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486 lines
17 KiB
486 lines
17 KiB
// Copyright 2014 The Chromium Authors. All rights reserved. |
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// Use of this source code is governed by a BSD-style license that can be |
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// found in the LICENSE file. |
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#include "components/timers/alarm_timer_chromeos.h" |
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#include <stdint.h> |
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#include <sys/timerfd.h> |
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#include <utility> |
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#include "base/bind.h" |
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#include "base/bind_helpers.h" |
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#include "base/files/file_util.h" |
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#include "base/lazy_instance.h" |
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#include "base/logging.h" |
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#include "base/macros.h" |
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#include "base/message_loop/message_loop.h" |
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#include "base/pending_task.h" |
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#include "base/threading/thread.h" |
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#include "base/threading/thread_task_runner_handle.h" |
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#include "base/trace_event/trace_event.h" |
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namespace timers { |
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namespace { |
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// This class represents the IO thread that the AlarmTimer::Delegate may use for |
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// watching file descriptors if it gets called from a thread that does not have |
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// a MessageLoopForIO. It is a lazy global instance because it may not always |
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// be necessary. |
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class RtcAlarmIOThread : public base::Thread { |
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public: |
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RtcAlarmIOThread() : Thread("RTC Alarm IO Thread") { |
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CHECK( |
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StartWithOptions(base::Thread::Options(base::MessageLoop::TYPE_IO, 0))); |
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} |
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~RtcAlarmIOThread() override { Stop(); } |
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}; |
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base::LazyInstance<RtcAlarmIOThread> g_io_thread = LAZY_INSTANCE_INITIALIZER; |
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} // namespace |
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// Watches a MessageLoop and runs a callback if that MessageLoop will be |
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// destroyed. |
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class AlarmTimer::MessageLoopObserver |
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: public base::MessageLoop::DestructionObserver { |
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public: |
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// Constructs a MessageLoopObserver that will observe |message_loop| and will |
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// call |on_will_be_destroyed_callback| when |message_loop| is about to be |
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// destroyed. |
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MessageLoopObserver(base::MessageLoop* message_loop, |
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base::Closure on_will_be_destroyed_callback) |
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: message_loop_(message_loop), |
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on_will_be_destroyed_callback_(on_will_be_destroyed_callback) { |
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DCHECK(message_loop_); |
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message_loop_->AddDestructionObserver(this); |
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} |
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~MessageLoopObserver() override { |
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// If |message_loop_| was destroyed, then this class will have already |
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// unregistered itself. Doing it again will trigger a warning. |
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if (message_loop_) |
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message_loop_->RemoveDestructionObserver(this); |
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} |
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// base::MessageLoop::DestructionObserver override. |
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void WillDestroyCurrentMessageLoop() override { |
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message_loop_->RemoveDestructionObserver(this); |
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message_loop_ = NULL; |
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on_will_be_destroyed_callback_.Run(); |
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} |
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private: |
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// The MessageLoop that this class should watch. Is a weak pointer. |
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base::MessageLoop* message_loop_; |
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// The callback to run when |message_loop_| will be destroyed. |
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base::Closure on_will_be_destroyed_callback_; |
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DISALLOW_COPY_AND_ASSIGN(MessageLoopObserver); |
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}; |
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// This class manages a Real Time Clock (RTC) alarm, a feature that is available |
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// from linux version 3.11 onwards. It creates a file descriptor for the RTC |
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// alarm timer and then watches that file descriptor to see when it can be read |
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// without blocking, indicating that the timer has fired. |
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// |
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// A major problem for this class is that watching file descriptors is only |
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// available on a MessageLoopForIO but there is no guarantee the timer is going |
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// to be created on one. To get around this, the timer has a dedicated thread |
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// with a MessageLoopForIO that posts tasks back to the thread that started the |
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// timer. |
