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Shells and Spheres: An n-Dimensional Framework for Medial-Based Image Segmentation

机译:壳和球:用于基于中间图像分割的n维框架

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摘要

We have developed a method for extracting anatomical shape models from n-dimensional images using an image analysis framework we call Shells and Spheres. This framework utilizes a set of spherical operators centered at each image pixel, grown to reach, but not cross, the nearest object boundary by incorporating “shells” of pixel intensity values while analyzing intensity mean, variance, and first-order moment. Pairs of spheres on opposite sides of putative boundaries are then analyzed to determine boundary reflectance which is used to further constrain sphere size, establishing a consensus as to boundary location. The centers of a subset of spheres identified as medial (touching at least two boundaries) are connected to identify the interior of a particular anatomical structure. For the automated 3D algorithm, the only manual interaction consists of tracing a single contour on a 2D slice to optimize parameters, and identifying an initial point within the target structure.
机译:我们已经开发了一种使用称为壳和球的图像分析框架从n维图像中提取解剖形状模型的方法。该框架利用一组以每个图像像素为中心的球形算子,通过合并像素强度值的“外壳”,同时分析强度平均值,方差和一阶矩,将球算子生长为到达但不跨越最近的对象边界。然后分析假定边界的相对侧上的成对球体,以确定边界反射率,该边界反射率用于进一步约束球体大小,建立边界位置的共识。被识别为内侧(接触至少两个边界)的球的子集的中心被连接以识别特定解剖结构的内部。对于自动3D算法,唯一的手动交互包括在2D切片上跟踪单个轮廓以优化参数,以及识别目标结构内的初始点。

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