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Issue 1021053003: Delivering the FIRST_NONEMPTY_PAINT phase changing event to base/ (Closed) Base URL: https://chromium.googlesource.com/chromium/src.git@phase_splitting
Patch Set: Fixing a typo. Created 5 years, 8 months ago
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1 // Copyright (c) 2012 The Chromium Authors. All rights reserved. 1 // Copyright (c) 2012 The Chromium Authors. All rights reserved.
2 // Use of this source code is governed by a BSD-style license that can be 2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file. 3 // found in the LICENSE file.
4 4
5 #include "base/tracked_objects.h" 5 #include "base/tracked_objects.h"
6 6
7 #include <limits.h> 7 #include <limits.h>
8 #include <stdlib.h> 8 #include <stdlib.h>
9 9
10 #include "base/atomicops.h" 10 #include "base/atomicops.h"
11 #include "base/base_switches.h" 11 #include "base/base_switches.h"
12 #include "base/command_line.h" 12 #include "base/command_line.h"
13 #include "base/compiler_specific.h" 13 #include "base/compiler_specific.h"
14 #include "base/debug/leak_annotations.h" 14 #include "base/debug/leak_annotations.h"
15 #include "base/logging.h" 15 #include "base/logging.h"
16 #include "base/process/process_handle.h" 16 #include "base/process/process_handle.h"
17 #include "base/profiler/alternate_timer.h" 17 #include "base/profiler/alternate_timer.h"
18 #include "base/stl_util.h"
18 #include "base/strings/stringprintf.h" 19 #include "base/strings/stringprintf.h"
19 #include "base/third_party/valgrind/memcheck.h" 20 #include "base/third_party/valgrind/memcheck.h"
20 #include "base/tracking_info.h" 21 #include "base/tracking_info.h"
21 22
22 using base::TimeDelta; 23 using base::TimeDelta;
23 24
24 namespace base { 25 namespace base {
25 class TimeDelta; 26 class TimeDelta;
26 } 27 }
27 28
(...skipping 58 matching lines...) Expand 10 before | Expand all | Expand 10 after
86 } 87 }
87 return current_timing_enabled == ENABLED_TIMING; 88 return current_timing_enabled == ENABLED_TIMING;
88 } 89 }
89 90
90 } // namespace 91 } // namespace
91 92
92 //------------------------------------------------------------------------------ 93 //------------------------------------------------------------------------------
93 // DeathData tallies durations when a death takes place. 94 // DeathData tallies durations when a death takes place.
94 95
95 DeathData::DeathData() { 96 DeathData::DeathData() {
96 Clear(); 97 count_ = 0;
98 sample_probability_count_ = 0;
99 run_duration_sum_ = 0;
100 run_duration_max_ = 0;
101 run_duration_sample_ = 0;
102 queue_duration_sum_ = 0;
103 queue_duration_max_ = 0;
104 queue_duration_sample_ = 0;
105 last_phase_snapshot_ = nullptr;
97 } 106 }
98 107
99 DeathData::DeathData(int count) { 108 DeathData::DeathData(int count) : DeathData() {
100 Clear();
101 count_ = count; 109 count_ = count;
102 } 110 }
103 111
112 DeathData::~DeathData() {
113 while (last_phase_snapshot_) {
114 DeathDataPhaseSnapshot* snapshot = last_phase_snapshot_;
115 last_phase_snapshot_ = snapshot->prev;
116 delete snapshot;
117 }
118 }
119
104 // TODO(jar): I need to see if this macro to optimize branching is worth using. 120 // TODO(jar): I need to see if this macro to optimize branching is worth using.
105 // 121 //
106 // This macro has no branching, so it is surely fast, and is equivalent to: 122 // This macro has no branching, so it is surely fast, and is equivalent to:
107 // if (assign_it) 123 // if (assign_it)
108 // target = source; 124 // target = source;
109 // We use a macro rather than a template to force this to inline. 125 // We use a macro rather than a template to force this to inline.
110 // Related code for calculating max is discussed on the web. 126 // Related code for calculating max is discussed on the web.
111 #define CONDITIONAL_ASSIGN(assign_it, target, source) \ 127 #define CONDITIONAL_ASSIGN(assign_it, target, source) \
112 ((target) ^= ((target) ^ (source)) & -static_cast<int32>(assign_it)) 128 ((target) ^= ((target) ^ (source)) & -static_cast<int32>(assign_it))
113 129
114 void DeathData::RecordDeath(const int32 queue_duration, 130 void DeathData::RecordDeath(const int32 queue_duration,
115 const int32 run_duration, 131 const int32 run_duration,
116 const uint32 random_number) { 132 const uint32 random_number) {
117 // We'll just clamp at INT_MAX, but we should note this in the UI as such. 133 // We'll just clamp at INT_MAX, but we should note this in the UI as such.
