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Segmentation of heterogeneous blob objects through voting and level set formulation

机译:通过投票和水平集公式分割异构Blob对象

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Blob-like structures occur often in nature, where they aid in cueing and the pre-attentive process. These structures often overlap, form perceptual boundaries, and are heterogeneous in shape, size, and intensity. In this paper, voting, Voronoi tessellation, and level set methods are combined to delineate blob-like structures. Voting and subsequent Voronoi tessellation provide the initial condition and the boundary constraints for each blob, while curve evolution through level set formulation provides refined segmentation of each blob within the Voronoi region. The paper concludes with the application of the proposed method to a dataset produced from cell based fluorescence assays and stellar data.
机译:斑点状结构通常出现在自然界中,它们有助于提示和预注意过程。这些结构通常重叠,形成感知边界,并且在形状,大小和强度上都不相同。在本文中,将投票,Voronoi细分和水平集方法相结合来描绘类似斑点的结构。投票和随后的Voronoi细分为每个斑点提供了初始条件和边界约束,而通过水平集公式进行的曲线演变为Voronoi区域内的每个斑点提供了精细的分割。本文以将所提出的方法应用于基于细胞的荧光分析和恒星数据生成的数据集作为结论。

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