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rtabmap/utilite/test/test_usemaphore.cpp
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2026-08-06 13:32:20 -07:00
#include "gtest/gtest.h"
#include "rtabmap/utilite/USemaphore.h"
#include "rtabmap/utilite/UMutex.h"
#include "rtabmap/utilite/UTimer.h"
#include <thread>
#include <chrono>
#include <atomic>
#include <vector>
TEST(USemaphoreTest, ConstructorDefault)
{
USemaphore sem;
// Should be constructible with default value (0)
EXPECT_EQ(sem.value(), 0);
}
TEST(USemaphoreTest, ConstructorWithValue)
{
USemaphore sem(5);
EXPECT_EQ(sem.value(), 5);
}
TEST(USemaphoreTest, Release)
{
USemaphore sem(0);
sem.release();
EXPECT_EQ(sem.value(), 1);
sem.release(3);
EXPECT_EQ(sem.value(), 4);
}
TEST(USemaphoreTest, Acquire)
{
USemaphore sem(2);
bool result = sem.acquire();
EXPECT_TRUE(result);
EXPECT_EQ(sem.value(), 1);
result = sem.acquire();
EXPECT_TRUE(result);
EXPECT_EQ(sem.value(), 0);
}
TEST(USemaphoreTest, AcquireMultiple)
{
USemaphore sem(5);
bool result = sem.acquire(3);
EXPECT_TRUE(result);
EXPECT_EQ(sem.value(), 2);
result = sem.acquire(2);
EXPECT_TRUE(result);
EXPECT_EQ(sem.value(), 0);
}
TEST(USemaphoreTest, AcquireBlocks)
{
USemaphore sem(0);
std::atomic<bool> acquired(false);
std::atomic<bool> threadStarted(false);
std::thread t([&sem, &acquired, &threadStarted]() {
threadStarted = true;
bool result = sem.acquire();
acquired = result;
});
// Wait for thread to start and try to acquire
while(!threadStarted)
{
std::this_thread::sleep_for(std::chrono::milliseconds(1));
}
std::this_thread::sleep_for(std::chrono::milliseconds(10));
// Thread should be blocked
EXPECT_FALSE(acquired);
// Release to unblock
sem.release();
t.join();
EXPECT_TRUE(acquired);
}
TEST(USemaphoreTest, AcquireWithTimeout)
{
USemaphore sem(0);
// Try to acquire with timeout
bool result = sem.acquire(1, 50); // 50ms timeout
EXPECT_FALSE(result); // Should timeout
// Release and try again
sem.release();
result = sem.acquire(1, 50);
EXPECT_TRUE(result);
}
TEST(USemaphoreTest, AcquireTry)
{
USemaphore sem(3);
// Try to acquire when available
#ifdef _WIN32
// Windows overload returns 0 on success, EAGAIN when nothing is available.
int result = sem.acquireTry();
EXPECT_EQ(result, 0);
EXPECT_EQ(sem.value(), 2);
result = sem.acquireTry();
EXPECT_EQ(result, 0);
EXPECT_EQ(sem.value(), 1);
result = sem.acquireTry();
EXPECT_EQ(result, 0);
EXPECT_EQ(sem.value(), 0);
// Semaphore is exhausted: the next non-blocking try must fail.
result = sem.acquireTry();
EXPECT_NE(result, 0);
#else
// Same convention as the Windows overload: 0 on success, EAGAIN otherwise.