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class AlarmTimer::Delegate |
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: public base::RefCountedThreadSafe<AlarmTimer::Delegate>, |
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public base::MessageLoopForIO::Watcher { |
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public: |
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// Construct a Delegate for the AlarmTimer. It should be safe to call |
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// |on_timer_fired_callback| multiple times. |
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explicit Delegate(base::Closure on_timer_fired_callback); |
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// Returns true if the system timer managed by this delegate is capable of |
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// waking the system from suspend. |
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bool CanWakeFromSuspend(); |
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// Resets the timer to fire after |delay| has passed. Cancels any |
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// pre-existing delay. |
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void Reset(base::TimeDelta delay); |
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// Stops the currently running timer. It should be safe to call this even if |
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// the timer is not running. |
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void Stop(); |
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// Sets a hook that will be called when the timer fires and a task has been |
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// queued on |origin_task_runner_|. Used by tests to wait until a task is |
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// pending in the MessageLoop. |
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void SetTimerFiredCallbackForTest(base::Closure test_callback); |
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// base::MessageLoopForIO::Watcher overrides. |
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void OnFileCanReadWithoutBlocking(int fd) override; |
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void OnFileCanWriteWithoutBlocking(int fd) override; |
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private: |
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friend class base::RefCountedThreadSafe<Delegate>; |
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~Delegate() override; |
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// Actually performs the system calls to set up the timer. This must be |
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// called on a MessageLoopForIO. |
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void ResetImpl(base::TimeDelta delay, int reset_sequence_number); |
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// Callback that is run when the timer fires. Must be run on |
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// |origin_task_runner_|. |
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void OnTimerFired(int reset_sequence_number); |
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// File descriptor associated with the alarm timer. |
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int alarm_fd_; |
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// Task runner which initially started the timer. |
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scoped_refptr<base::SingleThreadTaskRunner> origin_task_runner_; |
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// Callback that should be run when the timer fires. |
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base::Closure on_timer_fired_callback_; |
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// Hook used by tests to be notified when the timer has fired and a task has |
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// been queued in the MessageLoop. |
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base::Closure on_timer_fired_callback_for_test_; |
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// Manages watching file descriptors. |
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std::unique_ptr<base::MessageLoopForIO::FileDescriptorWatcher> fd_watcher_; |
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// The sequence numbers of the last Reset() call handled respectively on |
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// |origin_task_runner_| and on the MessageLoopForIO used for watching the |
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// timer file descriptor. Note that these can be the same MessageLoop. |
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// OnTimerFired() runs |on_timer_fired_callback_| only if the sequence number |
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// it receives from the MessageLoopForIO matches |
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// |origin_reset_sequence_number_|. |
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int origin_reset_sequence_number_; |
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int io_reset_sequence_number_; |
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DISALLOW_COPY_AND_ASSIGN(Delegate); |
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}; |
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AlarmTimer::Delegate::Delegate(base::Closure on_timer_fired_callback) |
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: alarm_fd_(timerfd_create(CLOCK_REALTIME_ALARM, 0)), |
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on_timer_fired_callback_(on_timer_fired_callback), |
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origin_reset_sequence_number_(0), |
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io_reset_sequence_number_(0) { |
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// The call to timerfd_create above may fail. This is the only indication |
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// that CLOCK_REALTIME_ALARM is not supported on this system. |
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DPLOG_IF(INFO, (alarm_fd_ == -1)) |
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<< "CLOCK_REALTIME_ALARM not supported on this system"; |
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} |
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AlarmTimer::Delegate::~Delegate() { |
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if (alarm_fd_ != -1) |
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close(alarm_fd_); |
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} |
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bool AlarmTimer::Delegate::CanWakeFromSuspend() { |
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return alarm_fd_ != -1; |
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} |
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void AlarmTimer::Delegate::Reset(base::TimeDelta delay) { |
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// Get a task runner for the current message loop. When the timer fires, we |
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// will |
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// post tasks to this proxy to let the parent timer know. |
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origin_task_runner_ = base::ThreadTaskRunnerHandle::Get(); |
