1 /*
2 * Copyright (c) 2021 Huawei Device Co., Ltd.
3 * Licensed under the Apache License, Version 2.0 (the "License");
4 * you may not use this file except in compliance with the License.
5 * You may obtain a copy of the License at
6 *
7 * http://www.apache.org/licenses/LICENSE-2.0
8 *
9 * Unless required by applicable law or agreed to in writing, software
10 * distributed under the License is distributed on an "AS IS" BASIS,
11 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12 * See the License for the specific language governing permissions and
13 * limitations under the License.
14 */
15
16 #include "vsync_generator.h"
17 #include "vsync_distributor.h"
18 #include <cstdint>
19 #include <mutex>
20 #include <scoped_bytrace.h>
21 #include <sched.h>
22 #include <sys/resource.h>
23 #include <string>
24 #include <parameters.h>
25 #include "vsync_log.h"
26 #include <ctime>
27 #include <vsync_sampler.h>
28 #include <rs_trace.h>
29 #include "scoped_trace_fmt.h"
30
31 #ifdef COMPOSER_SCHED_ENABLE
32 #include "if_system_ability_manager.h"
33 #include <iservice_registry.h>
34 #include "system_ability_definition.h"
35 #endif
36
37 #if defined(RS_ENABLE_DVSYNC_2)
38 #include "dvsync.h"
39 #endif
40
41 namespace OHOS {
42 namespace Rosen {
43 namespace impl {
44 namespace {
SystemTime()45 static int64_t SystemTime()
46 {
47 timespec t = {};
48 clock_gettime(CLOCK_MONOTONIC, &t);
49 return int64_t(t.tv_sec) * 1000000000LL + t.tv_nsec; // 1000000000ns == 1s
50 }
51
52 // 1.5ms
53 constexpr int64_t MAX_WALEUP_DELAY = 1500000;
54 constexpr int32_t THREAD_PRIORTY = -6;
55 constexpr int32_t SCHED_PRIORITY = 2;
56 constexpr int64_t ERROR_THRESHOLD = 500000;
57 constexpr int32_t MAX_REFRESHRATE_DEVIATION = 5; // ±5Hz
58 constexpr int64_t PERIOD_CHECK_THRESHOLD = 1000000; // 1000000ns == 1.0ms
59 constexpr int64_t DEFAULT_SOFT_VSYNC_PERIOD = 16000000; // 16000000ns == 16ms
60 constexpr int64_t REMAINING_TIME_THRESHOLD = 100000; // 100000ns == 0.1ms
61 constexpr int64_t REMAINING_TIME_THRESHOLD_FOR_LISTENER = 1000000; // 1000000ns == 1ms
62 constexpr int64_t ONE_SECOND_FOR_CALCUTE_FREQUENCY = 1000000000; // 1000000000ns == 1s
63 constexpr uint32_t MAX_LISTENERS_AMOUNT = 2;
64 constexpr uint32_t MAX_ADAPTIVE_PERIOD = 2;
65
66 // minimum ratio of dvsync thread
67 constexpr double DVSYNC_PERIOD_MIN_INTERVAL = 0.6;
68
SetThreadHighPriority()69 static void SetThreadHighPriority()
70 {
71 setpriority(PRIO_PROCESS, 0, THREAD_PRIORTY);
72 struct sched_param param = {0};
73 param.sched_priority = SCHED_PRIORITY;
74 sched_setscheduler(0, SCHED_FIFO, ¶m);
75 }
76
77 }
78
79 std::once_flag VSyncGenerator::createFlag_;
80 sptr<OHOS::Rosen::VSyncGenerator> VSyncGenerator::instance_ = nullptr;
81
CalculateRefreshRate(int64_t period)82 uint32_t CalculateRefreshRate(int64_t period)
83 {
84 static struct {
85 int min;
86 int max;
87 int refreshRate;
88 } rateSections[] = {
89 {30000000, 35000000, 30}, // 30000000ns, 35000000ns
90 {15000000, 18000000, 60}, // 15000000ns, 18000000ns
91 {13000000, 15000000, 72}, // 13000000ns, 15000000ns
92 {10000000, 12000000, 90}, // 10000000ns, 12000000ns
93 {12000000, 13000000, 80}, // 12000000ns, 13000000ns
94 {7500000, 9000000, 120}, // 7500000ns, 9000000ns
95 {6000000, 7500000, 144}}; // 6000000ns, 7500000ns
96 for (const auto& rateSection : rateSections) {
97 if (period > rateSection.min && period < rateSection.max) {
98 return rateSection.refreshRate;
99 }
100 }
101 return 0;
102 }
103
GetInstance()104 sptr<OHOS::Rosen::VSyncGenerator> VSyncGenerator::GetInstance() noexcept
105 {
106 std::call_once(createFlag_, []() {
107 instance_ = new VSyncGenerator();
108 });
109
110 return instance_;
111 }
112
DeleteInstance()113 void VSyncGenerator::DeleteInstance() noexcept
114 {
115 instance_ = nullptr;
116 }
117
VSyncGenerator()118 VSyncGenerator::VSyncGenerator()
119 {
120 period_ = DEFAULT_SOFT_VSYNC_PERIOD;
121 vsyncThreadRunning_ = true;
122 thread_ = std::thread([this] { this->ThreadLoop(); });
123 pthread_setname_np(thread_.native_handle(), "VSyncGenerator");
124 }
125
~VSyncGenerator()126 VSyncGenerator::~VSyncGenerator()
127 {
128 {
129 std::unique_lock<std::mutex> locker(mutex_);
130 vsyncThreadRunning_ = false;
131 }
132
133 if (thread_.joinable()) {
134 con_.notify_all();
135 thread_.join();
136 }
137 }
138
ListenerVsyncEventCB(int64_t occurTimestamp,int64_t nextTimeStamp,int64_t occurReferenceTime,bool isWakeup)139 void VSyncGenerator::ListenerVsyncEventCB(int64_t occurTimestamp, int64_t nextTimeStamp,
140 int64_t occurReferenceTime, bool isWakeup)
141 {
142 SCOPED_DEBUG_TRACE_FMT("occurTimestamp:%ld, nextTimeStamp:%ld", occurTimestamp, nextTimeStamp);
143 std::vector<Listener> listeners;
144 uint32_t vsyncMaxRefreshRate = 360;
145 {
146 std::unique_lock<std::mutex> locker(mutex_);
147 vsyncMaxRefreshRate = vsyncMaxRefreshRate_;
148 int64_t newOccurTimestamp = SystemTime();
149 if (isWakeup) {
150 UpdateWakeupDelay(newOccurTimestamp, nextTimeStamp);
151 }
152 if (vsyncMode_ == VSYNC_MODE_LTPO) {
153 listeners = GetListenerTimeoutedLTPO(occurTimestamp, occurReferenceTime);
154 } else {
155 listeners = GetListenerTimeouted(newOccurTimestamp, occurTimestamp, occurReferenceTime);
156 }
157 expectTimeFlag_ = false;
