840 lines
27 KiB
C++
840 lines
27 KiB
C++
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// Copyright 2012 The Chromium Authors
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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 "base/message_loop/message_pump_glib.h"
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#include <glib.h>
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#include <math.h>
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#include "build/build_config.h"
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#include <algorithm>
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#include <vector>
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#include "base/files/file_util.h"
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#include "base/functional/bind.h"
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#include "base/functional/callback.h"
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#include "base/functional/callback_helpers.h"
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#include "base/logging.h"
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#include "base/memory/ptr_util.h"
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#include "base/memory/raw_ptr.h"
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#include "base/memory/ref_counted.h"
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#include "base/message_loop/message_pump_type.h"
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#include "base/posix/eintr_wrapper.h"
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#include "base/run_loop.h"
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#include "base/synchronization/waitable_event.h"
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#include "base/synchronization/waitable_event_watcher.h"
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#include "base/task/current_thread.h"
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#include "base/task/single_thread_task_executor.h"
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#include "base/task/single_thread_task_runner.h"
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#include "base/test/task_environment.h"
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#include "base/test/trace_event_analyzer.h"
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#include "base/threading/thread.h"
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#include "testing/gtest/include/gtest/gtest.h"
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namespace base {
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namespace {
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// This class injects dummy "events" into the GLib loop. When "handled" these
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// events can run tasks. This is intended to mock gtk events (the corresponding
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// GLib source runs at the same priority).
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class EventInjector {
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public:
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EventInjector() : processed_events_(0) {
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source_ = static_cast<Source*>(g_source_new(&SourceFuncs, sizeof(Source)));
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source_->injector = this;
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g_source_attach(source_, nullptr);
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g_source_set_can_recurse(source_, TRUE);
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}
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EventInjector(const EventInjector&) = delete;
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EventInjector& operator=(const EventInjector&) = delete;
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~EventInjector() {
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g_source_destroy(source_);
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g_source_unref(source_.ExtractAsDangling());
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}
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int HandlePrepare() {
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// If the queue is empty, block.
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if (events_.empty())
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return -1;
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TimeDelta delta = events_[0].time - Time::NowFromSystemTime();
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return std::max(0, static_cast<int>(ceil(delta.InMillisecondsF())));
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}
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bool HandleCheck() {
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if (events_.empty())
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return false;
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return events_[0].time <= Time::NowFromSystemTime();
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}
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void HandleDispatch() {
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if (events_.empty())
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return;
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Event event = std::move(events_[0]);
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events_.erase(events_.begin());
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++processed_events_;
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if (!event.callback.is_null())
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std::move(event.callback).Run();
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else if (!event.task.is_null())
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std::move(event.task).Run();
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}
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// Adds an event to the queue. When "handled", executes |callback|.
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// delay_ms is relative to the last event if any, or to Now() otherwise.
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void AddEvent(int delay_ms, OnceClosure callback) {
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AddEventHelper(delay_ms, std::move(callback), OnceClosure());
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}
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void AddDummyEvent(int delay_ms) {
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AddEventHelper(delay_ms, OnceClosure(), OnceClosure());
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}
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void AddEventAsTask(int delay_ms, OnceClosure task) {
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AddEventHelper(delay_ms, OnceClosure(), std::move(task));
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}
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void Reset() {
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processed_events_ = 0;
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events_.clear();
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}
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int processed_events() const { return processed_events_; }
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private:
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struct Event {
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Time time;
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OnceClosure callback;
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OnceClosure task;
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};
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struct Source : public GSource {
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raw_ptr<EventInjector> injector;
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};
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void AddEventHelper(int delay_ms, OnceClosure callback, OnceClosure task) {
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Time last_time;
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if (!events_.empty())
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last_time = (events_.end()-1)->time;
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else
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last_time = Time::NowFromSystemTime();
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Time future = last_time + Milliseconds(delay_ms);
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EventInjector::Event event = {future, std::move(callback), std::move(task)};
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events_.push_back(std::move(event));
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}
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static gboolean Prepare(GSource* source, gint* timeout_ms) {
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*timeout_ms = static_cast<Source*>(source)->injector->HandlePrepare();
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return FALSE;
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}
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static gboolean Check(GSource* source) {
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return static_cast<Source*>(source)->injector->HandleCheck();
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}
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static gboolean Dispatch(GSource* source,
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GSourceFunc unused_func,
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gpointer unused_data) {
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static_cast<Source*>(source)->injector->HandleDispatch();
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return TRUE;
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}
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raw_ptr<Source> source_;
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std::vector<Event> events_;
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int processed_events_;
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static GSourceFuncs SourceFuncs;
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};
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GSourceFuncs EventInjector::SourceFuncs = {EventInjector::Prepare,
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EventInjector::Check,
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EventInjector::Dispatch, nullptr};
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void IncrementInt(int *value) {
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++*value;
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}
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// Checks how many events have been processed by the injector.
