Files
rtabmap/corelib/test/test_compression.cpp
matlabbe ee49beaf4f Adding doc and tests (#1492)
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2026-08-06 13:32:20 -07:00

186 lines
5.2 KiB
C++

#include <gtest/gtest.h>
#include <rtabmap/core/Compression.h>
#include <opencv2/core.hpp>
using namespace rtabmap;
namespace {
void expectMatEqual(const cv::Mat & a, const cv::Mat & b)
{
ASSERT_FALSE(a.empty());
ASSERT_FALSE(b.empty());
ASSERT_EQ(a.rows, b.rows);
ASSERT_EQ(a.cols, b.cols);
ASSERT_EQ(a.type(), b.type());
ASSERT_EQ(a.channels(), b.channels());
if(a.depth() == CV_32F)
{
for(int r = 0; r < a.rows; ++r)
{
for(int c = 0; c < a.cols; ++c)
{
EXPECT_NEAR(a.at<float>(r, c), b.at<float>(r, c), 1e-5f);
}
}
}
else if(a.channels() == 1)
{
EXPECT_EQ(cv::countNonZero(a != b), 0);
}
else
{
EXPECT_EQ(cv::norm(a, b, cv::NORM_INF), 0);
}
}
} // namespace
TEST(CompressionTest, CompressImagePngRoundTrip)
{
const cv::Mat image = (cv::Mat_<uchar>(2, 3) << 10, 20, 30, 40, 50, 60);
const std::vector<unsigned char> bytes = compressImage(image, ".png");
ASSERT_FALSE(bytes.empty());
EXPECT_EQ(compressedDepthFormat(bytes), ".png");
const cv::Mat restored = uncompressImage(bytes);
expectMatEqual(restored, image);
}
TEST(CompressionTest, CompressImage2AndVectorOverloadMatch)
{
const cv::Mat image = cv::Mat::ones(8, 8, CV_8UC1) * 127;
const cv::Mat bytesMat = compressImage2(image, ".png");
const std::vector<unsigned char> bytesVec = compressImage(image, ".png");
ASSERT_FALSE(bytesMat.empty());
ASSERT_EQ(bytesMat.type(), CV_8UC1);
ASSERT_EQ(bytesVec.size(), static_cast<size_t>(bytesMat.cols));
const cv::Mat restoredFromMat = uncompressImage(bytesMat);
const cv::Mat restoredFromVec = uncompressImage(bytesVec);
expectMatEqual(restoredFromMat, image);
expectMatEqual(restoredFromVec, image);
}
TEST(CompressionTest, CompressImage2AndVectorOverloadMatchRgb)
{
cv::Mat image(16, 16, CV_8UC3);
for(int r = 0; r < image.rows; ++r)
{
for(int c = 0; c < image.cols; ++c)
{
image.at<cv::Vec3b>(r, c) = cv::Vec3b(
static_cast<uchar>(r * 10),
static_cast<uchar>(c * 10),
static_cast<uchar>((r + c) * 5));
}
}
const cv::Mat bytesMat = compressImage2(image, ".png");
const std::vector<unsigned char> bytesVec = compressImage(image, ".png");
ASSERT_FALSE(bytesMat.empty());
ASSERT_EQ(bytesMat.type(), CV_8UC1);
ASSERT_EQ(bytesVec.size(), static_cast<size_t>(bytesMat.cols));
EXPECT_LT(bytesMat.total() * bytesMat.elemSize(), image.total() * image.elemSize());
const cv::Mat restoredFromMat = uncompressImage(bytesMat);
const cv::Mat restoredFromVec = uncompressImage(bytesVec);
expectMatEqual(restoredFromMat, image);
expectMatEqual(restoredFromVec, image);
}
TEST(CompressionTest, CompressImageRvlRoundTrip)
{
cv::Mat depth(4, 5, CV_16UC1);
for(int r = 0; r < depth.rows; ++r)
{
for(int c = 0; c < depth.cols; ++c)
{
depth.at<uint16_t>(r, c) = static_cast<uint16_t>(1000 + r * 10 + c);
}
}
const cv::Mat bytes = compressImage2(depth, ".rvl");
ASSERT_FALSE(bytes.empty());
EXPECT_EQ(compressedDepthFormat(bytes), ".rvl");
const cv::Mat restored = uncompressImage(bytes);
expectMatEqual(restored, depth);
}
TEST(CompressionTest, CompressDataRoundTrip)
{
const cv::Mat data = (cv::Mat_<float>(2, 2) << 1.f, 2.f, 3.f, 4.f);
const std::vector<unsigned char> bytes = compressData(data);
ASSERT_FALSE(bytes.empty());
const cv::Mat restored = uncompressData(bytes);
expectMatEqual(restored, data);
}
TEST(CompressionTest, CompressData2RoundTrip)
{
const cv::Mat data = (cv::Mat_<double>(1, 4) << 1.0, -2.0, 3.5, 4.25);
const cv::Mat bytes = compressData2(data);
ASSERT_FALSE(bytes.empty());
ASSERT_EQ(bytes.type(), CV_8UC1);
const cv::Mat restored = uncompressData(bytes);
expectMatEqual(restored, data);
}
TEST(CompressionTest, CompressStringRoundTrip)
{
const std::string text = "rtabmap compression test";
const cv::Mat bytes = compressString(text);
ASSERT_FALSE(bytes.empty());
EXPECT_EQ(uncompressString(bytes), text);
}
TEST(CompressionTest, EmptyInputReturnsEmptyOutput)
{
EXPECT_TRUE(compressImage(cv::Mat(), ".png").empty());
EXPECT_TRUE(compressImage2(cv::Mat(), ".png").empty());
EXPECT_TRUE(compressData(cv::Mat()).empty());
EXPECT_TRUE(compressData2(cv::Mat()).empty());
EXPECT_TRUE(uncompressImage(cv::Mat()).empty());
EXPECT_TRUE(uncompressData(cv::Mat()).empty());
EXPECT_TRUE(compressedDepthFormat(cv::Mat()).empty());
EXPECT_EQ(uncompressString(cv::Mat()), "");
}
TEST(CompressionTest, CompressionThreadUncompressImage)
{
const cv::Mat image = cv::Mat::ones(16, 16, CV_8UC1) * 200;
const cv::Mat compressed = compressImage2(image, ".png");
ASSERT_FALSE(compressed.empty());
EXPECT_LT(compressed.total() * compressed.elemSize(), image.total() * image.elemSize());
CompressionThread uncompressThread(compressed, true);
uncompressThread.start();
uncompressThread.join();
expectMatEqual(uncompressThread.getUncompressedData(), image);
}
TEST(CompressionTest, CompressionThreadDataRoundTrip)
{
const cv::Mat data = (cv::Mat_<int>(2, 3) << 1, 2, 3, 4, 5, 6);
CompressionThread compressThread(data);
compressThread.start();
compressThread.join();
const cv::Mat compressed = compressThread.getCompressedData();
ASSERT_FALSE(compressed.empty());
CompressionThread uncompressThread(compressed, false);
uncompressThread.start();
uncompressThread.join();
expectMatEqual(uncompressThread.getUncompressedData(), data);
}