Files
rtabmap/corelib/test/test_imuthread.cpp
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2026-08-06 13:32:20 -07:00

363 lines
10 KiB
C++

#include <gtest/gtest.h>
#include <rtabmap/core/IMUThread.h>
#include <rtabmap/core/IMU.h>
#include <rtabmap/core/IMUFilter.h>
#include <rtabmap/utilite/UEventsHandler.h>
#include <rtabmap/utilite/UEventsManager.h>
#include <rtabmap/utilite/UFile.h>
#include <rtabmap/utilite/UConversion.h>
#include <rtabmap/utilite/UMutex.h>
#include <rtabmap/utilite/UTimer.h>
#include "TestUtils.h"
#include <fstream>
#include <cmath>
#include <vector>
using namespace rtabmap;
namespace {
static int g_fileCounter = 0;
static std::string tempImuCsvPath()
{
return test::tempPath(uFormat("rtabmap_imuthread_test_%d_%d.csv", test::getPid(), ++g_fileCounter));
}
static bool writeImuCsv(const std::string & path, const std::vector<std::string> & rows)
{
std::ofstream file(path.c_str());
if(!file.good())
{
return false;
}
file << "#timestamp,wx,wy,wz,ax,ay,az\n";
for(size_t i = 0; i < rows.size(); ++i)
{
file << rows[i] << "\n";
}
return file.good();
}
static bool orientationSet(const cv::Vec4d & orientation)
{
return orientation[0] != 0.0 || orientation[1] != 0.0 || orientation[2] != 0.0 || orientation[3] != 0.0;
}
static void expectVec3Near(const cv::Vec3d & a, const cv::Vec3d & b, double tol = 1e-5)
{
EXPECT_NEAR(a[0], b[0], tol);
EXPECT_NEAR(a[1], b[1], tol);
EXPECT_NEAR(a[2], b[2], tol);
}
static void expectQuatNear(
const cv::Vec4d & q,
double ex,
double ey,
double ez,
double ew,
double tol = 1e-3)
{
EXPECT_NEAR(q[0], ex, tol);
EXPECT_NEAR(q[1], ey, tol);
EXPECT_NEAR(q[2], ez, tol);
EXPECT_NEAR(q[3], ew, tol);
}
class IMUEventCollector : public UEventsHandler
{
public:
struct Sample
{
IMU data;
double stamp;
bool valid;
};
// Dispatched on UEventsManager thread; reads (size/snapshot) come from the test
// thread, so all access to samples_ goes through mutex_.
void clear()
{
UScopeMutex lock(mutex_);
samples_.clear();
}
std::vector<Sample> snapshot() const
{
UScopeMutex lock(mutex_);
return samples_;
}
size_t size() const
{
UScopeMutex lock(mutex_);
return samples_.size();
}
size_t validCount() const
{
UScopeMutex lock(mutex_);
size_t count = 0;
for(size_t i = 0; i < samples_.size(); ++i)
{
if(samples_[i].valid)
{
++count;
}
}
return count;
}
// An empty IMUEvent is what IMUThread posts when the CSV is exhausted.
bool endReceived() const
{
UScopeMutex lock(mutex_);
for(size_t i = 0; i < samples_.size(); ++i)
{
if(!samples_[i].valid)
{
return true;
}
}
return false;
}
protected:
virtual bool handleEvent(UEvent * event)
{
if(event->getClassName() == "IMUEvent")
{
const IMUEvent * imuEvent = static_cast<IMUEvent *>(event);
Sample sample;
sample.data = imuEvent->getData();
sample.stamp = imuEvent->getStamp();
sample.valid = !imuEvent->getData().empty();
UScopeMutex lock(mutex_);
samples_.push_back(sample);
}
return false;
}
private:
mutable UMutex mutex_;
std::vector<Sample> samples_;
};
static std::vector<IMUEventCollector::Sample> runThread(
IMUThread & thread,
size_t minValidSamples = 0,
bool waitForEndEvent = false,
double maxWaitSec = 2.0)
{
IMUEventCollector collector;
UEventsManager::addHandler(&collector);
thread.start();
UTimer timer;
// elapsed(), not ticks(): ticks() restarts the timer, so the condition
// would compare one loop iteration (~5 ms) against maxWaitSec and never
// time out if the expected events never arrive.
while(timer.elapsed() < maxWaitSec)
{
// Wait for the events themselves, not for the IMU thread to die.
