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514 lines
18 KiB
514 lines
18 KiB
/*
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* Copyright (C) 2018 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 "android.hardware.power.stats@1.0-service-mock"
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#include "PowerStats.h"
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#include <android-base/file.h>
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#include <android-base/logging.h>
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#include <android-base/properties.h>
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#include <android-base/stringprintf.h>
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#include <android-base/strings.h>
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#include <inttypes.h>
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#include <stdlib.h>
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#include <algorithm>
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#include <exception>
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#include <thread>
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namespace android {
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namespace hardware {
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namespace power {
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namespace stats {
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namespace V1_0 {
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namespace implementation {
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#define MAX_FILE_PATH_LEN 128
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#define MAX_DEVICE_NAME_LEN 64
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#define MAX_QUEUE_SIZE 8192
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constexpr char kIioDirRoot[] = "/sys/bus/iio/devices/";
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constexpr char kDeviceName[] = "pm_device_name";
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constexpr char kDeviceType[] = "iio:device";
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constexpr uint32_t MAX_SAMPLING_RATE = 10;
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constexpr uint64_t WRITE_TIMEOUT_NS = 1000000000;
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void PowerStats::findIioPowerMonitorNodes() {
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struct dirent* ent;
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int fd;
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char devName[MAX_DEVICE_NAME_LEN];
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char filePath[MAX_FILE_PATH_LEN];
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DIR* iioDir = opendir(kIioDirRoot);
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if (!iioDir) {
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ALOGE("Error opening directory: %s", kIioDirRoot);
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return;
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}
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while (ent = readdir(iioDir), ent) {
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if (strcmp(ent->d_name, ".") != 0 && strcmp(ent->d_name, "..") != 0 &&
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strlen(ent->d_name) > strlen(kDeviceType) &&
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strncmp(ent->d_name, kDeviceType, strlen(kDeviceType)) == 0) {
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snprintf(filePath, MAX_FILE_PATH_LEN, "%s/%s", ent->d_name, "name");
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fd = openat(dirfd(iioDir), filePath, O_RDONLY);
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if (fd < 0) {
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ALOGW("Failed to open directory: %s", filePath);
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continue;
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}
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if (read(fd, devName, MAX_DEVICE_NAME_LEN) < 0) {
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ALOGW("Failed to read device name from file: %s(%d)", filePath, fd);
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close(fd);
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continue;
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}
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if (strncmp(devName, kDeviceName, strlen(kDeviceName)) == 0) {
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snprintf(filePath, MAX_FILE_PATH_LEN, "%s/%s", kIioDirRoot, ent->d_name);
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mPm.devicePaths.push_back(filePath);
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}
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close(fd);
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}
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}
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closedir(iioDir);
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return;
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}
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size_t PowerStats::parsePowerRails() {
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std::string data;
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std::string railFileName;
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std::string spsFileName;
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uint32_t index = 0;
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unsigned long samplingRate;
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for (const auto& path : mPm.devicePaths) {
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railFileName = path + "/enabled_rails";
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spsFileName = path + "/sampling_rate";
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if (!android::base::ReadFileToString(spsFileName, &data)) {
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ALOGW("Error reading file: %s", spsFileName.c_str());
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continue;
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}
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samplingRate = strtoul(data.c_str(), NULL, 10);
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if (!samplingRate || samplingRate == ULONG_MAX) {
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ALOGE("Error parsing: %s", spsFileName.c_str());
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break;
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}
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if (!android::base::ReadFileToString(railFileName, &data)) {
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ALOGW("Error reading file: %s", railFileName.c_str());
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continue;
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}
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std::istringstream railNames(data);
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std::string line;
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while (std::getline(railNames, line)) {
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std::vector<std::string> words = android::base::Split(line, ":");
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if (words.size() == 2) {
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mPm.railsInfo.emplace(
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words[0], RailData{.devicePath = path,
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.index = index,
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.subsysName = words[1],
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.samplingRate = static_cast<uint32_t>(samplingRate)});
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index++;
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} else {
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ALOGW("Unexpected format in file: %s", railFileName.c_str());
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}
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}
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}
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return index;
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}
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int PowerStats::parseIioEnergyNode(std::string devName) {
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int ret = 0;
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std::string data;
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std::string fileName = devName + "/energy_value";
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if (!android::base::ReadFileToString(fileName, &data)) {
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ALOGE("Error reading file: %s", fileName.c_str());
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return -1;
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}
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std::istringstream energyData(data);
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std::string line;
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uint64_t timestamp = 0;
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bool timestampRead = false;
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while (std::getline(energyData, line)) {
