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Background subtraction based on Local Shape

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arxiv 1204.6326 v2 pith:OL6N5Z6J submitted 2012-04-27 cs.CV

Background subtraction based on Local Shape

classification cs.CV
keywords backgroundlocalapproachimageobjectsshapechangeforeground
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We present a novel approach to background subtraction that is based on the local shape of small image regions. In our approach, an image region centered on a pixel is mod-eled using the local self-similarity descriptor. We aim at obtaining a reliable change detection based on local shape change in an image when foreground objects are moving. The method first builds a background model and compares the local self-similarities between the background model and the subsequent frames to distinguish background and foreground objects. Post-processing is then used to refine the boundaries of moving objects. Results show that this approach is promising as the foregrounds obtained are com-plete, although they often include shadows.

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