conference-paper

3D object modeling and recognition via online hierarchical Pitman-yor process mixture learning

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We present a statistical framework for 3D objects modeling and recognition. Our framework is based on describing 3D objects using local descriptors from which a visual vocabulary if built and on a hierarchical Pitman-Yor process mixture of Beta-Liouville distributions. An online approach based on variational Bayes is developed for the learning of the proposed framework. The merits of our model are shown via extensive experiments.

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DOI
10.1109/globalsip.2015.7418235
OpenAlex
W2288524568
Document type
conference-paper
Language
EN
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