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173 lines
5.7 KiB
173 lines
5.7 KiB
// Copyright 2020 The Pigweed Authors
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//
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// Licensed under the Apache License, Version 2.0 (the "License"); you may not
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// use this file except in compliance with the License. You may obtain a copy of
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// the License at
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//
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// https://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, WITHOUT
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// WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the
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// License for the specific language governing permissions and limitations under
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// the License.
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#include <chrono>
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#include "gtest/gtest.h"
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#include "pw_chrono/system_clock.h"
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#include "pw_sync/timed_mutex.h"
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using pw::chrono::SystemClock;
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using namespace std::chrono_literals;
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namespace pw::sync {
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namespace {
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extern "C" {
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// Functions defined in mutex_facade_test_c.c which call the API from C.
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void pw_sync_TimedMutex_CallLock(pw_sync_TimedMutex* mutex);
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bool pw_sync_TimedMutex_CallTryLock(pw_sync_TimedMutex* mutex);
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bool pw_sync_TimedMutex_CallTryLockFor(
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pw_sync_TimedMutex* mutex, pw_chrono_SystemClock_Duration for_at_least);
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bool pw_sync_TimedMutex_CallTryLockUntil(
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pw_sync_TimedMutex* mutex, pw_chrono_SystemClock_TimePoint until_at_least);
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void pw_sync_TimedMutex_CallUnlock(pw_sync_TimedMutex* mutex);
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} // extern "C"
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// We can't control the SystemClock's period configuration, so just in case
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// duration cannot be accurately expressed in integer ticks, round the
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// duration up.
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constexpr SystemClock::duration kRoundedArbitraryDuration =
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SystemClock::for_at_least(42ms);
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constexpr pw_chrono_SystemClock_Duration kRoundedArbitraryDurationInC =
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PW_SYSTEM_CLOCK_MS(42);
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// TODO(pwbug/291): Add real concurrency tests once we have pw::thread.
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TEST(TimedMutex, LockUnlock) {
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pw::sync::TimedMutex mutex;
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mutex.lock();
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// TODO(pwbug/291): Ensure it fails to lock when already held.
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// EXPECT_FALSE(mutex.try_lock());
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mutex.unlock();
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}
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TimedMutex static_mutex;
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TEST(TimedMutex, LockUnlockStatic) {
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static_mutex.lock();
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// TODO(pwbug/291): Ensure it fails to lock when already held.
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// EXPECT_FALSE(static_mutex.try_lock());
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static_mutex.unlock();
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}
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TEST(TimedMutex, TryLockUnlock) {
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pw::sync::TimedMutex mutex;
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const bool locked = mutex.try_lock();
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EXPECT_TRUE(locked);
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if (locked) {
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// TODO(pwbug/291): Ensure it fails to lock when already held.
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// EXPECT_FALSE(mutex.try_lock());
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mutex.unlock();
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}
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}
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TEST(TimedMutex, TryLockUnlockFor) {
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pw::sync::TimedMutex mutex;
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SystemClock::time_point before = SystemClock::now();
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const bool locked = mutex.try_lock_for(kRoundedArbitraryDuration);
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EXPECT_TRUE(locked);
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if (locked) {
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SystemClock::duration time_elapsed = SystemClock::now() - before;
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EXPECT_LT(time_elapsed, kRoundedArbitraryDuration);
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// TODO(pwbug/291): Ensure it blocks fails to lock when already held.
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// before = SystemClock::now();
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// EXPECT_FALSE(mutex.try_lock_for(kRoundedArbitraryDuration));
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// time_elapsed = SystemClock::now() - before;
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/// EXPECT_GE(time_elapsed, kRoundedArbitraryDuration);
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mutex.unlock();
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}
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}
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TEST(TimedMutex, TryLockUnlockUntil) {
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pw::sync::TimedMutex mutex;
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const SystemClock::time_point deadline =
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SystemClock::now() + kRoundedArbitraryDuration;
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const bool locked = mutex.try_lock_until(deadline);
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EXPECT_TRUE(locked);
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if (locked) {
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EXPECT_LT(SystemClock::now(), deadline);
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// TODO(pwbug/291): Ensure it blocks fails to lock when already held.
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// EXPECT_FALSE(
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// mutex.try_lock_until(SystemClock::now() +
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// kRoundedArbitraryDuration));
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// EXPECT_GE(SystemClock::now(), deadline);
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mutex.unlock();
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}
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}
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TEST(TimedMutex, LockUnlockInC) {
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pw::sync::TimedMutex mutex;
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pw_sync_TimedMutex_CallLock(&mutex);
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pw_sync_TimedMutex_CallUnlock(&mutex);
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}
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TEST(TimedMutex, TryLockUnlockInC) {
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pw::sync::TimedMutex mutex;
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ASSERT_TRUE(pw_sync_TimedMutex_CallTryLock(&mutex));
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// TODO(pwbug/291): Ensure it fails to lock when already held.
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// EXPECT_FALSE(pw_sync_TimedMutex_CallTryLock(&mutex));
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pw_sync_TimedMutex_CallUnlock(&mutex);
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}
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TEST(TimedMutex, TryLockUnlockForInC) {
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pw::sync::TimedMutex mutex;
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pw_chrono_SystemClock_TimePoint before = pw_chrono_SystemClock_Now();
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ASSERT_TRUE(
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pw_sync_TimedMutex_CallTryLockFor(&mutex, kRoundedArbitraryDurationInC));
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pw_chrono_SystemClock_Duration time_elapsed =
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pw_chrono_SystemClock_TimeElapsed(before, pw_chrono_SystemClock_Now());
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EXPECT_LT(time_elapsed.ticks, kRoundedArbitraryDurationInC.ticks);
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// TODO(pwbug/291): Ensure it blocks fails to lock when already held.
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// before = pw_chrono_SystemClock_Now();
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// EXPECT_FALSE(
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// pw_sync_TimedMutex_CallTryLockFor(&mutex,
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// kRoundedArbitraryDurationInC));
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// time_elapsed =
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// pw_chrono_SystemClock_TimeElapsed(before, pw_chrono_SystemClock_Now());
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// EXPECT_GE(time_elapsed.ticks, kRoundedArbitraryDurationInC.ticks);
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pw_sync_TimedMutex_CallUnlock(&mutex);
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}
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TEST(TimedMutex, TryLockUnlockUntilInC) {
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pw::sync::TimedMutex mutex;
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pw_chrono_SystemClock_TimePoint deadline;
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deadline.duration_since_epoch.ticks =
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pw_chrono_SystemClock_Now().duration_since_epoch.ticks +
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kRoundedArbitraryDurationInC.ticks;
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ASSERT_TRUE(pw_sync_TimedMutex_CallTryLockUntil(&mutex, deadline));
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EXPECT_LT(pw_chrono_SystemClock_Now().duration_since_epoch.ticks,
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deadline.duration_since_epoch.ticks);
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// TODO(pwbug/291): Ensure it blocks fails to lock when already held.
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// EXPECT_FALSE(pw_sync_TimedMutex_CallTryLockUntil(&mutex, deadline));
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// EXPECT_GE(pw_chrono_SystemClock_Now().duration_since_epoch.ticks,
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// deadline.duration_since_epoch.ticks);
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pw_sync_TimedMutex_CallUnlock(&mutex);
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}
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} // namespace
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} // namespace pw::sync
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