A Dynamic Bayesian Network-Based Framework for Visual Tracking

In this paper, we propose a new tracking method based on dynamic Bayesian network. Dynamic Bayesian network provides a unified probabilistic framework in integrating multi-modalities by using a graphical representation of the dynamic systems. For visual tracking, we adopt a dynamic Bayesian network...

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Hauptverfasser: Kang, Hang-Bong, Cho, Sang-Hyun
Format: Tagungsbericht
Sprache:eng
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Zusammenfassung:In this paper, we propose a new tracking method based on dynamic Bayesian network. Dynamic Bayesian network provides a unified probabilistic framework in integrating multi-modalities by using a graphical representation of the dynamic systems. For visual tracking, we adopt a dynamic Bayesian network to fuse multi-modal features and to handle various appearance target models. We extend this framework to multiple camera environments to deal with severe occlusions of the object of interest. The proposed method was evaluated under several real situations and promising results were obtained.
ISSN:0302-9743
1611-3349
DOI:10.1007/11558484_76