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rtabmap/corelib/test/test_pymatcher.cpp

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Adding doc and tests (#1492) * added doc and tests for util2d.h * updated cmake-ros ci * Added util3d.h doc and tests * util3d_transforms.h: Added doc and tests * util3d_filtering.h: started doc and test * util3d_filtering.h: more tests and doc * Added more doc/tests * finished util3d_filtering doc and tests * added test for util2d::depthBleedingFiltering * Added util3d_registration tests * Added util3d_features.h doc/tests * added doc/tests for util3d_correspondences.h * added doc/gtest for util3d_mapping.h (missing hpp functions) * finished testing util3d_mapping.hpp * Added util3d_motion_estimation.h tests (2D->3D done) * finished util3d_motion_estimation.h tests * minimal util3d_surface.h * Added Transform and VisualWord tests * Added doc for CameraModel and StereoCameraModel * Added more logs in ros ci * Passing tests on fical * improved all devcontainer * added devcontainer kilted, fixed source setup.bash, removed ldconfig in ros-cmake workflow * cleanup * source ros * Added utilite tests * Added testing to appveyor, github actions cancellable on re-commit on same branch * appveyor testing without all targets * appveyor: specifying ALL_BUILD target * Fixed Util2dTest.NMSImageBoundsRespected test * Fixing PCL Indices error on old pcl * Added VWDictionary tests and doc. Fixed LSH not working (fix from https://github.com/flann-lib/flann/pull/472 * fixing some appveyor CI errors, added test to check dictionary serialization against all type * Added StereoDense, StereoBM and StereoSGBM doc and tests * Added Stereo tests * Added CameraModel and StereoCameraModel tests * Added doc and test for Statistics * Added doc/tests for Signature * Added doc/test for SensorEvent, added doc for SensorCaptureInfo * Added doc to SensorData * Added SensorData tests * Added SensorCapture and SensorCaptureThread doc and tests * fixed sensordata test * updated SSC test and doc * Added doc and tests for BayesFilter class * Enabled testing on mac, updated windows testing like on linux * added test_link * fixed unresolved on windows * fixed ThreadHandle error on macos ci * Added GPS and GeodeticCoords tests * Added tests for compression * Added Odometry tests (base class only) * Added DBDriver tests * Added coverage report * uniformized test names * fixing concurancy and coverage ci * dont built tools, examples and app for coverage build * fixed report tool rebuilt without qt compilation error * updated coverage option * updated coverage config * added doc CI job * fixing windows and mac ci errors * Added DBDriverSqlite3 tests * Added IMU tests * Added Graph tests * fixing flaky macos test * Added IMUThread and IMUFilter tests * Added Landmarks tests * Added LASWriter tests * fixing seed flaky test * fixing flaky macos timing tests * Added LocalGrid tests * Added LocalGridMaker tests * fixing ci errors * Added GlobalMap tests * Added doc for EnvSensor * Added Features2D tests * Added Registration tests * Added RegistrationVis tests * Added doc for Rtabmap and Memory classes * Added Memory and Rtabmap tests * making some tests less flaky * lcov 1.14 support * updated compatible tool arguments * Added integration tests (RGB-D, Stereo, Lidar2d, Lidar3d) * More octomap checks * Refactored how/when python interpretor is created to simplify library usage * Added python tests * fixed some flaky tests * suppressed some third party related warnings * fixed ceres tests * more flaky fixes * Fixing tests without libpointmatcher * Added RANSAC rejection filter to PCL ICP * fixing multi platform flakiness * Added test to detect regression * Fixing windows pcl link error * fixed some macos flakiness * bigger 2D2D registration error on opencv 4.6.0 * flakiness * fixing flaky tests on windows and mac * flaky thread test on slow mac VM * windows slow test * fixing more ci erros * fxing temp dir on windows * Added Optimizer tests and discovered some bugs (fixed) * fixing flaky tests in mac and windows * Added Optimizer doc * Added GTSAM BA, updated Ceres to use g2o ba parameters. Renamed g2o's ba related parameters to Optimizer group and used by both gtsam and ceres. * fixing build without gtsam * fixing home dir * fixing python ci isssues * Added multicam ba tests * Added Ceres multicam BA support * Aligned BundleAdjustment parameters with Optimizer/Strategy to avoid confusion in the code * Added BA integration test * Added robust graph optimization integration test * Added loop3it test * Added stereo20Hz test * Added smartfactor gtsam * Fixed bugged check and warn if python didn't return any descriptors * Fixing gtsam version build issues * fixing tilt on windows ci * loosing ceres integration test for ci * mac ci flakiness * updating missing param