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std::vector<std::string> words = android::base::Split(line, ",");
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if (timestampRead == false) {
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if (words.size() == 1) {
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timestamp = strtoull(words[0].c_str(), NULL, 10);
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if (timestamp == 0 || timestamp == ULLONG_MAX) {
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ALOGW("Potentially wrong timestamp: %" PRIu64, timestamp);
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}
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timestampRead = true;
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}
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} else if (words.size() == 2) {
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std::string railName = words[0];
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if (mPm.railsInfo.count(railName) != 0) {
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size_t index = mPm.railsInfo[railName].index;
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mPm.reading[index].index = index;
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mPm.reading[index].timestamp = timestamp;
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mPm.reading[index].energy = strtoull(words[1].c_str(), NULL, 10);
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if (mPm.reading[index].energy == ULLONG_MAX) {
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ALOGW("Potentially wrong energy value: %" PRIu64, mPm.reading[index].energy);
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}
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}
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} else {
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ALOGW("Unexpected format in file: %s", fileName.c_str());
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ret = -1;
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break;
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}
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}
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return ret;
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}
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Status PowerStats::parseIioEnergyNodes() {
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Status ret = Status::SUCCESS;
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if (mPm.hwEnabled == false) {
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return Status::NOT_SUPPORTED;
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}
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for (const auto& devicePath : mPm.devicePaths) {
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if (parseIioEnergyNode(devicePath) < 0) {
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ALOGE("Error in parsing power stats");
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ret = Status::FILESYSTEM_ERROR;
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break;
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}
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}
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return ret;
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}
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PowerStats::PowerStats() {
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findIioPowerMonitorNodes();
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size_t numRails = parsePowerRails();
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if (mPm.devicePaths.empty() || numRails == 0) {
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mPm.hwEnabled = false;
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} else {
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mPm.hwEnabled = true;
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mPm.reading.resize(numRails);
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}
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}
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Return<void> PowerStats::getRailInfo(getRailInfo_cb _hidl_cb) {
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hidl_vec<RailInfo> rInfo;
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Status ret = Status::SUCCESS;
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size_t index;
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std::lock_guard<std::mutex> _lock(mPm.mLock);
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if (mPm.hwEnabled == false) {
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_hidl_cb(rInfo, Status::NOT_SUPPORTED);
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return Void();
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}
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rInfo.resize(mPm.railsInfo.size());
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for (const auto& railData : mPm.railsInfo) {
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index = railData.second.index;
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rInfo[index].railName = railData.first;
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rInfo[index].subsysName = railData.second.subsysName;
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rInfo[index].index = index;
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rInfo[index].samplingRate = railData.second.samplingRate;
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}
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_hidl_cb(rInfo, ret);
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return Void();
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}
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Return<void> PowerStats::getEnergyData(const hidl_vec<uint32_t>& railIndices,
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getEnergyData_cb _hidl_cb) {
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hidl_vec<EnergyData> eVal;
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std::lock_guard<std::mutex> _lock(mPm.mLock);
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Status ret = parseIioEnergyNodes();
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if (ret != Status::SUCCESS) {
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ALOGE("Failed to getEnergyData");
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_hidl_cb(eVal, ret);
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return Void();
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}
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if (railIndices.size() == 0) {
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eVal.resize(mPm.railsInfo.size());
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memcpy(&eVal[0], &mPm.reading[0], mPm.reading.size() * sizeof(EnergyData));
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} else {
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eVal.resize(railIndices.size());
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int i = 0;
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for (const auto& railIndex : railIndices) {
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if (railIndex >= mPm.reading.size()) {
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ret = Status::INVALID_INPUT;
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eVal.resize(0);
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break;
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}
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memcpy(&eVal[i], &mPm.reading[railIndex], sizeof(EnergyData));
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i++;
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}
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}
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_hidl_cb(eVal, ret);
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return Void();
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}
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Return<void> PowerStats::streamEnergyData(uint32_t timeMs, uint32_t samplingRate,
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streamEnergyData_cb _hidl_cb) {
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std::lock_guard<std::mutex> _lock(mPm.mLock);
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if (mPm.fmqSynchronized != nullptr) {
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_hidl_cb(MessageQueueSync::Descriptor(), 0, 0, Status::INSUFFICIENT_RESOURCES);
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return Void();
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}
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uint32_t sps = std::min(samplingRate, MAX_SAMPLING_RATE);
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uint32_t numSamples = timeMs * sps / 1000;
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mPm.fmqSynchronized.reset(new (std::nothrow) MessageQueueSync(MAX_QUEUE_SIZE, true));
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if (mPm.fmqSynchronized == nullptr || mPm.fmqSynchronized->isValid() == false) {
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mPm.fmqSynchronized = nullptr;
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_hidl_cb(MessageQueueSync::Descriptor(), 0, 0, Status::INSUFFICIENT_RESOURCES);
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return Void();