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void ExpectProcessedEvents(EventInjector* injector, int count) {
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EXPECT_EQ(injector->processed_events(), count);
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}
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// Posts a task on the current message loop.
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void PostMessageLoopTask(const Location& from_here, OnceClosure task) {
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SingleThreadTaskRunner::GetCurrentDefault()->PostTask(from_here,
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std::move(task));
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}
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// Test fixture.
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class MessagePumpGLibTest : public testing::Test {
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public:
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MessagePumpGLibTest() = default;
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MessagePumpGLibTest(const MessagePumpGLibTest&) = delete;
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MessagePumpGLibTest& operator=(const MessagePumpGLibTest&) = delete;
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EventInjector* injector() { return &injector_; }
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private:
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test::SingleThreadTaskEnvironment task_environment_{
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test::SingleThreadTaskEnvironment::MainThreadType::UI};
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EventInjector injector_;
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};
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} // namespace
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TEST_F(MessagePumpGLibTest, TestQuit) {
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// Checks that Quit works and that the basic infrastructure is working.
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// Quit from a task
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RunLoop().RunUntilIdle();
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EXPECT_EQ(0, injector()->processed_events());
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injector()->Reset();
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// Quit from an event
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RunLoop run_loop;
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injector()->AddEvent(0, run_loop.QuitClosure());
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run_loop.Run();
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EXPECT_EQ(1, injector()->processed_events());
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}
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TEST_F(MessagePumpGLibTest, TestEventTaskInterleave) {
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// Checks that tasks posted by events are executed before the next event if
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// the posted task queue is empty.
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// MessageLoop doesn't make strong guarantees that it is the case, but the
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// current implementation ensures it and the tests below rely on it.
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// If changes cause this test to fail, it is reasonable to change it, but
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// TestWorkWhileWaitingForEvents and TestEventsWhileWaitingForWork have to be
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// changed accordingly, otherwise they can become flaky.
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injector()->AddEventAsTask(0, DoNothing());
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OnceClosure check_task =
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BindOnce(&ExpectProcessedEvents, Unretained(injector()), 2);
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OnceClosure posted_task =
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BindOnce(&PostMessageLoopTask, FROM_HERE, std::move(check_task));
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injector()->AddEventAsTask(0, std::move(posted_task));
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injector()->AddEventAsTask(0, DoNothing());
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{
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RunLoop run_loop;
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injector()->AddEvent(0, run_loop.QuitClosure());
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run_loop.Run();
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}
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EXPECT_EQ(4, injector()->processed_events());
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injector()->Reset();
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injector()->AddEventAsTask(0, DoNothing());
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check_task = BindOnce(&ExpectProcessedEvents, Unretained(injector()), 2);
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posted_task =
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BindOnce(&PostMessageLoopTask, FROM_HERE, std::move(check_task));
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injector()->AddEventAsTask(0, std::move(posted_task));
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injector()->AddEventAsTask(10, DoNothing());
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{
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RunLoop run_loop;
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injector()->AddEvent(0, run_loop.QuitClosure());
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run_loop.Run();
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}
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EXPECT_EQ(4, injector()->processed_events());
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}
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TEST_F(MessagePumpGLibTest, TestWorkWhileWaitingForEvents) {
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int task_count = 0;
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// Tests that we process tasks while waiting for new events.
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// The event queue is empty at first.
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for (int i = 0; i < 10; ++i) {
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SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
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FROM_HERE, BindOnce(&IncrementInt, &task_count));
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}
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// After all the previous tasks have executed, enqueue an event that will
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// quit.
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{
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RunLoop run_loop;
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SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
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FROM_HERE, BindOnce(&EventInjector::AddEvent, Unretained(injector()), 0,
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run_loop.QuitClosure()));
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run_loop.Run();
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}
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ASSERT_EQ(10, task_count);
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EXPECT_EQ(1, injector()->processed_events());
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// Tests that we process delayed tasks while waiting for new events.
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injector()->Reset();
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task_count = 0;
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for (int i = 0; i < 10; ++i) {
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SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
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FROM_HERE, BindOnce(&IncrementInt, &task_count), Milliseconds(10 * i));
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}
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// After all the previous tasks have executed, enqueue an event that will
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// quit.
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// This relies on the fact that delayed tasks are executed in delay order.
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// That is verified in message_loop_unittest.cc.