118 if (count_ < INT_MAX) 134 if (count_ < INT_MAX)
119 ++count_; 135 ++count_;
136 if (sample_probability_count_ < INT_MAX)
137 ++sample_probability_count_;
120 queue_duration_sum_ += queue_duration; 138 queue_duration_sum_ += queue_duration;
121 run_duration_sum_ += run_duration; 139 run_duration_sum_ += run_duration;
122 140
123 if (queue_duration_max_ < queue_duration) 141 if (queue_duration_max_ < queue_duration)
124 queue_duration_max_ = queue_duration; 142 queue_duration_max_ = queue_duration;
125 if (run_duration_max_ < run_duration) 143 if (run_duration_max_ < run_duration)
126 run_duration_max_ = run_duration; 144 run_duration_max_ = run_duration;
127 145
128 // Take a uniformly distributed sample over all durations ever supplied. 146 // Take a uniformly distributed sample over all durations ever supplied during
129 // The probability that we (instead) use this new sample is 1/count_. This 147 // currrent profiling phase.
130 // results in a completely uniform selection of the sample (at least when we 148 // The probability that we (instead) use this new sample is
131 // don't clamp count_... but that should be inconsequentially likely). 149 // 1/sample_probability_count_. This results in a completely uniform selection
132 // We ignore the fact that we correlated our selection of a sample to the run 150 // of the sample (at least when we don't clamp sample_probability_count_...
133 // and queue times (i.e., we used them to generate random_number). 151 // but that should be inconsequentially likely). We ignore the fact that we
134 CHECK_GT(count_, 0); 152 // correlated our selection of a sample to the run and queue times (i.e., we
135 if (0 == (random_number % count_)) { 153 // used them to generate random_number).
154 CHECK_GT(sample_probability_count_, 0);
155 if (0 == (random_number % sample_probability_count_)) {
136 queue_duration_sample_ = queue_duration; 156 queue_duration_sample_ = queue_duration;
137 run_duration_sample_ = run_duration; 157 run_duration_sample_ = run_duration;
138 } 158 }
139 } 159 }
140 160
141 int DeathData::count() const { return count_; } 161 int DeathData::count() const { return count_; }
142 162
143 int32 DeathData::run_duration_sum() const { return run_duration_sum_; } 163 int32 DeathData::run_duration_sum() const { return run_duration_sum_; }
144 164
145 int32 DeathData::run_duration_max() const { return run_duration_max_; } 165 int32 DeathData::run_duration_max() const { return run_duration_max_; }
146 166
147 int32 DeathData::run_duration_sample() const { 167 int32 DeathData::run_duration_sample() const {
148 return run_duration_sample_; 168 return run_duration_sample_;
149 } 169 }
150 170
151 int32 DeathData::queue_duration_sum() const { 171 int32 DeathData::queue_duration_sum() const {
152 return queue_duration_sum_; 172 return queue_duration_sum_;
153 } 173 }
154 174
155 int32 DeathData::queue_duration_max() const { 175 int32 DeathData::queue_duration_max() const {
156 return queue_duration_max_; 176 return queue_duration_max_;
157 } 177 }
158 178
159 int32 DeathData::queue_duration_sample() const { 179 int32 DeathData::queue_duration_sample() const {
160 return queue_duration_sample_; 180 return queue_duration_sample_;
161 } 181 }
162 182
163 void DeathData::Clear() { 183 DeathDataPhaseSnapshot* DeathData::last_phase_snapshot() const {
164 count_ = 0; 184 return last_phase_snapshot_;
165 run_duration_sum_ = 0; 185 }
186
187 void DeathData::OnProfilingPhaseCompleted(int profiling_phase) {
188 // Snapshotting and storing current state.
189 last_phase_snapshot_ = new DeathDataPhaseSnapshot(profiling_phase, *this);
190
191 // Not touching fields for which a delta can be computed by comparing with a
192 // snapshot from previos phase. Resetting other fields. Sample values will be
193 // reset upon next death recording because sample_probability_count_ is set to
194 // 0.