158 }
159 RS_TRACE_NAME_FMT("GenerateVsyncCount:%lu, period:%ld, currRefreshRate_:%u, vsyncMode_:%d",
160 listeners.size(), periodRecord_, currRefreshRate_, vsyncMode_);
161 for (uint32_t i = 0; i < listeners.size(); i++) {
162 RS_TRACE_NAME_FMT("listener phase is %ld", listeners[i].phase_);
163 if (listeners[i].callback_ != nullptr) {
164 listeners[i].callback_->OnVSyncEvent(listeners[i].lastTime_,
165 periodRecord_, currRefreshRate_, vsyncMode_, vsyncMaxRefreshRate);
166 }
167 }
168 }
169
ThreadLoop()170 void VSyncGenerator::ThreadLoop()
171 {
172 #ifdef COMPOSER_SCHED_ENABLE
173 SubScribeSystemAbility();
174 #endif
175 // set thread priorty
176 SetThreadHighPriority();
177
178 int64_t occurTimestamp = 0;
179 int64_t nextTimeStamp = 0;
180 int64_t occurReferenceTime = 0;
181 while (true) {
182 {
183 std::unique_lock<std::mutex> locker(mutex_);
184 if (vsyncThreadRunning_ == false) {
185 break;
186 }
187 UpdateVSyncModeLocked();
188 occurReferenceTime = referenceTime_;
189 phaseRecord_ = phase_;
190 periodRecord_ = period_;
191 if (period_ == 0) {
192 ScopedBytrace func("VSyncGenerator: period not valid");
193 if (vsyncThreadRunning_ == true) {
194 con_.wait(locker);
195 }
196 continue;
197 }
198 occurTimestamp = SystemTime();
199 nextTimeStamp = ComputeNextVSyncTimeStamp(occurTimestamp, occurReferenceTime);
200 if (nextTimeStamp == INT64_MAX) {
201 ScopedBytrace func("VSyncGenerator: there has no request to be processed");
202 if (vsyncThreadRunning_ == true) {
203 con_.wait(locker);
204 }
205 continue;
206 } else if (vsyncMode_ == VSYNC_MODE_LTPO &&
207 UpdateChangeDataLocked(occurTimestamp, occurReferenceTime, nextTimeStamp)) {
208 ScopedBytrace func("VSyncGenerator: LTPO mode change");
209 bool clearAllSamplesFlag = clearAllSamplesFlag_;
210 clearAllSamplesFlag_ = false;
211 locker.unlock();
212 ClearAllSamplesInternal(clearAllSamplesFlag);
213 if (appVSyncDistributor_ != nullptr) {
214 appVSyncDistributor_->RecordVsyncModeChange(currRefreshRate_, period_);
215 }
216 if (rsVSyncDistributor_ != nullptr) {
217 rsVSyncDistributor_->RecordVsyncModeChange(currRefreshRate_, period_);
218 }
219 continue;
220 }
221 }
222
223 WaitForTimeout(occurTimestamp, nextTimeStamp, occurReferenceTime);
224 }
225 }
226
WaitForTimeout(int64_t occurTimestamp,int64_t nextTimeStamp,int64_t occurReferenceTime)227 void VSyncGenerator::WaitForTimeout(int64_t occurTimestamp, int64_t nextTimeStamp, int64_t occurReferenceTime)
228 {
229 bool isWakeup = false;
230 if (occurTimestamp < nextTimeStamp) {
231 if (nextTimeStamp - occurTimestamp > periodRecord_ * 3 / 2) { // 3/2 means no more than 1.5 period
232 RS_TRACE_NAME_FMT("WaitForTimeout occurTimestamp:%ld, nextTimeStamp:%ld", occurTimestamp, nextTimeStamp);
233 }
234 std::unique_lock<std::mutex> lck(waitForTimeoutMtx_);
235 nextTimeStamp_ = nextTimeStamp;
236 auto err = waitForTimeoutCon_.wait_for(lck, std::chrono::nanoseconds(nextTimeStamp - occurTimestamp));
237 if (err == std::cv_status::timeout) {
238 isWakeup = true;
239 } else {
240 ScopedBytrace func("VSyncGenerator::ThreadLoop : vsync generator was interrupted while waitting");
241 return;
242 }
243 }
244 ListenerVsyncEventCB(occurTimestamp, nextTimeStamp, occurReferenceTime, isWakeup);
245 }
246
WaitForTimeoutConNotifyLocked()247 void VSyncGenerator::WaitForTimeoutConNotifyLocked()
248 {
249 int64_t curTime = SystemTime();
250 if (curTime <= 0 || nextTimeStamp_ <= 0) {
251 return;
252 }
253 int64_t remainingTime = nextTimeStamp_ - curTime;
254 if (remainingTime > REMAINING_TIME_THRESHOLD) {
255 waitForTimeoutCon_.notify_all();
256 }
257 }
258
WaitForTimeoutConNotifyLockedForListener()259 void VSyncGenerator::WaitForTimeoutConNotifyLockedForListener()
260 {
261 int64_t curTime = SystemTime();
262 if (curTime <= 0 || nextTimeStamp_ <= 0) {
263 return;
264 }
265 int64_t remainingTime = nextTimeStamp_ - curTime;
266 if (remainingTime > REMAINING_TIME_THRESHOLD_FOR_LISTENER) {
267 waitForTimeoutCon_.notify_all();
268 }
269 }
270
ChangeListenerOffsetInternal()271 bool VSyncGenerator::ChangeListenerOffsetInternal()
272 {
273 if (changingPhaseOffset_.cb == nullptr) {
274 return true;
275 }
276 auto it = listeners_.begin();
277 for (; it < listeners_.end(); it++) {
278 if (it->callback_ == changingPhaseOffset_.cb) {
279 break;
280 }
281 }
282 int64_t phaseOffset = pulse_ * changingPhaseOffset_.phaseByPulseNum;
283 if (it != listeners_.end()) {
284 it->phase_ = phaseOffset;
285 }
286
287 it = listenersRecord_.begin();
288 for (; it < listenersRecord_.end(); it++) {
289 if (it->callback_ == changingPhaseOffset_.cb) {
290 break;
291 }
292 }
293 if (it == listenersRecord_.end()) {
294 return false;
295 }
296 if (it->callback_ != nullptr) {
297 it->callback_->OnPhaseOffsetChanged(phaseOffset);
298 }
299 changingPhaseOffset_ = {}; // reset
300 return true;
301 }
302
ChangeListenerRefreshRatesInternal()303 bool VSyncGenerator::ChangeListenerRefreshRatesInternal()
304 {
305 if (changingRefreshRates_.cb == nullptr) {
306 return true;
307 }
308 auto it = listenersRecord_.begin();
309 for (; it < listenersRecord_.end(); it++) {
310 if (it->callback_ == changingRefreshRates_.cb) {
311 break;
312 }
313 }
314 if (it == listenersRecord_.end()) {
