Iterative local-global energy minimization for automatic extraction of objects of interest.

Hua, Gang; Liu, Zicheng; Zhang, Zhengyou; Wu, Ying · IEEE Trans Pattern Anal Mach Intell · 2006

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Abstract

We propose a novel global-local variational energy to automatically extract objects of interest from images. Previous formulations only incorporate local region potentials, which are sensitive to incorrectly classified pixels during iteration. We introduce a global likelihood potential to achieve better estimation of the foreground and background models and, thus, better extraction results. Extensive experiments demonstrate its efficacy.

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