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{
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RunLoop run_loop;
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SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
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FROM_HERE,
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BindOnce(&EventInjector::AddEvent, Unretained(injector()), 0,
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run_loop.QuitClosure()),
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Milliseconds(150));
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run_loop.Run();
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}
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ASSERT_EQ(10, task_count);
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EXPECT_EQ(1, injector()->processed_events());
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}
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TEST_F(MessagePumpGLibTest, TestEventsWhileWaitingForWork) {
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// Tests that we process events while waiting for work.
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// The event queue is empty at first.
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for (int i = 0; i < 10; ++i) {
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injector()->AddDummyEvent(0);
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}
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// After all the events have been processed, post a task that will check that
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// the events have been processed (note: the task executes after the event
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// that posted it has been handled, so we expect 11 at that point).
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OnceClosure check_task =
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BindOnce(&ExpectProcessedEvents, Unretained(injector()), 11);
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OnceClosure posted_task =
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BindOnce(&PostMessageLoopTask, FROM_HERE, std::move(check_task));
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injector()->AddEventAsTask(10, std::move(posted_task));
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// And then quit (relies on the condition tested by TestEventTaskInterleave).
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RunLoop run_loop;
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injector()->AddEvent(10, run_loop.QuitClosure());
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run_loop.Run();
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EXPECT_EQ(12, injector()->processed_events());
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}
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namespace {
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// This class is a helper for the concurrent events / posted tasks test below.
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// It will quit the main loop once enough tasks and events have been processed,
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// while making sure there is always work to do and events in the queue.
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class ConcurrentHelper : public RefCounted<ConcurrentHelper> {
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public:
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ConcurrentHelper(EventInjector* injector, OnceClosure done_closure)
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: injector_(injector),
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done_closure_(std::move(done_closure)),
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event_count_(kStartingEventCount),
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task_count_(kStartingTaskCount) {}
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void FromTask() {
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if (task_count_ > 0) {
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--task_count_;
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}
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if (task_count_ == 0 && event_count_ == 0) {
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std::move(done_closure_).Run();
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} else {
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SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
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FROM_HERE, BindOnce(&ConcurrentHelper::FromTask, this));
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}
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}
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void FromEvent() {
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if (event_count_ > 0) {
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--event_count_;
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}
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if (task_count_ == 0 && event_count_ == 0) {
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std::move(done_closure_).Run();
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} else {
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injector_->AddEventAsTask(0,
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BindOnce(&ConcurrentHelper::FromEvent, this));
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}
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}
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int event_count() const { return event_count_; }
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int task_count() const { return task_count_; }
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private:
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friend class RefCounted<ConcurrentHelper>;
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~ConcurrentHelper() {}
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static const int kStartingEventCount = 20;
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static const int kStartingTaskCount = 20;
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raw_ptr<EventInjector> injector_;
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OnceClosure done_closure_;
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int event_count_;
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int task_count_;
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};
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} // namespace
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TEST_F(MessagePumpGLibTest, TestConcurrentEventPostedTask) {
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// Tests that posted tasks don't starve events, nor the opposite.
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// We use the helper class above. We keep both event and posted task queues
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// full, the helper verifies that both tasks and events get processed.
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// If that is not the case, either event_count_ or task_count_ will not get
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// to 0, and MessageLoop::QuitWhenIdle() will never be called.
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||
|
|
RunLoop run_loop;
|
||
|
|
scoped_refptr<ConcurrentHelper> helper =
|
||
|
|
new ConcurrentHelper(injector(), run_loop.QuitClosure());
|
||
|
|
|
||
|
|
// Add 2 events to the queue to make sure it is always full (when we remove
|
||
|
|
// the event before processing it).
|
||
|
|
injector()->AddEventAsTask(0, BindOnce(&ConcurrentHelper::FromEvent, helper));
|
||
|
|
injector()->AddEventAsTask(0, BindOnce(&ConcurrentHelper::FromEvent, helper));
|
||
|
|
|
||
|
|
// Similarly post 2 tasks.