in gui * updating test bound for mac * added appearance-based tests, set min gftt quality to quality level * testing more stuff * improving features2d tests * ci flakiness * fixing flaky ci * ci fixes * flaky fixes * Added RegistrationIcp tests * Added icp integration test with real-worl corridor like env * intermediate nodes * fixing enum * Updated test to catch #1714 * Fixed 2d corridor failing on pcl * flaky pnp test * flaky brisk test * Set rtabmap_integration test as long * updating loop closure test * flaky ci tests * TEsting roundtrip g2o/toro save/load * loosing test bound * fixed cuda capable checks * flaky tests * Debugging test hanging * more debugging stuff * updating limit * windows: disabled cuda on ci to avoid incompatible driver issue. Fixing a bad test mem allocation * trying fixing cuda hanging issue * fixing ci flakyness * flaky tests * Updated BOW flaky tests by checking min precision/recall instead of recall@100precision. Fixed signature test * CameraModel::load() test initRectificationMap param * test dbdriver load dictionary idsOnly * Memory: test keepLinkedInDb param * added dummyDictionary tests * test intermediate nodes count * Added MarkerDetector tests * reverted breaking change of UMutex and USemaphore * Features2d: fixed compiltion warnings with clang about override * clang warnings * fixing test build with pcl 1.8 * g2o and gtsam build errors on android * opencv5 test fixes * disabled testing for ios and android builds * normalized endline characters for easier diff * added LF CRLF rule * bump 0.23.10. fixing doc version * Publish rtabmap website doc from ci * fixing MSCVC build error * macos icp flaky test * fixing ceres macos test bound * ficing more flaky tests * fixing opencv5 related test errors. Also fixed an actual bug in ENU_WGS84ToGeocentric_WGS84() * added comment about mrpt change * removed rosdoc2 (will add it for rtabmap_ros later) * fixing website style * updated download links * locally deployable website with api * sweep doxygen issues * improved/revised doxygen main pages * removed examples empty page * Updated doxygen style * more concise doxygen groups * added api link on main readme * fixing utilite test error * fixing CommonFilteringGroundNormalsUp test * updated precisionRecall test bounds for Freak and brief descriptors * fixing scale check in ba tests * disabled tests on windows cuda build (missing dlls amd runner cannot test cuda anyway) * ceres: missing suitesparse dep in windows ci * adjusting recall thr for fast/freak * ficing more flaky tests * fixing flaky tests * disabled coverage in ros ci * Enable integration tests for ros ci jobs * loosing up some threshold for failing tests * trigger cache * fixing test data in ros ci. Updated flaky test for mac * slaking some test limit * Fixed rtabmap-detectMoreLoopClosures inverted output value * loosing up sift recall on mac * optimizer re-ordered distribution for reproducible results (mac g2o) * macos dump test crash log * combining all tests to save time on shared library reload. Also fixed Logs with missing arguments. * Added ENABLE_FORMAT_ERRORS cmake option * do test only one time * fixed all format warnings * format security android build errors * less verbose tests * updated ImuUThread test * fixed a log * Fixed libpointmatcher 2d normals eigen issue * Fixing libpointmatcher conversion issues * fixing libpointmatcher test on windows ci * cleanup comments, relax some test thr * disabled sequoia-intel ci build (too flaky, would need extensive testing directly on that machine)
2026-08-06 13:32:20 -07:00
// Tests for PyMatcher: rtabmap's bridge to Python-backed descriptor matchers
// (SuperGlue, OANet, etc.). PyMatcher is an internal class (not in the public
// include tree), so the test pulls in its private header via the corelib/src
// include path wired up in CMakeLists.txt.
//
// We stand in a tiny numpy-only stub script for what would otherwise be a
// heavy ML model. The whole file is a no-op when rtabmap is built without
// Python -- the CMakeLists.txt only registers it under
// WITH_PYTHON AND Python3_FOUND, and a defensive #ifdef matches that.
#include <gtest/gtest.h>
#include <rtabmap/core/Version.h>
#ifdef RTABMAP_PYTHON
#include "python/PyMatcher.h" // private header (see CMakeLists.txt include dirs)
#include <rtabmap/utilite/UConversion.h>
#include <rtabmap/utilite/UFile.h>
#include "TestUtils.h"
#include <opencv2/core.hpp>
#include <fstream>
#include <memory>
#include <string>
using namespace rtabmap;
namespace {
// Drops a minimal matcher script implementing the contract PyMatcher.cpp
// expects:
// init(descriptorDim, matchThreshold, iterations, cuda, model) -- called once
// match(kptsFrom, kptsTo, scoresFrom, scoresTo, descriptorsFrom,
// descriptorsTo, imageWidth, imageHeight)
// -> returns Nx2 int32 (queryIdx, trainIdx) pairs.