195 sample_probability_count_ = 0;
166 run_duration_max_ = 0; 196 run_duration_max_ = 0;
167 run_duration_sample_ = 0;
168 queue_duration_sum_ = 0;
169 queue_duration_max_ = 0; 197 queue_duration_max_ = 0;
170 queue_duration_sample_ = 0;
171 } 198 }
172 199
173 //------------------------------------------------------------------------------ 200 //------------------------------------------------------------------------------
174 DeathDataSnapshot::DeathDataSnapshot() 201 DeathDataSnapshot::DeathDataSnapshot()
175 : count(-1), 202 : count(-1),
176 run_duration_sum(-1), 203 run_duration_sum(-1),
177 run_duration_max(-1), 204 run_duration_max(-1),
178 run_duration_sample(-1), 205 run_duration_sample(-1),
179 queue_duration_sum(-1), 206 queue_duration_sum(-1),
180 queue_duration_max(-1), 207 queue_duration_max(-1),
181 queue_duration_sample(-1) { 208 queue_duration_sample(-1) {
182 } 209 }
183 210
184 DeathDataSnapshot::DeathDataSnapshot( 211 DeathDataSnapshot::DeathDataSnapshot(const DeathData& death_data)
185 const tracked_objects::DeathData& death_data)
186 : count(death_data.count()), 212 : count(death_data.count()),
187 run_duration_sum(death_data.run_duration_sum()), 213 run_duration_sum(death_data.run_duration_sum()),
188 run_duration_max(death_data.run_duration_max()), 214 run_duration_max(death_data.run_duration_max()),
189 run_duration_sample(death_data.run_duration_sample()), 215 run_duration_sample(death_data.run_duration_sample()),
190 queue_duration_sum(death_data.queue_duration_sum()), 216 queue_duration_sum(death_data.queue_duration_sum()),
191 queue_duration_max(death_data.queue_duration_max()), 217 queue_duration_max(death_data.queue_duration_max()),
192 queue_duration_sample(death_data.queue_duration_sample()) { 218 queue_duration_sample(death_data.queue_duration_sample()) {
193 } 219 }
194 220
195 DeathDataSnapshot::~DeathDataSnapshot() { 221 DeathDataSnapshot::~DeathDataSnapshot() {
196 } 222 }
197 223
224 void DeathDataSnapshot::CalculateDelta(const DeathDataSnapshot& older) {
225 count -= older.count;
226 run_duration_sum -= older.run_duration_sum;
227 queue_duration_sum -= older.queue_duration_sum;
228 }
229
198 //------------------------------------------------------------------------------ 230 //------------------------------------------------------------------------------
199 BirthOnThread::BirthOnThread(const Location& location, 231 BirthOnThread::BirthOnThread(const Location& location,
200 const ThreadData& current) 232 const ThreadData& current)
201 : location_(location), 233 : location_(location),
202 birth_thread_(&current) { 234 birth_thread_(&current) {
203 } 235 }
204 236
205 //------------------------------------------------------------------------------ 237 //------------------------------------------------------------------------------
206 BirthOnThreadSnapshot::BirthOnThreadSnapshot() { 238 BirthOnThreadSnapshot::BirthOnThreadSnapshot() {
207 } 239 }
208 240
209 BirthOnThreadSnapshot::BirthOnThreadSnapshot( 241 BirthOnThreadSnapshot::BirthOnThreadSnapshot(const BirthOnThread& birth)
210 const tracked_objects::BirthOnThread& birth)
211 : location(birth.location()), 242 : location(birth.location()),
212 thread_name(birth.birth_thread()->thread_name()) { 243 thread_name(birth.birth_thread()->thread_name()) {
213 } 244 }
214 245
215 BirthOnThreadSnapshot::~BirthOnThreadSnapshot() { 246 BirthOnThreadSnapshot::~BirthOnThreadSnapshot() {
216 } 247 }
217 248
218 //------------------------------------------------------------------------------ 249 //------------------------------------------------------------------------------
219 Births::Births(const Location& location, const ThreadData& current) 250 Births::Births(const Location& location, const ThreadData& current)
220 : BirthOnThread(location, current), 251 : BirthOnThread(location, current),
(...skipping 157 matching lines...) Expand 10 before | Expand all | Expand 10 after
378 return; 409 return;
379 } 410 }
380 // We must NOT do any allocations during this callback. 411 // We must NOT do any allocations during this callback.
381 // Using the simple linked lists avoids all allocations. 412 // Using the simple linked lists avoids all allocations.
382 DCHECK_EQ(this->next_retired_worker_, reinterpret_cast<ThreadData*>(NULL)); 413 DCHECK_EQ(this->next_retired_worker_, reinterpret_cast<ThreadData*>(NULL));
383 this->next_retired_worker_ = first_retired_worker_; 414 this->next_retired_worker_ = first_retired_worker_;
384 first_retired_worker_ = this; 415 first_retired_worker_ = this;
385 } 416 }
386 417
387 // static 418 // static
388 void ThreadData::Snapshot(ProcessDataSnapshot* process_data_snapshot) { 419 void ThreadData::Snapshot(int current_profiling_phase,
389 ThreadData::SnapshotCurrentPhase( 420 ProcessDataSnapshot* process_data_snapshot) {
390 &process_data_snapshot->phased_process_data_snapshots[0]); 421 BirthCountMap birth_counts;
422
423 // Get an unchanging copy of a ThreadData list.
