208 lines
7.3 KiB
C++
208 lines
7.3 KiB
C++
/*
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* Copyright 2021 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#define ATRACE_TAG ATRACE_TAG_GRAPHICS
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#include <ftl/fake_guard.h>
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#include <scheduler/Fps.h>
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#include <scheduler/Timer.h>
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#include "VsyncSchedule.h"
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#include "ISchedulerCallback.h"
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#include "Utils/Dumper.h"
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#include "VSyncDispatchTimerQueue.h"
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#include "VSyncPredictor.h"
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#include "VSyncReactor.h"
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#include "../TracedOrdinal.h"
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namespace android::scheduler {
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class VsyncSchedule::PredictedVsyncTracer {
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// Invoked from the thread of the VsyncDispatch owned by this VsyncSchedule.
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constexpr auto makeVsyncCallback() {
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return [this](nsecs_t, nsecs_t, nsecs_t) {
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mParity = !mParity;
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schedule();
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};
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}
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public:
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explicit PredictedVsyncTracer(std::shared_ptr<VsyncDispatch> dispatch)
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: mRegistration(std::move(dispatch), makeVsyncCallback(), __func__) {
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schedule();
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}
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private:
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void schedule() { mRegistration.schedule({0, 0, 0}); }
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TracedOrdinal<bool> mParity = {"VSYNC-predicted", 0};
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VSyncCallbackRegistration mRegistration;
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};
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VsyncSchedule::VsyncSchedule(PhysicalDisplayId id, FeatureFlags features)
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: mId(id),
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mTracker(createTracker(id)),
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mDispatch(createDispatch(mTracker)),
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mController(createController(id, *mTracker, features)),
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mTracer(features.test(Feature::kTracePredictedVsync)
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? std::make_unique<PredictedVsyncTracer>(mDispatch)
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: nullptr) {}
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VsyncSchedule::VsyncSchedule(PhysicalDisplayId id, TrackerPtr tracker, DispatchPtr dispatch,
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ControllerPtr controller)
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: mId(id),
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mTracker(std::move(tracker)),
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mDispatch(std::move(dispatch)),
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mController(std::move(controller)) {}
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VsyncSchedule::~VsyncSchedule() = default;
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Period VsyncSchedule::period() const {
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return Period::fromNs(mTracker->currentPeriod());
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}
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TimePoint VsyncSchedule::vsyncDeadlineAfter(TimePoint timePoint) const {
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return TimePoint::fromNs(mTracker->nextAnticipatedVSyncTimeFrom(timePoint.ns()));
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}
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void VsyncSchedule::dump(std::string& out) const {
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utils::Dumper dumper(out);
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{
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std::lock_guard<std::mutex> lock(mHwVsyncLock);
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dumper.dump("hwVsyncState", ftl::enum_string(mHwVsyncState));
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ftl::FakeGuard guard(kMainThreadContext);
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dumper.dump("pendingHwVsyncState", ftl::enum_string(mPendingHwVsyncState));
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dumper.eol();
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}
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out.append("VsyncController:\n");
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mController->dump(out);
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out.append("VsyncDispatch:\n");
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mDispatch->dump(out);
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}
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VsyncSchedule::TrackerPtr VsyncSchedule::createTracker(PhysicalDisplayId id) {
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// TODO(b/144707443): Tune constants.
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constexpr nsecs_t kInitialPeriod = (60_Hz).getPeriodNsecs();
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constexpr size_t kHistorySize = 20;
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constexpr size_t kMinSamplesForPrediction = 6;
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constexpr uint32_t kDiscardOutlierPercent = 20;
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return std::make_unique<VSyncPredictor>(id, kInitialPeriod, kHistorySize,
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kMinSamplesForPrediction, kDiscardOutlierPercent);
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}
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VsyncSchedule::DispatchPtr VsyncSchedule::createDispatch(TrackerPtr tracker) {
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using namespace std::chrono_literals;
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// TODO(b/144707443): Tune constants.