//
// Our stub returns a perfect 1:1 mapping for min(rowsFrom, rowsTo) rows
// (i -> i), echoing the count so the test can pin both the pipeline plumbing
// and the array-shape parsing in PyMatcher::match. Numpy-only, no heavy deps.
//
// Each test uses a unique filename via `tag` so the Python module cache
// reloads fresh content on each TEST().
std::string writeStubScript(int tag)
{
const std::string path = test::tempPath(uFormat("rtabmap_test_pymatcher_%d_%d.py", test::getPid(), tag));
std::ofstream out(path);
out <<
"import numpy as np\n"
"\n"
"INITIALIZED = False\n"
"INIT_DIM = 0\n"
"INIT_THRESHOLD = 0.0\n"
"INIT_ITERATIONS = 0\n"
"INIT_CUDA = 0\n"
"INIT_MODEL = ''\n"
"\n"
"def init(descriptorDim, matchThreshold, iterations, cuda, model):\n"
" global INITIALIZED, INIT_DIM, INIT_THRESHOLD, INIT_ITERATIONS\n"
" global INIT_CUDA, INIT_MODEL\n"
" INITIALIZED = True\n"
" INIT_DIM = int(descriptorDim)\n"
" INIT_THRESHOLD = float(matchThreshold)\n"
" INIT_ITERATIONS = int(iterations)\n"
" INIT_CUDA = int(cuda)\n"
" INIT_MODEL = str(model)\n"
"\n"
"def match(kptsFrom, kptsTo, scoresFrom, scoresTo,\n"
" descriptorsFrom, descriptorsTo, imageWidth, imageHeight):\n"
" nFrom = descriptorsFrom.shape[0]\n"
" nTo = descriptorsTo.shape[0]\n"
" n = min(nFrom, nTo)\n"
" # Perfect 1:1 mapping: query i <-> train i.\n"
" matches = np.zeros((n, 2), dtype=np.int32)\n"
" for i in range(n):\n"
" matches[i, 0] = i\n"
" matches[i, 1] = i\n"
" return matches\n";
return path;
}
// Build N descriptors of dimension dim. Cell (i, j) = i + 0.01*j so the test
// can identify them, though the stub doesn't actually use the content.
cv::Mat makeDescriptors(int n, int dim)
{
cv::Mat d(n, dim, CV_32FC1);
for(int i = 0; i < n; ++i)
for(int j = 0; j < dim; ++j)
d.at<float>(i, j) = float(i) + 0.01f * float(j);
return d;
}
std::vector<cv::KeyPoint> makeKeypoints(int n)
{
std::vector<cv::KeyPoint> kpts;
kpts.reserve(n);
for(int i = 0; i < n; ++i)
{
kpts.emplace_back(float(i * 4), float(i * 4), 8.0f, -1.0f, 0.5f);
}
return kpts;
}
} // namespace
// Full happy path: script loads, init() receives all 5 args, match() returns
// a 1:1 mapping that survives back into cv::DMatch entries.
TEST(PyMatcher, BasicMatching)
{
const std::string scriptPath = writeStubScript(1);
const int dim = 8;
PyMatcher matcher(scriptPath,
/*matchThreshold=*/0.2f,
/*iterations=*/20,
/*cuda=*/false,
/*model=*/"indoor");
EXPECT_EQ(scriptPath, matcher.path());
EXPECT_FLOAT_EQ(0.2f, matcher.matchThreshold());
EXPECT_EQ(20, matcher.iterations());
EXPECT_FALSE(matcher.cuda());
EXPECT_EQ("indoor", matcher.model());
cv::Mat descFrom = makeDescriptors(3, dim);
cv::Mat descTo = makeDescriptors(3, dim);
std::vector<cv::KeyPoint> kptsFrom = makeKeypoints(3);
std::vector<cv::KeyPoint> kptsTo = makeKeypoints(3);
std::vector<cv::DMatch> matches = matcher.match(
descFrom, descTo, kptsFrom, kptsTo, cv::Size(640, 480));
ASSERT_EQ(3u, matches.size());
for(int i = 0; i < 3; ++i)
{
EXPECT_EQ(i, matches[i].queryIdx);
EXPECT_EQ(i, matches[i].trainIdx);
}
UFile::erase(scriptPath);
}
// Asymmetric descriptor counts: stub returns min(nFrom, nTo) matches. Pin
// that the C++ parser handles non-square Nx2 arrays correctly.
