Reset traced hint value to -1 on reportActualWorkDuration or stale timeout, and rewrite existing tracing for readability. Bug: b/243973548 Test: manual Change-Id: I135ec5f8971a9902d880e4089b0df746f5b917e2
429 lines
16 KiB
C++
429 lines
16 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 LOG_TAG "powerhal-libperfmgr"
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#define ATRACE_TAG (ATRACE_TAG_POWER | ATRACE_TAG_HAL)
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#include "PowerHintSession.h"
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#include <android-base/logging.h>
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#include <android-base/parsedouble.h>
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#include <android-base/properties.h>
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#include <android-base/stringprintf.h>
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#include <perfmgr/AdpfConfig.h>
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#include <private/android_filesystem_config.h>
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#include <sys/syscall.h>
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#include <time.h>
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#include <utils/Trace.h>
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#include <atomic>
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#include "PowerSessionManager.h"
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namespace aidl {
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namespace google {
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namespace hardware {
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namespace power {
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namespace impl {
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namespace pixel {
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using ::android::base::StringPrintf;
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using ::android::perfmgr::AdpfConfig;
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using ::android::perfmgr::HintManager;
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using std::chrono::duration_cast;
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using std::chrono::nanoseconds;
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namespace {
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static inline int64_t ns_to_100us(int64_t ns) {
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return ns / 100000;
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}
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} // namespace
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int64_t PowerHintSession::convertWorkDurationToBoostByPid(
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const std::vector<WorkDuration> &actualDurations) {
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std::shared_ptr<AdpfConfig> adpfConfig = HintManager::GetInstance()->GetAdpfProfile();
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const nanoseconds &targetDuration = mDescriptor->duration;
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int64_t &integral_error = mDescriptor->integral_error;
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int64_t &previous_error = mDescriptor->previous_error;
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uint64_t samplingWindowP = adpfConfig->mSamplingWindowP;
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uint64_t samplingWindowI = adpfConfig->mSamplingWindowI;
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uint64_t samplingWindowD = adpfConfig->mSamplingWindowD;
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int64_t targetDurationNanos = (int64_t)targetDuration.count();
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int64_t length = actualDurations.size();
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int64_t p_start =
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samplingWindowP == 0 || samplingWindowP > length ? 0 : length - samplingWindowP;
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int64_t i_start =
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samplingWindowI == 0 || samplingWindowI > length ? 0 : length - samplingWindowI;
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int64_t d_start =
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samplingWindowD == 0 || samplingWindowD > length ? 0 : length - samplingWindowD;
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int64_t dt = ns_to_100us(targetDurationNanos);
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int64_t err_sum = 0;
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int64_t derivative_sum = 0;
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for (int64_t i = std::min({p_start, i_start, d_start}); i < length; i++) {
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int64_t actualDurationNanos = actualDurations[i].durationNanos;
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if (std::abs(actualDurationNanos) > targetDurationNanos * 20) {
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ALOGW("The actual duration is way far from the target (%" PRId64 " >> %" PRId64 ")",
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actualDurationNanos, targetDurationNanos);
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}
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// PID control algorithm
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int64_t error = ns_to_100us(actualDurationNanos - targetDurationNanos);
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if (i >= d_start) {
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derivative_sum += error - previous_error;
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}
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if (i >= p_start) {
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err_sum += error;
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}
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if (i >= i_start) {
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integral_error += error * dt;
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integral_error = std::min(adpfConfig->getPidIHighDivI(), integral_error);
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integral_error = std::max(adpfConfig->getPidILowDivI(), integral_error);
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}
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previous_error = error;
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}
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int64_t pOut = static_cast<int64_t>((err_sum > 0 ? adpfConfig->mPidPo : adpfConfig->mPidPu) *
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err_sum / (length - p_start));
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int64_t iOut = static_cast<int64_t>(adpfConfig->mPidI * integral_error);
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int64_t dOut =
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static_cast<int64_t>((derivative_sum > 0 ? adpfConfig->mPidDo : adpfConfig->mPidDu) *
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derivative_sum / dt / (length - d_start));
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int64_t output = pOut + iOut + dOut;
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if (ATRACE_ENABLED()) {
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traceSessionVal("pid.err", err_sum / (length - p_start));
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traceSessionVal("pid.integral", integral_error);