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&ConcurrentHelper::FromTask, helper));
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&ConcurrentHelper::FromTask, helper));
|
||
|
|
|
||
|
|
run_loop.Run();
|
||
|
|
EXPECT_EQ(0, helper->event_count());
|
||
|
|
EXPECT_EQ(0, helper->task_count());
|
||
|
|
}
|
||
|
|
|
||
|
|
namespace {
|
||
|
|
|
||
|
|
void AddEventsAndDrainGLib(EventInjector* injector, OnceClosure on_drained) {
|
||
|
|
// Add a couple of dummy events
|
||
|
|
injector->AddDummyEvent(0);
|
||
|
|
injector->AddDummyEvent(0);
|
||
|
|
// Then add an event that will quit the main loop.
|
||
|
|
injector->AddEvent(0, std::move(on_drained));
|
||
|
|
|
||
|
|
// Post a couple of dummy tasks
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(FROM_HERE, DoNothing());
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(FROM_HERE, DoNothing());
|
||
|
|
|
||
|
|
// Drain the events
|
||
|
|
while (g_main_context_pending(nullptr)) {
|
||
|
|
g_main_context_iteration(nullptr, FALSE);
|
||
|
|
}
|
||
|
|
}
|
||
|
|
|
||
|
|
} // namespace
|
||
|
|
|
||
|
|
TEST_F(MessagePumpGLibTest, TestDrainingGLib) {
|
||
|
|
// Tests that draining events using GLib works.
|
||
|
|
RunLoop run_loop;
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&AddEventsAndDrainGLib, Unretained(injector()),
|
||
|
|
run_loop.QuitClosure()));
|
||
|
|
run_loop.Run();
|
||
|
|
|
||
|
|
EXPECT_EQ(3, injector()->processed_events());
|
||
|
|
}
|
||
|
|
|
||
|
|
namespace {
|
||
|
|
|
||
|
|
// Helper class that lets us run the GLib message loop.
|
||
|
|
class GLibLoopRunner : public RefCounted<GLibLoopRunner> {
|
||
|
|
public:
|
||
|
|
GLibLoopRunner() : quit_(false) { }
|
||
|
|
|
||
|
|
void RunGLib() {
|
||
|
|
while (!quit_) {
|
||
|
|
g_main_context_iteration(nullptr, TRUE);
|
||
|
|
}
|
||
|
|
}
|
||
|
|
|
||
|
|
void RunLoop() {
|
||
|
|
while (!quit_) {
|
||
|
|
g_main_context_iteration(nullptr, TRUE);
|
||
|
|
}
|
||
|
|
}
|
||
|
|
|
||
|
|
void Quit() {
|
||
|
|
quit_ = true;
|
||
|
|
}
|
||
|
|
|
||
|
|
void Reset() {
|
||
|
|
quit_ = false;
|
||
|
|
}
|
||
|
|
|
||
|
|
private:
|
||
|
|
friend class RefCounted<GLibLoopRunner>;
|
||
|
|
|
||
|
|
~GLibLoopRunner() {}
|
||
|
|
|
||
|
|
bool quit_;
|
||
|
|
};
|
||
|
|
|
||
|
|
void TestGLibLoopInternal(EventInjector* injector, OnceClosure done) {
|
||
|
|
scoped_refptr<GLibLoopRunner> runner = new GLibLoopRunner();
|
||
|
|
|
||
|
|
int task_count = 0;
|
||
|
|
// Add a couple of dummy events
|
||
|
|
injector->AddDummyEvent(0);
|
||
|
|
injector->AddDummyEvent(0);
|
||
|
|
// Post a couple of dummy tasks
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&IncrementInt, &task_count));
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&IncrementInt, &task_count));
|
||
|
|
// Delayed events
|
||
|
|
injector->AddDummyEvent(10);
|
||
|
|
injector->AddDummyEvent(10);
|
||
|
|
// Delayed work
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
|
||
|
|
FROM_HERE, BindOnce(&IncrementInt, &task_count), Milliseconds(30));
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
|
||
|
|
FROM_HERE, BindOnce(&GLibLoopRunner::Quit, runner), Milliseconds(40));
|
||
|
|
|
||
|
|
// Run a nested, straight GLib message loop.
|
||
|
|
{
|
||
|
|
CurrentThread::ScopedAllowApplicationTasksInNativeNestedLoop allow;
|
||
|
|
runner->RunGLib();
|
||
|
|
}
|
||
|
|
|
||
|
|
ASSERT_EQ(3, task_count);
|
||
|
|
EXPECT_EQ(4, injector->processed_events());
|
||
|
|
std::move(done).Run();
|
||
|
|
}
|
||
|
|
|
||
|
|
void TestGtkLoopInternal(EventInjector* injector, OnceClosure done) {
|
||
|
|
scoped_refptr<GLibLoopRunner> runner = new GLibLoopRunner();
|
||
|
|
|
||
|
|
int task_count = 0;
|
||
|
|
// Add a couple of dummy events
|
||
|
|
injector->AddDummyEvent(0);
|
||
|
|
injector->AddDummyEvent(0);
|
||
|
|
// Post a couple of dummy tasks
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&IncrementInt, &task_count));
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&IncrementInt, &task_count));
|
||
|
|
// Delayed events
|
||
|
|
injector->AddDummyEvent(10);
|
||
|
|
injector->AddDummyEvent(10);
|
||
|
|
// Delayed work
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
|
||
|
|
FROM_HERE, BindOnce(&IncrementInt, &task_count), Milliseconds(30));
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
|
||
|
|
FROM_HERE, BindOnce(&GLibLoopRunner::Quit, runner), Milliseconds(40));
|
||
|
|
|
||
|
|
// Run a nested, straight Gtk message loop.