int result = sem.acquireTry(1);
EXPECT_EQ(result, 0);
EXPECT_EQ(sem.value(), 2);
result = sem.acquireTry(2);
EXPECT_EQ(result, 0);
EXPECT_EQ(sem.value(), 0);
// Try to acquire when not available
result = sem.acquireTry(1);
EXPECT_NE(result, 0);
#endif
}
TEST(USemaphoreTest, Value)
{
USemaphore sem(10);
int value = sem.value();
EXPECT_EQ(value, 10);
sem.acquire(3);
value = sem.value();
EXPECT_EQ(value, 7);
sem.release(2);
value = sem.value();
EXPECT_EQ(value, 9);
}
TEST(USemaphoreTest, ThreadSafety)
{
USemaphore sem(0);
std::atomic<int> counter(0);
static constexpr int numThreads = 4;
static constexpr int iterations = 100;
std::vector<std::thread> threads;
// Create threads that will wait on semaphore
for(int i = 0; i < numThreads; ++i)
{
threads.emplace_back([&sem, &counter]() {
for(int j = 0; j < iterations; ++j)
{
sem.acquire();
counter++;
}
});
}
// Release semaphore to allow threads to proceed
std::thread releaseThread([&sem]() {
for(int i = 0; i < numThreads * iterations; ++i)
{
sem.release();
// yield() instead of sleep_for(10us): Windows's default 15.6ms
// timer tick turns "10us" into ~15ms, blowing this 400-iter loop
// up to ~6s on Windows CI for no benefit. yield() still lets the
// waiting acquirers run between releases without the wall-clock
// cost.
std::this_thread::yield();
}
});
for(auto& t : threads)
{
t.join();
}
releaseThread.join();
EXPECT_EQ(counter.load(), numThreads * iterations);
}
TEST(USemaphoreTest, ProducerConsumer)
{
USemaphore full(0);
USemaphore empty(10);
std::vector<int> buffer;
UMutex bufferMutex;
static constexpr int items = 20;
std::atomic<int> produced(0);
std::atomic<int> consumed(0);
// Producer thread
std::thread producer([&full, &empty, &buffer, &bufferMutex, &produced]() {
for(int i = 0; i < items; ++i)
{
empty.acquire();
{
UScopeMutex lock(bufferMutex);
buffer.push_back(i);
}
full.release();
produced++;
}
});
// Consumer thread
std::thread consumer([&full, &empty, &buffer, &bufferMutex, &consumed]() {
for(int i = 0; i < items; ++i)
{
full.acquire();
{
UScopeMutex lock(bufferMutex);
if(!buffer.empty())
{
buffer.pop_back();
}
}
empty.release();
consumed++;
}
});
producer.join();
consumer.join();
EXPECT_EQ(produced.load(), items);
EXPECT_EQ(consumed.load(), items);
}
TEST(USemaphoreTest, MultipleAcquireRelease)
{
USemaphore sem(0);
// Release multiple times
sem.release(5);
EXPECT_EQ(sem.value(), 5);
// Acquire multiple times
bool result = sem.acquire(3);
EXPECT_TRUE(result);
EXPECT_EQ(sem.value(), 2);
result = sem.acquire(2);
EXPECT_TRUE(result);
EXPECT_EQ(sem.value(), 0);
}
TEST(USemaphoreTest, AcquireZero)
{
USemaphore sem(5);
// Acquire 0 should not block
bool result = sem.acquire(0);
EXPECT_TRUE(result);
EXPECT_EQ(sem.value(), 5);
}
TEST(USemaphoreTest, ReleaseZero)
{
USemaphore sem(5);
// Release 0 should not change value
sem.release(0);
EXPECT_EQ(sem.value(), 5);
}
#ifdef _WIN32
TEST(USemaphoreTest, Reset)
{
USemaphore sem(5);
EXPECT_EQ(sem.value(), 5);
sem.reset(10);
EXPECT_EQ(sem.value(), 10);
sem.reset(0);
EXPECT_EQ(sem.value(), 0);
}
#endif
TEST(USemaphoreTest, ConcurrentAcquireRelease)
{
USemaphore sem(0);
std::atomic<int> acquiredCount(0);
const int numThreads = 5;
std::vector<std::thread> acquireThreads;
std::vector<std::thread> releaseThreads;
// Create threads that acquire
for(int i = 0; i < numThreads; ++i)
{
acquireThreads.emplace_back([&sem, &acquiredCount]() {
sem.acquire();
acquiredCount++;
});
}
// Wait a bit
std::this_thread::sleep_for(std::chrono::milliseconds(50));
// Create threads that release
for(int i = 0; i < numThreads; ++i)
{
releaseThreads.emplace_back([&sem]() {
std::this_thread::sleep_for(std::chrono::milliseconds(10));
sem.release();
});
}
for(auto& t : acquireThreads)
{
t.join();
}
for(auto& t : releaseThreads)
{
t.join();
}
EXPECT_EQ(acquiredCount.load(), numThreads);
}