Unsupervised multiphase segmentation: a phase balancing model.

Sandberg, Berta; Kang, Sung Ha; Chan, Tony F · IEEE Trans Image Process · 2010

basic_science · Level V

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Abstract

Variational models have been studied for image segmentation application since the Mumford-Shah functional was introduced in the late 1980s. In this paper, we focus on multiphase segmentation with a new regularization term that yields an unsupervised segmentation model. We propose a functional that automatically chooses a favorable number of phases as it segments the image. The primary driving force of the segmentation is the intensity fitting term while a phase scale measure complements the regularization term. We propose a fast, yet simple, brute-force numerical algorithm and present experimental results showing the robustness and stability of the proposed model.

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