315 return false;
316 }
317 if (it->callback_ != nullptr) {
318 it->callback_->OnConnsRefreshRateChanged(changingRefreshRates_.refreshRates);
319 }
320 // reset
321 changingRefreshRates_.cb = nullptr;
322 changingRefreshRates_.refreshRates.clear();
323 changingRefreshRates_ = {};
324 return true;
325 }
326
UpdateWakeupDelay(int64_t occurTimestamp,int64_t nextTimeStamp)327 void VSyncGenerator::UpdateWakeupDelay(int64_t occurTimestamp, int64_t nextTimeStamp)
328 {
329 // 63, 1 / 64
330 wakeupDelay_ = ((wakeupDelay_ * 63) + (occurTimestamp - nextTimeStamp)) / 64;
331 wakeupDelay_ = wakeupDelay_ > MAX_WALEUP_DELAY ? MAX_WALEUP_DELAY : wakeupDelay_;
332 }
333
ComputeNextVSyncTimeStamp(int64_t now,int64_t referenceTime)334 int64_t VSyncGenerator::ComputeNextVSyncTimeStamp(int64_t now, int64_t referenceTime)
335 {
336 int64_t nextVSyncTime = INT64_MAX;
337 for (uint32_t i = 0; i < listeners_.size(); i++) {
338 int64_t t = ComputeListenerNextVSyncTimeStamp(listeners_[i], now, referenceTime);
339 if (t < nextVSyncTime) {
340 nextVSyncTime = t;
341 }
342 }
343 // Start of DVSync
344 ComputeDVSyncListenerTimeStamp(dvsyncListener_, now, nextVSyncTime);
345 // End of DVSync
346 return nextVSyncTime;
347 }
348
349 // Start of DVSync
ComputeDVSyncListenerTimeStamp(const Listener & listener,int64_t now,int64_t & nextVSyncTime)350 void VSyncGenerator::ComputeDVSyncListenerTimeStamp(const Listener& listener, int64_t now, int64_t &nextVSyncTime)
351 {
352 #if defined(RS_ENABLE_DVSYNC_2)
353 int64_t t = INT64_MAX;
354 DVSync::Instance().UpdateReferenceTimeAndPeriod(isLtpoNeedChange_, occurDvsyncReferenceTime_, dvsyncPeriodRecord_);
355 if (dvsyncPeriodRecord_ != 0 && listener.callback_ != nullptr) {
356 t = ComputeDVSyncListenerNextVSyncTimeStamp(listener, now, occurDvsyncReferenceTime_, dvsyncPeriodRecord_);
357 nextVSyncTime = t < nextVSyncTime? t : nextVSyncTime;
358 RS_TRACE_NAME_FMT("DVSync::UiDVSync ComputeNextVSyncTimeStamp t:%ld, dvsyncPeriod:%ld, dvsyncReferenceTime:%ld",
359 t, dvsyncPeriodRecord_, occurDvsyncReferenceTime_);
360 }
361 #endif
362 }
363
SetCurrentRefreshRate(uint32_t currRefreshRate,uint32_t lastRefreshRate)364 int64_t VSyncGenerator::SetCurrentRefreshRate(uint32_t currRefreshRate, uint32_t lastRefreshRate)
365 {
366 int64_t delayTime = 0;
367 #if defined(RS_ENABLE_DVSYNC_2)
368 std::lock_guard<std::mutex> locker(mutex_);
369 delayTime = DVSync::Instance().SetCurrentRefreshRate(currRefreshRate, lastRefreshRate);
370 if (currRefreshRate != 0 && delayTime != 0) {
371 WaitForTimeoutConNotifyLocked();
372 isLtpoNeedChange_ = true;
373 }
374 #endif
375 RS_TRACE_NAME_FMT("DVSync::UiDVSync setCurrentRefreshRate isLtpoNeedChange:%d, currRefreshRate:%u, delayTime:%ld",
376 isLtpoNeedChange_, currRefreshRate, delayTime);
377 return delayTime;
378 }
379
DVSyncRateChanged(uint32_t currRefreshRate,bool & frameRateChanged,bool needChangeDssRefreshRate)380 bool VSyncGenerator::DVSyncRateChanged(uint32_t currRefreshRate, bool &frameRateChanged,
381 bool needChangeDssRefreshRate)
382 {
383 bool isNeedDvsyncDelay = false;
384 #if defined(RS_ENABLE_DVSYNC_2)
385 uint32_t dvsyncRate = 0;
386 bool dvsyncRateChanged = DVSync::Instance().DVSyncRateChanged(currRefreshRate, dvsyncRate);
387 if (dvsyncRate == 0) {
388 isNeedDvsyncDelay = needChangeDssRefreshRate;
389 } else {
390 frameRateChanged = dvsyncRateChanged;
391 isNeedDvsyncDelay = dvsyncRateChanged;
392 }
393 RS_OPTIONAL_TRACE_NAME_FMT("isNeedDvsyncDelay: %d, frameRateChanged: %d, needChangeDssRefreshRate: %d.",
394 isNeedDvsyncDelay, frameRateChanged, needChangeDssRefreshRate);
395 #endif
396 return isNeedDvsyncDelay;
397 }
398
CollectDVSyncListener(const Listener & listener,int64_t now,std::vector<VSyncGenerator::Listener> & ret)399 int64_t VSyncGenerator::CollectDVSyncListener(const Listener &listener, int64_t now,
400 std::vector<VSyncGenerator::Listener> &ret)
401 {
402 int64_t t = INT64_MAX;
403 if (dvsyncPeriodRecord_!= 0 && listener.callback_!= nullptr) {
404 t = ComputeDVSyncListenerNextVSyncTimeStamp(listener, now, occurDvsyncReferenceTime_, dvsyncPeriodRecord_);
405 if (t - SystemTime() < ERROR_THRESHOLD) {
406 dvsyncListener_.lastTime_ = t;
407 ret.push_back(dvsyncListener_);
408 #if defined(RS_ENABLE_DVSYNC_2)
409 DVSync::Instance().SetToCurrentPeriod();
410 #endif
411 RS_TRACE_NAME_FMT("DVSync::UiDVSync CollectDVSyncListener t:%ld, dvsyncPeriod:%ld, "
412 "dvsyncReferenceTime:%ld", t, dvsyncPeriodRecord_, occurDvsyncReferenceTime_);
413 }
414 }
415 return t;
416 }
417
ComputeDVSyncListenerNextVSyncTimeStamp(const Listener & listener,int64_t now,int64_t referenceTime,int64_t period)418 int64_t VSyncGenerator::ComputeDVSyncListenerNextVSyncTimeStamp(const Listener &listener, int64_t now,
419 int64_t referenceTime, int64_t period)
420 {
421 if (period == 0) {
422 return INT64_MAX;
423 }
424 int64_t lastVSyncTime = listener.lastTime_ + wakeupDelay_;
425 if (now < lastVSyncTime) {
426 now = lastVSyncTime;
427 }
428 now -= referenceTime;
429 int64_t phase = phaseRecord_ + listener.phase_;
430 now -= phase;
431 if (now < 0) {
432 if (vsyncMode_ == VSYNC_MODE_LTPO) {
433 if (expectTimeFlag_ || refreshRateIsChanged_) { // Ensure that nextTime is not earlier than referenceTime.
