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AVSS
2008
IEEE

Recognizing Shapes in Video Sequences Using Multi-class Boosting

14 years 7 months ago
Recognizing Shapes in Video Sequences Using Multi-class Boosting
We model the spatio-temporal variations of the shape of objects in a video sequence using a unique SVD-like decomposition. The decomposition is used to compute shape features, which form an approximation of the original shape sequence. The features are used to train separate classifiers using multi-class boosting strategy. We demonstrate the effectiveness of the proposed approach for shape recognition using the China Lake outdoor surveillance dataset; and compare the results using mean shapes as baseline. We illustrate the usefulness of the proposed shape features for detecting shapes of interest using the SIG group activity dataset.
Naresh P. Cuntoor, Matt Welborn
Added 29 May 2010
Updated 29 May 2010
Type Conference
Year 2008
Where AVSS
Authors Naresh P. Cuntoor, Matt Welborn
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