|
||
|
|
{
|
||
|
|
CurrentThread::ScopedAllowApplicationTasksInNativeNestedLoop allow;
|
||
|
|
runner->RunLoop();
|
||
|
|
}
|
||
|
|
|
||
|
|
ASSERT_EQ(3, task_count);
|
||
|
|
EXPECT_EQ(4, injector->processed_events());
|
||
|
|
std::move(done).Run();
|
||
|
|
}
|
||
|
|
|
||
|
|
} // namespace
|
||
|
|
|
||
|
|
TEST_F(MessagePumpGLibTest, TestGLibLoop) {
|
||
|
|
// Tests that events and posted tasks are correctly executed if the message
|
||
|
|
// loop is not run by MessageLoop::Run() but by a straight GLib loop.
|
||
|
|
// Note that in this case we don't make strong guarantees about niceness
|
||
|
|
// between events and posted tasks.
|
||
|
|
RunLoop run_loop;
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&TestGLibLoopInternal, Unretained(injector()),
|
||
|
|
run_loop.QuitClosure()));
|
||
|
|
run_loop.Run();
|
||
|
|
}
|
||
|
|
|
||
|
|
TEST_F(MessagePumpGLibTest, TestGtkLoop) {
|
||
|
|
// Tests that events and posted tasks are correctly executed if the message
|
||
|
|
// loop is not run by MessageLoop::Run() but by a straight Gtk loop.
|
||
|
|
// Note that in this case we don't make strong guarantees about niceness
|
||
|
|
// between events and posted tasks.
|
||
|
|
RunLoop run_loop;
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&TestGtkLoopInternal, Unretained(injector()),
|
||
|
|
run_loop.QuitClosure()));
|
||
|
|
run_loop.Run();
|
||
|
|
}
|
||
|
|
|
||
|
|
namespace {
|
||
|
|
|
||
|
|
class NestedEventAnalyzer {
|
||
|
|
public:
|
||
|
|
NestedEventAnalyzer() {
|
||
|
|
trace_analyzer::Start(TRACE_DISABLED_BY_DEFAULT("base"));
|
||
|
|
}
|
||
|
|
|
||
|
|
size_t CountEvents() {
|
||
|
|
std::unique_ptr<trace_analyzer::TraceAnalyzer> analyzer =
|
||
|
|
trace_analyzer::Stop();
|
||
|
|
trace_analyzer::TraceEventVector events;
|
||
|
|
return analyzer->FindEvents(trace_analyzer::Query::EventName() ==
|
||
|
|
trace_analyzer::Query::String("Nested"),
|
||
|
|
&events);
|
||
|
|
}
|
||
|
|
};
|
||
|
|
|
||
|
|
} // namespace
|
||
|
|
|
||
|
|
TEST_F(MessagePumpGLibTest, TestNativeNestedLoopWithoutDoWork) {
|
||
|
|
// Tests that nesting is triggered correctly if a message loop is run
|
||
|
|
// from a native event (gtk event) outside of a work item (not in a posted
|
||
|
|
// task).
|
||
|
|
|
||
|
|
RunLoop run_loop;
|
||
|
|
NestedEventAnalyzer analyzer;
|
||
|
|
|
||
|
|
base::CurrentThread::Get()->EnableMessagePumpTimeKeeperMetrics(
|
||
|
|
"GlibMainLoopTest");
|
||
|
|
|
||
|
|
scoped_refptr<GLibLoopRunner> runner = base::MakeRefCounted<GLibLoopRunner>();
|
||
|
|
injector()->AddEvent(
|
||
|
|
0,
|
||
|
|
BindOnce(
|
||
|
|
[](EventInjector* injector, scoped_refptr<GLibLoopRunner> runner,
|
||
|
|
OnceClosure done) {
|
||
|
|
CurrentThread::ScopedAllowApplicationTasksInNativeNestedLoop allow;
|
||
|
|
runner->RunLoop();
|
||
|
|
},
|
||
|
|
Unretained(injector()), runner, run_loop.QuitClosure()));
|
||
|
|
|
||
|
|
injector()->AddDummyEvent(0);
|
||
|
|
injector()->AddDummyEvent(0);
|
||
|
|
injector()->AddDummyEvent(0);
|
||
|
|
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
|
||
|
|
FROM_HERE, BindOnce(&GLibLoopRunner::Quit, runner), Milliseconds(40));
|
||
|
|
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostDelayedTask(
|
||
|
|
FROM_HERE, run_loop.QuitClosure(), Milliseconds(40));
|
||
|
|
|
||
|
|
run_loop.Run();
|
||
|
|
|
||
|
|
// It would be expected that there be one single event, but it seems like this
|
||
|
|
// is counting the Begin/End of the Nested trace event. Each of the two events
|
||
|
|
// found are of duration 0 with distinct timestamps. It has also been
|
||
|
|
// confirmed that nesting occurs only once.