TEST(PyMatcher, AsymmetricCounts)
{
const std::string scriptPath = writeStubScript(2);
const int dim = 4;
PyMatcher matcher(scriptPath, 0.2f, 20, false, "indoor");
cv::Mat descFrom = makeDescriptors(5, dim);
cv::Mat descTo = makeDescriptors(3, dim);
std::vector<cv::KeyPoint> kptsFrom = makeKeypoints(5);
std::vector<cv::KeyPoint> kptsTo = makeKeypoints(3);
std::vector<cv::DMatch> matches = matcher.match(
descFrom, descTo, kptsFrom, kptsTo, cv::Size(320, 240));
EXPECT_EQ(3u, matches.size()); // limited by the smaller side
UFile::erase(scriptPath);
}
// A non-existent script path is pre-validated by the constructor; match()
// then short-circuits because pModule_ is null.
TEST(PyMatcher, MissingPathReturnsEmpty)
{
const std::string scriptPath = test::tempPath(uFormat("rtabmap_test_pymatcher_does_not_exist_%d.py", test::getPid()));
PyMatcher matcher(scriptPath, 0.2f, 20, false, "indoor");
cv::Mat descFrom = makeDescriptors(2, 8);
cv::Mat descTo = makeDescriptors(2, 8);
std::vector<cv::KeyPoint> kptsFrom = makeKeypoints(2);
std::vector<cv::KeyPoint> kptsTo = makeKeypoints(2);
std::vector<cv::DMatch> matches = matcher.match(
descFrom, descTo, kptsFrom, kptsTo, cv::Size(64, 64));
EXPECT_TRUE(matches.empty());
}
// match() requires same descriptor dim on both sides; mismatched cols hit
// the "Invalid inputs" guard and return empty.
TEST(PyMatcher, MismatchedDescriptorDimReturnsEmpty)
{
const std::string scriptPath = writeStubScript(3);
PyMatcher matcher(scriptPath, 0.2f, 20, false, "indoor");
cv::Mat descFrom = makeDescriptors(2, 8);
cv::Mat descTo = makeDescriptors(2, 16);
std::vector<cv::KeyPoint> kptsFrom = makeKeypoints(2);
std::vector<cv::KeyPoint> kptsTo = makeKeypoints(2);
std::vector<cv::DMatch> matches = matcher.match(
descFrom, descTo, kptsFrom, kptsTo, cv::Size(64, 64));
EXPECT_TRUE(matches.empty());
UFile::erase(scriptPath);
}
// match() also rejects non-CV_32F descriptors -- the input-guard in
// PyMatcher::match insists on float descriptors.
TEST(PyMatcher, NonFloatDescriptorsReturnEmpty)
{
const std::string scriptPath = writeStubScript(4);
PyMatcher matcher(scriptPath, 0.2f, 20, false, "indoor");
cv::Mat descFrom = cv::Mat::zeros(2, 8, CV_8UC1);
cv::Mat descTo = cv::Mat::zeros(2, 8, CV_8UC1);
std::vector<cv::KeyPoint> kptsFrom = makeKeypoints(2);
std::vector<cv::KeyPoint> kptsTo = makeKeypoints(2);
std::vector<cv::DMatch> matches = matcher.match(
descFrom, descTo, kptsFrom, kptsTo, cv::Size(64, 64));
EXPECT_TRUE(matches.empty());
UFile::erase(scriptPath);
}
// Zero-area imageSize is rejected by the input guard.
TEST(PyMatcher, ZeroImageSizeReturnsEmpty)
{
const std::string scriptPath = writeStubScript(5);
PyMatcher matcher(scriptPath, 0.2f, 20, false, "indoor");
cv::Mat descFrom = makeDescriptors(2, 8);
cv::Mat descTo = makeDescriptors(2, 8);
std::vector<cv::KeyPoint> kptsFrom = makeKeypoints(2);
std::vector<cv::KeyPoint> kptsTo = makeKeypoints(2);
std::vector<cv::DMatch> matches = matcher.match(
descFrom, descTo, kptsFrom, kptsTo, cv::Size(0, 0));
EXPECT_TRUE(matches.empty());
UFile::erase(scriptPath);
}
#endif // RTABMAP_PYTHON