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rtabmap/corelib/test/test_imu.cpp
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2026-08-06 13:32:20 -07:00
#include <gtest/gtest.h>
#include <rtabmap/core/IMU.h>
#include <opencv2/core.hpp>
#include <cmath>
using namespace rtabmap;
namespace {
static cv::Mat covariance3x3Diagonal(double d0, double d1, double d2)
{
cv::Mat cov = cv::Mat::zeros(3, 3, CV_64FC1);
cov.at<double>(0, 0) = d0;
cov.at<double>(1, 1) = d1;
cov.at<double>(2, 2) = d2;
return cov;
}
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);
}
} // namespace
TEST(IMUTest, DefaultConstructorIsEmpty)
{
const IMU imu;
EXPECT_TRUE(imu.empty());
EXPECT_TRUE(imu.localTransform().isNull());
EXPECT_TRUE(imu.orientationCovariance().empty());
EXPECT_TRUE(imu.angularVelocityCovariance().empty());
EXPECT_TRUE(imu.linearAccelerationCovariance().empty());
}
TEST(IMUTest, IdentityLocalTransformIsNotEmpty)
{
const IMU imu(
cv::Vec3d(0.1, 0.2, 0.3),
cv::Mat(),
cv::Vec3d(1.0, 0.0, 0.0),
cv::Mat(),
Transform::getIdentity());
EXPECT_FALSE(imu.empty());
EXPECT_TRUE(imu.localTransform().isIdentity());
}
TEST(IMUTest, FullConstructorStoresFields)
{
const cv::Vec4d orientation(0.1, 0.2, 0.3, 0.9);
const cv::Vec3d angularVelocity(0.01, 0.02, 0.03);
const cv::Vec3d linearAcceleration(9.8, 0.1, 0.2);
const cv::Mat orientationCov = covariance3x3Diagonal(1.0, 1.0, 1.0);
const cv::Mat angularCov = covariance3x3Diagonal(2.0, 2.0, 2.0);
const cv::Mat linearCov = covariance3x3Diagonal(3.0, 3.0, 3.0);
const Transform local(0.1f, 0.2f, 0.3f, 0.f, 0.f, 0.5f);
const IMU imu(orientation, orientationCov, angularVelocity, angularCov, linearAcceleration, linearCov, local);
EXPECT_FALSE(imu.empty());
EXPECT_EQ(imu.orientation(), orientation);
EXPECT_EQ(imu.angularVelocity(), angularVelocity);
EXPECT_EQ(imu.linearAcceleration(), linearAcceleration);
EXPECT_EQ(cv::norm(imu.orientationCovariance(), orientationCov, cv::NORM_INF), 0);
EXPECT_EQ(cv::norm(imu.angularVelocityCovariance(), angularCov, cv::NORM_INF), 0);
EXPECT_EQ(cv::norm(imu.linearAccelerationCovariance(), linearCov, cv::NORM_INF), 0);
EXPECT_FLOAT_EQ(imu.localTransform().x(), 0.1f);
EXPECT_FLOAT_EQ(imu.localTransform().theta(), 0.5f);
}
TEST(IMUTest, VelocityOnlyConstructorLeavesOrientationUnset)
{
const IMU imu(cv::Vec3d(1, 2, 3), cv::Mat(), cv::Vec3d(4, 5, 6), cv::Mat(), Transform::getIdentity());
EXPECT_EQ(imu.orientation(), cv::Vec4d());
EXPECT_TRUE(imu.orientationCovariance().empty());
EXPECT_EQ(imu.angularVelocity(), cv::Vec3d(1, 2, 3));
EXPECT_EQ(imu.linearAcceleration(), cv::Vec3d(4, 5, 6));
}
TEST(IMUTest, ConvertToBaseFrameNoOpWhenLocalTransformNull)
{
IMU imu;
imu.convertToBaseFrame();
EXPECT_TRUE(imu.empty());
}
TEST(IMUTest, ConvertToBaseFrameNoOpWhenRotationIdentity)
{
IMU imu(cv::Vec3d(1, 0, 0), cv::Mat(), cv::Vec3d(0, 0, 9.8), cv::Mat(), Transform::getIdentity());
const cv::Vec3d accelBefore = imu.linearAcceleration();
const cv::Vec3d gyroBefore = imu.angularVelocity();
imu.convertToBaseFrame();
expectVec3Near(imu.linearAcceleration(), accelBefore);
expectVec3Near(imu.angularVelocity(), gyroBefore);
EXPECT_TRUE(imu.localTransform().isIdentity());
}
TEST(IMUTest, ConvertToBaseFrameRotatesLinearAcceleration)
{
const double halfPi = CV_PI / 2.0;
const Transform local(0.f, 0.f, 0.f, 0.f, 0.f, static_cast<float>(halfPi));
IMU imu(cv::Vec3d(), cv::Mat(), cv::Vec3d(1.0, 0.0, 0.0), cv::Mat(), local);
imu.convertToBaseFrame();
expectVec3Near(imu.linearAcceleration(), cv::Vec3d(0.0, 1.0, 0.0), 1e-4);
EXPECT_NEAR(imu.localTransform().theta(), 0.0f, 1e-5f);
EXPECT_FLOAT_EQ(imu.localTransform().x(), 0.f);
}
TEST(IMUTest, ConvertToBaseFrameRotatesCovariance)
{
const double halfPi = CV_PI / 2.0;
const Transform local(0.f, 0.f, 0.f, 0.f, 0.f, static_cast<float>(halfPi));
// Distinct diagonal: a 90° yaw swaps x/y variance (1 and 2), z (4) unchanged.
const cv::Mat cov = covariance3x3Diagonal(1.0, 2.0, 4.0);
IMU imu(cv::Vec3d(1, 0, 0), cov, cv::Vec3d(), cv::Mat(), local);
imu.convertToBaseFrame();
const cv::Mat & rotated = imu.angularVelocityCovariance();
ASSERT_EQ(rotated.rows, 3);
EXPECT_NE(rotated.at<double>(0, 0), 1.0);
EXPECT_NE(rotated.at<double>(1, 1), 2.0);
EXPECT_NEAR(rotated.at<double>(0, 0), 2.0, 1e-5);
EXPECT_NEAR(rotated.at<double>(1, 1), 1.0, 1e-5);
EXPECT_NEAR(rotated.at<double>(2, 2), 4.0, 1e-5);
EXPECT_NEAR(rotated.at<double>(0, 1), 0.0, 1e-5);
EXPECT_NEAR(rotated.at<double>(1, 0), 0.0, 1e-5);
}
TEST(IMUEventTest, DefaultConstructor)
{
const IMUEvent event;
EXPECT_EQ(event.getClassName(), "IMUEvent");
EXPECT_DOUBLE_EQ(event.getStamp(), 0.0);
EXPECT_TRUE(event.getData().empty());
}
TEST(IMUEventTest, StoresDataAndStamp)
{
const IMU imu(cv::Vec3d(0.1, 0.2, 0.3), cv::Mat(), cv::Vec3d(1, 0, 0), cv::Mat(), Transform::getIdentity());
const double stamp = 123.456;
const IMUEvent event(imu, stamp);
EXPECT_EQ(event.getClassName(), "IMUEvent");
EXPECT_DOUBLE_EQ(event.getStamp(), stamp);
EXPECT_FALSE(event.getData().empty());
EXPECT_EQ(event.getData().angularVelocity(), imu.angularVelocity());
EXPECT_EQ(event.getData().linearAcceleration(), imu.linearAcceleration());
}