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rtabmap/corelib/test/test_transform.cpp
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2026-08-06 13:32:20 -07:00
#include <gtest/gtest.h>
#include <rtabmap/core/Transform.h>
#include <cmath>
using namespace rtabmap;
// Helper for floating point comparison
static bool approxEqual(float a, float b, float epsilon = 1e-5f)
{
return std::fabs(a - b) < epsilon;
}
// ---------- TEST CASES ----------
TEST(TransformTest, DefaultConstructor)
{
Transform t;
EXPECT_TRUE(t.isNull());
EXPECT_FALSE(t.isIdentity());
}
TEST(TransformTest, Identity)
{
Transform t = Transform::getIdentity();
EXPECT_TRUE(t.isIdentity());
EXPECT_FALSE(t.isNull());
// Identity * Identity = Identity
Transform result = t * Transform::getIdentity();
EXPECT_TRUE(result.isIdentity());
}
TEST(TransformTest, EqualityOperators)
{
Transform t1 = Transform::getIdentity();
Transform t2 = Transform::getIdentity();
EXPECT_TRUE(t1 == t2);
EXPECT_FALSE(t1 != t2);
t2.x() = 1.0f;
EXPECT_FALSE(t1 == t2);
EXPECT_TRUE(t1 != t2);
}
TEST(TransformTest, TranslationConstructor)
{
Transform t(1.0f, 2.0f, 3.0f, 0, 0, 0);
EXPECT_TRUE(approxEqual(t.x(), 1.0f));
EXPECT_TRUE(approxEqual(t.y(), 2.0f));
EXPECT_TRUE(approxEqual(t.z(), 3.0f));
}
TEST(TransformTest, MatrixConstructor)
{
cv::Mat mat = (cv::Mat_<float>(3, 4) <<
1, 0, 0, 1,
0, 1, 0, 2,
0, 0, 1, 3);
Transform t(mat);
EXPECT_TRUE(approxEqual(t.x(), 1.0f));
EXPECT_TRUE(approxEqual(t.y(), 2.0f));
EXPECT_TRUE(approxEqual(t.z(), 3.0f));
}
TEST(TransformTest, Inverse)
{
Transform t(1, 0, 0, 1,
0, 1, 0, 2,
0, 0, 1, 3);
Transform inv = t.inverse();
Transform id = t * inv;
EXPECT_TRUE(id.isIdentity());
}
TEST(TransformTest, Interpolation)
{
Transform t1(0, 0, 0, 0, 0, 0);
Transform t2(0, 0, 1, 0, 0, 0);
Transform mid = t1.interpolate(0.5f, t2);
EXPECT_TRUE(approxEqual(mid.z(), 0.5f));
}
TEST(TransformTest, NormAndDistance)
{
Transform t1(0, 0, 0, 0, 0, 0);
Transform t2(1, 2, 2, 0, 0, 0);
EXPECT_TRUE(approxEqual(t2.getNorm(), 3.0f));
EXPECT_TRUE(approxEqual(t1.getDistance(t2), 3.0f));
EXPECT_TRUE(approxEqual(t1.getDistanceSquared(t2), 9.0f));
}
TEST(TransformTest, EulerAndQuaternionConversion)
{
Transform t(1, 2, 3, 0.1f, 0.2f, 0.3f);
float roll, pitch, yaw;
t.getEulerAngles(roll, pitch, yaw);
EXPECT_TRUE(std::isfinite(roll));
EXPECT_TRUE(std::isfinite(pitch));
EXPECT_TRUE(std::isfinite(yaw));
Eigen::Quaternionf q = t.getQuaternionf();
EXPECT_TRUE(std::isfinite(q.x()));
EXPECT_TRUE(std::isfinite(q.y()));
EXPECT_TRUE(std::isfinite(q.z()));
EXPECT_TRUE(std::isfinite(q.w()));
}
TEST(TransformTest, StringConversion)
{
Transform original(1.0f, 2.0f, 3.0f, 0.1f, 0.2f, 0.3f);
Transform parsed = Transform::fromString("1.0 2.0 3.0 0.1 0.2 0.3");
EXPECT_TRUE(original.getDistance(parsed) < 1e-4f);
}
TEST(TransformTest, DoFConversion)
{
// 6DoF transform
Transform t6(1, 2, 3, 0.1f, 0.2f, 0.3f);
Transform t3dof = t6.to3DoF();
EXPECT_TRUE(t3dof.is3DoF());
EXPECT_TRUE(t3dof.is4DoF());
EXPECT_TRUE(approxEqual(t3dof.z(), 0.0f)); // Z is removed
EXPECT_TRUE(approxEqual(t3dof.r31(), 0.0f));