434 now += ((-now) / period) * period;
435 }
436 now -= period;
437 } else {
438 now = -period;
439 }
440 }
441 int64_t numPeriod = now / period;
442 int64_t nextTime = (numPeriod + 1) * period + phase;
443 nextTime += referenceTime;
444 int64_t threshold = static_cast<int64_t>(DVSYNC_PERIOD_MIN_INTERVAL * static_cast<double>(period));
445 if (nextTime - listener.lastTime_ < threshold) {
446 RS_TRACE_NAME_FMT("VSyncGenerator::ComputeDVSyncListenerNextVSyncTimeStamp "
447 "add one more period:%ld, threshold:%ld", period, threshold);
448 nextTime += period;
449 }
450 nextTime -= wakeupDelay_;
451 return nextTime;
452 }
453
AddDVSyncListener(int64_t phase,const sptr<OHOS::Rosen::VSyncGenerator::Callback> & cb)454 VsyncError VSyncGenerator::AddDVSyncListener(int64_t phase, const sptr<OHOS::Rosen::VSyncGenerator::Callback>& cb)
455 {
456 ScopedBytrace func("AddDVSyncListener");
457 std::lock_guard<std::mutex> locker(mutex_);
458 if (cb == nullptr) {
459 return VSYNC_ERROR_INVALID_ARGUMENTS;
460 }
461 Listener listener;
462 listener.phase_ = phase;
463 listener.callback_ = cb;
464 listener.lastTime_ = SystemTime() - period_ + phase_;
465 dvsyncListener_ = listener;
466 con_.notify_all();
467 WaitForTimeoutConNotifyLocked();
468 return VSYNC_ERROR_OK;
469 }
470
IsUiDvsyncOn()471 bool VSyncGenerator::IsUiDvsyncOn()
472 {
473 if (rsVSyncDistributor_ != nullptr) {
474 return rsVSyncDistributor_->IsUiDvsyncOn();
475 }
476 return false;
477 }
478
RemoveDVSyncListener(const sptr<OHOS::Rosen::VSyncGenerator::Callback> & cb)479 VsyncError VSyncGenerator::RemoveDVSyncListener(const sptr<OHOS::Rosen::VSyncGenerator::Callback>& cb)
480 {
481 ScopedBytrace func("RemoveDVSyncListener");
482 std::lock_guard<std::mutex> locker(mutex_);
483 if (cb == nullptr) {
484 return VSYNC_ERROR_INVALID_ARGUMENTS;
485 }
486 dvsyncListener_ = {0, nullptr, 0};
487 return VSYNC_ERROR_OK;
488 }
489 // End of DVSync
490
CheckTimingCorrect(int64_t now,int64_t referenceTime,int64_t nextVSyncTime)491 bool VSyncGenerator::CheckTimingCorrect(int64_t now, int64_t referenceTime, int64_t nextVSyncTime)
492 {
493 bool isTimingCorrect = false;
494 for (uint32_t i = 0; i < listeners_.size(); i++) {
495 int64_t t = ComputeListenerNextVSyncTimeStamp(listeners_[i], now, referenceTime);
496 if ((t - nextVSyncTime < ERROR_THRESHOLD) && (listeners_[i].isRS_ || listeners_[i].phase_ == 0)) {
497 isTimingCorrect = true;
498 }
499 }
500 return isTimingCorrect;
501 }
502
UpdateChangeDataLocked(int64_t now,int64_t referenceTime,int64_t nextVSyncTime)503 bool VSyncGenerator::UpdateChangeDataLocked(int64_t now, int64_t referenceTime, int64_t nextVSyncTime)
504 {
505 bool modelChanged = false;
506
507 // change referenceTime
508 if (expectNextVsyncTime_ > 0) {
509 RS_TRACE_NAME_FMT("UpdateChangeDataLocked, expectNextVsyncTime_:%ld", expectNextVsyncTime_);
510 nextVSyncTime = expectNextVsyncTime_;
511 expectNextVsyncTime_ = 0;
512 referenceTime_ = nextVSyncTime;
513 modelChanged = true;
514 expectTimeFlag_ = true;
515 } else {
516 if (!CheckTimingCorrect(now, referenceTime, nextVSyncTime)) {
517 return false;
518 }
519 }
520
521 // update generate refreshRate
522 if (needChangeGeneratorRefreshRate_) {
523 currRefreshRate_ = changingGeneratorRefreshRate_;
524 period_ = pulse_ * static_cast<int64_t>(vsyncMaxRefreshRate_ / currRefreshRate_);
525 referenceTime_ = nextVSyncTime;
526 changingGeneratorRefreshRate_ = 0; // reset
527 needChangeGeneratorRefreshRate_ = false;
528 refreshRateIsChanged_ = true;
529 frameRateChanging_ = true;
530 ScopedBytrace trace("frameRateChanging_ = true");
531 targetPeriod_ = period_;
532 clearAllSamplesFlag_ = true;
533 modelChanged = true;
534 }
535
536 // update phaseOffset
537 if (needChangePhaseOffset_) {
538 bool offsetChangedSucceed = ChangeListenerOffsetInternal();
539 if (offsetChangedSucceed) {
540 needChangePhaseOffset_ = false;
541 modelChanged = true;
542 }
543 }
544
545 // update VSyncConnections refreshRates
546 if (needChangeRefreshRates_) {
547 bool refreshRatesChangedSucceed = ChangeListenerRefreshRatesInternal();
548 if (refreshRatesChangedSucceed) {
549 needChangeRefreshRates_ = false;
550 modelChanged = true;
551 }
552 }
553
554 return modelChanged;
555 }
556
ClearAllSamplesInternal(bool clearAllSamplesFlag)557 void VSyncGenerator::ClearAllSamplesInternal(bool clearAllSamplesFlag)
558 {
559 if (clearAllSamplesFlag) {
560 CreateVSyncSampler()->ClearAllSamples();
561 }
562 }
563
UpdateVSyncModeLocked()564 void VSyncGenerator::UpdateVSyncModeLocked()
565 {
566 if (pendingVsyncMode_ != VSYNC_MODE_INVALID) {
567 vsyncMode_ = pendingVsyncMode_;
568 pendingVsyncMode_ = VSYNC_MODE_INVALID;
569 }
570 }
571
ComputeListenerNextVSyncTimeStamp(const Listener & listener,int64_t now,int64_t referenceTime)572 int64_t VSyncGenerator::ComputeListenerNextVSyncTimeStamp(const Listener& listener, int64_t now, int64_t referenceTime)
573 {
574 int64_t lastVSyncTime = listener.lastTime_ + wakeupDelay_;
575 if (now < lastVSyncTime) {
576 now = lastVSyncTime;
577 }
578
579 now -= referenceTime;
580 int64_t phase = phaseRecord_ + listener.phase_;
581 now -= phase;
582 if (now < 0) {
583 if (vsyncMode_ == VSYNC_MODE_LTPO) {
584 if (expectTimeFlag_ || refreshRateIsChanged_) { // Ensure that nextTime is not earlier than referenceTime.
585 now += ((-now) / periodRecord_) * periodRecord_;
586 }
587 now -= periodRecord_;
588 } else {
589 now = -periodRecord_;
590 }
591 }
592 int64_t numPeriod = now / periodRecord_;
593 int64_t nextTime = (numPeriod + 1) * periodRecord_ + phase;
594 nextTime += referenceTime;
595
596 // 3 / 5 and 1 / 10 are just empirical value
597 int64_t threshold = refreshRateIsChanged_ ? (1 * periodRecord_ / 10) : (3 * periodRecord_ / 5);
598 // between 8000000(8ms) and 8500000(8.5ms)
599 if (!refreshRateIsChanged_ && frameRateChanging_ && periodRecord_ > 8000000 && periodRecord_ < 8500000) {
600 threshold = 4 * periodRecord_ / 5; // 4 / 5 is an empirical value
601 }
602 // 3 / 5 just empirical value
603 if (((vsyncMode_ == VSYNC_MODE_LTPS) && (nextTime - listener.lastTime_ < (3 * periodRecord_ / 5))) ||