// On a fast machine the IMU thread can post all its events and
// self-kill before the UEventsManager dispatcher thread has had a
// chance to deliver them to the collector. Breaking on isKilled()
// here would race with that delivery and removeHandler() below
// would then drop the still-queued events on the floor.
if(minValidSamples > 0 && collector.validCount() >= minValidSamples &&
(!waitForEndEvent || collector.endReceived()))
{
break;
}
uSleep(5);
}
if(!thread.isKilled())
{
thread.kill();
}
thread.join(true);
// Remove handler before snapshot. removeHandler does not block in-flight
// dispatches, so take the snapshot under the collector's mutex to avoid a
// race with a still-running dispatch posting one final event.
UEventsManager::removeHandler(&collector);
return collector.snapshot();
}
} // namespace
TEST(IMUThreadTest, InitFailsOnMissingFile)
{
IMUThread thread(0, Transform::getIdentity());
EXPECT_FALSE(thread.init(test::tempPath("rtabmap_imuthread_missing_file.csv")));
}
TEST(IMUThreadTest, InitFailsOnHeaderOnly)
{
const std::string path = tempImuCsvPath();
ASSERT_TRUE(writeImuCsv(path, std::vector<std::string>()));
IMUThread thread(0, Transform::getIdentity());
EXPECT_FALSE(thread.init(path));
UFile::erase(path);
}
TEST(IMUThreadTest, InitSucceedsWithValidFile)
{
const std::string path = tempImuCsvPath();
ASSERT_TRUE(writeImuCsv(path, {"1.0,0,0,0,0,0,9.81"}));
IMUThread thread(0, Transform::getIdentity());
EXPECT_TRUE(thread.init(path));
UFile::erase(path);
}
TEST(IMUThreadTest, PublishesSamplesFromCsv)
{
const std::string path = tempImuCsvPath();
// Equal stamps avoid captureDelay busy-wait when rate is 0.
ASSERT_TRUE(writeImuCsv(path, {
"1.0,0.1,0.2,0.3,0.0,0.0,9.81",
"1.0,0.2,0.3,0.4,0.0,0.0,9.81"}));
IMUThread thread(0, Transform::getIdentity());
ASSERT_TRUE(thread.init(path));
// The end-of-file event is part of what this test asserts, so wait for it
// too: stopping at the 2 valid samples can return before the IMU thread
// has posted it, or before the dispatcher has delivered it.
const std::vector<IMUEventCollector::Sample> samples = runThread(thread, 2, true);
ASSERT_GE(samples.size(), 3u);
EXPECT_TRUE(samples[0].valid);
EXPECT_NEAR(samples[0].stamp, 1.0, 1e-6);
expectVec3Near(samples[0].data.angularVelocity(), cv::Vec3d(0.1, 0.2, 0.3));
expectVec3Near(samples[0].data.linearAcceleration(), cv::Vec3d(0.0, 0.0, 9.81));
EXPECT_TRUE(samples[1].valid);
EXPECT_NEAR(samples[1].stamp, 1.0, 1e-6);
// End-of-file posts an invalid/empty event then kills the thread.
EXPECT_FALSE(samples.back().valid);
UFile::erase(path);
}
TEST(IMUThreadTest, PublishesEurocStampsInSeconds)
{
// EuRoC IMU CSV: integer timestamp = seconds * 1e9 + nanoseconds (no '.').