EXPECT_TRUE(approxEqual(t3dof.r32(), 0.0f));
EXPECT_TRUE(approxEqual(t3dof.r33(), 1.0f));
Transform t4dof = t6.to4DoF();
EXPECT_TRUE(t4dof.is4DoF());
EXPECT_FALSE(t4dof.is3DoF());
EXPECT_TRUE(approxEqual(t4dof.r31(), 0.0f));
EXPECT_TRUE(approxEqual(t4dof.r32(), 0.0f));
EXPECT_TRUE(approxEqual(t4dof.r33(), 1.0f));
}
TEST(TransformTest, OpenGLToRTABMap)
{
// Multiplying should return identity
Transform result = Transform::opengl_T_rtabmap() * Transform::rtabmap_T_opengl();
EXPECT_TRUE(result.isIdentity());
// Test conversion from opengl world to rtabmap world
EXPECT_NEAR((Transform::rtabmap_T_opengl() * Transform(1,0,0,0,0,0)).y(), -1, 1e-5);
EXPECT_NEAR((Transform::rtabmap_T_opengl() * Transform(0,1,0,0,0,0)).z(), 1, 1e-5);
EXPECT_NEAR((Transform::rtabmap_T_opengl() * Transform(0,0,1,0,0,0)).x(), -1, 1e-5);
// Test conversion from rtabmap world to opengl world
EXPECT_NEAR((Transform::opengl_T_rtabmap() * Transform(1,0,0,0,0,0)).z(), -1, 1e-5);
EXPECT_NEAR((Transform::opengl_T_rtabmap() * Transform(0,1,0,0,0,0)).x(), -1, 1e-5);
EXPECT_NEAR((Transform::opengl_T_rtabmap() * Transform(0,0,1,0,0,0)).y(), 1, 1e-5);
}
TEST(TransformTest, EigenConversions)
{
Transform t(1.0f, 2.0f, 3.0f, 0.1f, 0.2f, 0.3f);
// Eigen 4x4 float
Eigen::Matrix4f e4f = t.toEigen4f();
Transform fromE4f = Transform::fromEigen4f(e4f);
EXPECT_LT(t.getDistance(fromE4f), 1e-4f);
// Eigen 4x4 double
Eigen::Matrix4d e4d = t.toEigen4d();
Transform fromE4d = Transform::fromEigen4d(e4d);
EXPECT_LT(t.getDistance(fromE4d), 1e-4f);
// Eigen Affine3f
Eigen::Affine3f aff3f = t.toEigen3f();
Transform fromAff3f = Transform::fromEigen3f(aff3f);
EXPECT_LT(t.getDistance(fromAff3f), 1e-4f);
// Eigen Affine3d
Eigen::Affine3d aff3d = t.toEigen3d();
Transform fromAff3d = Transform::fromEigen3d(aff3d);
EXPECT_LT(t.getDistance(fromAff3d), 1e-4f);
// Quaternion check
Eigen::Quaternionf qf = t.getQuaternionf();
EXPECT_NEAR(qf.norm(), 1.0f, 1e-5f);
Eigen::Quaterniond qd = t.getQuaterniond();
EXPECT_NEAR(qd.norm(), 1.0, 1e-5);
}
TEST(TransformTest, GetTransformFromBuffer)
{
std::map<double, Transform> tfBuffer;
tfBuffer[1.0] = Transform(0, 0, 0, 0, 0, 0); // t=1.0
tfBuffer[2.0] = Transform(1, 0, 0, 0, 0, CV_PI/2.0); // t=2.0
tfBuffer[3.0] = Transform(2, 0, 0, 0, 0, CV_PI); // t=3.0
// Test exact timestamp
Transform tExact = Transform::getTransform(tfBuffer, 2.0);
EXPECT_NEAR(tExact.x(), 1.0f, 1e-5);
// Test below
Transform tBelow = Transform::getTransform(tfBuffer, 1.5);
EXPECT_NEAR(tBelow.x(), 0.5f, 1e-5);
EXPECT_NEAR(tBelow.theta(), CV_PI/4.0, 1e-5);
// Test above
Transform tAbove = Transform::getTransform(tfBuffer, 2.5);
EXPECT_NEAR(tAbove.x(), 1.5f, 1e-5);
EXPECT_NEAR(tAbove.theta(), 3.0*CV_PI/4.0, 1e-5);
// Test very close to a border
Transform tNear = Transform::getTransform(tfBuffer, 2.0001);
EXPECT_NEAR(tNear.x(), 1.0001f, 1e-4);
// Requesting transform in the past
Transform tPast = Transform::getTransform(tfBuffer, 0.5);
EXPECT_TRUE(tPast.isNull());
// Requesting transform in the future
Transform tFuture = Transform::getTransform(tfBuffer, 3.5);
EXPECT_TRUE(tFuture.isNull());
}