424 ThreadData* my_list = ThreadData::first();
425
426 // Gather data serially.
427 // This hackish approach *can* get some slighly corrupt tallies, as we are
428 // grabbing values without the protection of a lock, but it has the advantage
429 // of working even with threads that don't have message loops. If a user
430 // sees any strangeness, they can always just run their stats gathering a
431 // second time.
432 for (ThreadData* thread_data = my_list; thread_data;
433 thread_data = thread_data->next()) {
434 thread_data->SnapshotExecutedTasks(
435 current_profiling_phase,
436 &process_data_snapshot->phased_process_data_snapshots, &birth_counts);
437 }
438
439 // Add births that are still active -- i.e. objects that have tallied a birth,
440 // but have not yet tallied a matching death, and hence must be either
441 // running, queued up, or being held in limbo for future posting.
442 for (const auto& birth_count : birth_counts) {
443 if (birth_count.second > 0) {
444 process_data_snapshot
445 ->phased_process_data_snapshots[current_profiling_phase]
446 .tasks.push_back(TaskSnapshot(
447 BirthOnThreadSnapshot(*birth_count.first),
448 DeathDataSnapshot(DeathData(birth_count.second)), "Still_Alive"));
449 }
450 }
451 }
452
453 // static
454 void ThreadData::OnProfilingPhaseCompleted(int profiling_phase) {
455 // Get an unchanging copy of a ThreadData list.
456 ThreadData* my_list = ThreadData::first();
457
458 // Add snapshots for all death datas in all threads serially.
459 // This hackish approach *can* get some slighly corrupt tallies, as we are
460 // grabbing values without the protection of a lock, but it has the advantage
461 // of working even with threads that don't have message loops. Any corruption
462 // shouldn't cause "cascading damage" to anything else (in later phases).
463 for (ThreadData* thread_data = my_list; thread_data;
464 thread_data = thread_data->next()) {
465 thread_data->OnProfilingPhaseCompletionOnThread(profiling_phase);
466 }
391 } 467 }
392 468
393 Births* ThreadData::TallyABirth(const Location& location) { 469 Births* ThreadData::TallyABirth(const Location& location) {
394 BirthMap::iterator it = birth_map_.find(location); 470 BirthMap::iterator it = birth_map_.find(location);
395 Births* child; 471 Births* child;
396 if (it != birth_map_.end()) { 472 if (it != birth_map_.end()) {
397 child = it->second; 473 child = it->second;
398 child->RecordBirth(); 474 child->RecordBirth();
399 } else { 475 } else {
400 child = new Births(location, *this); // Leak this. 476 child = new Births(location, *this); // Leak this.
(...skipping 11 matching lines...) Expand all
412 // Lock since the map may get relocated now, and other threads sometimes 488 // Lock since the map may get relocated now, and other threads sometimes
413 // snapshot it (but they lock before copying it). 489 // snapshot it (but they lock before copying it).
414 base::AutoLock lock(map_lock_); 490 base::AutoLock lock(map_lock_);
415 parent_child_set_.insert(pair); 491 parent_child_set_.insert(pair);
416 } 492 }
417 } 493 }
418 494
419 return child; 495 return child;
420 } 496 }
421 497
422 void ThreadData::TallyADeath(const Births& birth, 498 void ThreadData::TallyADeath(const Births& births,
423 int32 queue_duration, 499 int32 queue_duration,
424 const TaskStopwatch& stopwatch) { 500 const TaskStopwatch& stopwatch) {
425 int32 run_duration = stopwatch.RunDurationMs(); 501 int32 run_duration = stopwatch.RunDurationMs();
426 502
427 // Stir in some randomness, plus add constant in case durations are zero. 503 // Stir in some randomness, plus add constant in case durations are zero.
428 const uint32 kSomePrimeNumber = 2147483647; 504 const uint32 kSomePrimeNumber = 2147483647;
429 random_number_ += queue_duration + run_duration + kSomePrimeNumber; 505 random_number_ += queue_duration + run_duration + kSomePrimeNumber;
430 // An address is going to have some randomness to it as well ;-). 506 // An address is going to have some randomness to it as well ;-).