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// Increment the sequence number. Used to invalidate any events that have |
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// been queued but not yet run since the last time Reset() was called. |
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origin_reset_sequence_number_++; |
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// Calling timerfd_settime with a zero delay actually clears the timer so if |
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// the user has requested a zero delay timer, we need to handle it |
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// differently. We queue the task here but we still go ahead and call |
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// timerfd_settime with the zero delay anyway to cancel any previous delay |
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// that might have been programmed. |
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if (delay <= base::TimeDelta::FromMicroseconds(0)) { |
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// The timerfd_settime documentation is vague on what happens when it is |
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// passed a negative delay. We can sidestep the issue by ensuring that |
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// the delay is 0. |
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delay = base::TimeDelta::FromMicroseconds(0); |
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origin_task_runner_->PostTask( |
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FROM_HERE, |
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base::Bind(&Delegate::OnTimerFired, scoped_refptr<Delegate>(this), |
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origin_reset_sequence_number_)); |
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} |
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// Run ResetImpl() on a MessageLoopForIO. |
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if (base::MessageLoopForIO::IsCurrent()) { |
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ResetImpl(delay, origin_reset_sequence_number_); |
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} else { |
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g_io_thread.Pointer()->task_runner()->PostTask( |
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FROM_HERE, |
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base::Bind(&Delegate::ResetImpl, scoped_refptr<Delegate>(this), delay, |
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origin_reset_sequence_number_)); |
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} |
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} |
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void AlarmTimer::Delegate::Stop() { |
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// Stop the RTC from a MessageLoopForIO. |
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if (!base::MessageLoopForIO::IsCurrent()) { |
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g_io_thread.Pointer()->task_runner()->PostTask( |
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FROM_HERE, base::Bind(&Delegate::Stop, scoped_refptr<Delegate>(this))); |
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return; |
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} |
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// Stop watching for events. |
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fd_watcher_.reset(); |
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// Now clear the timer. |
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DCHECK_NE(alarm_fd_, -1); |
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#if defined(ANDROID) |
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itimerspec blank_time; |
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memset(&blank_time, 0, sizeof(blank_time)); |
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#else |
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itimerspec blank_time = {}; |
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#endif // defined(ANDROID) |
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if (timerfd_settime(alarm_fd_, 0, &blank_time, NULL) < 0) |
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PLOG(ERROR) << "Unable to clear alarm time. Timer may still fire."; |
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} |
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void AlarmTimer::Delegate::OnFileCanReadWithoutBlocking(int fd) { |
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DCHECK_EQ(alarm_fd_, fd); |
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// Read from the fd to ack the event. |
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char val[sizeof(uint64_t)]; |
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if (!base::ReadFromFD(alarm_fd_, val, sizeof(uint64_t))) |
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PLOG(DFATAL) << "Unable to read from timer file descriptor."; |
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// Make sure that the parent timer is informed on the proper message loop. |
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if (origin_task_runner_->RunsTasksOnCurrentThread()) { |
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OnTimerFired(io_reset_sequence_number_); |
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} else { |
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origin_task_runner_->PostTask( |
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FROM_HERE, |
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base::Bind(&Delegate::OnTimerFired, scoped_refptr<Delegate>(this), |
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io_reset_sequence_number_)); |
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} |
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} |
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void AlarmTimer::Delegate::OnFileCanWriteWithoutBlocking(int /*fd*/) { |
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NOTREACHED(); |
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} |
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void AlarmTimer::Delegate::SetTimerFiredCallbackForTest( |
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base::Closure test_callback) { |
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on_timer_fired_callback_for_test_ = test_callback; |
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} |
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void AlarmTimer::Delegate::ResetImpl(base::TimeDelta delay, |
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int reset_sequence_number) { |
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DCHECK(base::MessageLoopForIO::IsCurrent()); |
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DCHECK_NE(alarm_fd_, -1); |
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// Store the sequence number in the IO thread variable. When the timer |
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// fires, we will bind this value to the OnTimerFired callback to ensure |
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// that we do the right thing if the timer gets reset. |
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io_reset_sequence_number_ = reset_sequence_number; |
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// If we were already watching the fd, this will stop watching it. |