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}
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std::thread pollThread = std::thread([this, sps, numSamples]() {
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uint64_t sleepTimeUs = 1000000 / sps;
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uint32_t currSamples = 0;
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while (currSamples < numSamples) {
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mPm.mLock.lock();
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if (parseIioEnergyNodes() == Status::SUCCESS) {
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mPm.fmqSynchronized->writeBlocking(&mPm.reading[0], mPm.reading.size(),
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WRITE_TIMEOUT_NS);
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mPm.mLock.unlock();
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currSamples++;
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if (usleep(sleepTimeUs) < 0) {
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ALOGW("Sleep interrupted");
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break;
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}
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} else {
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mPm.mLock.unlock();
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break;
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}
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}
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mPm.mLock.lock();
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mPm.fmqSynchronized = nullptr;
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mPm.mLock.unlock();
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return;
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});
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pollThread.detach();
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_hidl_cb(*(mPm.fmqSynchronized)->getDesc(), numSamples, mPm.reading.size(), Status::SUCCESS);
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return Void();
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}
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uint32_t PowerStats::addPowerEntity(const std::string& name, PowerEntityType type) {
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uint32_t id = mPowerEntityInfos.size();
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mPowerEntityInfos.push_back({id, name, type});
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return id;
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}
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void PowerStats::addStateResidencyDataProvider(std::shared_ptr<IStateResidencyDataProvider> p) {
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std::vector<PowerEntityStateSpace> stateSpaces = p->getStateSpaces();
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for (auto stateSpace : stateSpaces) {
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mPowerEntityStateSpaces.emplace(stateSpace.powerEntityId, stateSpace);
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mStateResidencyDataProviders.emplace(stateSpace.powerEntityId, p);
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}
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}
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Return<void> PowerStats::getPowerEntityInfo(getPowerEntityInfo_cb _hidl_cb) {
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// If not configured, return NOT_SUPPORTED
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if (mPowerEntityInfos.empty()) {
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_hidl_cb({}, Status::NOT_SUPPORTED);
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return Void();
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}
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_hidl_cb(mPowerEntityInfos, Status::SUCCESS);
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return Void();
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}
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Return<void> PowerStats::getPowerEntityStateInfo(const hidl_vec<uint32_t>& powerEntityIds,
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getPowerEntityStateInfo_cb _hidl_cb) {
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// If not configured, return NOT_SUPPORTED
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if (mPowerEntityStateSpaces.empty()) {
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_hidl_cb({}, Status::NOT_SUPPORTED);
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return Void();
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}
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std::vector<PowerEntityStateSpace> stateSpaces;
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// If powerEntityIds is empty then return state space info for all entities
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if (powerEntityIds.size() == 0) {
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stateSpaces.reserve(mPowerEntityStateSpaces.size());
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for (auto i : mPowerEntityStateSpaces) {
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stateSpaces.emplace_back(i.second);
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}
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_hidl_cb(stateSpaces, Status::SUCCESS);
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return Void();
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}
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// Return state space information only for valid ids
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auto ret = Status::SUCCESS;
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stateSpaces.reserve(powerEntityIds.size());
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for (const uint32_t id : powerEntityIds) {
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auto stateSpace = mPowerEntityStateSpaces.find(id);
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if (stateSpace != mPowerEntityStateSpaces.end()) {
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stateSpaces.emplace_back(stateSpace->second);
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} else {
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ret = Status::INVALID_INPUT;
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}
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}
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_hidl_cb(stateSpaces, ret);
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return Void();
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}
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Return<void> PowerStats::getPowerEntityStateResidencyData(
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const hidl_vec<uint32_t>& powerEntityIds, getPowerEntityStateResidencyData_cb _hidl_cb) {
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// If not configured, return NOT_SUPPORTED
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if (mStateResidencyDataProviders.empty() || mPowerEntityStateSpaces.empty()) {
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_hidl_cb({}, Status::NOT_SUPPORTED);
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return Void();
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}
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// If powerEntityIds is empty then return data for all supported entities
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if (powerEntityIds.size() == 0) {
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std::vector<uint32_t> ids;
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for (auto stateSpace : mPowerEntityStateSpaces) {
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ids.emplace_back(stateSpace.first);
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}
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return getPowerEntityStateResidencyData(ids, _hidl_cb);
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}
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std::unordered_map<uint32_t, PowerEntityStateResidencyResult> stateResidencies;
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std::vector<PowerEntityStateResidencyResult> results;
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results.reserve(powerEntityIds.size());
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// return results for only the given powerEntityIds
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bool invalidInput = false;
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bool filesystemError = false;
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for (auto id : powerEntityIds) {
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auto dataProvider = mStateResidencyDataProviders.find(id);
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// skip if the given powerEntityId does not have an associated StateResidencyDataProvider
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if (dataProvider == mStateResidencyDataProviders.end()) {
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invalidInput = true;
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continue;
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}
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// get the results if we have not already done so.