431 random_number_ ^= static_cast<uint32>(&birth - reinterpret_cast<Births*>(0)); 507 random_number_ ^= static_cast<uint32>(&births - reinterpret_cast<Births*>(0));
432 508
433 // We don't have queue durations without OS timer. OS timer is automatically 509 // We don't have queue durations without OS timer. OS timer is automatically
434 // used for task-post-timing, so the use of an alternate timer implies all 510 // used for task-post-timing, so the use of an alternate timer implies all
435 // queue times are invalid, unless it was explicitly said that we can trust 511 // queue times are invalid, unless it was explicitly said that we can trust
436 // the alternate timer. 512 // the alternate timer.
437 if (kAllowAlternateTimeSourceHandling && 513 if (kAllowAlternateTimeSourceHandling &&
438 now_function_ && 514 now_function_ &&
439 !now_function_is_time_) { 515 !now_function_is_time_) {
440 queue_duration = 0; 516 queue_duration = 0;
441 } 517 }
442 518
443 DeathMap::iterator it = death_map_.find(&birth); 519 DeathMap::iterator it = death_map_.find(&births);
444 DeathData* death_data; 520 DeathData* death_data;
445 if (it != death_map_.end()) { 521 if (it != death_map_.end()) {
446 death_data = &it->second; 522 death_data = &it->second;
447 } else { 523 } else {
448 base::AutoLock lock(map_lock_); // Lock as the map may get relocated now. 524 base::AutoLock lock(map_lock_); // Lock as the map may get relocated now.
449 death_data = &death_map_[&birth]; 525 death_data = &death_map_[&births];
450 } // Release lock ASAP. 526 } // Release lock ASAP.
451 death_data->RecordDeath(queue_duration, run_duration, random_number_); 527 death_data->RecordDeath(queue_duration, run_duration, random_number_);
452 528
453 if (!kTrackParentChildLinks) 529 if (!kTrackParentChildLinks)
454 return; 530 return;
455 if (!parent_stack_.empty()) { // We might get turned off. 531 if (!parent_stack_.empty()) { // We might get turned off.
456 DCHECK_EQ(parent_stack_.top(), &birth); 532 DCHECK_EQ(parent_stack_.top(), &births);
457 parent_stack_.pop(); 533 parent_stack_.pop();
458 } 534 }
459 } 535 }
460 536
461 // static 537 // static
462 Births* ThreadData::TallyABirthIfActive(const Location& location) { 538 Births* ThreadData::TallyABirthIfActive(const Location& location) {
463 if (!TrackingStatus()) 539 if (!TrackingStatus())
464 return NULL; 540 return NULL;
465 ThreadData* current_thread_data = Get(); 541 ThreadData* current_thread_data = Get();
466 if (!current_thread_data) 542 if (!current_thread_data)
467 return NULL; 543 return NULL;
468 return current_thread_data->TallyABirth(location); 544 return current_thread_data->TallyABirth(location);
469 } 545 }
470 546
471 // static 547 // static
472 void ThreadData::TallyRunOnNamedThreadIfTracking( 548 void ThreadData::TallyRunOnNamedThreadIfTracking(
473 const base::TrackingInfo& completed_task, 549 const base::TrackingInfo& completed_task,
474 const TaskStopwatch& stopwatch) { 550 const TaskStopwatch& stopwatch) {
475 // Even if we have been DEACTIVATED, we will process any pending births so 551 // Even if we have been DEACTIVATED, we will process any pending births so
476 // that our data structures (which counted the outstanding births) remain 552 // that our data structures (which counted the outstanding births) remain
477 // consistent. 553 // consistent.
478 const Births* birth = completed_task.birth_tally; 554 const Births* births = completed_task.birth_tally;
479 if (!birth) 555 if (!births)
480 return; 556 return;
481 ThreadData* current_thread_data = stopwatch.GetThreadData(); 557 ThreadData* current_thread_data = stopwatch.GetThreadData();
482 if (!current_thread_data) 558 if (!current_thread_data)
483 return; 559 return;
484 560
485 // Watch out for a race where status_ is changing, and hence one or both 561 // Watch out for a race where status_ is changing, and hence one or both
486 // of start_of_run or end_of_run is zero. In that case, we didn't bother to 562 // of start_of_run or end_of_run is zero. In that case, we didn't bother to
487 // get a time value since we "weren't tracking" and we were trying to be 563 // get a time value since we "weren't tracking" and we were trying to be
488 // efficient by not calling for a genuine time value. For simplicity, we'll 564 // efficient by not calling for a genuine time value. For simplicity, we'll
489 // use a default zero duration when we can't calculate a true value. 565 // use a default zero duration when we can't calculate a true value.
