
3353           }
3354       BLOCK_INFO (bb)->npredecessors = count;
3355       /* When function never returns, we will never process exit block.  */
3356       if (!count && bb == EXIT_BLOCK_PTR_FOR_FN (cfun))
3357           bb->count = profile_count::zero ();
3358     }
3359 
3360   BLOCK_INFO (head)->frequency = 1;
3361   last = head;
3362   for (bb = head; bb; bb = nextbb)
3363     {
3364       edge_iterator ei;
3365       sreal cyclic_probability = 0;
3366       sreal frequency = 0;
3367 
3368       nextbb = BLOCK_INFO (bb)->next;
3369       BLOCK_INFO (bb)->next = NULL;
3370 
3371       /* Compute frequency of basic block.  */
3372       if (bb != head)
3373           {
3374             if (flag_checking)
3375               FOR_EACH_EDGE (e, ei, bb->preds)
3376                 gcc_assert (!bitmap_bit_p (tovisit, e->src->index)
3377                                 || (e->flags & EDGE_DFS_BACK));
3378 
3379             FOR_EACH_EDGE (e, ei, bb->preds)
3380               if (EDGE_INFO (e)->back_edge)
3381                 cyclic_probability += EDGE_INFO (e)->back_edge_prob;
3382               else if (!(e->flags & EDGE_DFS_BACK))
3383                 {
3384                     /* FIXME: Graphite is producing edges with no profile. Once
3385                        this is fixed, drop this.  */
3386                     sreal tmp = e->probability.initialized_p () ?
3387                                   e->probability.to_sreal () : 0;
3388                     frequency += tmp * BLOCK_INFO (e->src)->frequency;
3389                 }
3390 
3391             if (cyclic_probability == 0)
3392               {
3393                 BLOCK_INFO (bb)->frequency = frequency;
3394               }
3395             else
3396               {
3397                 if (cyclic_probability > max_cyclic_prob)
3398                     {
3399                       if (dump_file)
3400                         fprintf (dump_file,
3401                                    "cyclic probability of bb %i is %f (capped to %f)"
3402                                    "; turning freq %f",
3403                                    bb->index, cyclic_probability.to_double (),
3404                                    max_cyclic_prob.to_double (),
3405                                    frequency.to_double ());
3406 
3407                       cyclic_probability = max_cyclic_prob;
3408                     }
3409                 else if (dump_file)
3410                     fprintf (dump_file,
3411                                "cyclic probability of bb %i is %f; turning freq %f",
3412                                bb->index, cyclic_probability.to_double (),
3413                                frequency.to_double ());
3414 
3415                 BLOCK_INFO (bb)->frequency = frequency
3416                                          / (sreal (1) - cyclic_probability);
3417                 if (dump_file)
3418                     fprintf (dump_file, " to %f\n",
3419                                BLOCK_INFO (bb)->frequency.to_double ());
3420               }
3421           }
3422 
3423       bitmap_clear_bit (tovisit, bb->index);
3424 
3425       e = find_edge (bb, head);
3426       if (e)
3427           {
3428             /* FIXME: Graphite is producing edges with no profile. Once
3429                this is fixed, drop this.  */
3430             sreal tmp = e->probability.initialized_p () ?
3431                           e->probability.to_sreal () : 0;
3432             EDGE_INFO (e)->back_edge_prob = tmp * BLOCK_INFO (bb)->frequency;
3433           }
3434 
3435       /* Propagate to successor blocks.  */
3436       FOR_EACH_EDGE (e, ei, bb->succs)
3437           if (!(e->flags & EDGE_DFS_BACK)
3438               && BLOCK_INFO (e->dest)->npredecessors)
3439             {
3440               BLOCK_INFO (e->dest)->npredecessors--;
3441               if (!BLOCK_INFO (e->dest)->npredecessors)
3442                 {
3443                     if (!nextbb)
3444                       nextbb = e->dest;
3445                     else
3446                       BLOCK_INFO (last)->next = e->dest;
3447 
3448                     last = e->dest;
3449                 }
3450             }
3451     }
3452 }
3453 
3454 /* Estimate frequencies in loops at same nest level.  */
3455 
3456 static void
estimate_loops_at_level(class loop * first_loop,sreal max_cyclic_prob)3457 estimate_loops_at_level (class loop *first_loop, sreal max_cyclic_prob)
3458 {
3459   class loop *loop;
3460 
3461   for (loop = first_loop; loop; loop = loop->next)
3462     {
3463       edge e;
3464       basic_block *bbs;
3465       unsigned i;
3466       auto_bitmap tovisit;
3467 
3468       estimate_loops_at_level (loop->inner, max_cyclic_prob);
3469 
3470       /* Find current loop back edge and mark it.  */
3471       e = loop_latch_edge (loop);
3472       EDGE_INFO (e)->back_edge = 1;
3473 
3474       bbs = get_loop_body (loop);
3475       for (i = 0; i < loop->num_nodes; i++)
3476           bitmap_set_bit (tovisit, bbs[i]->index);
3477       free (bbs);
3478       propagate_freq (loop->header, tovisit, max_cyclic_prob);
3479     }
3480 }
3481 
3482 /* Propagates frequencies through structure of loops.  */
3483 
3484 static void
estimate_loops(void)3485 estimate_loops (void)
3486 {
3487   auto_bitmap tovisit;
3488   basic_block bb;
3489   sreal max_cyclic_prob = (sreal)1
3490                                  - (sreal)1 / (param_max_predicted_iterations + 1);
3491 
3492   /* Start by estimating the frequencies in the loops.  */
3493   if (number_of_loops (cfun) > 1)
3494     estimate_loops_at_level (current_loops->tree_root->inner, max_cyclic_prob);
3495 
3496   /* Now propagate the frequencies through all the blocks.  */
3497   FOR_ALL_BB_FN (bb, cfun)
3498     {
3499       bitmap_set_bit (tovisit, bb->index);
3500     }
3501   propagate_freq (ENTRY_BLOCK_PTR_FOR_FN (cfun), tovisit, max_cyclic_prob);
3502 }
3503 
3504 /* Drop the profile for NODE to guessed, and update its frequency based on
3505    whether it is expected to be hot given the CALL_COUNT.  */
3506 
3507 static void
drop_profile(struct cgraph_node * node,profile_count call_count)3508 drop_profile (struct cgraph_node *node, profile_count call_count)
3509 {
3510   struct function *fn = DECL_STRUCT_FUNCTION (node->decl);
3511   /* In the case where this was called by another function with a
3512      dropped profile, call_count will be 0. Since there are no
3513      non-zero call counts to this function, we don't know for sure
3514      whether it is hot, and therefore it will be marked normal below.  */
3515   bool hot = maybe_hot_count_p (NULL, call_count);
3516 
3517   if (dump_file)
3518     fprintf (dump_file,
3519                "Dropping 0 profile for %s. %s based on calls.\n",
3520                node->dump_name (),
3521                hot ? "Function is hot" : "Function is normal");
3522   /* We only expect to miss profiles for functions that are reached
3523      via non-zero call edges in cases where the function may have
3524      been linked from another module or library (COMDATs and extern
3525      templates). See the comments below for handle_missing_profiles.
