Sysfs data is straightforward so we don't need parsing anymore. Also removed periodical check since data is set only once during driver initialization. Checking at every device boot or storaged restart should be sufficient to monitor long term status change. Test: adb logcat -d -b events | grep storaged_emmc_info Bug: 36228467 Merged-In: I2a181f52c9f19de1e679a3a905aaebafe4d08227 Change-Id: Ic05e353f0af9363f3bcbe793ba0c351082e446ca
260 lines
8.5 KiB
C++
260 lines
8.5 KiB
C++
/*
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* Copyright (C) 2016 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 "storaged"
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#include <stdlib.h>
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#include <time.h>
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#include <unistd.h>
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#include <android-base/logging.h>
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#include <batteryservice/BatteryServiceConstants.h>
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#include <batteryservice/IBatteryPropertiesRegistrar.h>
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#include <binder/IServiceManager.h>
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#include <cutils/properties.h>
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#include <log/log.h>
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#include <storaged.h>
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#include <storaged_utils.h>
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/* disk_stats_publisher */
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void disk_stats_publisher::publish(void) {
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// Logging
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struct disk_perf perf = get_disk_perf(&mAccumulate);
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log_debug_disk_perf(&perf, "regular");
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log_event_disk_stats(&mAccumulate, "regular");
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// Reset global structures
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memset(&mAccumulate, 0, sizeof(struct disk_stats));
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}
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void disk_stats_publisher::update(void) {
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struct disk_stats curr;
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if (parse_disk_stats(DISK_STATS_PATH, &curr)) {
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struct disk_stats inc = get_inc_disk_stats(&mPrevious, &curr);
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add_disk_stats(&inc, &mAccumulate);
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#ifdef DEBUG
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// log_kernel_disk_stats(&mPrevious, "prev stats");
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// log_kernel_disk_stats(&curr, "curr stats");
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// log_kernel_disk_stats(&inc, "inc stats");
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// log_kernel_disk_stats(&mAccumulate, "accumulated stats");
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#endif
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mPrevious = curr;
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}
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}
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/* disk_stats_monitor */
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void disk_stats_monitor::update_mean() {
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CHECK(mValid);
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mMean.read_perf = (uint32_t)mStats.read_perf.get_mean();
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mMean.read_ios = (uint32_t)mStats.read_ios.get_mean();
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mMean.write_perf = (uint32_t)mStats.write_perf.get_mean();
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mMean.write_ios = (uint32_t)mStats.write_ios.get_mean();
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mMean.queue = (uint32_t)mStats.queue.get_mean();
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}
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void disk_stats_monitor::update_std() {
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CHECK(mValid);
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mStd.read_perf = (uint32_t)mStats.read_perf.get_std();
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mStd.read_ios = (uint32_t)mStats.read_ios.get_std();
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mStd.write_perf = (uint32_t)mStats.write_perf.get_std();
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mStd.write_ios = (uint32_t)mStats.write_ios.get_std();
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mStd.queue = (uint32_t)mStats.queue.get_std();
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}
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void disk_stats_monitor::add(struct disk_perf* perf) {
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mStats.read_perf.add(perf->read_perf);
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mStats.read_ios.add(perf->read_ios);
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mStats.write_perf.add(perf->write_perf);
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mStats.write_ios.add(perf->write_ios);
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mStats.queue.add(perf->queue);
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}
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void disk_stats_monitor::evict(struct disk_perf* perf) {
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mStats.read_perf.evict(perf->read_perf);
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mStats.read_ios.evict(perf->read_ios);
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mStats.write_perf.evict(perf->write_perf);
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mStats.write_ios.evict(perf->write_ios);
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mStats.queue.evict(perf->queue);
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}
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bool disk_stats_monitor::detect(struct disk_perf* perf) {
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return ((double)perf->queue >= (double)mMean.queue + mSigma * (double)mStd.queue) &&
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((double)perf->read_perf < (double)mMean.read_perf - mSigma * (double)mStd.read_perf) &&
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((double)perf->write_perf < (double)mMean.write_perf - mSigma * (double)mStd.write_perf);
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}
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void disk_stats_monitor::update(struct disk_stats* stats) {
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struct disk_stats inc = get_inc_disk_stats(&mPrevious, stats);
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struct disk_perf perf = get_disk_perf(&inc);
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// Update internal data structures
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if (LIKELY(mValid)) {
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CHECK_EQ(mBuffer.size(), mWindow);
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if (UNLIKELY(detect(&perf))) {
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mStall = true;
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add_disk_stats(&inc, &mAccumulate);
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log_debug_disk_perf(&mMean, "stalled_mean");
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log_debug_disk_perf(&mStd, "stalled_std");
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} else {
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if (mStall) {
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struct disk_perf acc_perf = get_disk_perf(&mAccumulate);
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log_debug_disk_perf(&acc_perf, "stalled");
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log_event_disk_stats(&mAccumulate, "stalled");
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mStall = false;
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memset(&mAccumulate, 0, sizeof(mAccumulate));
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}
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}
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evict(&mBuffer.front());
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mBuffer.pop();
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add(&perf);
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mBuffer.push(perf);
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update_mean();
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update_std();
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} else { /* mValid == false */
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CHECK_LT(mBuffer.size(), mWindow);
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add(&perf);
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mBuffer.push(perf);
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if (mBuffer.size() == mWindow) {
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mValid = true;
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update_mean();
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update_std();
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}
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}
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mPrevious = *stats;
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}
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void disk_stats_monitor::update(void) {
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struct disk_stats curr;
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if (LIKELY(parse_disk_stats(DISK_STATS_PATH, &curr))) {
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update(&curr);
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}
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}
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static sp<IBatteryPropertiesRegistrar> get_battery_properties_service() {
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sp<IServiceManager> sm = defaultServiceManager();
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if (sm == NULL) return NULL;
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sp<IBinder> binder = sm->getService(String16("batteryproperties"));
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if (binder == NULL) return NULL;
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sp<IBatteryPropertiesRegistrar> battery_properties =
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interface_cast<IBatteryPropertiesRegistrar>(binder);
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return battery_properties;
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}
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static inline charger_stat_t is_charger_on(int64_t prop) {
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return (prop == BATTERY_STATUS_CHARGING || prop == BATTERY_STATUS_FULL) ?