|
||
|
|
CHECK_EQ(analyzer.CountEvents(), 2ul);
|
||
|
|
}
|
||
|
|
|
||
|
|
// Tests for WatchFileDescriptor API
|
||
|
|
class MessagePumpGLibFdWatchTest : public testing::Test {
|
||
|
|
protected:
|
||
|
|
MessagePumpGLibFdWatchTest()
|
||
|
|
: io_thread_("MessagePumpGLibFdWatchTestIOThread") {}
|
||
|
|
~MessagePumpGLibFdWatchTest() override = default;
|
||
|
|
|
||
|
|
void SetUp() override {
|
||
|
|
Thread::Options options(MessagePumpType::IO, 0);
|
||
|
|
ASSERT_TRUE(io_thread_.StartWithOptions(std::move(options)));
|
||
|
|
int ret = pipe(pipefds_);
|
||
|
|
ASSERT_EQ(0, ret);
|
||
|
|
}
|
||
|
|
|
||
|
|
void TearDown() override {
|
||
|
|
// Wait for the IO thread to exit before closing FDs which may have been
|
||
|
|
// passed to it.
|
||
|
|
io_thread_.Stop();
|
||
|
|
if (IGNORE_EINTR(close(pipefds_[0])) < 0)
|
||
|
|
PLOG(ERROR) << "close";
|
||
|
|
if (IGNORE_EINTR(close(pipefds_[1])) < 0)
|
||
|
|
PLOG(ERROR) << "close";
|
||
|
|
}
|
||
|
|
|
||
|
|
void WaitUntilIoThreadStarted() {
|
||
|
|
ASSERT_TRUE(io_thread_.WaitUntilThreadStarted());
|
||
|
|
}
|
||
|
|
|
||
|
|
scoped_refptr<SingleThreadTaskRunner> io_runner() const {
|
||
|
|
return io_thread_.task_runner();
|
||
|
|
}
|
||
|
|
|
||
|
|
void SimulateEvent(MessagePumpGlib* pump,
|
||
|
|
MessagePumpGlib::FdWatchController* controller) {
|
||
|
|
controller->poll_fd_->revents = G_IO_IN | G_IO_OUT;
|
||
|
|
pump->HandleFdWatchDispatch(controller);
|
||
|
|
}
|
||
|
|
|
||
|
|
int pipefds_[2];
|
||
|
|
|
||
|
|
private:
|
||
|
|
Thread io_thread_;
|
||
|
|
};
|
||
|
|
|
||
|
|
namespace {
|
||
|
|
|
||
|
|
class BaseWatcher : public MessagePumpGlib::FdWatcher {
|
||
|
|
public:
|
||
|
|
explicit BaseWatcher(MessagePumpGlib::FdWatchController* controller)
|
||
|
|
: controller_(controller) {
|
||
|
|
DCHECK(controller_);
|
||
|
|
}
|
||
|
|
~BaseWatcher() override = default;
|
||
|
|
|
||
|
|
// base:MessagePumpGlib::FdWatcher interface
|
||
|
|
void OnFileCanReadWithoutBlocking(int /* fd */) override { NOTREACHED(); }
|
||
|
|
void OnFileCanWriteWithoutBlocking(int /* fd */) override { NOTREACHED(); }
|
||
|
|
|
||
|
|
protected:
|
||
|
|
raw_ptr<MessagePumpGlib::FdWatchController> controller_;
|
||
|
|
};
|
||
|
|
|
||
|
|
class DeleteWatcher : public BaseWatcher {
|
||
|
|
public:
|
||
|
|
explicit DeleteWatcher(
|
||
|
|
std::unique_ptr<MessagePumpGlib::FdWatchController> controller)
|
||
|
|
: BaseWatcher(controller.get()),
|
||
|
|
owned_controller_(std::move(controller)) {}
|
||
|
|
|
||
|
|
~DeleteWatcher() override { DCHECK(!controller_); }
|
||
|
|
|
||
|
|
bool HasController() const { return !!controller_; }
|
||
|
|
|
||
|
|
void OnFileCanWriteWithoutBlocking(int /* fd */) override {
|
||
|
|
ClearController();
|
||
|
|
}
|
||
|
|
|
||
|
|
protected:
|
||
|
|
void ClearController() {
|
||
|
|
DCHECK(owned_controller_);
|
||
|
|
controller_ = nullptr;
|
||
|
|
owned_controller_.reset();
|
||
|
|
}
|
||
|
|
|
||
|
|
private:
|
||
|
|
std::unique_ptr<MessagePumpGlib::FdWatchController> owned_controller_;
|
||
|
|
};
|
||
|
|
|
||
|
|