3526      Also, only warn in cases where the missing counts exceed the
3527      number of training runs. In certain cases with an execv followed
3528      by a no-return call the profile for the no-return call is not
3529      dumped and there can be a mismatch.  */
3530   if (!DECL_COMDAT (node->decl) && !DECL_EXTERNAL (node->decl)
3531       && call_count > profile_info->runs)
3532     {
3533       if (flag_profile_correction)
3534         {
3535           if (dump_file)
3536             fprintf (dump_file,
3537                          "Missing counts for called function %s\n",
3538                          node->dump_name ());
3539         }
3540       else
3541           warning (0, "Missing counts for called function %s",
3542                      node->dump_name ());
3543     }
3544 
3545   basic_block bb;
3546   if (opt_for_fn (node->decl, flag_guess_branch_prob))
3547     {
3548       bool clear_zeros
3549            = !ENTRY_BLOCK_PTR_FOR_FN (fn)->count.nonzero_p ();
3550       FOR_ALL_BB_FN (bb, fn)
3551           if (clear_zeros || !(bb->count == profile_count::zero ()))
3552             bb->count = bb->count.guessed_local ();
3553       fn->cfg->count_max = fn->cfg->count_max.guessed_local ();
3554     }
3555   else
3556     {
3557       FOR_ALL_BB_FN (bb, fn)
3558           bb->count = profile_count::uninitialized ();
3559       fn->cfg->count_max = profile_count::uninitialized ();
3560     }
3561 
3562   struct cgraph_edge *e;
3563   for (e = node->callees; e; e = e->next_callee)
3564     e->count = gimple_bb (e->call_stmt)->count;
3565   for (e = node->indirect_calls; e; e = e->next_callee)
3566     e->count = gimple_bb (e->call_stmt)->count;
3567   node->count = ENTRY_BLOCK_PTR_FOR_FN (fn)->count;
3568 
3569   profile_status_for_fn (fn)
3570       = (flag_guess_branch_prob ? PROFILE_GUESSED : PROFILE_ABSENT);
3571   node->frequency
3572       = hot ? NODE_FREQUENCY_HOT : NODE_FREQUENCY_NORMAL;
3573 }
3574 
3575 /* In the case of COMDAT routines, multiple object files will contain the same
3576    function and the linker will select one for the binary. In that case
3577    all the other copies from the profile instrument binary will be missing
3578    profile counts. Look for cases where this happened, due to non-zero
3579    call counts going to 0-count functions, and drop the profile to guessed
3580    so that we can use the estimated probabilities and avoid optimizing only
3581    for size.
3582 
3583    The other case where the profile may be missing is when the routine
3584    is not going to be emitted to the object file, e.g. for "extern template"
3585    class methods. Those will be marked DECL_EXTERNAL. Emit a warning in
3586    all other cases of non-zero calls to 0-count functions.  */
3587 
3588 void
handle_missing_profiles(void)3589 handle_missing_profiles (void)
3590 {
3591   const int unlikely_frac = param_unlikely_bb_count_fraction;
3592   struct cgraph_node *node;
3593   auto_vec<struct cgraph_node *, 64> worklist;
3594 
3595   /* See if 0 count function has non-0 count callers.  In this case we
3596      lost some profile.  Drop its function profile to PROFILE_GUESSED.  */
3597   FOR_EACH_DEFINED_FUNCTION (node)
3598     {
3599       struct cgraph_edge *e;
3600       profile_count call_count = profile_count::zero ();
3601       gcov_type max_tp_first_run = 0;
3602       struct function *fn = DECL_STRUCT_FUNCTION (node->decl);
3603 
3604       if (node->count.ipa ().nonzero_p ())
3605         continue;
3606       for (e = node->callers; e; e = e->next_caller)
3607           if (e->count.ipa ().initialized_p () && e->count.ipa () > 0)
3608             {
3609             call_count = call_count + e->count.ipa ();
3610 
3611               if (e->caller->tp_first_run > max_tp_first_run)
3612                 max_tp_first_run = e->caller->tp_first_run;
3613             }
3614 
3615       /* If time profile is missing, let assign the maximum that comes from
3616            caller functions.  */
3617       if (!node->tp_first_run && max_tp_first_run)
3618           node->tp_first_run = max_tp_first_run + 1;
3619 
3620       if (call_count > 0
3621           && fn && fn->cfg
3622           && call_count.apply_scale (unlikely_frac, 1) >= profile_info->runs)
3623         {
3624           drop_profile (node, call_count);
3625           worklist.safe_push (node);
3626         }
3627     }
3628 
3629   /* Propagate the profile dropping to other 0-count COMDATs that are
3630      potentially called by COMDATs we already dropped the profile on.  */
3631   while (worklist.length () > 0)
3632     {
3633       struct cgraph_edge *e;
3634 
3635       node = worklist.pop ();
3636       for (e = node->callees; e; e = e->next_caller)
3637         {
3638           struct cgraph_node *callee = e->callee;
3639           struct function *fn = DECL_STRUCT_FUNCTION (callee->decl);
3640 
3641           if (!(e->count.ipa () == profile_count::zero ())
3642                 && callee->count.ipa ().nonzero_p ())
3643             continue;
3644           if ((DECL_COMDAT (callee->decl) || DECL_EXTERNAL (callee->decl))
3645                 && fn && fn->cfg
3646               && profile_status_for_fn (fn) == PROFILE_READ)
3647             {
3648               drop_profile (node, profile_count::zero ());
3649               worklist.safe_push (callee);
3650             }
3651         }
3652     }
3653 }
3654 
3655 /* Convert counts measured by profile driven feedback to frequencies.