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if (stateResidencies.find(id) == stateResidencies.end()) {
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if (!dataProvider->second->getResults(stateResidencies)) {
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filesystemError = true;
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}
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}
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// append results
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auto stateResidency = stateResidencies.find(id);
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if (stateResidency != stateResidencies.end()) {
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results.emplace_back(stateResidency->second);
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}
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}
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auto ret = Status::SUCCESS;
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if (filesystemError) {
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ret = Status::FILESYSTEM_ERROR;
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} else if (invalidInput) {
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ret = Status::INVALID_INPUT;
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}
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_hidl_cb(results, ret);
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return Void();
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}
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bool DumpResidencyDataToFd(const hidl_vec<PowerEntityInfo>& infos,
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const hidl_vec<PowerEntityStateSpace>& stateSpaces,
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const hidl_vec<PowerEntityStateResidencyResult>& results, int fd) {
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// construct lookup table of powerEntityId to name
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std::unordered_map<uint32_t, std::string> entityNames;
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for (auto info : infos) {
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entityNames.emplace(info.powerEntityId, info.powerEntityName);
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}
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// construct lookup table of powerEntityId, powerEntityStateId to state name
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std::unordered_map<uint32_t, std::unordered_map<uint32_t, std::string>> stateNames;
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for (auto stateSpace : stateSpaces) {
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stateNames.emplace(stateSpace.powerEntityId, std::unordered_map<uint32_t, std::string>());
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for (auto state : stateSpace.states) {
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stateNames.at(stateSpace.powerEntityId)
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.emplace(state.powerEntityStateId, state.powerEntityStateName);
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}
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}
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std::ostringstream dumpStats;
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dumpStats << "\n========== PowerStats HAL 1.0 state residencies ==========\n";
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const char* headerFormat = " %14s %14s %16s %15s %16s\n";
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const char* dataFormat =
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" %14s %14s %13" PRIu64 " ms %15" PRIu64 " %13" PRIu64 " ms\n";
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dumpStats << android::base::StringPrintf(headerFormat, "Entity", "State", "Total time",
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"Total entries", "Last entry timestamp");
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for (auto result : results) {
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for (auto stateResidency : result.stateResidencyData) {
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dumpStats << android::base::StringPrintf(
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dataFormat, entityNames.at(result.powerEntityId).c_str(),
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stateNames.at(result.powerEntityId)
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.at(stateResidency.powerEntityStateId)
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.c_str(),
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stateResidency.totalTimeInStateMs, stateResidency.totalStateEntryCount,
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stateResidency.lastEntryTimestampMs);
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}
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}
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dumpStats << "========== End of PowerStats HAL 1.0 state residencies ==========\n";
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return android::base::WriteStringToFd(dumpStats.str(), fd);
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}
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Return<void> PowerStats::debug(const hidl_handle& handle, const hidl_vec<hidl_string>&) {
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if (handle == nullptr || handle->numFds < 1) {
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return Void();
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}
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int fd = handle->data[0];
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Status status;
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hidl_vec<PowerEntityInfo> infos;
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// Get power entity information
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getPowerEntityInfo([&status, &infos](auto rInfos, auto rStatus) {
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status = rStatus;
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infos = rInfos;
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});
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if (status != Status::SUCCESS) {
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LOG(ERROR) << "Error getting power entity info";
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return Void();
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}
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// Get power entity state information
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hidl_vec<PowerEntityStateSpace> stateSpaces;
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getPowerEntityStateInfo({}, [&status, &stateSpaces](auto rStateSpaces, auto rStatus) {
|
|
status = rStatus;
|
|
stateSpaces = rStateSpaces;
|
|
});
|
|
if (status != Status::SUCCESS) {
|
|
LOG(ERROR) << "Error getting state info";
|
|
return Void();
|
|
}
|
|
|
|
// Get power entity state residency data
|
|
hidl_vec<PowerEntityStateResidencyResult> results;
|
|
getPowerEntityStateResidencyData({}, [&status, &results](auto rResults, auto rStatus) {
|
|
status = rStatus;
|
|
results = rResults;
|
|
});
|
|
|
|
// This implementation of getPowerEntityStateResidencyData supports the
|
|
// return of partial results if status == FILESYSTEM_ERROR.
|
|
if (status != Status::SUCCESS) {
|
|
LOG(ERROR) << "Error getting residency data -- Some results missing";
|
|
}
|
|
|
|
if (!DumpResidencyDataToFd(infos, stateSpaces, results, fd)) {
|
|
PLOG(ERROR) << "Failed to dump residency data to fd";
|
|
}
|
|
|
|
fsync(fd);
|
|
|
|
return Void();
|
|
}
|
|
|
|
} // namespace implementation
|
|
} // namespace V1_0
|
|
} // namespace stats
|
|
} // namespace power
|
|
} // namespace hardware
|
|
} // namespace android
|