class StopWatcher : public BaseWatcher {
|
||
|
|
public:
|
||
|
|
explicit StopWatcher(MessagePumpGlib::FdWatchController* controller)
|
||
|
|
: BaseWatcher(controller) {}
|
||
|
|
|
||
|
|
~StopWatcher() override = default;
|
||
|
|
|
||
|
|
void OnFileCanWriteWithoutBlocking(int /* fd */) override {
|
||
|
|
controller_->StopWatchingFileDescriptor();
|
||
|
|
}
|
||
|
|
};
|
||
|
|
|
||
|
|
void QuitMessageLoopAndStart(OnceClosure quit_closure) {
|
||
|
|
std::move(quit_closure).Run();
|
||
|
|
|
||
|
|
RunLoop runloop(RunLoop::Type::kNestableTasksAllowed);
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(FROM_HERE,
|
||
|
|
runloop.QuitClosure());
|
||
|
|
runloop.Run();
|
||
|
|
}
|
||
|
|
|
||
|
|
class NestedPumpWatcher : public MessagePumpGlib::FdWatcher {
|
||
|
|
public:
|
||
|
|
NestedPumpWatcher() = default;
|
||
|
|
~NestedPumpWatcher() override = default;
|
||
|
|
|
||
|
|
void OnFileCanReadWithoutBlocking(int /* fd */) override {
|
||
|
|
RunLoop runloop;
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&QuitMessageLoopAndStart, runloop.QuitClosure()));
|
||
|
|
runloop.Run();
|
||
|
|
}
|
||
|
|
|
||
|
|
void OnFileCanWriteWithoutBlocking(int /* fd */) override {}
|
||
|
|
};
|
||
|
|
|
||
|
|
class QuitWatcher : public DeleteWatcher {
|
||
|
|
public:
|
||
|
|
QuitWatcher(std::unique_ptr<MessagePumpGlib::FdWatchController> controller,
|
||
|
|
base::OnceClosure quit_closure)
|
||
|
|
: DeleteWatcher(std::move(controller)),
|
||
|
|
quit_closure_(std::move(quit_closure)) {}
|
||
|
|
|
||
|
|
void OnFileCanReadWithoutBlocking(int fd) override {
|
||
|
|
ClearController();
|
||
|
|
if (quit_closure_)
|
||
|
|
std::move(quit_closure_).Run();
|
||
|
|
}
|
||
|
|
|
||
|
|
private:
|
||
|
|
base::OnceClosure quit_closure_;
|
||
|
|
};
|
||
|
|
|
||
|
|
void WriteFDWrapper(const int fd,
|
||
|
|
const char* buf,
|
||
|
|
int size,
|
||
|
|
WaitableEvent* event) {
|
||
|
|
ASSERT_TRUE(WriteFileDescriptor(fd, StringPiece(buf, size)));
|
||
|
|
}
|
||
|
|
|
||
|
|
} // namespace
|
||
|
|
|
||
|
|
// Tests that MessagePumpGlib::FdWatcher::OnFileCanReadWithoutBlocking is not
|
||
|
|
// called for a READ_WRITE event, and that the controller is destroyed in
|
||
|
|
// OnFileCanWriteWithoutBlocking callback.
|
||
|
|
TEST_F(MessagePumpGLibFdWatchTest, DeleteWatcher) {
|
||
|
|
auto pump = std::make_unique<MessagePumpGlib>();
|
||
|
|
auto controller_ptr =
|
||
|
|
std::make_unique<MessagePumpGlib::FdWatchController>(FROM_HERE);
|
||
|
|
auto* controller = controller_ptr.get();
|
||
|
|
|
||
|
|
DeleteWatcher watcher(std::move(controller_ptr));
|
||
|
|
pump->WatchFileDescriptor(pipefds_[1], false,
|
||
|
|
MessagePumpGlib::WATCH_READ_WRITE, controller,
|
||
|
|
&watcher);
|
||
|
|
|
||
|
|
SimulateEvent(pump.get(), controller);
|
||
|
|
EXPECT_FALSE(watcher.HasController());
|
||
|
|
}
|
||
|
|
|
||
|
|
// Tests that MessagePumpGlib::FdWatcher::OnFileCanReadWithoutBlocking is not
|
||
|
|
// called for a READ_WRITE event, when the watcher calls
|
||
|
|
// StopWatchingFileDescriptor in OnFileCanWriteWithoutBlocking callback.
