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Hierarchical probabilistic models for video object segmentation and tracking | IEEE Conference Publication | IEEE Xplore

Hierarchical probabilistic models for video object segmentation and tracking


Abstract:

When tracking and segmenting semantic video objects, different forms of representational model can be used to find the object region on a per-frame basis. We propose a no...Show More

Abstract:

When tracking and segmenting semantic video objects, different forms of representational model can be used to find the object region on a per-frame basis. We propose a novel hierarchical technique using parametric models to describe the appearance and location of an object and then use non-parametric methods to model the sub-object regions for accurate pixel-wise segmentation. Our motivation is to use parametric models to locate the object, improving the sensitivity of the non-parametric sub-object region models to background clutter. The results indicate this is a promising approach to extracting video objects.
Date of Conference: 26-26 August 2004
Date Added to IEEE Xplore: 20 September 2004
Print ISBN:0-7695-2128-2
Print ISSN: 1051-4651
Conference Location: Cambridge, UK

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