3656    Return nonzero iff there was any nonzero execution count.  */
3657 
3658 bool
update_max_bb_count(void)3659 update_max_bb_count (void)
3660 {
3661   profile_count true_count_max = profile_count::uninitialized ();
3662   basic_block bb;
3663 
3664   FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR_FOR_FN (cfun), NULL, next_bb)
3665     true_count_max = true_count_max.max (bb->count);
3666 
3667   cfun->cfg->count_max = true_count_max;
3668 
3669   return true_count_max.ipa ().nonzero_p ();
3670 }
3671 
3672 /* Return true if function is likely to be expensive, so there is no point to
3673    optimize performance of prologue, epilogue or do inlining at the expense
3674    of code size growth.  THRESHOLD is the limit of number of instructions
3675    function can execute at average to be still considered not expensive.  */
3676 
3677 bool
expensive_function_p(int threshold)3678 expensive_function_p (int threshold)
3679 {
3680   basic_block bb;
3681 
3682   /* If profile was scaled in a way entry block has count 0, then the function
3683      is deifnitly taking a lot of time.  */
3684   if (!ENTRY_BLOCK_PTR_FOR_FN (cfun)->count.nonzero_p ())
3685     return true;
3686 
3687   profile_count limit = ENTRY_BLOCK_PTR_FOR_FN
3688                                  (cfun)->count.apply_scale (threshold, 1);
3689   profile_count sum = profile_count::zero ();
3690   FOR_EACH_BB_FN (bb, cfun)
3691     {
3692       rtx_insn *insn;
3693 
3694       if (!bb->count.initialized_p ())
3695           {
3696             if (dump_file)
3697               fprintf (dump_file, "Function is considered expensive because"
3698                          " count of bb %i is not initialized\n", bb->index);
3699             return true;
3700           }
3701 
3702       FOR_BB_INSNS (bb, insn)
3703           if (active_insn_p (insn))
3704             {
3705               sum += bb->count;
3706               if (sum > limit)
3707                 return true;
3708           }
3709     }
3710 
3711   return false;
3712 }
3713 
3714 /* All basic blocks that are reachable only from unlikely basic blocks are
3715    unlikely.  */
3716 
3717 void
propagate_unlikely_bbs_forward(void)3718 propagate_unlikely_bbs_forward (void)
3719 {
3720   auto_vec<basic_block, 64> worklist;
3721   basic_block bb;
3722   edge_iterator ei;
3723   edge e;
3724 
3725   if (!(ENTRY_BLOCK_PTR_FOR_FN (cfun)->count == profile_count::zero ()))
3726     {
3727       ENTRY_BLOCK_PTR_FOR_FN (cfun)->aux = (void *)(size_t) 1;
3728       worklist.safe_push (ENTRY_BLOCK_PTR_FOR_FN (cfun));
3729 
3730       while (worklist.length () > 0)
3731           {
3732             bb = worklist.pop ();
3733             FOR_EACH_EDGE (e, ei, bb->succs)
3734               if (!(e->count () == profile_count::zero ())
3735                     && !(e->dest->count == profile_count::zero ())
3736                     && !e->dest->aux)
3737                 {
3738                     e->dest->aux = (void *)(size_t) 1;
3739                     worklist.safe_push (e->dest);
3740                 }
3741           }
3742     }
3743 
3744   FOR_ALL_BB_FN (bb, cfun)
3745     {
3746       if (!bb->aux)
3747           {
3748             if (!(bb->count == profile_count::zero ())
3749                 && (dump_file && (dump_flags & TDF_DETAILS)))
3750               fprintf (dump_file,
3751                          "Basic block %i is marked unlikely by forward prop\n",
3752                          bb->index);
3753             bb->count = profile_count::zero ();
3754           }
3755       else
3756         bb->aux = NULL;
3757     }
3758 }
3759 
3760 /* Determine basic blocks/edges that are known to be unlikely executed and set
3761    their counters to zero.