// 10.5 s -> "10500000000", 10.6 s -> "10600000000"
const std::string path = tempImuCsvPath();
ASSERT_TRUE(writeImuCsv(path, {
"10500000000,0.1,0.2,0.3,0.0,0.0,9.81",
"10600000000,0.2,0.3,0.4,0.0,0.0,9.81"}));
IMUThread thread(0, Transform::getIdentity());
ASSERT_TRUE(thread.init(path));
const std::vector<IMUEventCollector::Sample> samples = runThread(thread, 2);
ASSERT_GE(samples.size(), 2u);
EXPECT_TRUE(samples[0].valid);
EXPECT_NEAR(samples[0].stamp, 10.5, 1e-9);
EXPECT_TRUE(samples[1].valid);
EXPECT_NEAR(samples[1].stamp, 10.6, 1e-9);
UFile::erase(path);
}
TEST(IMUThreadTest, EnableFilteringSetsOrientation)
{
const std::string path = tempImuCsvPath();
ASSERT_TRUE(writeImuCsv(path, {
"0.0,0,0,0,0,0,9.81",
"0.01,0,0,0,0,0,9.81",
"0.02,0,0,0,0,0,9.81",
"0.03,0,0,0,0,0,9.81",
"0.04,0,0,0,0,0,9.81"}));
IMUThread thread(0, Transform::getIdentity());
ASSERT_TRUE(thread.init(path));
thread.enableIMUFiltering(IMUFilter::kComplementaryFilter);
const std::vector<IMUEventCollector::Sample> samples = runThread(thread, 3);
ASSERT_FALSE(samples.empty());
bool foundOrientation = false;
for(int i = static_cast<int>(samples.size()) - 1; i >= 0; --i)
{
if(samples[i].valid && orientationSet(samples[i].data.orientation()))
{
foundOrientation = true;
const cv::Vec4d & q = samples[i].data.orientation();
const double norm = std::sqrt(
q[0] * q[0] + q[1] * q[1] + q[2] * q[2] + q[3] * q[3]);
EXPECT_NEAR(norm, 1.0, 0.05);
// Static gravity, zero gyro: filter should stay near identity.
expectQuatNear(q, 0, 0, 0, 1, 0.05);
break;
}
}
EXPECT_TRUE(foundOrientation);
UFile::erase(path);
}
TEST(IMUThreadTest, DisableFilteringLeavesOrientationUnset)
{
const std::string path = tempImuCsvPath();
ASSERT_TRUE(writeImuCsv(path, {"1.0,0.1,0.2,0.3,0.0,0.0,9.81"}));
IMUThread thread(0, Transform::getIdentity());
ASSERT_TRUE(thread.init(path));
thread.enableIMUFiltering(IMUFilter::kComplementaryFilter);
thread.disableIMUFiltering();
const std::vector<IMUEventCollector::Sample> samples = runThread(thread, 1);
ASSERT_GE(samples.size(), 1u);
EXPECT_TRUE(samples[0].valid);
EXPECT_FALSE(orientationSet(samples[0].data.orientation()));
UFile::erase(path);
}
TEST(IMUThreadTest, StoresLocalTransformWithoutConvertingAcceleration)
{
// Without IMU filtering, localTransform is only attached; acc/gyro are not rotated.
const std::string path = tempImuCsvPath();
ASSERT_TRUE(writeImuCsv(path, {"1.0,0,0,0,0,0,9.81"}));
const Transform local(0.1f, 0.2f, 0.3f, 0.f, 0.f, 0.5f);
IMUThread thread(0, local);
ASSERT_TRUE(thread.init(path));
const std::vector<IMUEventCollector::Sample> samples = runThread(thread, 1);
ASSERT_GE(samples.size(), 1u);
EXPECT_TRUE(samples[0].valid);
expectVec3Near(samples[0].data.linearAcceleration(), cv::Vec3d(0, 0, 9.81));
EXPECT_FLOAT_EQ(samples[0].data.localTransform().x(), 0.1f);
EXPECT_FLOAT_EQ(samples[0].data.localTransform().theta(), 0.5f);
UFile::erase(path);
}
TEST(IMUThreadTest, BaseFrameConversionRotatesAcceleration)
{
// With filtering and baseFrameConversion=true, IMUThread calls convertToBaseFrame()
// before fusion (same rotation as IMU::convertToBaseFrame()).
const std::string path = tempImuCsvPath();
ASSERT_TRUE(writeImuCsv(path, {"1.0,0,0,0,1.0,0.0,0.0"}));
const float halfPi = static_cast<float>(CV_PI / 2.0);
const Transform local(0.f, 0.f, 0.f, 0.f, 0.f, halfPi);
IMUThread thread(0, local);
ASSERT_TRUE(thread.init(path));
thread.enableIMUFiltering(IMUFilter::kComplementaryFilter, ParametersMap(), true);
const std::vector<IMUEventCollector::Sample> samples = runThread(thread, 1);
ASSERT_GE(samples.size(), 1u);
EXPECT_TRUE(samples[0].valid);
expectVec3Near(samples[0].data.linearAcceleration(), cv::Vec3d(0, 1, 0), 1e-4);
EXPECT_NEAR(samples[0].data.localTransform().theta(), 0.0f, 1e-5f);
UFile::erase(path);
}