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traceSessionVal("pid.derivative", derivative_sum / dt / (length - d_start));
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traceSessionVal("pid.pOut", pOut);
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traceSessionVal("pid.iOut", iOut);
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traceSessionVal("pid.dOut", dOut);
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traceSessionVal("pid.output", output);
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}
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return output;
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}
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PowerHintSession::PowerHintSession(std::shared_ptr<AdaptiveCpu> adaptiveCpu, int32_t tgid,
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int32_t uid, const std::vector<int32_t> &threadIds,
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int64_t durationNanos)
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: mAdaptiveCpu(adaptiveCpu) {
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mDescriptor = new AppHintDesc(tgid, uid, threadIds);
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mDescriptor->duration = std::chrono::nanoseconds(durationNanos);
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mIdString = StringPrintf("%" PRId32 "-%" PRId32 "-%" PRIxPTR, mDescriptor->tgid,
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mDescriptor->uid, reinterpret_cast<uintptr_t>(this) & 0xffff);
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mStaleTimerHandler = sp<StaleTimerHandler>(new StaleTimerHandler(this));
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mPowerManagerHandler = PowerSessionManager::getInstance();
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mLastUpdatedTime.store(std::chrono::steady_clock::now());
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if (ATRACE_ENABLED()) {
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traceSessionVal("target", mDescriptor->duration.count());
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traceSessionVal("active", mDescriptor->is_active.load());
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}
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PowerSessionManager::getInstance()->addPowerSession(this);
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// init boost
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setSessionUclampMin(HintManager::GetInstance()->GetAdpfProfile()->mUclampMinInit);
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ALOGV("PowerHintSession created: %s", mDescriptor->toString().c_str());
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}
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PowerHintSession::~PowerHintSession() {
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close();
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ALOGV("PowerHintSession deleted: %s", mDescriptor->toString().c_str());
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if (ATRACE_ENABLED()) {
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traceSessionVal("target", 0);
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traceSessionVal("actl_last", 0);
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traceSessionVal("active", 0);
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}
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delete mDescriptor;
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}
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void PowerHintSession::traceSessionVal(char const *identifier, int64_t val) const {
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ATRACE_INT(StringPrintf("adpf.%s-%s", mIdString.c_str(), identifier).c_str(), val);
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}
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bool PowerHintSession::isAppSession() {
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// Check if uid is in range reserved for applications
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return mDescriptor->uid >= AID_APP_START;
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}
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void PowerHintSession::updateUniveralBoostMode() {
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if (!isAppSession()) {
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return;
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}
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if (ATRACE_ENABLED()) {
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const std::string tag = StringPrintf("%s:updateUniveralBoostMode()", mIdString.c_str());
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ATRACE_BEGIN(tag.c_str());
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}
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PowerHintMonitor::getInstance()->getLooper()->sendMessage(mPowerManagerHandler, NULL);
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if (ATRACE_ENABLED()) {
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ATRACE_END();
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}
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}
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int PowerHintSession::setSessionUclampMin(int32_t min) {
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{
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std::lock_guard<std::mutex> guard(mSessionLock);
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mDescriptor->current_min = min;
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}
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if (min) {
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mStaleTimerHandler->updateTimer();
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}
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PowerSessionManager::getInstance()->setUclampMin(this, min);
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if (ATRACE_ENABLED()) {
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traceSessionVal("min", min);
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}
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return 0;
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}
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int PowerHintSession::getUclampMin() {
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return mDescriptor->current_min;
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}
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void PowerHintSession::dumpToStream(std::ostream &stream) {
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stream << "ID.Min.Act.Timeout(" << mIdString;
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stream << ", " << mDescriptor->current_min;
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stream << ", " << mDescriptor->is_active;
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stream << ", " << isTimeout() << ")";
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}
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ndk::ScopedAStatus PowerHintSession::pause() {
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if (mSessionClosed) {
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ALOGE("Error: session is dead");
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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}
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if (!mDescriptor->is_active.load())
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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// Reset to default uclamp value.