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fd_watcher_.reset(new base::MessageLoopForIO::FileDescriptorWatcher); |
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// Start watching the fd to see when the timer fires. |
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if (!base::MessageLoopForIO::current()->WatchFileDescriptor( |
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alarm_fd_, false, base::MessageLoopForIO::WATCH_READ, |
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fd_watcher_.get(), this)) { |
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LOG(ERROR) << "Error while attempting to watch file descriptor for RTC " |
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<< "alarm. Timer will not fire."; |
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} |
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// Actually set the timer. This will also clear the pre-existing timer, if |
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// any. |
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#if defined(ANDROID) |
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itimerspec alarm_time; |
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memset(&alarm_time, 0, sizeof(alarm_time)); |
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#else |
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itimerspec alarm_time = {}; |
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#endif // defined(ANDROID) |
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alarm_time.it_value.tv_sec = delay.InSeconds(); |
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alarm_time.it_value.tv_nsec = |
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(delay.InMicroseconds() % base::Time::kMicrosecondsPerSecond) * |
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base::Time::kNanosecondsPerMicrosecond; |
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if (timerfd_settime(alarm_fd_, 0, &alarm_time, NULL) < 0) |
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PLOG(ERROR) << "Error while setting alarm time. Timer will not fire"; |
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} |
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void AlarmTimer::Delegate::OnTimerFired(int reset_sequence_number) { |
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DCHECK(origin_task_runner_->RunsTasksOnCurrentThread()); |
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// If a test wants to be notified when this function is about to run, then |
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// re-queue this task in the MessageLoop and run the test's callback. |
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if (!on_timer_fired_callback_for_test_.is_null()) { |
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origin_task_runner_->PostTask( |
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FROM_HERE, |
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base::Bind(&Delegate::OnTimerFired, scoped_refptr<Delegate>(this), |
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reset_sequence_number)); |
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on_timer_fired_callback_for_test_.Run(); |
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on_timer_fired_callback_for_test_.Reset(); |
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return; |
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} |
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// Check to make sure that the timer was not reset in the time between when |
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// this task was queued to run and now. If it was reset, then don't do |
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// anything. |
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if (reset_sequence_number != origin_reset_sequence_number_) |
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return; |
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on_timer_fired_callback_.Run(); |
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} |
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AlarmTimer::AlarmTimer(bool retain_user_task, bool is_repeating) |
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: base::Timer(retain_user_task, is_repeating), |
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can_wake_from_suspend_(false), |
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origin_message_loop_(NULL), |
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weak_factory_(this) { |
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Init(); |
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} |
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AlarmTimer::AlarmTimer(const tracked_objects::Location& posted_from, |
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base::TimeDelta delay, |
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const base::Closure& user_task, |
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bool is_repeating) |
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: base::Timer(posted_from, delay, user_task, is_repeating), |
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can_wake_from_suspend_(false), |
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origin_message_loop_(NULL), |
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weak_factory_(this) { |
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Init(); |
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} |
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AlarmTimer::~AlarmTimer() { |
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Stop(); |
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} |
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void AlarmTimer::SetTimerFiredCallbackForTest(base::Closure test_callback) { |
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delegate_->SetTimerFiredCallbackForTest(test_callback); |
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} |
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void AlarmTimer::Init() { |
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delegate_ = make_scoped_refptr(new AlarmTimer::Delegate( |
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base::Bind(&AlarmTimer::OnTimerFired, weak_factory_.GetWeakPtr()))); |
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can_wake_from_suspend_ = delegate_->CanWakeFromSuspend(); |
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} |
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void AlarmTimer::Stop() { |
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if (!base::Timer::is_running()) |
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return; |
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if (!can_wake_from_suspend_) { |
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base::Timer::Stop(); |
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return; |
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} |
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// Clear the running flag, stop the delegate, and delete the pending task. |
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base::Timer::set_is_running(false); |
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delegate_->Stop(); |
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pending_task_.reset(); |
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// Stop watching |origin_message_loop_|. |
