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https://github.com/introlab/rtabmap.git
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232 lines
6.5 KiB
C++
232 lines
6.5 KiB
C++
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#include <gtest/gtest.h>
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#include <rtabmap/core/SensorCaptureInfo.h>
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#include <rtabmap/core/Transform.h>
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#include <opencv2/core.hpp>
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using namespace rtabmap;
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// Constructor Tests
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TEST(SensorCaptureInfoTest, DefaultConstructor)
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{
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SensorCaptureInfo info;
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// Basic fields
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EXPECT_TRUE(info.cameraName.empty());
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EXPECT_EQ(info.id, 0);
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EXPECT_DOUBLE_EQ(info.stamp, 0.0);
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// Timing fields (all should be 0.0f)
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EXPECT_FLOAT_EQ(info.timeCapture, 0.0f);
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EXPECT_FLOAT_EQ(info.timeDeskewing, 0.0f);
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EXPECT_FLOAT_EQ(info.timeDisparity, 0.0f);
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EXPECT_FLOAT_EQ(info.timeMirroring, 0.0f);
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EXPECT_FLOAT_EQ(info.timeStereoExposureCompensation, 0.0f);
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EXPECT_FLOAT_EQ(info.timeImageDecimation, 0.0f);
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EXPECT_FLOAT_EQ(info.timeHistogramEqualization, 0.0f);
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EXPECT_FLOAT_EQ(info.timeScanFromDepth, 0.0f);
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EXPECT_FLOAT_EQ(info.timeUndistortDepth, 0.0f);
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EXPECT_FLOAT_EQ(info.timeBilateralFiltering, 0.0f);
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EXPECT_FLOAT_EQ(info.timeTotal, 0.0f);
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// Odometry fields
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EXPECT_TRUE(info.odomPose.isNull());
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EXPECT_FALSE(info.odomCovariance.empty());
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EXPECT_EQ(info.odomCovariance.rows, 6);
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EXPECT_EQ(info.odomCovariance.cols, 6);
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EXPECT_EQ(info.odomCovariance.type(), CV_64FC1);
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// Should be identity matrix
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cv::Mat identity = cv::Mat::eye(6, 6, CV_64FC1);
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EXPECT_TRUE(cv::countNonZero(info.odomCovariance != identity) == 0);
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EXPECT_TRUE(info.odomVelocity.empty());
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}
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// Comprehensive Tests
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TEST(SensorCaptureInfoTest, ComprehensiveUsage)
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{
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SensorCaptureInfo info;
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// Set all fields
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info.cameraName = "comprehensive_camera";
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info.id = 1000;
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info.stamp = 123456.789;
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info.timeCapture = 0.010f;
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info.timeDeskewing = 0.005f;
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info.timeDisparity = 0.020f;
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info.timeMirroring = 0.001f;
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info.timeStereoExposureCompensation = 0.003f;
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info.timeImageDecimation = 0.002f;
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info.timeHistogramEqualization = 0.004f;
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info.timeScanFromDepth = 0.015f;
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info.timeUndistortDepth = 0.008f;
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info.timeBilateralFiltering = 0.012f;
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info.timeTotal = 0.080f;
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Transform pose(10.0f, 20.0f, 30.0f, 0.1f, 0.2f, 0.3f);
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info.odomPose = pose;
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cv::Mat covariance = cv::Mat::eye(6, 6, CV_64FC1) * 0.1;
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info.odomCovariance = covariance;
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info.odomVelocity = {1.5f, 2.5f, 3.5f, 0.15f, 0.25f, 0.35f};
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// Verify all fields
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EXPECT_EQ(info.cameraName, "comprehensive_camera");
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EXPECT_EQ(info.id, 1000);
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EXPECT_DOUBLE_EQ(info.stamp, 123456.789);
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EXPECT_FLOAT_EQ(info.timeTotal, 0.080f);
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EXPECT_FLOAT_EQ(info.odomPose.x(), 10.0f);
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EXPECT_FALSE(info.odomCovariance.empty());
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EXPECT_EQ(info.odomVelocity.size(), 6u);
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EXPECT_FLOAT_EQ(info.odomVelocity[0], 1.5f);
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}
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TEST(SensorCaptureInfoTest, CopyAssignment)
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{
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SensorCaptureInfo info1;
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info1.cameraName = "camera1";
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info1.id = 100;
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info1.stamp = 123.456;
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info1.timeCapture = 0.01f;
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info1.timeTotal = 0.05f;
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info1.odomPose = Transform(1.0f, 2.0f, 3.0f, 0, 0, 0);
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info1.odomVelocity = {1.0f, 2.0f, 3.0f, 0.1f, 0.2f, 0.3f};
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SensorCaptureInfo info2;
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info2 = info1;
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EXPECT_EQ(info2.cameraName, info1.cameraName);
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EXPECT_EQ(info2.id, info1.id);
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EXPECT_DOUBLE_EQ(info2.stamp, info1.stamp);
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EXPECT_FLOAT_EQ(info2.timeCapture, info1.timeCapture);
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EXPECT_FLOAT_EQ(info2.timeTotal, info1.timeTotal);