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constexpr std::chrono::nanoseconds kGroupDispatchWithin = 500us;
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constexpr std::chrono::nanoseconds kSnapToSameVsyncWithin = 3ms;
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return std::make_unique<VSyncDispatchTimerQueue>(std::make_unique<Timer>(), std::move(tracker),
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kGroupDispatchWithin.count(),
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kSnapToSameVsyncWithin.count());
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}
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VsyncSchedule::ControllerPtr VsyncSchedule::createController(PhysicalDisplayId id,
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VsyncTracker& tracker,
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FeatureFlags features) {
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// TODO(b/144707443): Tune constants.
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constexpr size_t kMaxPendingFences = 20;
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const bool hasKernelIdleTimer = features.test(Feature::kKernelIdleTimer);
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auto reactor = std::make_unique<VSyncReactor>(id, std::make_unique<SystemClock>(), tracker,
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kMaxPendingFences, hasKernelIdleTimer);
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reactor->setIgnorePresentFences(!features.test(Feature::kPresentFences));
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return reactor;
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}
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void VsyncSchedule::startPeriodTransition(ISchedulerCallback& callback, Period period, bool force) {
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std::lock_guard<std::mutex> lock(mHwVsyncLock);
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mController->startPeriodTransition(period.ns(), force);
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enableHardwareVsyncLocked(callback);
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}
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bool VsyncSchedule::addResyncSample(ISchedulerCallback& callback, TimePoint timestamp,
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ftl::Optional<Period> hwcVsyncPeriod) {
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bool needsHwVsync = false;
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bool periodFlushed = false;
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{
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std::lock_guard<std::mutex> lock(mHwVsyncLock);
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if (mHwVsyncState == HwVsyncState::Enabled) {
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needsHwVsync = mController->addHwVsyncTimestamp(timestamp.ns(),
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hwcVsyncPeriod.transform(&Period::ns),
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&periodFlushed);
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}
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}
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if (needsHwVsync) {
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enableHardwareVsync(callback);
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} else {
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disableHardwareVsync(callback, false /* disallow */);
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}
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return periodFlushed;
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}
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void VsyncSchedule::enableHardwareVsync(ISchedulerCallback& callback) {
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std::lock_guard<std::mutex> lock(mHwVsyncLock);
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enableHardwareVsyncLocked(callback);
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}
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void VsyncSchedule::enableHardwareVsyncLocked(ISchedulerCallback& callback) {
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if (mHwVsyncState == HwVsyncState::Disabled) {
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getTracker().resetModel();
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callback.setVsyncEnabled(mId, true);
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mHwVsyncState = HwVsyncState::Enabled;
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}
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}
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void VsyncSchedule::disableHardwareVsync(ISchedulerCallback& callback, bool disallow) {
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std::lock_guard<std::mutex> lock(mHwVsyncLock);
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switch (mHwVsyncState) {
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case HwVsyncState::Enabled:
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callback.setVsyncEnabled(mId, false);
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[[fallthrough]];
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case HwVsyncState::Disabled:
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mHwVsyncState = disallow ? HwVsyncState::Disallowed : HwVsyncState::Disabled;
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break;
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case HwVsyncState::Disallowed:
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break;
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}
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}
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bool VsyncSchedule::isHardwareVsyncAllowed(bool makeAllowed) {
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std::lock_guard<std::mutex> lock(mHwVsyncLock);
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if (makeAllowed && mHwVsyncState == HwVsyncState::Disallowed) {
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mHwVsyncState = HwVsyncState::Disabled;
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}
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return mHwVsyncState != HwVsyncState::Disallowed;
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}
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void VsyncSchedule::setPendingHardwareVsyncState(bool enabled) {
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mPendingHwVsyncState = enabled ? HwVsyncState::Enabled : HwVsyncState::Disabled;
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}
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bool VsyncSchedule::getPendingHardwareVsyncState() const {
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return mPendingHwVsyncState == HwVsyncState::Enabled;
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}
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} // namespace android::scheduler
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