3762    This is done with first identifying obviously unlikely BBs/edges and then
3763    propagating in both directions.  */
3764 
3765 static void
determine_unlikely_bbs()3766 determine_unlikely_bbs ()
3767 {
3768   basic_block bb;
3769   auto_vec<basic_block, 64> worklist;
3770   edge_iterator ei;
3771   edge e;
3772 
3773   FOR_EACH_BB_FN (bb, cfun)
3774     {
3775       if (!(bb->count == profile_count::zero ())
3776             && unlikely_executed_bb_p (bb))
3777           {
3778           if (dump_file && (dump_flags & TDF_DETAILS))
3779               fprintf (dump_file, "Basic block %i is locally unlikely\n",
3780                          bb->index);
3781             bb->count = profile_count::zero ();
3782           }
3783 
3784       FOR_EACH_EDGE (e, ei, bb->succs)
3785           if (!(e->probability == profile_probability::never ())
3786               && unlikely_executed_edge_p (e))
3787             {
3788             if (dump_file && (dump_flags & TDF_DETAILS))
3789                 fprintf (dump_file, "Edge %i->%i is locally unlikely\n",
3790                            bb->index, e->dest->index);
3791               e->probability = profile_probability::never ();
3792             }
3793 
3794       gcc_checking_assert (!bb->aux);
3795     }
3796   propagate_unlikely_bbs_forward ();
3797 
3798   auto_vec<int, 64> nsuccs;
3799   nsuccs.safe_grow_cleared (last_basic_block_for_fn (cfun), true);
3800   FOR_ALL_BB_FN (bb, cfun)
3801     if (!(bb->count == profile_count::zero ())
3802           && bb != EXIT_BLOCK_PTR_FOR_FN (cfun))
3803       {
3804           nsuccs[bb->index] = 0;
3805         FOR_EACH_EDGE (e, ei, bb->succs)
3806             if (!(e->probability == profile_probability::never ())
3807                 && !(e->dest->count == profile_count::zero ()))
3808               nsuccs[bb->index]++;
3809           if (!nsuccs[bb->index])
3810             worklist.safe_push (bb);
3811       }
3812   while (worklist.length () > 0)
3813     {
3814       bb = worklist.pop ();
3815       if (bb->count == profile_count::zero ())
3816           continue;
3817       if (bb != ENTRY_BLOCK_PTR_FOR_FN (cfun))
3818           {
3819             bool found = false;
3820           for (gimple_stmt_iterator gsi = gsi_start_bb (bb);
3821                !gsi_end_p (gsi); gsi_next (&gsi))
3822               if (stmt_can_terminate_bb_p (gsi_stmt (gsi))
3823                     /* stmt_can_terminate_bb_p special cases noreturns because it
3824                        assumes that fake edges are created.  We want to know that
3825                        noreturn alone does not imply BB to be unlikely.  */
3826                     || (is_gimple_call (gsi_stmt (gsi))
3827                         && (gimple_call_flags (gsi_stmt (gsi)) & ECF_NORETURN)))
3828                 {
3829                     found = true;
3830                     break;
3831                 }
3832             if (found)
3833               continue;
3834           }
3835       if (dump_file && (dump_flags & TDF_DETAILS))
3836           fprintf (dump_file,
3837                      "Basic block %i is marked unlikely by backward prop\n",
3838                      bb->index);
3839       bb->count = profile_count::zero ();
3840       FOR_EACH_EDGE (e, ei, bb->preds)
3841           if (!(e->probability == profile_probability::never ()))
3842             {
3843               if (!(e->src->count == profile_count::zero ()))
3844                 {
3845                     gcc_checking_assert (nsuccs[e->src->index] > 0);
3846                   nsuccs[e->src->index]--;
3847                   if (!nsuccs[e->src->index])
3848                       worklist.safe_push (e->src);
3849                 }
3850             }
3851     }
3852   /* Finally all edges from non-0 regions to 0 are unlikely.  */
3853   FOR_ALL_BB_FN (bb, cfun)
3854     {
3855       if (!(bb->count == profile_count::zero ()))
3856           FOR_EACH_EDGE (e, ei, bb->succs)
3857             if (!(e->probability == profile_probability::never ())
3858                 && e->dest->count == profile_count::zero ())
3859                {
3860                  if (dump_file && (dump_flags & TDF_DETAILS))
3861                      fprintf (dump_file, "Edge %i->%i is unlikely because "
3862                                 "it enters unlikely block\n",
3863                                 bb->index, e->dest->index);
3864                  e->probability = profile_probability::never ();
3865                }
3866 
3867       edge other = NULL;
3868 
3869       FOR_EACH_EDGE (e, ei, bb->succs)
3870           if (e->probability == profile_probability::never ())
3871             ;
3872           else if (other)
3873             {
3874               other = NULL;
3875               break;
3876             }
3877           else
3878             other = e;
3879       if (other
3880             && !(other->probability == profile_probability::always ()))
3881           {
3882             if (dump_file && (dump_flags & TDF_DETAILS))
3883                 fprintf (dump_file, "Edge %i->%i is locally likely\n",
3884                            bb->index, other->dest->index);
3885             other->probability = profile_probability::always ();
3886           }
3887     }
3888   if (ENTRY_BLOCK_PTR_FOR_FN (cfun)->count == profile_count::zero ())
3889     cgraph_node::get (current_function_decl)->count = profile_count::zero ();
3890 }
3891 
3892 /* Estimate and propagate basic block frequencies using the given branch
3893    probabilities.  If FORCE is true, the frequencies are used to estimate
3894    the counts even when there are already non-zero profile counts.  */
3895 
3896 void
estimate_bb_frequencies(bool force)3897 estimate_bb_frequencies (bool force)
3898 {
3899   basic_block bb;
3900   sreal freq_max;
3901 
3902   determine_unlikely_bbs ();
3903 
3904   if (force || profile_status_for_fn (cfun) != PROFILE_READ
3905       || !update_max_bb_count ())
3906     {
3907 
3908       mark_dfs_back_edges ();
3909 
3910       single_succ_edge (ENTRY_BLOCK_PTR_FOR_FN (cfun))->probability =
3911            profile_probability::always ();
3912 
3913       /* Set up block info for each basic block.  */
3914       alloc_aux_for_blocks (sizeof (block_info));
3915       alloc_aux_for_edges (sizeof (edge_prob_info));
3916       FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR_FOR_FN (cfun), NULL, next_bb)
3917           {
3918             edge e;
3919             edge_iterator ei;
3920 
3921             FOR_EACH_EDGE (e, ei, bb->succs)
3922               {
3923                 /* FIXME: Graphite is producing edges with no profile. Once
3924                      this is fixed, drop this.  */
3925                 if (e->probability.initialized_p ())
3926                   EDGE_INFO (e)->back_edge_prob
3927                        = e->probability.to_sreal ();
3928                 else
3929                     /* back_edge_prob = 0.5 */
3930                     EDGE_INFO (e)->back_edge_prob = sreal (1, -1);
3931               }
3932           }
3933 
3934       /* First compute frequencies locally for each loop from innermost
3935          to outermost to examine frequencies for back edges.  */
3936       estimate_loops ();
3937 
3938       freq_max = 0;
3939       FOR_EACH_BB_FN (bb, cfun)
3940           if (freq_max < BLOCK_INFO (bb)->frequency)
3941             freq_max = BLOCK_INFO (bb)->frequency;
3942 
3943       /* Scaling frequencies up to maximal profile count may result in
3944            frequent overflows especially when inlining loops.
