Integrating color and shape-texture features for adaptive real-time object tracking.

Wang, Junqiu; Yagi, Yasushi · IEEE Trans Image Process · 2008

other · Level V

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Abstract

We extend the standard mean-shift tracking algorithm to an adaptive tracker by selecting reliable features from color and shape-texture cues according to their descriptive ability. The target model is updated according to the similarity between the initial and current models, and this makes the tracker more robust. The proposed algorithm has been compared with other trackers using challenging image sequences, and it provides better performance.

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