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Unsupervised non-parametric region segmentation using level sets

机译:使用级别集的无监督非参数区分割

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We present a novel non-parametric unsupervised segmentation algorithm based on region competition (Zhu and Yuille, 1996); but implemented within a level sets framework (Osher and Sethian, 1988). The key novelty of the algorithm is that it can solve N /spl ges/ 2 class segmentation problems using just one embedded surface; this is achieved by controlling the merging and splitting behaviour of the level sets according to a minimum description length (MDL) (Leclerc (1989) and Rissanen (1985)) cost function. This is in contrast to N class region-based level set segmentation methods to date which operate by evolving multiple coupled embedded surfaces in parallel (Chan et al., 2002). Furthermore, it operates in an unsupervised manner; it is necessary neither to specify the value of N nor the class models a-priori. We argue that the level sets methodology provides a more convenient framework for the implementation of the region competition algorithm, which is conventionally implemented using region membership arrays due to the lack of a intrinsic curve representation. Finally, we generalise the Gaussian region model used in standard region competition to the non-parametric case. The region boundary motion and merge equations become simple expressions containing cross-entropy and entropy terms.
机译:我们提出了一种基于区域竞争的新型非参数化无监督分割算法(朱和Yuille,1996);但在级别设置框​​架内实现(Osher和Sethian,1988)。算法的关键新颖性是它可以仅使用一个嵌入式表面来解决n / spl ges / 2类分段问题;这是通过根据最小描述长度(MDL)(LECLERC(1989)和Rissanen(1985))成本函数来控制电平集的合并和分离行为来实现的。这与基于N类区域的级别SET分段方法相反,迄今为止通过并行地发展多个耦合的嵌入式曲面(Chan等,2002)。此外,它以无人监督的方式运作;既不需要指定N的值,也不是Class模型a-priori。我们认为水平集方法提供了更方便的框架,用于实现区域竞争算法,其通常由于缺乏内在曲线表示而使用区域隶属阵列来实现。最后,我们概括了标准区域竞争中使用的高斯地区模型到非参数案例。该区域边界运动和合并方程成为包含跨熵和熵项的简单表达式。

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