3945            Small scalling results in unnecesary precision loss.  Stay in
3946            the half of the (exponential) range.  */
3947       freq_max = (sreal (1) << (profile_count::n_bits / 2)) / freq_max;
3948       if (freq_max < 16)
3949           freq_max = 16;
3950       profile_count ipa_count = ENTRY_BLOCK_PTR_FOR_FN (cfun)->count.ipa ();
3951       cfun->cfg->count_max = profile_count::uninitialized ();
3952       FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR_FOR_FN (cfun), NULL, next_bb)
3953           {
3954             sreal tmp = BLOCK_INFO (bb)->frequency;
3955             if (tmp >= 1)
3956               {
3957                 gimple_stmt_iterator gsi;
3958                 tree decl;
3959 
3960                 /* Self recursive calls can not have frequency greater than 1
3961                      or program will never terminate.  This will result in an
3962                      inconsistent bb profile but it is better than greatly confusing
3963                      IPA cost metrics.  */
3964                 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
3965                     if (is_gimple_call (gsi_stmt (gsi))
3966                         && (decl = gimple_call_fndecl (gsi_stmt (gsi))) != NULL
3967                         && recursive_call_p (current_function_decl, decl))
3968                       {
3969                         if (dump_file)
3970                           fprintf (dump_file, "Dropping frequency of recursive call"
3971                                      " in bb %i from %f\n", bb->index,
3972                                      tmp.to_double ());
3973                         tmp = (sreal)9 / (sreal)10;
3974                         break;
3975                       }
3976               }
3977             tmp = tmp * freq_max + sreal (1, -1);
3978             profile_count count = profile_count::from_gcov_type (tmp.to_int ());
3979 
3980             /* If we have profile feedback in which this function was never
3981                executed, then preserve this info.  */
3982             if (!(bb->count == profile_count::zero ()))
3983               bb->count = count.guessed_local ().combine_with_ipa_count (ipa_count);
3984           cfun->cfg->count_max = cfun->cfg->count_max.max (bb->count);
3985           }
3986 
3987       free_aux_for_blocks ();
3988       free_aux_for_edges ();
3989     }
3990   compute_function_frequency ();
3991 }
3992 
3993 /* Decide whether function is hot, cold or unlikely executed.  */
3994 void
compute_function_frequency(void)3995 compute_function_frequency (void)
3996 {
3997   basic_block bb;
3998   struct cgraph_node *node = cgraph_node::get (current_function_decl);
3999 
4000   if (DECL_STATIC_CONSTRUCTOR (current_function_decl)
4001       || MAIN_NAME_P (DECL_NAME (current_function_decl)))
4002     node->only_called_at_startup = true;
4003   if (DECL_STATIC_DESTRUCTOR (current_function_decl))
4004     node->only_called_at_exit = true;
4005 
4006   if (!ENTRY_BLOCK_PTR_FOR_FN (cfun)->count.ipa_p ())
4007     {
4008       int flags = flags_from_decl_or_type (current_function_decl);
4009       if (lookup_attribute ("cold", DECL_ATTRIBUTES (current_function_decl))
4010             != NULL)
4011           node->frequency = NODE_FREQUENCY_UNLIKELY_EXECUTED;
4012       else if (lookup_attribute ("hot", DECL_ATTRIBUTES (current_function_decl))
4013                  != NULL)
4014         node->frequency = NODE_FREQUENCY_HOT;
4015       else if (flags & ECF_NORETURN)
4016         node->frequency = NODE_FREQUENCY_EXECUTED_ONCE;
4017       else if (MAIN_NAME_P (DECL_NAME (current_function_decl)))
4018         node->frequency = NODE_FREQUENCY_EXECUTED_ONCE;
4019       else if (DECL_STATIC_CONSTRUCTOR (current_function_decl)
4020                  || DECL_STATIC_DESTRUCTOR (current_function_decl))
4021         node->frequency = NODE_FREQUENCY_EXECUTED_ONCE;
4022       return;
4023     }
4024 
4025   node->frequency = NODE_FREQUENCY_UNLIKELY_EXECUTED;
4026   if (lookup_attribute ("cold", DECL_ATTRIBUTES (current_function_decl))
4027       == NULL)
4028     warn_function_cold (current_function_decl);
4029   if (ENTRY_BLOCK_PTR_FOR_FN (cfun)->count.ipa() == profile_count::zero ())
4030     return;
4031   FOR_EACH_BB_FN (bb, cfun)
4032     {
4033       if (maybe_hot_bb_p (cfun, bb))
4034           {
4035             node->frequency = NODE_FREQUENCY_HOT;
4036             return;
4037           }
4038       if (!probably_never_executed_bb_p (cfun, bb))
4039           node->frequency = NODE_FREQUENCY_NORMAL;
4040     }
4041 }
4042 
4043 /* Build PREDICT_EXPR.  */
4044 tree
build_predict_expr(enum br_predictor predictor,enum prediction taken)4045 build_predict_expr (enum br_predictor predictor, enum prediction taken)
4046 {
4047   tree t = build1 (PREDICT_EXPR, void_type_node,
4048                        build_int_cst (integer_type_node, predictor));
4049   SET_PREDICT_EXPR_OUTCOME (t, taken);
4050   return t;
4051 }
4052 
4053 const char *
predictor_name(enum br_predictor predictor)4054 predictor_name (enum br_predictor predictor)
4055 {
4056   return predictor_info[predictor].name;
4057 }
4058 
4059 /* Predict branch probabilities and estimate profile of the tree CFG. */
4060 
4061 namespace {
4062 
4063 const pass_data pass_data_profile =
4064 {
4065   GIMPLE_PASS, /* type */
4066   "profile_estimate", /* name */
4067   OPTGROUP_NONE, /* optinfo_flags */
4068   TV_BRANCH_PROB, /* tv_id */
4069   PROP_cfg, /* properties_required */
4070   0, /* properties_provided */
4071   0, /* properties_destroyed */
4072   0, /* todo_flags_start */
4073   0, /* todo_flags_finish */
4074 };
4075 
4076 class pass_profile : public gimple_opt_pass
4077 {
4078 public:
pass_profile(gcc::context * ctxt)4079   pass_profile (gcc::context *ctxt)
4080     : gimple_opt_pass (pass_data_profile, ctxt)
4081   {}
4082 
4083   /* opt_pass methods: */
gate(function *)4084   virtual bool gate (function *) { return flag_guess_branch_prob; }
4085   virtual unsigned int execute (function *);
4086 
4087 }; // class pass_profile
4088 
4089 unsigned int
execute(function * fun)4090 pass_profile::execute (function *fun)
4091 {
4092   unsigned nb_loops;
4093 
4094   if (profile_status_for_fn (cfun) == PROFILE_GUESSED)
4095     return 0;
4096 
4097   loop_optimizer_init (LOOPS_NORMAL);
4098   if (dump_file && (dump_flags & TDF_DETAILS))
4099     flow_loops_dump (dump_file, NULL, 0);