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origin_message_loop_ = NULL; |
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message_loop_observer_.reset(); |
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if (!base::Timer::retain_user_task()) |
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base::Timer::set_user_task(base::Closure()); |
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} |
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void AlarmTimer::Reset() { |
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if (!can_wake_from_suspend_) { |
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base::Timer::Reset(); |
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return; |
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} |
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DCHECK(!base::Timer::user_task().is_null()); |
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DCHECK(!origin_message_loop_ || |
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origin_message_loop_->task_runner()->RunsTasksOnCurrentThread()); |
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// Make sure that the timer will stop if the underlying message loop is |
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// destroyed. |
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if (!origin_message_loop_) { |
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origin_message_loop_ = base::MessageLoop::current(); |
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message_loop_observer_.reset(new MessageLoopObserver( |
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origin_message_loop_, |
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base::Bind(&AlarmTimer::WillDestroyCurrentMessageLoop, |
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weak_factory_.GetWeakPtr()))); |
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} |
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// Set up the pending task. |
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if (base::Timer::GetCurrentDelay() > base::TimeDelta::FromMicroseconds(0)) { |
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base::Timer::set_desired_run_time(base::TimeTicks::Now() + |
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base::Timer::GetCurrentDelay()); |
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pending_task_.reset(new base::PendingTask( |
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base::Timer::posted_from(), base::Timer::user_task(), |
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base::Timer::desired_run_time(), true /* nestable */)); |
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} else { |
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base::Timer::set_desired_run_time(base::TimeTicks()); |
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pending_task_.reset(new base::PendingTask(base::Timer::posted_from(), |
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base::Timer::user_task())); |
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} |
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base::MessageLoop::current()->task_annotator()->DidQueueTask( |
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"AlarmTimer::Reset", *pending_task_); |
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// Now start up the timer. |
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delegate_->Reset(base::Timer::GetCurrentDelay()); |
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base::Timer::set_is_running(true); |
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} |
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void AlarmTimer::WillDestroyCurrentMessageLoop() { |
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Stop(); |
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} |
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void AlarmTimer::OnTimerFired() { |
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if (!base::Timer::IsRunning()) |
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return; |
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DCHECK(pending_task_.get()); |
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// Take ownership of the pending user task, which is going to be cleared by |
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// the Stop() or Reset() functions below. |
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std::unique_ptr<base::PendingTask> pending_user_task( |
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std::move(pending_task_)); |
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// Re-schedule or stop the timer as requested. |
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if (base::Timer::is_repeating()) |
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Reset(); |
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else |
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Stop(); |
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TRACE_TASK_EXECUTION("AlarmTimer::OnTimerFired", *pending_user_task); |
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// Now run the user task. |
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base::MessageLoop::current()->task_annotator()->RunTask("AlarmTimer::Reset", |
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*pending_user_task); |
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} |
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OneShotAlarmTimer::OneShotAlarmTimer() : AlarmTimer(false, false) { |
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} |
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OneShotAlarmTimer::~OneShotAlarmTimer() { |
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} |
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RepeatingAlarmTimer::RepeatingAlarmTimer() : AlarmTimer(true, true) { |
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} |
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RepeatingAlarmTimer::RepeatingAlarmTimer( |
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const tracked_objects::Location& posted_from, |
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base::TimeDelta delay, |
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const base::Closure& user_task) |
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: AlarmTimer(posted_from, delay, user_task, true) { |
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} |
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RepeatingAlarmTimer::~RepeatingAlarmTimer() { |
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} |
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SimpleAlarmTimer::SimpleAlarmTimer() : AlarmTimer(true, false) { |
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} |
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SimpleAlarmTimer::SimpleAlarmTimer(const tracked_objects::Location& posted_from, |
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base::TimeDelta delay, |
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const base::Closure& user_task) |
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: AlarmTimer(posted_from, delay, user_task, false) { |
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} |
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SimpleAlarmTimer::~SimpleAlarmTimer() { |
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} |
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} // namespace timers
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