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CHARGER_ON : CHARGER_OFF;
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}
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void storaged_t::batteryPropertiesChanged(struct BatteryProperties props) {
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mUidm.set_charger_state(is_charger_on(props.batteryStatus));
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}
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void storaged_t::init_battery_service() {
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sp<IBatteryPropertiesRegistrar> battery_properties = get_battery_properties_service();
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if (battery_properties == NULL) {
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LOG_TO(SYSTEM, WARNING) << "failed to find batteryproperties service";
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return;
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}
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struct BatteryProperty val;
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battery_properties->getProperty(BATTERY_PROP_BATTERY_STATUS, &val);
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mUidm.init(is_charger_on(val.valueInt64));
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// register listener after init uid_monitor
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battery_properties->registerListener(this);
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}
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/* storaged_t */
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storaged_t::storaged_t(void) {
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if (access(MMC_DISK_STATS_PATH, R_OK) < 0 && access(SDA_DISK_STATS_PATH, R_OK) < 0) {
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mConfig.diskstats_available = false;
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} else {
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mConfig.diskstats_available = true;
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}
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mConfig.proc_uid_io_available = (access(UID_IO_STATS_PATH, R_OK) == 0);
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mConfig.periodic_chores_interval_unit =
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property_get_int32("ro.storaged.event.interval", DEFAULT_PERIODIC_CHORES_INTERVAL_UNIT);
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mConfig.event_time_check_usec =
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property_get_int32("ro.storaged.event.perf_check", 0);
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mConfig.periodic_chores_interval_disk_stats_publish =
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property_get_int32("ro.storaged.disk_stats_pub", DEFAULT_PERIODIC_CHORES_INTERVAL_DISK_STATS_PUBLISH);
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mConfig.periodic_chores_interval_uid_io =
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property_get_int32("ro.storaged.uid_io.interval", DEFAULT_PERIODIC_CHORES_INTERVAL_UID_IO);
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mStarttime = time(NULL);
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}
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void storaged_t::event(void) {
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if (mConfig.diskstats_available) {
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mDiskStats.update();
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mDsm.update();
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if (mTimer && (mTimer % mConfig.periodic_chores_interval_disk_stats_publish) == 0) {
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mDiskStats.publish();
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}
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}
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if (mConfig.proc_uid_io_available && mTimer &&
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(mTimer % mConfig.periodic_chores_interval_uid_io) == 0) {
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mUidm.report();
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}
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mTimer += mConfig.periodic_chores_interval_unit;
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}
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void storaged_t::event_checked(void) {
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struct timespec start_ts, end_ts;
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bool check_time = true;
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if (mConfig.event_time_check_usec &&
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clock_gettime(CLOCK_PROCESS_CPUTIME_ID, &start_ts) < 0) {
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check_time = false;
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static time_t state_a;
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IF_ALOG_RATELIMIT_LOCAL(300, &state_a) {
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PLOG_TO(SYSTEM, ERROR) << "clock_gettime() failed";
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}
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}
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event();
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if (mConfig.event_time_check_usec && check_time) {
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if (clock_gettime(CLOCK_PROCESS_CPUTIME_ID, &end_ts) < 0) {
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static time_t state_b;
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IF_ALOG_RATELIMIT_LOCAL(300, &state_b) {
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PLOG_TO(SYSTEM, ERROR) << "clock_gettime() failed";
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}
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return;
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}
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int64_t cost = (end_ts.tv_sec - start_ts.tv_sec) * SEC_TO_USEC +
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(end_ts.tv_nsec - start_ts.tv_nsec) / USEC_TO_NSEC;
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if (cost > mConfig.event_time_check_usec) {
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LOG_TO(SYSTEM, ERROR)
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<< "event loop spent " << cost << " usec, threshold "
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<< mConfig.event_time_check_usec << " usec";
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}
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}
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}
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