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mDescriptor->is_active.store(false);
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setStale();
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if (ATRACE_ENABLED()) {
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traceSessionVal("active", mDescriptor->is_active.load());
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}
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updateUniveralBoostMode();
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus PowerHintSession::resume() {
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if (mSessionClosed) {
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ALOGE("Error: session is dead");
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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}
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if (mDescriptor->is_active.load())
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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mDescriptor->is_active.store(true);
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// resume boost
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setSessionUclampMin(mDescriptor->current_min);
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if (ATRACE_ENABLED()) {
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traceSessionVal("active", mDescriptor->is_active.load());
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}
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updateUniveralBoostMode();
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus PowerHintSession::close() {
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bool sessionClosedExpectedToBe = false;
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if (!mSessionClosed.compare_exchange_strong(sessionClosedExpectedToBe, true)) {
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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}
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// Remove the session from PowerSessionManager first to avoid racing.
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PowerSessionManager::getInstance()->removePowerSession(this);
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setSessionUclampMin(0);
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{
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std::lock_guard<std::mutex> guard(mSessionLock);
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mSessionClosed.store(true);
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}
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mDescriptor->is_active.store(false);
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mStaleTimerHandler->setSessionDead();
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updateUniveralBoostMode();
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus PowerHintSession::updateTargetWorkDuration(int64_t targetDurationNanos) {
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if (mSessionClosed) {
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ALOGE("Error: session is dead");
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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}
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if (targetDurationNanos <= 0) {
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ALOGE("Error: targetDurationNanos(%" PRId64 ") should bigger than 0", targetDurationNanos);
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_ARGUMENT);
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}
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targetDurationNanos =
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targetDurationNanos * HintManager::GetInstance()->GetAdpfProfile()->mTargetTimeFactor;
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ALOGV("update target duration: %" PRId64 " ns", targetDurationNanos);
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mDescriptor->duration = std::chrono::nanoseconds(targetDurationNanos);
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if (ATRACE_ENABLED()) {
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traceSessionVal("target", mDescriptor->duration.count());
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}
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus PowerHintSession::reportActualWorkDuration(
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const std::vector<WorkDuration> &actualDurations) {
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if (mSessionClosed) {
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ALOGE("Error: session is dead");
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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}
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if (mDescriptor->duration.count() == 0LL) {
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ALOGE("Expect to call updateTargetWorkDuration() first.");
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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}
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if (actualDurations.size() == 0) {
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ALOGE("Error: duration.size() shouldn't be %zu.", actualDurations.size());
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_ARGUMENT);
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}
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if (!mDescriptor->is_active.load()) {
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ALOGE("Error: shouldn't report duration during pause state.");
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return ndk::ScopedAStatus::fromExceptionCode(EX_ILLEGAL_STATE);
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}
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std::shared_ptr<AdpfConfig> adpfConfig = HintManager::GetInstance()->GetAdpfProfile();
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mDescriptor->update_count++;
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bool isFirstFrame = isTimeout();
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if (ATRACE_ENABLED()) {
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traceSessionVal("batch_size", actualDurations.size());
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traceSessionVal("actl_last", actualDurations.back().durationNanos);
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traceSessionVal("target", mDescriptor->duration.count());
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traceSessionVal("hint.count", mDescriptor->update_count);
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traceSessionVal("hint.overtime",
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actualDurations.back().durationNanos - mDescriptor->duration.count() > 0);
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traceSessionVal("session_hint", -1);
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}
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mLastUpdatedTime.store(std::chrono::steady_clock::now());
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if (isFirstFrame) {
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updateUniveralBoostMode();
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}
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if (!adpfConfig->mPidOn) {
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setSessionUclampMin(adpfConfig->mUclampMinHigh);
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return ndk::ScopedAStatus::ok();
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}
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int64_t output = convertWorkDurationToBoostByPid(actualDurations);
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/* apply to all the threads in the group */
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int next_min = std::min(static_cast<int>(adpfConfig->mUclampMinHigh),
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mDescriptor->current_min + static_cast<int>(output));
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next_min = std::max(static_cast<int>(adpfConfig->mUclampMinLow), next_min);
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setSessionUclampMin(next_min);
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mAdaptiveCpu->ReportWorkDurations(actualDurations, mDescriptor->duration);
