/* Copyright (c) 2010-2016, Mathieu Labbe - IntRoLab - Universite de Sherbrooke All rights reserved. Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met: * Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer. * Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution. * Neither the name of the Universite de Sherbrooke nor the names of its contributors may be used to endorse or promote products derived from this software without specific prior written permission. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ #include #include #include #include #include #include #include #include #include "rtabmap/utilite/UFile.h" #include "rtabmap/utilite/UStl.h" using namespace rtabmap; #ifdef _WIN32 #include #define COLOR_NORMAL FOREGROUND_BLUE | FOREGROUND_GREEN | FOREGROUND_RED #define COLOR_RED FOREGROUND_RED | FOREGROUND_INTENSITY #define COLOR_GREEN FOREGROUND_GREEN #define COLOR_YELLOW FOREGROUND_GREEN | FOREGROUND_RED #else #define COLOR_NORMAL "\033[0m" #define COLOR_RED "\033[31m" #define COLOR_GREEN "\033[32m" #define COLOR_YELLOW "\033[33m" #endif void showUsage() { printf("\nUsage:\n" "rtabmap-info [options] \"map.db\"\n" " Options:\n" " --diff Show only modified parameters.\n" " --diff \"other_map.db\" Compare parameters with other database.\n" " --dump \"config.ini\" Dump parameters in ini file.\n" "\n"); exit(1); } int main(int argc, char * argv[]) { if(argc < 2) { showUsage(); } std::string otherDatabasePath; std::string dumpFilePath; bool diff = false; for(int i=1; iopenConnection(databasePath)) { printf("Cannot open database \"%s\".\n", databasePath.c_str()); delete driver; return -1; } ParametersMap parameters = driver->getLastParameters(); if(!dumpFilePath.empty()) { Parameters::writeINI(dumpFilePath, parameters); printf("%ld parameters exported to \"%s\".\n", parameters.size(), dumpFilePath.c_str()); return 0; } ParametersMap defaultParameters = Parameters::getDefaultParameters(); ParametersMap removedParameters = Parameters::getBackwardCompatibilityMap(); std::string otherDatabasePathName; if(!otherDatabasePath.empty()) { driver->closeConnection(false); if(!UFile::exists(otherDatabasePath)) { printf("Database \"%s\" doesn't exist!\n", otherDatabasePath.c_str()); delete driver; return -1; } if(!driver->openConnection(otherDatabasePath)) { printf("Cannot open database \"%s\".\n", otherDatabasePath.c_str()); delete driver; return -1; } otherDatabasePathName = UFile::getName(otherDatabasePath); defaultParameters = driver->getLastParameters(); removedParameters.clear(); } #ifdef _WIN32 HANDLE H = GetStdHandle(STD_OUTPUT_HANDLE); #endif int padding = 35; std::cout << ("Parameters (Yellow=modified, Red=old parameter not used anymore, NA=not in database):\n"); for(ParametersMap::iterator iter=parameters.begin(); iter!=parameters.end(); ++iter) { ParametersMap::const_iterator jter = defaultParameters.find(iter->first); std::string defaultValue; bool defaultValueSet = false; if(jter == defaultParameters.end()) { jter = removedParameters.find(iter->first); if(jter != removedParameters.end()) { defaultValue = jter->second; defaultValueSet = true; } } else { defaultValue = jter->second; defaultValueSet = true; } if(defaultValueSet && iter->second.compare(defaultValue) != 0 && iter->first.compare(Parameters::kRtabmapWorkingDirectory()) != 0) { bool different = true; if(Parameters::getType(iter->first).compare("double") ==0 || Parameters::getType(iter->first).compare("float") == 0) { if(uStr2Double(iter->second) == uStr2Double(defaultValue)) { different = false; } } if(different) { //yellow #ifdef _WIN32 SetConsoleTextAttribute(H,COLOR_YELLOW); #else printf("%s", COLOR_YELLOW); #endif std::cout << (uFormat("%s%s (%s=%s)\n", uPad(iter->first + "=", padding).c_str(), iter->second.c_str(), otherDatabasePath.empty()?"default":otherDatabasePathName.c_str(), defaultValue.c_str())); } else if(!diff) { //green #ifdef _WIN32 