mirror of
https://github.com/introlab/rtabmap.git
synced 2026-09-02 17:40:23 +08:00
@@ -279,11 +279,14 @@ std::map<int, Transform> Optimizer::optimizeIncremental(
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UDEBUG("Incremental optimization... poses=%d comstraints=%d", (int)poses.size(), (int)constraints.size());
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for(std::map<int, Transform>::const_iterator iter=poses.begin(); iter!=poses.end(); ++iter)
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{
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incGraph.insert(*iter);
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bool hasLoopClosure = false;
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for(std::multimap<int, Link>::iterator jter=constraintsCpy.lower_bound(iter->first); jter!=constraintsCpy.end() && jter->first==iter->first; ++jter)
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{
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UDEBUG("%d: %d -> %d type=%d", iter->first, jter->second.from(), jter->second.to(), jter->second.type());
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if(jter->second.type() == Link::kNeighbor || jter->second.type() == Link::kNeighborMerged)
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{
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UASSERT(uContains(incGraph, iter->first));
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incGraph.insert(std::make_pair(jter->second.to(), incGraph.at(iter->first) * jter->second.transform()));
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incGraphLinks.insert(*jter);
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}
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@@ -316,6 +319,8 @@ std::map<int, Transform> Optimizer::optimizeIncremental(
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if(!incGraph.empty() && incGraph.size() == poses.size())
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{
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UASSERT(incGraphLinks.size() == constraints.size());
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UASSERT(uContains(poses, rootId) && uContains(incGraph, rootId));
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incGraph.at(rootId) = poses.at(rootId);
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return this->optimize(rootId, incGraph, incGraphLinks, intermediateGraphes, finalError, iterationsDone);
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}
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@@ -2268,10 +2268,18 @@ bool Rtabmap::process(
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// if _optimizeFromGraphEnd parameter just changed state, don't use optimized poses as guess
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float normMapCorrection = _mapCorrection.getNormSquared(); // use distance for identity detection
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if((normMapCorrection > 0.001f && _optimizeFromGraphEnd) ||
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(normMapCorrection < 0.001f && !_optimizeFromGraphEnd))
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if((normMapCorrection > 0.000001f && _optimizeFromGraphEnd) ||
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(normMapCorrection < 0.000001f && !_optimizeFromGraphEnd))
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{
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poses.clear();
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for(std::multimap<int, Link>::iterator iter=_constraints.begin(); iter!=_constraints.end(); ++iter)
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{
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if(iter->second.type() != Link::kNeighbor && iter->second.type() != Link::kVirtualClosure)
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{
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UWARN("Optimization: clearing guess poses as %s may have changed state, now %s (normMapCorrection=%f)", Parameters::kRGBDOptimizeFromGraphEnd().c_str(), _optimizeFromGraphEnd?"true":"false", normMapCorrection);
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poses.clear();
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break;
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}
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}
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}
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std::multimap<int, Link> constraints;
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@@ -3311,24 +3319,24 @@ std::map<int, Transform> Rtabmap::optimizeGraph(
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if(!poses.empty() && optimizedPoses.empty() && guessPoses.empty())
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{
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UERROR("Optimization has failed, trying incremental optimization instead, this may take a while (poses=%d, links=%d)...", (int)poses.size(), (int)edgeConstraints.size());
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UWARN("Optimization has failed, trying incremental optimization instead, this may take a while (poses=%d, links=%d)...", (int)poses.size(), (int)edgeConstraints.size());
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optimizedPoses = _graphOptimizer->optimizeIncremental(fromId, poses, edgeConstraints, 0, error, iterationsDone);
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if(optimizedPoses.empty())
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{
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if(!_graphOptimizer->isCovarianceIgnored() || _graphOptimizer->type() != Optimizer::kTypeTORO)
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{
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UERROR("Incremental optimization also failed. You may try changing parameters to %s=0 and %s=true.",
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UWARN("Incremental optimization also failed. You may try changing parameters to %s=0 and %s=true.",
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Parameters::kOptimizerStrategy().c_str(), Parameters::kOptimizerVarianceIgnored().c_str());
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}
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else
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{
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UERROR("Incremental optimization also failed.");
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UWARN("Incremental optimization also failed.");
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}
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}
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else
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{
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UERROR("Incremental optimization succeeded!");
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UWARN("Incremental optimization succeeded!");
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}
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}
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}
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