604 ((vsyncMode_ == VSYNC_MODE_LTPO) && (nextTime - listener.lastTime_ < threshold))) {
605 RS_TRACE_NAME_FMT("ComputeListenerNextVSyncTimeStamp add one more period:%ld, threshold:%ld",
606 periodRecord_, threshold);
607 nextTime += periodRecord_;
608 }
609
610 nextTime -= wakeupDelay_;
611 return nextTime;
612 }
613
GetListenerTimeouted(int64_t now,int64_t occurTimestamp,int64_t referenceTime)614 std::vector<VSyncGenerator::Listener> VSyncGenerator::GetListenerTimeouted(
615 int64_t now, int64_t occurTimestamp, int64_t referenceTime)
616 {
617 std::vector<VSyncGenerator::Listener> ret;
618 for (uint32_t i = 0; i < listeners_.size(); i++) {
619 int64_t t = ComputeListenerNextVSyncTimeStamp(listeners_[i], occurTimestamp, referenceTime);
620 if (t < now || (t - now < ERROR_THRESHOLD)) {
621 listeners_[i].lastTime_ = t;
622 ret.push_back(listeners_[i]);
623 }
624 }
625 return ret;
626 }
627
GetListenerTimeoutedLTPO(int64_t now,int64_t referenceTime)628 std::vector<VSyncGenerator::Listener> VSyncGenerator::GetListenerTimeoutedLTPO(int64_t now, int64_t referenceTime)
629 {
630 std::vector<VSyncGenerator::Listener> ret;
631 for (uint32_t i = 0; i < listeners_.size(); i++) {
632 int64_t t = ComputeListenerNextVSyncTimeStamp(listeners_[i], now, referenceTime);
633 if (t - SystemTime() < ERROR_THRESHOLD) {
634 listeners_[i].lastTime_ = t;
635 ret.push_back(listeners_[i]);
636 }
637 }
638 // Start of DVSync
639 CollectDVSyncListener(dvsyncListener_, now, ret);
640 // End of DVSync
641 refreshRateIsChanged_ = false;
642 return ret;
643 }
644
UpdatePeriodLocked(int64_t period)645 VsyncError VSyncGenerator::UpdatePeriodLocked(int64_t period)
646 {
647 VsyncError ret = VSYNC_ERROR_OK;
648 uint32_t refreshRate = JudgeRefreshRateLocked(period);
649 if ((pendingVsyncMode_ == VSYNC_MODE_LTPO) || (vsyncMode_ == VSYNC_MODE_LTPO)) {
650 if ((refreshRate != 0) && ((currRefreshRate_ == refreshRate) || currRefreshRate_ == 0)) {
651 period_ = period;
652 } else {
653 RS_TRACE_NAME_FMT("update period failed, refreshRate:%u, currRefreshRate_:%d",
654 refreshRate, currRefreshRate_);
655 VLOGE("update period failed, refreshRate:%{public}u, currRefreshRate_:%{public}u, period:" VPUBI64,
656 refreshRate, currRefreshRate_, period);
657 ret = VSYNC_ERROR_API_FAILED;
658 }
659 } else {
660 if (period != 0) {
661 period_ = period;
662 } else {
663 ret = VSYNC_ERROR_API_FAILED;
664 }
665 }
666 return ret;
667 }
668
UpdateReferenceTimeLocked(int64_t referenceTime)669 VsyncError VSyncGenerator::UpdateReferenceTimeLocked(int64_t referenceTime)
670 {
671 if ((pendingVsyncMode_ == VSYNC_MODE_LTPO) || (vsyncMode_ == VSYNC_MODE_LTPO)) {
672 referenceTime_ = referenceTime - referenceTimeOffsetPulseNum_ * pulse_;
673 } else {
674 referenceTime_ = referenceTime;
675 }
676 return VSYNC_ERROR_OK;
677 }
678
SubScribeSystemAbility()679 void VSyncGenerator::SubScribeSystemAbility()
680 {
681 VLOGI("%{public}s", __func__);
682 sptr<ISystemAbilityManager> systemAbilityManager =
683 SystemAbilityManagerClient::GetInstance().GetSystemAbilityManager();
684 if (!systemAbilityManager) {
685 VLOGE("%{public}s failed to get system ability manager client", __func__);
686 return;
687 }
688 std::string threadName = "VSyncGenerator";
689 std::string strUid = std::to_string(getuid());
690 std::string strPid = std::to_string(getpid());
691 std::string strTid = std::to_string(gettid());
692
693 saStatusChangeListener_ = new VSyncSystemAbilityListener(threadName, strUid, strPid, strTid);
694 int32_t ret = systemAbilityManager->SubscribeSystemAbility(RES_SCHED_SYS_ABILITY_ID, saStatusChangeListener_);
695 if (ret != ERR_OK) {
696 VLOGE("%{public}s subscribe system ability %{public}d failed.", __func__, RES_SCHED_SYS_ABILITY_ID);
697 saStatusChangeListener_ = nullptr;
698 }
699 }
700
UpdateMode(int64_t period,int64_t phase,int64_t referenceTime)701 VsyncError VSyncGenerator::UpdateMode(int64_t period, int64_t phase, int64_t referenceTime)
702 {
703 std::lock_guard<std::mutex> locker(mutex_);
704 RS_TRACE_NAME_FMT("UpdateMode, period:%ld, phase:%ld, referenceTime:%ld, referenceTimeOffsetPulseNum_:%d",
705 period, phase, referenceTime, referenceTimeOffsetPulseNum_);
706 if (period < 0 || referenceTime < 0) {
707 VLOGE("wrong parameter, period:" VPUBI64 ", referenceTime:" VPUBI64, period, referenceTime);
708 return VSYNC_ERROR_INVALID_ARGUMENTS;
709 }
710 phase_ = phase;
711 if (period == 0 || UpdatePeriodLocked(period) == VSYNC_ERROR_OK) {
712 UpdateReferenceTimeLocked(referenceTime);
713 }
714 startRefresh_ = false;
715 con_.notify_all();
716 return VSYNC_ERROR_OK;
717 }
718
NeedPreexecuteAndUpdateTs(int64_t & timestamp,int64_t & period,int64_t & offset,int64_t lastVsyncTime)719 bool VSyncGenerator::NeedPreexecuteAndUpdateTs(
720 int64_t& timestamp, int64_t& period, int64_t& offset, int64_t lastVsyncTime)
721 {
722 std::lock_guard<std::mutex> locker(mutex_);
723 int64_t now = SystemTime();
724 offset = (now - lastVsyncTime) % period_;
725 if (period_ - offset > PERIOD_CHECK_THRESHOLD) {
726 timestamp = now;
727 period = period_;
728 RS_TRACE_NAME_FMT("NeedPreexecuteAndUpdateTs, new referenceTime:%ld, timestamp:%ld, period:%ld,",
729 referenceTime_, timestamp, period);
730 return true;
731 }
732 return false;
733 }
734
AddListener(const sptr<OHOS::Rosen::VSyncGenerator::Callback> & cb,bool isRS,bool isUrgent)735 VsyncError VSyncGenerator::AddListener(
736 const sptr<OHOS::Rosen::VSyncGenerator::Callback>& cb, bool isRS, bool isUrgent)
737 {
738 ScopedBytrace func("AddListener");
739 std::lock_guard<std::mutex> locker(mutex_);
740 if (cb == nullptr) {
741 VLOGE("AddListener failed, cb is null.");
742 return VSYNC_ERROR_INVALID_ARGUMENTS;
743 }
744 for (auto it = listeners_.begin(); it < listeners_.end(); ++it) {
745 if (it->callback_ == cb) {
746 VLOGI("this listener has been added.");
747 return VSYNC_ERROR_OK;
748 }
749 }
750 Listener listener;
751 listener.phase_ = cb->GetPhaseOffset();
752 listener.callback_ = cb;
753 listener.lastTime_ = isUrgent ? SystemTime() : SystemTime() - period_ + phase_;
754 listener.isRS_ = isRS;
755
756 listeners_.push_back(listener);
757
758 if (listeners_.size() > MAX_LISTENERS_AMOUNT) {
