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2d Image-based Reconstruction Of Shape Deformation Of Biological Structures Using A Level-set Representation

机译:基于水平集表示的基于二维图像的生物结构形状变形重建

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This paper copes with the reconstruction of accretionary growth sequence from images of biological structures depicting concentric ring patterns. Accretionary growth shapes are modeled as the level-sets of a potential function. Given an image of a biological structure, the reconstruction of the sequence of growth shapes is stated as a variational issue derived from geometric criteria. This variational setting exploits image-based information, in terms of the orientation field of relevant image structures, which leads to an original advection term. The resolution of this variational issue is discussed. Experiments on synthetic and real data are reported to validate the proposed approach.
机译:本文从描绘同心环图案的生物结构图像中应对增生性生长序列的重建。增生性增长形状被建模为潜在函数的水平集。给定一个生物结构的图像,生长形状序列的重建被认为是衍生自几何标准的变异问题。在相关图像结构的方向字段方面,此变式设置利用了基于图像的信息,这导致了原始对流项。讨论了此变体问题的解决方案。报告了合成和真实数据的实验,以验证所提出的方法。

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