4100 
4101   nb_loops = number_of_loops (fun);
4102   if (nb_loops > 1)
4103     scev_initialize ();
4104 
4105   tree_estimate_probability (false);
4106 
4107   if (nb_loops > 1)
4108     scev_finalize ();
4109 
4110   loop_optimizer_finalize ();
4111   if (dump_file && (dump_flags & TDF_DETAILS))
4112     gimple_dump_cfg (dump_file, dump_flags);
4113  if (profile_status_for_fn (fun) == PROFILE_ABSENT)
4114     profile_status_for_fn (fun) = PROFILE_GUESSED;
4115  if (dump_file && (dump_flags & TDF_DETAILS))
4116    {
4117      for (auto loop : loops_list (cfun, LI_FROM_INNERMOST))
4118        if (loop->header->count.initialized_p ())
4119          fprintf (dump_file, "Loop got predicted %d to iterate %i times.\n",
4120              loop->num,
4121              (int)expected_loop_iterations_unbounded (loop));
4122    }
4123   return 0;
4124 }
4125 
4126 } // anon namespace
4127 
4128 gimple_opt_pass *
make_pass_profile(gcc::context * ctxt)4129 make_pass_profile (gcc::context *ctxt)
4130 {
4131   return new pass_profile (ctxt);
4132 }
4133 
4134 /* Return true when PRED predictor should be removed after early
4135    tree passes.  Most of the predictors are beneficial to survive
4136    as early inlining can also distribute then into caller's bodies.  */
4137 
4138 static bool
strip_predictor_early(enum br_predictor pred)4139 strip_predictor_early (enum br_predictor pred)
4140 {
4141   switch (pred)
4142     {
4143     case PRED_TREE_EARLY_RETURN:
4144       return true;
4145     default:
4146       return false;
4147     }
4148 }
4149 
4150 /* Get rid of all builtin_expect calls and GIMPLE_PREDICT statements
4151    we no longer need.  EARLY is set to true when called from early
4152    optimizations.  */
4153 
4154 unsigned int
strip_predict_hints(function * fun,bool early)4155 strip_predict_hints (function *fun, bool early)
4156 {
4157   basic_block bb;
4158   gimple *ass_stmt;
4159   tree var;
4160   bool changed = false;
4161 
4162   FOR_EACH_BB_FN (bb, fun)
4163     {
4164       gimple_stmt_iterator bi;
4165       for (bi = gsi_start_bb (bb); !gsi_end_p (bi);)
4166           {
4167             gimple *stmt = gsi_stmt (bi);
4168 
4169             if (gimple_code (stmt) == GIMPLE_PREDICT)
4170               {
4171                 if (!early
4172                       || strip_predictor_early (gimple_predict_predictor (stmt)))
4173                     {
4174                       gsi_remove (&bi, true);
4175                       changed = true;
4176                       continue;
4177                     }
4178               }
4179             else if (is_gimple_call (stmt))
4180               {
4181                 tree fndecl = gimple_call_fndecl (stmt);
4182 
4183                 if (!early
4184                       && ((fndecl != NULL_TREE
4185                            && fndecl_built_in_p (fndecl, BUILT_IN_EXPECT)
4186                            && gimple_call_num_args (stmt) == 2)
4187                           || (fndecl != NULL_TREE
4188                                 && fndecl_built_in_p (fndecl,
4189                                                             BUILT_IN_EXPECT_WITH_PROBABILITY)
4190                                 && gimple_call_num_args (stmt) == 3)
4191                           || (gimple_call_internal_p (stmt)
4192                                 && gimple_call_internal_fn (stmt) == IFN_BUILTIN_EXPECT)))
4193                     {
4194                       var = gimple_call_lhs (stmt);
4195                     changed = true;
4196                       if (var)
4197                         {
4198                           ass_stmt
4199                               = gimple_build_assign (var, gimple_call_arg (stmt, 0));
4200                           gsi_replace (&bi, ass_stmt, true);
4201                         }
4202                       else
4203                         {
4204                           gsi_remove (&bi, true);
4205                           continue;
4206                         }
4207                     }
4208               }
4209             gsi_next (&bi);
4210           }
4211     }
4212   return changed ? TODO_cleanup_cfg : 0;
4213 }
4214 
4215 namespace {
4216 
4217 const pass_data pass_data_strip_predict_hints =
4218 {
4219   GIMPLE_PASS, /* type */
4220   "*strip_predict_hints", /* name */
4221   OPTGROUP_NONE, /* optinfo_flags */
4222   TV_BRANCH_PROB, /* tv_id */
4223   PROP_cfg, /* properties_required */
4224   0, /* properties_provided */
4225   0, /* properties_destroyed */
4226   0, /* todo_flags_start */
4227   0, /* todo_flags_finish */
4228 };
4229 
4230 class pass_strip_predict_hints : public gimple_opt_pass
4231 {
4232 public:
pass_strip_predict_hints(gcc::context * ctxt)4233   pass_strip_predict_hints (gcc::context *ctxt)
4234     : gimple_opt_pass (pass_data_strip_predict_hints, ctxt)
4235   {}
4236 
4237   /* opt_pass methods: */
clone()4238   opt_pass * clone () { return new pass_strip_predict_hints (m_ctxt); }
set_pass_param(unsigned int n,bool param)4239   void set_pass_param (unsigned int n, bool param)
4240     {
4241       gcc_assert (n == 0);
4242       early_p = param;
4243     }
4244 
4245   virtual unsigned int execute (function *);
4246 
4247 private:
4248   bool early_p;
4249 
4250 }; // class pass_strip_predict_hints
4251 
4252 unsigned int
execute(function * fun)4253 pass_strip_predict_hints::execute (function *fun)
4254 {
4255   return strip_predict_hints (fun, early_p);
4256 }
4257 
4258 } // anon namespace
4259 
4260 gimple_opt_pass *
make_pass_strip_predict_hints(gcc::context * ctxt)4261 make_pass_strip_predict_hints (gcc::context *ctxt)
4262 {
4263   return new pass_strip_predict_hints (ctxt);
4264 }
4265 
4266 /* Rebuild function frequencies.  Passes are in general expected to
4267    maintain profile by hand, however in some cases this is not possible:
4268    for example when inlining several functions with loops freuqencies might run
4269    out of scale and thus needs to be recomputed.  */
4270 
4271 void
rebuild_frequencies(void)4272 rebuild_frequencies (void)
4273 {
4274   timevar_push (TV_REBUILD_FREQUENCIES);
4275 
4276   /* When the max bb count in the function is small, there is a higher
4277      chance that there were truncation errors in the integer scaling
4278      of counts by inlining and other optimizations. This could lead
4279      to incorrect classification of code as being cold when it isn't.
