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首页> 外文期刊>Inverse problems and imaging >Shape spaces via medial axis transforms for segmentation of complex geometry in 3D voxel data
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Shape spaces via medial axis transforms for segmentation of complex geometry in 3D voxel data

机译:通过中间轴变换进行形状空间,以对3D体素数据中的复杂几何体进行分割

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摘要

In this paper we construct a shape space of medial ball representations from given shape training data using methods of Computational Geometry and Statistics. The ultimate goal is to employ the shape space as prior information in supervised segmentation algorithms for complex geometries in 3D voxel data. For this purpose, a novel representation of the shape space (i.e., medial ball representation) is worked out and its implications on the whole segmentation pipeline are studied. Such algorithms have wide applications for industrial processes and medical imaging, when data are recorded under varying illumination conditions, are corrupted with high noise or are occluded.
机译:在本文中,我们使用计算几何和统计方法,根据给定的形状训练数据构造了中间球表示的形状空间。最终目标是在3D体素数据中的复杂几何形状的监督分割算法中,将形状空间用作先验信息。为此,研究了形状空间的新颖表示(即中间球表示),并研究了其对整个分割流水线的意义。当数据在变化的照明条件下记录,被高噪声破坏或被遮挡时,此类算法在工业过程和医学成像中具有广泛的应用。

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