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Global curvature analysis and segmentation of volumetric data sets using trivariate B-spline functions

机译:使用Trivariate B样条函数的全局曲率分析和体积数据集的分割

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This paper presents a scheme to globally compute, bound, and analyze the Gaussian and mean curvatures of an entire volumetric data set, using a trivariate B-spline volumetric representation. The proposed scheme is not only precise and insensitive to aliasing, but also provides a method to globally segment the images into volumetric regions that contain convex or concave {elliptic) iso-surfaces, planar or cylindrical (parabolic) iso-surfaces, and volumetric regions with saddle-like (hyperbolic) iso-surfaces, regardless of the value of the iso-surface level. This scheme, which derives a new differential scalar field for a given scalar field, could easily be adapted to other differential properties.
机译:本文介绍了全局计算,绑定和分析整个体积数据集的高斯和平均曲率的方案,使用琐碎的B样条体积模拟。所提出的方案不仅精确且别名不敏感,而且还提供了一种将图像全局分割成体积区域的方法,该容积区域包含凸或凹入{椭圆形)的ISO-表面,平面或圆柱形(抛物线)的ISO-表面和体积区域与骑马式(双曲线)异形表面,无论是ISO表面级别的值如何。该方案推导出给定标量字段的新差分标量字段,可以很容易地适应其他差异属性。

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