4280      In that case, force the estimation of bb counts/frequencies from the
4281      branch probabilities, rather than computing frequencies from counts,
4282      which may also lead to frequencies incorrectly reduced to 0. There
4283      is less precision in the probabilities, so we only do this for small
4284      max counts.  */
4285   cfun->cfg->count_max = profile_count::uninitialized ();
4286   basic_block bb;
4287   FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR_FOR_FN (cfun), NULL, next_bb)
4288     cfun->cfg->count_max = cfun->cfg->count_max.max (bb->count);
4289 
4290   if (profile_status_for_fn (cfun) == PROFILE_GUESSED)
4291     {
4292       loop_optimizer_init (LOOPS_HAVE_MARKED_IRREDUCIBLE_REGIONS);
4293       connect_infinite_loops_to_exit ();
4294       estimate_bb_frequencies (true);
4295       remove_fake_exit_edges ();
4296       loop_optimizer_finalize ();
4297     }
4298   else if (profile_status_for_fn (cfun) == PROFILE_READ)
4299     update_max_bb_count ();
4300   else if (profile_status_for_fn (cfun) == PROFILE_ABSENT
4301              && !flag_guess_branch_prob)
4302     ;
4303   else
4304     gcc_unreachable ();
4305   timevar_pop (TV_REBUILD_FREQUENCIES);
4306 }
4307 
4308 /* Perform a dry run of the branch prediction pass and report comparsion of
4309    the predicted and real profile into the dump file.  */
4310 
4311 void
report_predictor_hitrates(void)4312 report_predictor_hitrates (void)
4313 {
4314   unsigned nb_loops;
4315 
4316   loop_optimizer_init (LOOPS_NORMAL);
4317   if (dump_file && (dump_flags & TDF_DETAILS))
4318     flow_loops_dump (dump_file, NULL, 0);
4319 
4320   nb_loops = number_of_loops (cfun);
4321   if (nb_loops > 1)
4322     scev_initialize ();
4323 
4324   tree_estimate_probability (true);
4325 
4326   if (nb_loops > 1)
4327     scev_finalize ();
4328 
4329   loop_optimizer_finalize ();
4330 }
4331 
4332 /* Force edge E to be cold.
4333    If IMPOSSIBLE is true, for edge to have count and probability 0 otherwise
4334    keep low probability to represent possible error in a guess.  This is used
4335    i.e. in case we predict loop to likely iterate given number of times but
4336    we are not 100% sure.
4337 
4338    This function locally updates profile without attempt to keep global
4339    consistency which cannot be reached in full generality without full profile
4340    rebuild from probabilities alone.  Doing so is not necessarily a good idea
4341    because frequencies and counts may be more realistic then probabilities.
4342 
4343    In some cases (such as for elimination of early exits during full loop
4344    unrolling) the caller can ensure that profile will get consistent
4345    afterwards.  */
4346 
4347 void
force_edge_cold(edge e,bool impossible)4348 force_edge_cold (edge e, bool impossible)
4349 {
4350   profile_count count_sum = profile_count::zero ();
4351   profile_probability prob_sum = profile_probability::never ();
4352   edge_iterator ei;
4353   edge e2;
4354   bool uninitialized_exit = false;
4355 
4356   /* When branch probability guesses are not known, then do nothing.  */
4357   if (!impossible && !e->count ().initialized_p ())
4358     return;
4359 
4360   profile_probability goal = (impossible ? profile_probability::never ()
4361                                     : profile_probability::very_unlikely ());
4362 
4363   /* If edge is already improbably or cold, just return.  */
4364   if (e->probability <= goal
4365       && (!impossible || e->count () == profile_count::zero ()))
4366     return;
4367   FOR_EACH_EDGE (e2, ei, e->src->succs)
4368     if (e2 != e)
4369       {
4370           if (e->flags & EDGE_FAKE)
4371             continue;
4372           if (e2->count ().initialized_p ())
4373             count_sum += e2->count ();
4374           if (e2->probability.initialized_p ())
4375             prob_sum += e2->probability;
4376           else
4377             uninitialized_exit = true;
4378       }
4379 
4380   /* If we are not guessing profiles but have some other edges out,
4381      just assume the control flow goes elsewhere.  */
4382   if (uninitialized_exit)
4383     e->probability = goal;
4384   /* If there are other edges out of e->src, redistribute probabilitity
4385      there.  */
4386   else if (prob_sum > profile_probability::never ())
4387     {
4388       if (!(e->probability < goal))
4389           e->probability = goal;
4390 
4391       profile_probability prob_comp = prob_sum / e->probability.invert ();
4392 
4393       if (dump_file && (dump_flags & TDF_DETAILS))
4394           fprintf (dump_file, "Making edge %i->%i %s by redistributing "
4395                      "probability to other edges.\n",
4396                      e->src->index, e->dest->index,
4397                      impossible ? "impossible" : "cold");
4398       FOR_EACH_EDGE (e2, ei, e->src->succs)
4399           if (e2 != e)
4400             {
4401               e2->probability /= prob_comp;
4402             }
4403       if (current_ir_type () != IR_GIMPLE
4404             && e->src != ENTRY_BLOCK_PTR_FOR_FN (cfun))
4405           update_br_prob_note (e->src);
4406     }
4407   /* If all edges out of e->src are unlikely, the basic block itself
4408      is unlikely.  */
4409   else
4410     {
4411       if (prob_sum == profile_probability::never ())
4412         e->probability = profile_probability::always ();
4413       else
4414           {
4415             if (impossible)
4416               e->probability = profile_probability::never ();
4417             /* If BB has some edges out that are not impossible, we cannot
4418                assume that BB itself is.  */
4419             impossible = false;
4420           }
4421       if (current_ir_type () != IR_GIMPLE
4422             && e->src != ENTRY_BLOCK_PTR_FOR_FN (cfun))