SetConsoleTextAttribute(H,COLOR_NORMAL); #else printf("%s", COLOR_NORMAL); #endif std::cout << (uFormat("%s%s\n", uPad(iter->first + "=", padding).c_str(), iter->second.c_str())); } } else if(!defaultValueSet) { //red #ifdef _WIN32 SetConsoleTextAttribute(H,COLOR_RED); #else printf("%s", COLOR_RED); #endif std::cout << (uFormat("%s%s (%s=NA)\n", uPad(iter->first + "=", padding).c_str(), iter->second.c_str(), otherDatabasePath.empty()?"default":otherDatabasePathName.c_str())); } else if(!diff) { //green #ifdef _WIN32 SetConsoleTextAttribute(H,COLOR_NORMAL); #else printf("%s", COLOR_NORMAL); #endif std::cout << (uFormat("%s%s\n", uPad(iter->first + "=", padding).c_str(), iter->second.c_str())); } #ifdef _WIN32 SetConsoleTextAttribute(H,COLOR_NORMAL); #else printf("%s", COLOR_NORMAL); #endif } for(ParametersMap::iterator iter=defaultParameters.begin(); iter!=defaultParameters.end(); ++iter) { ParametersMap::const_iterator jter = parameters.find(iter->first); if(jter == parameters.end()) { //red #ifdef _WIN32 SetConsoleTextAttribute(H,COLOR_RED); #else printf("%s", COLOR_RED); #endif std::cout << (uFormat("%sNA (%s=\"%s\")\n", uPad(iter->first + "=", padding).c_str(), otherDatabasePath.empty()?"default":otherDatabasePathName.c_str(), iter->second.c_str())); #ifdef _WIN32 SetConsoleTextAttribute(H,COLOR_NORMAL); #else printf("%s", COLOR_NORMAL); #endif } } if(otherDatabasePath.empty()) { printf("\nInfo:\n\n"); std::string info; std::set ids; driver->getAllNodeIds(ids); Transform lastLocalization; std::map optimizedPoses = driver->loadOptimizedPoses(&lastLocalization); cv::Vec3f min, max; if(!optimizedPoses.empty()) { graph::computeMinMax(optimizedPoses, min, max); } std::multimap mapIdsLinkedToLastGraph; int lastMapId=0; double previousStamp = 0.0f; Transform previousPose; float infoTotalOdom = 0.0f; double infoTotalTime = 0.0f; int sessions = !ids.empty()?1:0; int odomPoses = 0; int gtPoses = 0; int gpsValues = 0; for(std::set::iterator iter=ids.begin(); iter!=ids.end(); ++iter) { Transform p, g; int w; std::string l; double s; int mapId; std::vector v; GPS gps; EnvSensors sensors; int id = *iter; driver->getNodeInfo(id, p, mapId, w, l, s, g, v, gps, sensors); if(!p.isNull()) { ++odomPoses; } if(!g.isNull()) { ++gtPoses; } if(gps.stamp()>0.0) { ++gpsValues; } if(optimizedPoses.find(id) != optimizedPoses.end()) { mapIdsLinkedToLastGraph.insert(std::make_pair(mapId, id)); } if(iter!=ids.begin()) { if(lastMapId == mapId) { if(!p.isNull() && !previousPose.isNull()) { infoTotalOdom += p.getDistance(previousPose); } if(previousStamp > 0.0 && s > 0.0) { infoTotalTime += s-previousStamp; } } else { ++sessions; } } lastMapId = mapId; previousStamp=s; previousPose=p; } std::cout << (uFormat("%s%s\n", uPad("Path:").c_str(), driver->getUrl().c_str())); std::cout << (uFormat("%s%s\n", uPad("Version:").c_str(), driver->getDatabaseVersion().c_str())); std::cout << (uFormat("%s%d\n", uPad("Sessions:").c_str(), sessions)); std::multimap links; driver->getAllLinks(links, true, true); bool reducedGraph = false; std::vector linkTypes(Link::kEnd, 0); std::vector > linkLengths(Link::kEnd); std::multimap uniqueLinks = graph::filterDuplicateLinks(links); for(std::multimap::iterator iter=uniqueLinks.begin(); iter!=uniqueLinks.end(); ++iter) { if(iter->second.type() == Link::kNeighborMerged) { reducedGraph = true; } if(iter->second.type()>=0 && iter->second.type()second.type()]; linkLengths[iter->second.type()].push_back(iter->second.transform().getNorm()); } } if(reducedGraph) { std::cout << (uFormat("%s%f m (approx. as graph has been reduced)\n", uPad("Total odom:").c_str(), infoTotalOdom)); } else { std::cout << (uFormat("%s%f m\n", uPad("Total odometry length:").c_str(), infoTotalOdom)); } std::stringstream sessionsInOptGraphStr; std::list mapsLinkedToLastGraph = uUniqueKeys(mapIdsLinkedToLastGraph); for(std::list::iterator iter=mapsLinkedToLastGraph.begin(); iter!