759 VLOGE("AddListener, listeners size is out of range, size = %{public}zu", listeners_.size());
760 }
761
762 size_t i = 0;
763 for (; i < listenersRecord_.size(); i++) {
764 if (listener.callback_ == listenersRecord_[i].callback_) {
765 break;
766 }
767 }
768 if (i == listenersRecord_.size()) {
769 listenersRecord_.push_back(listener);
770 }
771 con_.notify_all();
772 WaitForTimeoutConNotifyLockedForListener();
773 return VSYNC_ERROR_OK;
774 }
775
JudgeRefreshRateLocked(int64_t period)776 uint32_t VSyncGenerator::JudgeRefreshRateLocked(int64_t period)
777 {
778 if (period <= 0) {
779 return 0;
780 }
781 int32_t actualRefreshRate = round(1.0/((double)period/1000000000.0)); // 1.0s == 1000000000.0ns
782 if (actualRefreshRate == 0) { // actualRefreshRate is greater than 0
783 return 0;
784 }
785 int32_t refreshRate = actualRefreshRate;
786 int32_t diff = 0;
787 // 在actualRefreshRate附近找一个能被vsyncMaxRefreshRate_整除的刷新率作为训练pulse的参考刷新率
788 // refreshRate is greater than 0, and the value is in following range:
789 // [max(1, actualRefreshRate - MAX_REFRESHRATE_DEVIATION), actualRefreshRate + MAX_REFRESHRATE_DEVIATION]
790 while ((abs(refreshRate - actualRefreshRate) < MAX_REFRESHRATE_DEVIATION) &&
791 (vsyncMaxRefreshRate_ % static_cast<uint32_t>(refreshRate) != 0)) {
792 if (diff < 0) {
793 diff = -diff;
794 } else {
795 diff = -diff - 1;
796 }
797 refreshRate = actualRefreshRate + diff;
798 }
799 if (vsyncMaxRefreshRate_ % static_cast<uint32_t>(refreshRate) != 0) {
800 VLOGE("Not Support this refresh rate: %{public}d, update pulse failed.", actualRefreshRate);
801 return 0;
802 }
803 pulse_ = period / static_cast<int64_t>(vsyncMaxRefreshRate_ / static_cast<uint32_t>(refreshRate));
804 return static_cast<uint32_t>(refreshRate);
805 }
806
SetExpectNextVsyncTimeInternal(int64_t expectNextVsyncTime)807 VsyncError VSyncGenerator::SetExpectNextVsyncTimeInternal(int64_t expectNextVsyncTime)
808 {
809 if (expectNextVsyncTime <= 0) {
810 return VSYNC_ERROR_OK;
811 }
812 auto now = SystemTime();
813 int64_t expectTime = 0;
814 if (expectNextVsyncTime - referenceTime_ > 0) {
815 if (((expectNextVsyncTime - referenceTime_) % pulse_) < (pulse_ / 2)) { // check with 1/2 pulse
816 expectTime = ((expectNextVsyncTime - referenceTime_) / pulse_) * pulse_ + referenceTime_;
817 } else {
818 expectTime = ((expectNextVsyncTime - referenceTime_) / pulse_ + 1) * pulse_ + referenceTime_;
819 }
820 }
821 if (expectTime == 0 || expectTime - now > 100000000) { // 100ms == 100000000ns
822 RS_TRACE_NAME_FMT("SetExpectNextVsyncTime Failed, expectTime:%ld, now:%ld, expectNextVsyncTime:%ld,"
823 " referenceTime_:%ld", expectTime, now, expectNextVsyncTime, referenceTime_);
824 return VSYNC_ERROR_INVALID_ARGUMENTS;
825 }
826 expectNextVsyncTime_ = expectTime;
827 RS_TRACE_NAME_FMT("expectNextVsyncTime:%ld, expectNextVsyncTime_:%ld, diff:%ld", expectNextVsyncTime,
828 expectNextVsyncTime_, (expectNextVsyncTime_ - expectNextVsyncTime));
829 return VSYNC_ERROR_OK;
830 }
831
ChangeGeneratorRefreshRateModel(const ListenerRefreshRateData & listenerRefreshRates,const ListenerPhaseOffsetData & listenerPhaseOffset,uint32_t generatorRefreshRate,int64_t & rsVsyncCount,int64_t expectNextVsyncTime)832 VsyncError VSyncGenerator::ChangeGeneratorRefreshRateModel(const ListenerRefreshRateData &listenerRefreshRates,
833 const ListenerPhaseOffsetData &listenerPhaseOffset,
834 uint32_t generatorRefreshRate,
835 int64_t &rsVsyncCount,
836 int64_t expectNextVsyncTime)
837 {
838 if (rsVSyncDistributor_ != nullptr) {
839 rsVsyncCount = rsVSyncDistributor_->GetVsyncCount();
840 }
841 RS_TRACE_NAME_FMT("ChangeGeneratorRefreshRateModel:%u, phaseByPulseNum:%d, expectNextVsyncTime:%ld",
842 generatorRefreshRate, listenerPhaseOffset.phaseByPulseNum, expectNextVsyncTime);
843 for (std::pair<uint64_t, uint32_t> rateVec : listenerRefreshRates.refreshRates) {
844 uint64_t linkerId = rateVec.first;
845 uint32_t refreshrate = rateVec.second;
846 RS_TRACE_NAME_FMT("linkerId:%lu, refreshrate:%u", linkerId, refreshrate);
847 }
848 std::lock_guard<std::mutex> locker(mutex_);
849 if ((vsyncMode_ != VSYNC_MODE_LTPO) && (pendingVsyncMode_ != VSYNC_MODE_LTPO)) {
850 ScopedBytrace trace("it's not ltpo mode.");
851 return VSYNC_ERROR_NOT_SUPPORT;
852 }
853 if (pulse_ == 0) {
854 ScopedBytrace trace("pulse is not ready!!!");
855 VLOGE("pulse is not ready!!!");
856 return VSYNC_ERROR_API_FAILED;
857 }
858
859 VsyncError ret = SetExpectNextVsyncTimeInternal(expectNextVsyncTime);
860
861 if ((generatorRefreshRate <= 0 || (vsyncMaxRefreshRate_ % generatorRefreshRate != 0))) {
862 RS_TRACE_NAME_FMT("Not support this refresh rate: %u", generatorRefreshRate);
863 VLOGE("Not support this refresh rate: %{public}u", generatorRefreshRate);
864 return VSYNC_ERROR_NOT_SUPPORT;
865 }
866
867 if (changingRefreshRates_.cb == nullptr) {
868 changingRefreshRates_ = listenerRefreshRates;
869 } else {
870 UpdateChangeRefreshRatesLocked(listenerRefreshRates);
871 }
872 needChangeRefreshRates_ = true;
873
874 changingPhaseOffset_ = listenerPhaseOffset;
875 needChangePhaseOffset_ = true;
876
877 if (changingGeneratorRefreshRate_ != 0 || generatorRefreshRate != currRefreshRate_) {
878 changingGeneratorRefreshRate_ = generatorRefreshRate;
879 needChangeGeneratorRefreshRate_ = true;
880 } else {
881 RS_TRACE_NAME_FMT("refreshRateNotChanged, generatorRefreshRate:%u, currRefreshRate_:%u",
882 generatorRefreshRate, currRefreshRate_);
883 }
884
885 WaitForTimeoutConNotifyLocked();
886 return ret;
887 }
888
UpdateChangeRefreshRatesLocked(const ListenerRefreshRateData & listenerRefreshRates)889 void VSyncGenerator::UpdateChangeRefreshRatesLocked(const ListenerRefreshRateData &listenerRefreshRates)
890 {
891 for (auto refreshRate : listenerRefreshRates.refreshRates) {
892 bool found = false;
893 for (auto it = changingRefreshRates_.refreshRates.begin();
894 it != changingRefreshRates_.refreshRates.end(); it++) {
895 if ((*it).first == refreshRate.first) { // first is linkerId
896 (*it).second = refreshRate.second; // second is refreshRate
897 found = true;
898 break;
899 }
900 }
901 if (!found) {
