2013 International Conference on Information Technology and Electrical Engineering (ICITEE) 2013
DOI: 10.1109/iciteed.2013.6676202
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A kinetic energy-based feature for unsupervised motion clustering

Abstract: Motion databases usually contain sequences of movements and searching these vast databases is not an easy task. Motion clustering can reduce this difficulty by grouping sample movements into various motion groups containing similar actions. The pose distance is often used as a feature during motion clustering tasks. However, the main weakness of this strategy is its computational complexity. Query motions are also required to cluster motion sequences. To address these problems, we propose a motion-clustering a… Show more

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