=mapsLinkedToLastGraph.end(); ++iter) { if(iter!=mapsLinkedToLastGraph.begin()) { sessionsInOptGraphStr << ", "; } sessionsInOptGraphStr << *iter << "(" << mapIdsLinkedToLastGraph.count(*iter) << ")"; } int lastWordIdId = 0; int wordsDim = 0; int wordsType = 0; driver->getLastWordId(lastWordIdId); if(lastWordIdId>0) { std::set ids; ids.insert(lastWordIdId); std::list vws; driver->loadWords(ids, vws); if(!vws.empty()) { wordsDim = vws.front()->getDescriptor().cols; wordsType = vws.front()->getDescriptor().type(); delete vws.front(); vws.clear(); } } std::cout << (uFormat("%s%fs\n", uPad("Total time:").c_str(), infoTotalTime)); std::cout << (uFormat("%s%d nodes and %d words (dim=%d type=%s)\n", uPad("LTM:").c_str(), (int)ids.size(), driver->getTotalDictionarySize(), wordsDim, wordsType==CV_8UC1?"8U":wordsType==CV_32FC1?"32F":uNumber2Str(wordsType).c_str())); std::cout << (uFormat("%s%d nodes and %d words\n", uPad("WM:").c_str(), driver->getLastNodesSize(), driver->getLastDictionarySize())); std::cout << (uFormat("%s%d poses and %d links\n", uPad("Global graph:").c_str(), odomPoses, links.size())); std::cout << (uFormat("%s%d poses (x=%d->%d, y=%d->%d, z=%d->%d)\n", uPad("Optimized graph:").c_str(), (int)optimizedPoses.size(), links.size(), (int)min[0], (int)max[0], (int)min[1], (int)max[1], min[2], (int)max[2])); std::cout << (uFormat("%s%d/%d [%s]\n", uPad("Maps in graph:").c_str(), (int)mapsLinkedToLastGraph.size(), sessions, sessionsInOptGraphStr.str().c_str())); std::cout << (uFormat("%s%d poses\n", uPad("Ground truth:").c_str(), gtPoses)); std::cout << (uFormat("%s%d poses\n", uPad("GPS:").c_str(), gpsValues)); std::cout << (uFormat("Links:\n")); for(size_t i=0; i0) { std = std::sqrt(std); } std::cout << (uFormat("%s%d\t(length avg: %.2fm, std: %.2fm, max: %.2fm)\n", uPad(uFormat(" %s:", Link::typeName((Link::Type)i).c_str())).c_str(), linkTypes[i], avg, std, max)); } std::cout << ("\n"); long total = 0; long dbSize = UFile::length(driver->getUrl()); long mem = dbSize; std::cout << (uFormat("%s%d %s\n", uPad("Database size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes")); mem = driver->getNodesMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Nodes size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getLinksMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Links size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getImagesMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("RGB Images size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getDepthImagesMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Depth Images size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getCalibrationsMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Calibrations size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getGridsMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Grids size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getLaserScansMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Scans size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getUserDataMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("User data size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getWordsMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Dictionary size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getFeaturesMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Features size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = driver->getStatisticsMemoryUsed(); total+=mem; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Statistics size:").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); mem = dbSize - total; std::cout << (uFormat("%s%d %s\t(%.2f%%)\n", uPad("Other (indexing, unused):").c_str(), mem>1000000?mem/1000000:mem>1000?mem/1000:mem, mem>1000000?"MB":mem>1000?"KB":"Bytes", dbSize>0?double(mem)/double(dbSize)*100.0:0.0)); std::cout << ("\n"); } return 0; }