490 TrackedTime start_of_run = stopwatch.StartTime(); 566 TrackedTime start_of_run = stopwatch.StartTime();
491 int32 queue_duration = 0; 567 int32 queue_duration = 0;
492 if (!start_of_run.is_null()) { 568 if (!start_of_run.is_null()) {
493 queue_duration = (start_of_run - completed_task.EffectiveTimePosted()) 569 queue_duration = (start_of_run - completed_task.EffectiveTimePosted())
494 .InMilliseconds(); 570 .InMilliseconds();
495 } 571 }
496 current_thread_data->TallyADeath(*birth, queue_duration, stopwatch); 572 current_thread_data->TallyADeath(*births, queue_duration, stopwatch);
497 } 573 }
498 574
499 // static 575 // static
500 void ThreadData::TallyRunOnWorkerThreadIfTracking( 576 void ThreadData::TallyRunOnWorkerThreadIfTracking(
501 const Births* birth, 577 const Births* births,
502 const TrackedTime& time_posted, 578 const TrackedTime& time_posted,
503 const TaskStopwatch& stopwatch) { 579 const TaskStopwatch& stopwatch) {
504 // Even if we have been DEACTIVATED, we will process any pending births so 580 // Even if we have been DEACTIVATED, we will process any pending births so
505 // that our data structures (which counted the outstanding births) remain 581 // that our data structures (which counted the outstanding births) remain
506 // consistent. 582 // consistent.
507 if (!birth) 583 if (!births)
508 return; 584 return;
509 585
510 // TODO(jar): Support the option to coalesce all worker-thread activity under 586 // TODO(jar): Support the option to coalesce all worker-thread activity under
511 // one ThreadData instance that uses locks to protect *all* access. This will 587 // one ThreadData instance that uses locks to protect *all* access. This will
512 // reduce memory (making it provably bounded), but run incrementally slower 588 // reduce memory (making it provably bounded), but run incrementally slower
513 // (since we'll use locks on TallyABirth and TallyADeath). The good news is 589 // (since we'll use locks on TallyABirth and TallyADeath). The good news is
514 // that the locks on TallyADeath will be *after* the worker thread has run, 590 // that the locks on TallyADeath will be *after* the worker thread has run,
515 // and hence nothing will be waiting for the completion (... besides some 591 // and hence nothing will be waiting for the completion (... besides some
516 // other thread that might like to run). Also, the worker threads tasks are 592 // other thread that might like to run). Also, the worker threads tasks are
517 // generally longer, and hence the cost of the lock may perchance be amortized 593 // generally longer, and hence the cost of the lock may perchance be amortized
518 // over the long task's lifetime. 594 // over the long task's lifetime.
519 ThreadData* current_thread_data = stopwatch.GetThreadData(); 595 ThreadData* current_thread_data = stopwatch.GetThreadData();
520 if (!current_thread_data) 596 if (!current_thread_data)
521 return; 597 return;
522 598
523 TrackedTime start_of_run = stopwatch.StartTime(); 599 TrackedTime start_of_run = stopwatch.StartTime();
524 int32 queue_duration = 0; 600 int32 queue_duration = 0;
525 if (!start_of_run.is_null()) { 601 if (!start_of_run.is_null()) {
526 queue_duration = (start_of_run - time_posted).InMilliseconds(); 602 queue_duration = (start_of_run - time_posted).InMilliseconds();
527 } 603 }
528 current_thread_data->TallyADeath(*birth, queue_duration, stopwatch); 604 current_thread_data->TallyADeath(*births, queue_duration, stopwatch);
529 } 605 }
530 606
531 // static 607 // static
532 void ThreadData::TallyRunInAScopedRegionIfTracking( 608 void ThreadData::TallyRunInAScopedRegionIfTracking(
533 const Births* birth, 609 const Births* births,
534 const TaskStopwatch& stopwatch) { 610 const TaskStopwatch& stopwatch) {
535 // Even if we have been DEACTIVATED, we will process any pending births so 611 // Even if we have been DEACTIVATED, we will process any pending births so
536 // that our data structures (which counted the outstanding births) remain 612 // that our data structures (which counted the outstanding births) remain
537 // consistent. 613 // consistent.
538 if (!birth) 614 if (!births)
539 return; 615 return;
540 616
541 ThreadData* current_thread_data = stopwatch.GetThreadData(); 617 ThreadData* current_thread_data = stopwatch.GetThreadData();
542 if (!current_thread_data) 618 if (!current_thread_data)
543 return; 619 return;
544 620
545 int32 queue_duration = 0; 621 int32 queue_duration = 0;
546 current_thread_data->TallyADeath(*birth, queue_duration, stopwatch); 622 current_thread_data->TallyADeath(*births, queue_duration, stopwatch);
547 }
548
549 // static
550 void ThreadData::SnapshotAllExecutedTasks(
551 ProcessDataPhaseSnapshot* process_data_phase,
552 BirthCountMap* birth_counts) {
553 // Get an unchanging copy of a ThreadData list.