|
||
|
|
TEST_F(MessagePumpGLibFdWatchTest, StopWatcher) {
|
||
|
|
std::unique_ptr<MessagePumpGlib> pump(new MessagePumpGlib);
|
||
|
|
MessagePumpGlib::FdWatchController controller(FROM_HERE);
|
||
|
|
StopWatcher watcher(&controller);
|
||
|
|
pump->WatchFileDescriptor(pipefds_[1], false,
|
||
|
|
MessagePumpGlib::WATCH_READ_WRITE, &controller,
|
||
|
|
&watcher);
|
||
|
|
|
||
|
|
SimulateEvent(pump.get(), &controller);
|
||
|
|
}
|
||
|
|
|
||
|
|
// Tests that FdWatcher works properly with nested loops.
|
||
|
|
TEST_F(MessagePumpGLibFdWatchTest, NestedPumpWatcher) {
|
||
|
|
test::SingleThreadTaskEnvironment task_environment(
|
||
|
|
test::SingleThreadTaskEnvironment::MainThreadType::UI);
|
||
|
|
std::unique_ptr<MessagePumpGlib> pump(new MessagePumpGlib);
|
||
|
|
NestedPumpWatcher watcher;
|
||
|
|
MessagePumpGlib::FdWatchController controller(FROM_HERE);
|
||
|
|
pump->WatchFileDescriptor(pipefds_[1], false, MessagePumpGlib::WATCH_READ,
|
||
|
|
&controller, &watcher);
|
||
|
|
|
||
|
|
SimulateEvent(pump.get(), &controller);
|
||
|
|
}
|
||
|
|
|
||
|
|
// Tests that MessagePumpGlib quits immediately when it is quit from
|
||
|
|
// libevent's event_base_loop().
|
||
|
|
TEST_F(MessagePumpGLibFdWatchTest, QuitWatcher) {
|
||
|
|
MessagePumpGlib* pump = new MessagePumpGlib();
|
||
|
|
SingleThreadTaskExecutor executor(WrapUnique(pump));
|
||
|
|
RunLoop run_loop;
|
||
|
|
|
||
|
|
auto owned_controller =
|
||
|
|
std::make_unique<MessagePumpGlib::FdWatchController>(FROM_HERE);
|
||
|
|
MessagePumpGlib::FdWatchController* controller = owned_controller.get();
|
||
|
|
QuitWatcher delegate(std::move(owned_controller), run_loop.QuitClosure());
|
||
|
|
|
||
|
|
pump->WatchFileDescriptor(pipefds_[0], false, MessagePumpGlib::WATCH_READ,
|
||
|
|
controller, &delegate);
|
||
|
|
|
||
|
|
// Make the IO thread wait for |event| before writing to pipefds[1].
|
||
|
|
const char buf = 0;
|
||
|
|
WaitableEvent event;
|
||
|
|
auto watcher = std::make_unique<WaitableEventWatcher>();
|
||
|
|
WaitableEventWatcher::EventCallback write_fd_task =
|
||
|
|
BindOnce(&WriteFDWrapper, pipefds_[1], &buf, 1);
|
||
|
|
io_runner()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(IgnoreResult(&WaitableEventWatcher::StartWatching),
|
||
|
|
Unretained(watcher.get()), &event,
|
||
|
|
std::move(write_fd_task), io_runner()));
|
||
|
|
|
||
|
|
// Queue |event| to signal on |CurrentUIThread::Get()|.
|
||
|
|
SingleThreadTaskRunner::GetCurrentDefault()->PostTask(
|
||
|
|
FROM_HERE, BindOnce(&WaitableEvent::Signal, Unretained(&event)));
|
||
|
|
|
||
|
|
// Now run the MessageLoop.
|
||
|
|
run_loop.Run();
|
||
|
|
|
||
|
|
// StartWatching can move |watcher| to IO thread. Release on IO thread.
|
||
|
|
io_runner()->PostTask(FROM_HERE, BindOnce(&WaitableEventWatcher::StopWatching,
|
||
|
|
Owned(std::move(watcher))));
|
||
|
|
}
|
||
|
|
|
||
|
|
} // namespace base
|