4423           update_br_prob_note (e->src);
4424       if (e->src->count == profile_count::zero ())
4425           return;
4426       if (count_sum == profile_count::zero () && impossible)
4427           {
4428             bool found = false;
4429             if (e->src == ENTRY_BLOCK_PTR_FOR_FN (cfun))
4430               ;
4431             else if (current_ir_type () == IR_GIMPLE)
4432               for (gimple_stmt_iterator gsi = gsi_start_bb (e->src);
4433                    !gsi_end_p (gsi); gsi_next (&gsi))
4434                 {
4435                   if (stmt_can_terminate_bb_p (gsi_stmt (gsi)))
4436                       {
4437                         found = true;
4438                       break;
4439                       }
4440                 }
4441             /* FIXME: Implement RTL path.  */
4442             else
4443               found = true;
4444             if (!found)
4445               {
4446                 if (dump_file && (dump_flags & TDF_DETAILS))
4447                     fprintf (dump_file,
4448                                "Making bb %i impossible and dropping count to 0.\n",
4449                                e->src->index);
4450                 e->src->count = profile_count::zero ();
4451                 FOR_EACH_EDGE (e2, ei, e->src->preds)
4452                     force_edge_cold (e2, impossible);
4453                 return;
4454               }
4455           }
4456 
4457       /* If we did not adjusting, the source basic block has no likely edeges
4458            leaving other direction. In that case force that bb cold, too.
4459            This in general is difficult task to do, but handle special case when
4460            BB has only one predecestor.  This is common case when we are updating
4461            after loop transforms.  */
4462       if (!(prob_sum > profile_probability::never ())
4463             && count_sum == profile_count::zero ()
4464             && single_pred_p (e->src) && e->src->count.to_frequency (cfun)
4465                > (impossible ? 0 : 1))
4466           {
4467             int old_frequency = e->src->count.to_frequency (cfun);
4468             if (dump_file && (dump_flags & TDF_DETAILS))
4469               fprintf (dump_file, "Making bb %i %s.\n", e->src->index,
4470                          impossible ? "impossible" : "cold");
4471             int new_frequency = MIN (e->src->count.to_frequency (cfun),
4472                                            impossible ? 0 : 1);
4473             if (impossible)
4474               e->src->count = profile_count::zero ();
4475             else
4476               e->src->count = e->count ().apply_scale (new_frequency,
4477                                                                  old_frequency);
4478             force_edge_cold (single_pred_edge (e->src), impossible);
4479           }
4480       else if (dump_file && (dump_flags & TDF_DETAILS)
4481                  && maybe_hot_bb_p (cfun, e->src))
4482           fprintf (dump_file, "Giving up on making bb %i %s.\n", e->src->index,
4483                      impossible ? "impossible" : "cold");
4484     }
4485 }
4486 
4487 /* Change E's probability to NEW_E_PROB, redistributing the probabilities
4488    of other outgoing edges proportionally.
4489 
4490    Note that this function does not change the profile counts of any
4491    basic blocks.  The caller must do that instead, using whatever
4492    information it has about the region that needs updating.  */
4493 
4494 void
change_edge_frequency(edge e,profile_probability new_e_prob)4495 change_edge_frequency (edge e, profile_probability new_e_prob)
4496 {
4497   profile_probability old_e_prob = e->probability;
4498   profile_probability old_other_prob = old_e_prob.invert ();
4499   profile_probability new_other_prob = new_e_prob.invert ();
4500 
4501   e->probability = new_e_prob;
4502   profile_probability cumulative_prob = new_e_prob;
4503 
4504   unsigned int num_other = EDGE_COUNT (e->src->succs) - 1;
4505   edge other_e;
4506   edge_iterator ei;
4507   FOR_EACH_EDGE (other_e, ei, e->src->succs)
4508     if (other_e != e)
4509       {
4510           num_other -= 1;
4511           if (num_other == 0)
4512             /* Ensure that the probabilities add up to 1 without
4513                rounding error.  */
4514             other_e->probability = cumulative_prob.invert ();
4515           else
4516             {
4517               other_e->probability /= old_other_prob;
4518               other_e->probability *= new_other_prob;
4519               cumulative_prob += other_e->probability;
4520             }
4521       }
4522 }
4523 
4524 #if CHECKING_P
4525 
4526 namespace selftest {
4527 
4528 /* Test that value range of predictor values defined in predict.def is
4529    within range (50, 100].  */
4530 
4531 struct branch_predictor
4532 {
4533   const char *name;
4534   int probability;
4535 };
4536 
4537 #define DEF_PREDICTOR(ENUM, NAME, HITRATE, FLAGS) { NAME, HITRATE },
4538 
4539 static void
test_prediction_value_range()4540 test_prediction_value_range ()
4541 {
4542   branch_predictor predictors[] = {
4543 #include "predict.def"
4544     { NULL, PROB_UNINITIALIZED }
4545   };
4546 
4547   for (unsigned i = 0; predictors[i].name != NULL; i++)
4548     {
4549       if (predictors[i].probability == PROB_UNINITIALIZED)
4550           continue;
4551 
4552       unsigned p = 100 * predictors[i].probability / REG_BR_PROB_BASE;
4553       ASSERT_TRUE (p >= 50 && p <= 100);
4554     }
4555 }
4556 
4557 #undef DEF_PREDICTOR
4558 
4559 /* Run all of the selfests within this file.  */
4560 
4561 void
predict_cc_tests()4562 predict_cc_tests ()
4563 {
4564   test_prediction_value_range ();
4565 }
4566 
4567 } // namespace selftest
4568 #endif /* CHECKING_P.  */
4569