554 ThreadData* my_list = ThreadData::first();
555
556 // Gather data serially.
557 // This hackish approach *can* get some slighly corrupt tallies, as we are
558 // grabbing values without the protection of a lock, but it has the advantage
559 // of working even with threads that don't have message loops. If a user
560 // sees any strangeness, they can always just run their stats gathering a
561 // second time.
562 for (ThreadData* thread_data = my_list;
563 thread_data;
564 thread_data = thread_data->next()) {
565 thread_data->SnapshotExecutedTasks(process_data_phase, birth_counts);
566 }
567 }
568
569 // static
570 void ThreadData::SnapshotCurrentPhase(
571 ProcessDataPhaseSnapshot* process_data_phase) {
572 // Add births that have run to completion to |collected_data|.
573 // |birth_counts| tracks the total number of births recorded at each location
574 // for which we have not seen a death count.
575 BirthCountMap birth_counts;
576 ThreadData::SnapshotAllExecutedTasks(process_data_phase, &birth_counts);
577
578 // Add births that are still active -- i.e. objects that have tallied a birth,
579 // but have not yet tallied a matching death, and hence must be either
580 // running, queued up, or being held in limbo for future posting.
581 for (const auto& birth_count : birth_counts) {
582 if (birth_count.second > 0) {
583 process_data_phase->tasks.push_back(TaskSnapshot(
584 *birth_count.first, DeathData(birth_count.second), "Still_Alive"));
585 }
586 }
587 } 623 }
588 624
589 void ThreadData::SnapshotExecutedTasks( 625 void ThreadData::SnapshotExecutedTasks(
590 ProcessDataPhaseSnapshot* process_data_phase, 626 int current_profiling_phase,
627 PhasedProcessDataSnapshotMap* phased_process_data_snapshots,
591 BirthCountMap* birth_counts) { 628 BirthCountMap* birth_counts) {
592 // Get copy of data, so that the data will not change during the iterations 629 // Get copy of data, so that the data will not change during the iterations
593 // and processing. 630 // and processing.
594 ThreadData::BirthMap birth_map; 631 BirthMap birth_map;
595 ThreadData::DeathMap death_map; 632 DeathsSnapshot deaths;
596 ThreadData::ParentChildSet parent_child_set; 633 ParentChildSet parent_child_set;
597 SnapshotMaps(&birth_map, &death_map, &parent_child_set); 634 SnapshotMaps(current_profiling_phase, &birth_map, &deaths, &parent_child_set);
598
599 for (const auto& death : death_map) {
600 process_data_phase->tasks.push_back(
601 TaskSnapshot(*death.first, death.second, thread_name()));
602 (*birth_counts)[death.first] -= death.first->birth_count();
603 }
604 635
605 for (const auto& birth : birth_map) { 636 for (const auto& birth : birth_map) {
606 (*birth_counts)[birth.second] += birth.second->birth_count(); 637 (*birth_counts)[birth.second] += birth.second->birth_count();
607 } 638 }
608 639
609 if (!kTrackParentChildLinks) 640 for (const auto& death : deaths) {
610 return; 641 (*birth_counts)[death.first] -= death.first->birth_count();
611 642
612 for (const auto& parent_child : parent_child_set) { 643 for (const DeathDataPhaseSnapshot* phase = &death.second; phase;
613 process_data_phase->descendants.push_back( 644 phase = phase->prev) {
614 ParentChildPairSnapshot(parent_child)); 645 DeathDataSnapshot death_data = phase->death_data;
646
647 if (phase->prev)
648 death_data.CalculateDelta(phase->prev->death_data);
649
650 if (death_data.count > 0) {
651 (*phased_process_data_snapshots)[phase->profiling_phase]
652 .tasks.push_back(TaskSnapshot(BirthOnThreadSnapshot(*death.first),
653 death_data, thread_name()));
654 }
655 }
615 } 656 }
616 } 657 }
617 658
618 // This may be called from another thread. 659 // This may be called from another thread.