902 changingRefreshRates_.refreshRates.push_back(refreshRate);
903 }
904 }
905 }
906
GetVSyncPulse()907 int64_t VSyncGenerator::GetVSyncPulse()
908 {
909 std::lock_guard<std::mutex> locker(mutex_);
910 return pulse_;
911 }
912
SetVSyncMode(VSyncMode vsyncMode)913 VsyncError VSyncGenerator::SetVSyncMode(VSyncMode vsyncMode)
914 {
915 RS_TRACE_NAME_FMT("SetVSyncMode:%d", vsyncMode);
916 std::lock_guard<std::mutex> locker(mutex_);
917 pendingVsyncMode_ = vsyncMode;
918 return VSYNC_ERROR_OK;
919 }
920
GetVSyncMode()921 VSyncMode VSyncGenerator::GetVSyncMode()
922 {
923 std::lock_guard<std::mutex> locker(mutex_);
924 return vsyncMode_;
925 }
926
SetVSyncPhaseByPulseNum(int32_t phaseByPulseNum)927 VsyncError VSyncGenerator::SetVSyncPhaseByPulseNum(int32_t phaseByPulseNum)
928 {
929 std::lock_guard<std::mutex> locker(mutex_);
930 referenceTimeOffsetPulseNum_ = phaseByPulseNum;
931 defaultReferenceTimeOffsetPulseNum_ = phaseByPulseNum;
932 return VSYNC_ERROR_OK;
933 }
934
GetVsyncRefreshRate()935 uint32_t VSyncGenerator::GetVsyncRefreshRate()
936 {
937 std::lock_guard<std::mutex> locker(mutex_);
938 if (period_ == 0) {
939 return UINT32_MAX;
940 }
941 uint32_t refreshRate = CalculateRefreshRate(period_);
942 if (refreshRate == 0) {
943 refreshRate = std::round(static_cast<double>(ONE_SECOND_FOR_CALCUTE_FREQUENCY)
944 / static_cast<double>(period_));
945 }
946 return refreshRate;
947 }
948
GetVSyncMaxRefreshRate()949 uint32_t VSyncGenerator::GetVSyncMaxRefreshRate()
950 {
951 return vsyncMaxRefreshRate_;
952 }
953
SetVSyncMaxRefreshRate(uint32_t refreshRate)954 VsyncError VSyncGenerator::SetVSyncMaxRefreshRate(uint32_t refreshRate)
955 {
956 std::lock_guard<std::mutex> locker(mutex_);
957 if (refreshRate < VSYNC_MAX_REFRESHRATE_RANGE_MIN ||
958 refreshRate > VSYNC_MAX_REFRESHRATE_RANGE_MAX) {
959 VLOGE("Not support max refresh rate: %{public}u", refreshRate);
960 return VSYNC_ERROR_INVALID_ARGUMENTS;
961 }
962 vsyncMaxRefreshRate_ = refreshRate;
963 return VSYNC_ERROR_OK;
964 }
965
SetReferenceTimeOffset(int32_t offsetByPulseNum)966 VsyncError VSyncGenerator::SetReferenceTimeOffset(int32_t offsetByPulseNum)
967 {
968 std::lock_guard<std::mutex> locker(mutex_);
969 referenceTimeOffsetPulseNum_ = offsetByPulseNum;
970 return VSYNC_ERROR_OK;
971 }
972
StartRefresh()973 VsyncError VSyncGenerator::StartRefresh()
974 {
975 RS_TRACE_NAME("StartRefresh");
976 std::lock_guard<std::mutex> lock(mutex_);
977 startRefresh_ = true;
978 referenceTimeOffsetPulseNum_ = defaultReferenceTimeOffsetPulseNum_;
979 return VSYNC_ERROR_OK;
980 }
981
SetRSDistributor(sptr<VSyncDistributor> & rsVSyncDistributor)982 void VSyncGenerator::SetRSDistributor(sptr<VSyncDistributor> &rsVSyncDistributor)
983 {
984 std::lock_guard<std::mutex> lock(mutex_);
985 rsVSyncDistributor_ = rsVSyncDistributor;
986 }
987
PeriodCheckLocked(int64_t hardwareVsyncInterval)988 void VSyncGenerator::PeriodCheckLocked(int64_t hardwareVsyncInterval)
989 {
990 if (lastPeriod_ == period_) {
991 if (abs(hardwareVsyncInterval - period_) > PERIOD_CHECK_THRESHOLD) {
992 // if software period not changed, and hardwareVsyncInterval,
993 // and software period is not the same, accumulate counter
994 periodCheckCounter_++;
995 RS_TRACE_NAME_FMT("CounterAccumulated, lastPeriod_:%ld, period_:%ld, hardwareVsyncInterval:%ld,"
996 " periodCheckCounter_:%d", lastPeriod_, period_, hardwareVsyncInterval, periodCheckCounter_);
997 }
998 } else {
999 // if period changed, record this period as lastPeriod_ and clear periodCheckCounter_
1000 lastPeriod_ = period_;
1001 periodCheckCounter_ = 0;
1002 RS_TRACE_NAME("periodCheckCounter_ = 0");
1003 }
1004 // exit frameRateChanging status when the frame rate is inconsistent for 10 consecutive times.
1005 if (periodCheckCounter_ > 10) {
1006 RS_TRACE_NAME_FMT("samePeriodCounter ERROR, period_:%ld, hardwareVsyncInterval:%ld, pendingReferenceTime_:%ld"
1007 ", referenceTime_:%ld, referenceTimeDiff:%ld", period_, hardwareVsyncInterval, pendingReferenceTime_,
1008 referenceTime_, abs(pendingReferenceTime_ - referenceTime_));
1009 VLOGE("samePeriodCounter ERROR, period_:" VPUBI64 ", hardwareVsyncInterval:" VPUBI64
1010 ", pendingReferenceTime_:" VPUBI64 ", referenceTime_:" VPUBI64 ", referenceTimeDiff:" VPUBI64,
1011 period_, hardwareVsyncInterval, pendingReferenceTime_, referenceTime_,
1012 abs(pendingReferenceTime_ - referenceTime_));
1013 // end the frameRateChanging status
1014 frameRateChanging_ = false;
1015 ScopedBytrace forceEnd("frameRateChanging_ = false, forceEnd");
1016 }
1017 }
1018
SetAppDistributor(sptr<VSyncDistributor> & appVSyncDistributor)1019 void VSyncGenerator::SetAppDistributor(sptr<VSyncDistributor> &appVSyncDistributor)
1020 {
1021 std::lock_guard<std::mutex> lock(mutex_);
1022 appVSyncDistributor_ = appVSyncDistributor;
1023 }
1024
CalculateReferenceTimeOffsetPulseNumLocked(int64_t referenceTime)1025 void VSyncGenerator::CalculateReferenceTimeOffsetPulseNumLocked(int64_t referenceTime)
1026 {
1027 int64_t actualOffset = referenceTime - pendingReferenceTime_;
1028 int32_t actualOffsetPulseNum = round((double)actualOffset/(double)pulse_);
1029 if (startRefresh_ || (defaultReferenceTimeOffsetPulseNum_ == 0)) {
1030 referenceTimeOffsetPulseNum_ = defaultReferenceTimeOffsetPulseNum_;
1031 } else {
1032 referenceTimeOffsetPulseNum_ = std::max(actualOffsetPulseNum, defaultReferenceTimeOffsetPulseNum_);
1033 }
1034 RS_TRACE_NAME_FMT("UpdateMode, referenceTime:%ld, actualOffsetPulseNum:%d, referenceTimeOffsetPulseNum_:%d"
1035 ", startRefresh_:%d, period:%ld", referenceTime, actualOffsetPulseNum, referenceTimeOffsetPulseNum_,
1036 startRefresh_, pendingPeriod_);
1037 }
1038
GetVSyncOffset()1039 int64_t VSyncGenerator::GetVSyncOffset()
1040 {
1041 std::lock_guard<std::mutex> locker(mutex_);
1042 return vsyncOffset_;
1043 }
1044
CheckAndUpdateReferenceTime(int64_t hardwareVsyncInterval,int64_t referenceTime)1045 VsyncError VSyncGenerator::CheckAndUpdateReferenceTime(int64_t hardwareVsyncInterval, int64_t referenceTime)
1046 {
1047 if (hardwareVsyncInterval < 0 || referenceTime < 0) {
1048 VLOGE("wrong parameter, hardwareVsyncInterval:" VPUBI64 ", referenceTime:" VPUBI64,
