Publication | Closed Access
Unique shape context for 3d data description
334
Citations
19
References
2010
Year
Unknown Venue
EngineeringGeometryStatistical Shape AnalysisShape AnalysisComputer-aided Design3D Computer VisionRobust Feature DescriptorsImage AnalysisData SciencePattern RecognitionComputational GeometryUnique Shape ContextGeometric ModelingMachine VisionComputer ScienceDeep Learning3D Object RecognitionComputer Vision3D VisionNatural SciencesSurface AlignmentShape ModelingMulti-view GeometryShape Context Descriptor
The use of robust feature descriptors is now key for many 3D tasks such as 3D object recognition and surface alignment. Many descriptors have been proposed in literature which are based on a non-unique local Reference Frame and hence require the computation of multiple descriptions at each feature points. In this paper we show how to deploy a unique local Reference Frame to improve the accuracy and reduce the memory footprint of the well-known 3D Shape Context descriptor. We validate our proposal by means of an experimental analysis carried out on a large dataset of 3D scenes and addressing an object recognition scenario.
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