619 void ThreadData::SnapshotMaps(BirthMap* birth_map, 660 void ThreadData::SnapshotMaps(int profiling_phase,
620 DeathMap* death_map, 661 BirthMap* birth_map,
662 DeathsSnapshot* deaths,
621 ParentChildSet* parent_child_set) { 663 ParentChildSet* parent_child_set) {
622 base::AutoLock lock(map_lock_); 664 base::AutoLock lock(map_lock_);
665
623 for (const auto& birth : birth_map_) 666 for (const auto& birth : birth_map_)
624 (*birth_map)[birth.first] = birth.second; 667 (*birth_map)[birth.first] = birth.second;
625 for (const auto& death : death_map_) 668
626 (*death_map)[death.first] = death.second; 669 for (const auto& death : death_map_) {
670 deaths->push_back(DeathsSnapshot::value_type(
671 death.first, DeathDataPhaseSnapshot(profiling_phase, death.second)));
672 }
627 673
628 if (!kTrackParentChildLinks) 674 if (!kTrackParentChildLinks)
629 return; 675 return;
630 676
631 for (const auto& parent_child : parent_child_set_) 677 for (const auto& parent_child : parent_child_set_)
632 parent_child_set->insert(parent_child); 678 parent_child_set->insert(parent_child);
633 } 679 }
634 680
681 void ThreadData::OnProfilingPhaseCompletionOnThread(int profiling_phase) {
682 base::AutoLock lock(map_lock_);
683
684 for (auto& death : death_map_) {
685 death.second.OnProfilingPhaseCompleted(profiling_phase);
686 }
687 }
688
635 static void OptionallyInitializeAlternateTimer() { 689 static void OptionallyInitializeAlternateTimer() {
636 NowFunction* alternate_time_source = GetAlternateTimeSource(); 690 NowFunction* alternate_time_source = GetAlternateTimeSource();
637 if (alternate_time_source) 691 if (alternate_time_source)
638 ThreadData::SetAlternateTimeSource(alternate_time_source); 692 ThreadData::SetAlternateTimeSource(alternate_time_source);
639 } 693 }
640 694
641 bool ThreadData::Initialize() { 695 bool ThreadData::Initialize() {
642 if (status_ >= DEACTIVATED) 696 if (status_ >= DEACTIVATED)
643 return true; // Someone else did the initialization. 697 return true; // Someone else did the initialization.
644 // Due to racy lazy initialization in tests, we'll need to recheck status_ 698 // Due to racy lazy initialization in tests, we'll need to recheck status_
(...skipping 257 matching lines...) Expand 10 before | Expand all | Expand 10 after
902 956
903 ThreadData* TaskStopwatch::GetThreadData() const { 957 ThreadData* TaskStopwatch::GetThreadData() const {
904 #if DCHECK_IS_ON() 958 #if DCHECK_IS_ON()
905 DCHECK(state_ != CREATED); 959 DCHECK(state_ != CREATED);
906 #endif 960 #endif
907 961
908 return current_thread_data_; 962 return current_thread_data_;
909 } 963 }
910 964
911 //------------------------------------------------------------------------------ 965 //------------------------------------------------------------------------------
966 // DeathDataPhaseSnapshot
967
968 DeathDataPhaseSnapshot::DeathDataPhaseSnapshot(int profiling_phase,
969 const DeathData& death_data)
970 : profiling_phase(profiling_phase),
971 death_data(death_data),
972 prev(death_data.last_phase_snapshot()) {
973 }
974
975 //------------------------------------------------------------------------------
976 // TaskSnapshot
977
912 TaskSnapshot::TaskSnapshot() { 978 TaskSnapshot::TaskSnapshot() {
913 } 979 }
914 980
915 TaskSnapshot::TaskSnapshot(const BirthOnThread& birth, 981 TaskSnapshot::TaskSnapshot(const BirthOnThreadSnapshot& birth,
916 const DeathData& death_data, 982 const DeathDataSnapshot& death_data,
917 const std::string& death_thread_name) 983 const std::string& death_thread_name)
918 : birth(birth), 984 : birth(birth),
919 death_data(death_data), 985 death_data(death_data),
920 death_thread_name(death_thread_name) { 986 death_thread_name(death_thread_name) {
921 } 987 }
922 988
923 TaskSnapshot::~TaskSnapshot() { 989 TaskSnapshot::~TaskSnapshot() {
924 } 990 }
925 991
926 //------------------------------------------------------------------------------ 992 //------------------------------------------------------------------------------
(...skipping 28 matching lines...) Expand all
955 : process_id(base::GetCurrentProcId()) { 1021 : process_id(base::GetCurrentProcId()) {
956 #else 1022 #else
957 : process_id(base::kNullProcessId) { 1023 : process_id(base::kNullProcessId) {
958 #endif 1024 #endif
959 } 1025 }
960 1026
961 ProcessDataSnapshot::~ProcessDataSnapshot() { 1027 ProcessDataSnapshot::~ProcessDataSnapshot() {
962 } 1028 }
963 1029
964 } // namespace tracked_objects 1030 } // namespace tracked_objects
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