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rtabmap/corelib/test/test_odometry.cpp
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#include <gtest/gtest.h>
#include <rtabmap/core/Odometry.h>
#include <rtabmap/core/OdometryInfo.h>
#include <rtabmap/core/CameraModel.h>
#include <rtabmap/core/Parameters.h>
#include <opencv2/core.hpp>
using namespace rtabmap;
namespace {
class MockOdometry : public Odometry
{
public:
explicit MockOdometry(const ParametersMap & parameters = ParametersMap())
: Odometry(parameters)
{
}
Type getType() override
{
return kTypeUndef;
}
void setNextTransform(const Transform & transform)
{
nextTransform_ = transform;
}
const Transform & lastGuess() const
{
return lastGuess_;
}
protected:
Transform computeTransform(SensorData &, const Transform & guess, OdometryInfo *) override
{
lastGuess_ = guess;
return nextTransform_;
}
private:
Transform nextTransform_;
Transform lastGuess_;
};
SensorData makeImageData(int id, double stamp)
{
const cv::Mat image = cv::Mat::zeros(32, 32, CV_8UC1);
const CameraModel model(100.0, 100.0, 16.0, 16.0);
SensorData data(image, model, id);
data.setStamp(stamp);
return data;
}
ParametersMap baseTestParameters()
{
ParametersMap parameters;
parameters.insert(ParametersPair(Parameters::kOdomGuessMotion(), "false"));
parameters.insert(ParametersPair(Parameters::kOdomFilteringStrategy(), "0"));
parameters.insert(ParametersPair(Parameters::kOdomFillInfoData(), "true"));
parameters.insert(ParametersPair(Parameters::kRtabmapImagesAlreadyRectified(), "true"));
return parameters;
}
void expectTransformNear(const Transform & a, const Transform & b, float tol = 1e-4f)
{
EXPECT_NEAR(a.x(), b.x(), tol);
EXPECT_NEAR(a.y(), b.y(), tol);
EXPECT_NEAR(a.z(), b.z(), tol);
}
} // namespace
TEST(OdometryTest, CreateUsesF2MByDefault)
{
ParametersMap parameters;
parameters.insert(ParametersPair(Parameters::kOdomStrategy(), "0"));
Odometry * odometry = Odometry::create(parameters);
ASSERT_NE(odometry, nullptr);
EXPECT_EQ(odometry->getType(), Odometry::kTypeF2M);
delete odometry;
}
TEST(OdometryTest, CreateUnknownTypeFallsBackToF2M)
{
Odometry::Type type = static_cast<Odometry::Type>(999);
Odometry * odometry = Odometry::create(type);
ASSERT_NE(odometry, nullptr);
EXPECT_EQ(type, Odometry::kTypeF2M);
EXPECT_EQ(odometry->getType(), Odometry::kTypeF2M);
delete odometry;
}
TEST(OdometryTest, ResetSetsInitialPoseAndCounters)
{
MockOdometry odometry(baseTestParameters());
const Transform initialPose(1.0f, 2.0f, 3.0f, 0.0f, 0.0f, 0.0f);
odometry.reset(initialPose);
EXPECT_EQ(odometry.framesProcessed(), 0u);
EXPECT_DOUBLE_EQ(odometry.previousStamp(), 0.0);
expectTransformNear(odometry.getPose(), initialPose);
EXPECT_TRUE(odometry.getVelocityGuess().isNull());
}
TEST(OdometryTest, ProcessAccumulatesPose)
{
MockOdometry odometry(baseTestParameters());
odometry.reset(Transform::getIdentity());
const Transform step(0.5f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f);
odometry.setNextTransform(step);
SensorData frame0 = makeImageData(0, 0.0);
const Transform pose0 = odometry.process(frame0);
expectTransformNear(pose0, step);
expectTransformNear(odometry.getPose(), pose0);
EXPECT_EQ(odometry.framesProcessed(), 1u);
SensorData frame1 = makeImageData(1, 1.0);
const Transform pose1 = odometry.process(frame1);
const Transform expectedPose1(1.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f);
expectTransformNear(pose1, expectedPose1);
expectTransformNear(odometry.getPose(), expectedPose1);
EXPECT_EQ(odometry.framesProcessed(), 2u);
}
TEST(OdometryTest, ProcessWithExternalGuess)
{
MockOdometry odometry(baseTestParameters());
odometry.reset(Transform::getIdentity());
odometry.setNextTransform(Transform(0.1f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
SensorData data = makeImageData(0, 0.0);
const Transform guess(0.2f, 0.3f, 0.0f, 0.0f, 0.0f, 0.0f);
odometry.process(data, guess);
expectTransformNear(odometry.lastGuess(), guess);
}
TEST(OdometryTest, ProcessFillsOdometryInfo)
{
MockOdometry odometry(baseTestParameters());
odometry.reset(Transform::getIdentity());
odometry.setNextTransform(Transform(0.2f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
SensorData data = makeImageData(0, 1.0);
OdometryInfo info;
const Transform pose = odometry.process(data, &info);
EXPECT_FALSE(pose.isNull());
EXPECT_FALSE(info.lost);
EXPECT_DOUBLE_EQ(info.stamp, 1.0);
expectTransformNear(info.transform, Transform(0.2f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
expectTransformNear(pose, Transform(0.2f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f));
EXPECT_TRUE(odometry.isInfoDataFilled());
}
TEST(OdometryTest, ProcessLostReturnsNullTransform)
{
MockOdometry odometry(baseTestParameters());
odometry.reset(Transform::getIdentity());
odometry.setNextTransform(Transform());
SensorData data = makeImageData(0, 0.0);
OdometryInfo info;
const Transform t = odometry.process(data, &info);
EXPECT_TRUE(t.isNull());
EXPECT_TRUE(info.lost);
EXPECT_EQ(odometry.framesProcessed(), 0u);
}
TEST(OdometryTest, DefaultCapabilityFlags)
{
MockOdometry odometry(baseTestParameters());
EXPECT_FALSE(odometry.canProcessRawImages());
EXPECT_FALSE(odometry.canProcessAsyncIMU());
}