Connected operators on 3D data for human body analysis.

Computer Vision and Pattern Recognition Workshops(2011)

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摘要
This paper presents a novel method for filtering and extraction of human body features from 3D data, either from multi-view images or range sensors. The proposed algorithm consists in processing the geodesic distances on a 3D surface representing the human body in order to find prominent maxima representing salient points of the human body. We introduce a 3D surface graph representation and filtering strategies to enhance robustness to noise and artifacts present in this kind of data. We conduct several experiments on different datasets involving 2 multi-view setups and 2 range data sensors: Kinect and Mesa SR4000. In all of them, the proposed algorithm shows a promising performance towards human body analysis with 3D data.
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关键词
filtering theory,image motion analysis,image representation,3d data,3d surface graph representation,mesa sr4000,geodesic distances,human body features,multiview images,multiview setups,range sensors,feature extraction,surface topography,three dimensional,human body,sensors,surface reconstruction,geodesic distance,graph representation
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