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EXPECT_FLOAT_EQ(info2.odomPose.x(), info1.odomPose.x());
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EXPECT_EQ(info2.odomVelocity.size(), info1.odomVelocity.size());
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}
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TEST(SensorCaptureInfoTest, CopyConstructor)
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{
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SensorCaptureInfo info1;
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info1.cameraName = "camera1";
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info1.id = 200;
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info1.stamp = 456.789;
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info1.timeDisparity = 0.02f;
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info1.odomPose = Transform(5.0f, 6.0f, 7.0f, 0, 0, 0);
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SensorCaptureInfo info2(info1);
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EXPECT_EQ(info2.cameraName, info1.cameraName);
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EXPECT_EQ(info2.id, info1.id);
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EXPECT_DOUBLE_EQ(info2.stamp, info1.stamp);
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EXPECT_FLOAT_EQ(info2.timeDisparity, info1.timeDisparity);
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EXPECT_FLOAT_EQ(info2.odomPose.x(), info1.odomPose.x());
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}
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// Edge Cases
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TEST(SensorCaptureInfoTest, NegativeTiming)
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{
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SensorCaptureInfo info;
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// Timing can technically be negative (though unusual)
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info.timeCapture = -0.001f;
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EXPECT_FLOAT_EQ(info.timeCapture, -0.001f);
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}
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TEST(SensorCaptureInfoTest, VeryLargeTiming)
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{
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SensorCaptureInfo info;
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info.timeTotal = 10.0f;
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EXPECT_FLOAT_EQ(info.timeTotal, 10.0f);
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}
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TEST(SensorCaptureInfoTest, EmptyCameraName)
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{
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SensorCaptureInfo info;
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info.cameraName = "";
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EXPECT_TRUE(info.cameraName.empty());
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info.cameraName = "camera";
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EXPECT_FALSE(info.cameraName.empty());
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info.cameraName = "";
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EXPECT_TRUE(info.cameraName.empty());
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}
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TEST(SensorCaptureInfoTest, ZeroOdometryCovariance)
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{
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SensorCaptureInfo info;
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cv::Mat zeroCov = cv::Mat::zeros(6, 6, CV_64FC1);
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info.odomCovariance = zeroCov;
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EXPECT_EQ(info.odomCovariance.rows, 6);
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EXPECT_EQ(info.odomCovariance.cols, 6);
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EXPECT_DOUBLE_EQ(info.odomCovariance.at<double>(0, 0), 0.0);
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}
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TEST(SensorCaptureInfoTest, EmptyOdometryVelocity)
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{
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SensorCaptureInfo info;
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EXPECT_TRUE(info.odomVelocity.empty());
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info.odomVelocity = {1.0f};
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EXPECT_EQ(info.odomVelocity.size(), 1u);
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info.odomVelocity.clear();
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EXPECT_TRUE(info.odomVelocity.empty());
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}
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// Real-world Usage Scenarios
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TEST(SensorCaptureInfoTest, StereoCaptureScenario)
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{
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SensorCaptureInfo info;
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info.cameraName = "stereo_camera";
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info.id = 500;
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info.stamp = 1000.0;
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// Typical stereo processing times
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info.timeCapture = 0.010f;
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info.timeDisparity = 0.030f;
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info.timeBilateralFiltering = 0.015f;
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info.timeTotal = 0.055f;
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info.odomPose = Transform(0.5f, 0.0f, 0.0f, 0, 0, 0);
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info.odomCovariance = cv::Mat::eye(6, 6, CV_64FC1) * 0.01;
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EXPECT_EQ(info.cameraName, "stereo_camera");
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EXPECT_GE(info.timeTotal, info.timeCapture + info.timeDisparity);
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}
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TEST(SensorCaptureInfoTest, RGBDCaptureScenario)
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{
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SensorCaptureInfo info;
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info.cameraName = "rgbd_camera";
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info.id = 600;
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info.stamp = 2000.0;
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// Typical RGB-D processing times
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info.timeCapture = 0.008f;
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info.timeUndistortDepth = 0.005f;
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info.timeScanFromDepth = 0.010f;
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info.timeTotal = 0.025f;
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info.odomPose = Transform(1.0f, 1.0f, 1.0f, 0, 0, 0.1f);
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info.odomVelocity = {0.5f, 0.0f, 0.0f, 0.0f, 0.0f, 0.05f};
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EXPECT_EQ(info.cameraName, "rgbd_camera");
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EXPECT_FALSE(info.odomPose.isNull());
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EXPECT_EQ(info.odomVelocity.size(), 6u);
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}
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