1049 hardwareVsyncInterval, referenceTime);
1050 return VSYNC_ERROR_INVALID_ARGUMENTS;
1051 }
1052 std::lock_guard<std::mutex> locker(mutex_);
1053 if ((pendingPeriod_ <= 0 && targetPeriod_ <= 0) || pulse_ == 0) {
1054 frameRateChanging_ = false;
1055 VLOGE("[%{public}s] Failed, pendingPeriod_:" VPUBI64 ", targetPeriod_:" VPUBI64 ", pulse_:" VPUBI64,
1056 __func__, pendingPeriod_, targetPeriod_, pulse_);
1057 return VSYNC_ERROR_API_FAILED;
1058 }
1059
1060 PeriodCheckLocked(hardwareVsyncInterval);
1061
1062 if (((abs(hardwareVsyncInterval - pendingPeriod_) < PERIOD_CHECK_THRESHOLD) &&
1063 (abs(hardwareVsyncInterval - targetPeriod_) < PERIOD_CHECK_THRESHOLD || targetPeriod_ == 0))) {
1064 // framerate has changed
1065 frameRateChanging_ = false;
1066 ScopedBytrace changeEnd("frameRateChanging_ = false");
1067 CalculateReferenceTimeOffsetPulseNumLocked(referenceTime);
1068 UpdateReferenceTimeLocked(referenceTime);
1069 bool needNotify = true;
1070 uint32_t periodRefreshRate = CalculateRefreshRate(period_);
1071 uint32_t pendingPeriodRefreshRate = CalculateRefreshRate(pendingPeriod_);
1072 if (pendingPeriodRefreshRate != 0) {
1073 uint32_t periodPulseNum = vsyncMaxRefreshRate_ / pendingPeriodRefreshRate;
1074 vsyncOffset_ = (referenceTimeOffsetPulseNum_ % static_cast<int32_t>(periodPulseNum)) * pulse_;
1075 RS_TRACE_NAME_FMT("vsyncOffset_:%ld", vsyncOffset_);
1076 }
1077 // 120hz, 90hz, 60hz
1078 if (((periodRefreshRate == 120) || (periodRefreshRate == 90)) && (pendingPeriodRefreshRate == 60)) {
1079 needNotify = false;
1080 }
1081 if ((periodRefreshRate != 0) && (periodRefreshRate == pendingPeriodRefreshRate)) {
1082 RS_TRACE_NAME_FMT("period not changed, period:%ld", period_);
1083 needNotify = false;
1084 } else {
1085 UpdatePeriodLocked(pendingPeriod_);
1086 }
1087 if (needNotify) {
1088 WaitForTimeoutConNotifyLocked();
1089 }
1090 pendingPeriod_ = 0;
1091 targetPeriod_ = 0;
1092 startRefresh_ = false;
1093 }
1094 return VSYNC_ERROR_OK;
1095 }
1096
RemoveListener(const sptr<OHOS::Rosen::VSyncGenerator::Callback> & cb)1097 VsyncError VSyncGenerator::RemoveListener(const sptr<OHOS::Rosen::VSyncGenerator::Callback>& cb)
1098 {
1099 ScopedBytrace func("RemoveListener");
1100 std::lock_guard<std::mutex> locker(mutex_);
1101 if (cb == nullptr) {
1102 VLOGE("RemoveListener failed, cb is null.");
1103 return VSYNC_ERROR_INVALID_ARGUMENTS;
1104 }
1105 bool removeFlag = false;
1106 auto it = listeners_.begin();
1107 for (; it < listeners_.end(); it++) {
1108 if (it->callback_ == cb) {
1109 listeners_.erase(it);
1110 removeFlag = true;
1111 break;
1112 }
1113 }
1114 if (!removeFlag) {
1115 VLOGE("RemoveListener, not found, size = %{public}zu", listeners_.size());
1116 }
1117 return VSYNC_ERROR_OK;
1118 }
1119
ChangePhaseOffset(const sptr<OHOS::Rosen::VSyncGenerator::Callback> & cb,int64_t offset)1120 VsyncError VSyncGenerator::ChangePhaseOffset(const sptr<OHOS::Rosen::VSyncGenerator::Callback>& cb, int64_t offset)
1121 {
1122 std::lock_guard<std::mutex> locker(mutex_);
1123 if (cb == nullptr) {
1124 return VSYNC_ERROR_INVALID_ARGUMENTS;
1125 }
1126 auto it = listeners_.begin();
1127 for (; it < listeners_.end(); it++) {
1128 if (it->callback_ == cb) {
1129 break;
1130 }
1131 }
1132 if (it != listeners_.end()) {
1133 it->phase_ = offset;
1134 } else {
1135 return VSYNC_ERROR_INVALID_OPERATING;
1136 }
1137 return VSYNC_ERROR_OK;
1138 }
1139
IsEnable()1140 bool VSyncGenerator::IsEnable()
1141 {
1142 std::lock_guard<std::mutex> locker(mutex_);
1143 return period_ > 0;
1144 }
1145
GetFrameRateChaingStatus()1146 bool VSyncGenerator::GetFrameRateChaingStatus()
1147 {
1148 std::lock_guard<std::mutex> locker(mutex_);
1149 return frameRateChanging_;
1150 }
1151
SetFrameRateChangingStatus(bool frameRateChanging)1152 void VSyncGenerator::SetFrameRateChangingStatus(bool frameRateChanging)
1153 {
1154 std::lock_guard<std::mutex> locker(mutex_);
1155 frameRateChanging_ = frameRateChanging;
1156 }
1157
SetPendingMode(int64_t period,int64_t timestamp)1158 void VSyncGenerator::SetPendingMode(int64_t period, int64_t timestamp)
1159 {
1160 if (period <= 0) {
1161 return;
1162 }
1163 std::lock_guard<std::mutex> lock(mutex_);
1164 pendingPeriod_ = period;
1165 pendingReferenceTime_ = timestamp;
1166 if (rsVSyncDistributor_ != nullptr) {
1167 rsVSyncDistributor_->UpdatePendingReferenceTime(pendingReferenceTime_);
1168 }
1169 }
1170
Dump(std::string & result)1171 void VSyncGenerator::Dump(std::string &result)
1172 {
1173 std::unique_lock<std::mutex> lock(mutex_);
1174 result.append("\n-- VSyncGenerator --");
1175 result += "\nperiod:" + std::to_string(period_);
1176 result += "\nphase:" + std::to_string(phase_);
1177 result += "\nreferenceTime:" + std::to_string(referenceTime_);
1178 result += "\nvsyncMode:" + std::to_string(vsyncMode_);
1179 result += "\nperiodCheckCounter_:" + std::to_string(periodCheckCounter_);
1180 }
1181
CheckSampleIsAdaptive(int64_t hardwareVsyncInterval)1182 bool VSyncGenerator::CheckSampleIsAdaptive(int64_t hardwareVsyncInterval)
1183 {
1184 std::unique_lock<std::mutex> lock(mutex_);
1185 return hardwareVsyncInterval > period_ + PERIOD_CHECK_THRESHOLD
1186 && hardwareVsyncInterval < MAX_ADAPTIVE_PERIOD * period_;
1187 }
1188
PrintGeneratorStatus()1189 void VSyncGenerator::PrintGeneratorStatus()
1190 {
1191 std::unique_lock<std::mutex> lock(mutex_);
1192 VLOGW("[Info]PrintGeneratorStatus, period:" VPUBI64 ", phase:" VPUBI64 ", referenceTime:" VPUBI64
1193 ", vsyncMode:%{public}d, listeners size:%{public}u", period_, phase_, referenceTime_, vsyncMode_,
1194 static_cast<uint32_t>(listeners_.size()));
1195 for (uint32_t i = 0; i < listeners_.size(); i++) {
1196 VLOGW("[Info]i:%{public}u, listener phase is " VPUBI64 ", timeStamp is " VPUBI64,
1197 i, listeners_[i].phase_, listeners_[i].lastTime_);
1198 }
1199 }
1200 } // namespace impl
CreateVSyncGenerator()1201 sptr<VSyncGenerator> CreateVSyncGenerator()
1202 {
1203 return impl::VSyncGenerator::GetInstance();
1204 }
1205
DestroyVSyncGenerator()1206 void DestroyVSyncGenerator()
1207 {
1208 impl::VSyncGenerator::DeleteInstance();
1209 }
1210 }
1211 }
1212