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Anatomically-Informed Multiple Linear Assignment Problems for White Matter Bundle Segmentation

机译:白色物质束分割的解剖学告知的多个线性分配问题

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Segmenting white matter bundles from human tractograms is a task of interest for several applications. Current methods for bundle segmentation consider either only prior knowledge about the relative anatomical position of a bundle, or only its geometrical properties. Our aim is to improve the results of segmentation by proposing a method that takes into account information about both the underlying anatomy and the geometry of bundles at the same time. To achieve this goal, we extend a state-of-the-art example-based method based on the Linear Assignment Problem (LAP) by including prior anatomical information within the optimization process. The proposed method shows a significant improvement with respect to the original method, in particular on small bundles.
机译:从人体束图分割白质束是几种应用中的一项重要任务。当前的束分割方法仅考虑关于束的相对解剖位置的先验知识,或者仅考虑其几何特性。我们的目的是通过提出一种同时考虑有关基础解剖结构和束几何形状的信息的方法来改善分割结果。为了实现此目标,我们通过在优化过程中包含先验解剖信息来扩展基于线性分配问题(LAP)的基于示例的最新方法。相对于原始方法,提出的方法显示出显着的改进,特别是在小捆上。

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