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return ndk::ScopedAStatus::ok();
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}
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std::string AppHintDesc::toString() const {
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std::string out =
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StringPrintf("session %" PRIxPTR "\n", reinterpret_cast<uintptr_t>(this) & 0xffff);
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const int64_t durationNanos = duration.count();
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out.append(StringPrintf(" duration: %" PRId64 " ns\n", durationNanos));
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out.append(StringPrintf(" uclamp.min: %d \n", current_min));
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out.append(StringPrintf(" uid: %d, tgid: %d\n", uid, tgid));
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out.append(" threadIds: [");
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bool first = true;
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for (int tid : threadIds) {
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if (!first) {
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out.append(", ");
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}
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out.append(std::to_string(tid));
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first = false;
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}
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out.append("]\n");
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return out;
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}
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bool PowerHintSession::isActive() {
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return mDescriptor->is_active.load();
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}
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bool PowerHintSession::isTimeout() {
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auto now = std::chrono::steady_clock::now();
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time_point<steady_clock> staleTime =
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mLastUpdatedTime.load() +
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nanoseconds(static_cast<int64_t>(
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mDescriptor->duration.count() *
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HintManager::GetInstance()->GetAdpfProfile()->mStaleTimeFactor));
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return now >= staleTime;
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}
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const std::vector<int> &PowerHintSession::getTidList() const {
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return mDescriptor->threadIds;
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}
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void PowerHintSession::setStale() {
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// Reset to default uclamp value.
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PowerSessionManager::getInstance()->setUclampMin(this, 0);
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// Deliver a task to check if all sessions are inactive.
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updateUniveralBoostMode();
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if (ATRACE_ENABLED()) {
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traceSessionVal("min", 0);
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}
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}
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void PowerHintSession::StaleTimerHandler::updateTimer() {
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auto now = std::chrono::steady_clock::now();
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nanoseconds staleDuration = std::chrono::nanoseconds(
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static_cast<int64_t>(mSession->mDescriptor->duration.count() *
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HintManager::GetInstance()->GetAdpfProfile()->mStaleTimeFactor));
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mStaleTime.store(now + staleDuration);
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int64_t next = static_cast<int64_t>(staleDuration.count());
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{
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std::lock_guard<std::mutex> guard(mMessageLock);
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PowerHintMonitor::getInstance()->getLooper()->removeMessages(mSession->mStaleTimerHandler);
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PowerHintMonitor::getInstance()->getLooper()->sendMessageDelayed(
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next, mSession->mStaleTimerHandler, NULL);
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}
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if (ATRACE_ENABLED()) {
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mSession->traceSessionVal("timer.stale", 0);
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}
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}
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void PowerHintSession::StaleTimerHandler::handleMessage(const Message &) {
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if (mIsSessionDead) {
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return;
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}
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auto now = std::chrono::steady_clock::now();
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int64_t next =
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static_cast<int64_t>(duration_cast<nanoseconds>(mStaleTime.load() - now).count());
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if (next > 0) {
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// Schedule for the stale timeout check.
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std::lock_guard<std::mutex> guard(mMessageLock);
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PowerHintMonitor::getInstance()->getLooper()->removeMessages(mSession->mStaleTimerHandler);
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PowerHintMonitor::getInstance()->getLooper()->sendMessageDelayed(
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next, mSession->mStaleTimerHandler, NULL);
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} else {
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mSession->setStale();
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if (ATRACE_ENABLED()) {
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mSession->traceSessionVal("session_hint", -1);
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}
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}
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if (ATRACE_ENABLED()) {
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mSession->traceSessionVal("timer.stale", next > 0 ? 0 : 1);
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}
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}
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void PowerHintSession::StaleTimerHandler::setSessionDead() {
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std::lock_guard<std::mutex> guard(mStaleLock);
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mIsSessionDead = true;
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PowerHintMonitor::getInstance()->getLooper()->removeMessages(mSession->mStaleTimerHandler);
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}
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} // namespace pixel
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} // namespace impl
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} // namespace power
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} // namespace hardware
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} // namespace google
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} // namespace aidl
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