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Statistical Shape Analysis for Population Studies via Level-Set Based Shape Morphing

机译:通过基于水平集的形状变形进行人口研究的统计形状分析

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We present a method that allows the detection, localization and quantification of statistically significant morphological differences in complex brain structures between populations. This is accomplished by a novel level-set framework for shape morphing and a multi-shape dissimilarity-measure derived by a modified version of the Hausdorff distance. The proposed method does not require explicit one-to-one point correspondences and is fast, robust and easy to implement regardless of the topological complexity of the anatomical surface under study. The proposed model has been applied to different populations using a variety of brain structures including left and right striatum, caudate, amygdala-hippocampal complex and superior- temporal gyrus (STG) in normal controls and patients. The synthetic databases allow quantitative evaluations of the proposed algorithm while the results obtained for the real clinical data are in line with published findings on gray matter reduction in the tested cortical and sub-cortical structures in schizophrenia patients.
机译:我们提出了一种方法,可以检测,定位和量化人口之间复杂的大脑结构中统计学上显着的形态学差异。这是通过用于形状变形的新颖的水平集框架和由Hausdorff距离的修改版本得出的多形状不相似性度量来完成的。所提出的方法不需要明确的一对一的点对应关系,并且无论所研究的解剖表面的拓扑复杂性如何,它都是快速,健壮和易于实现的。所提议的模型已在正常对照和患者中使用各种大脑结构(包括左右纹状体,尾状,杏仁核-海马复合体和颞上回(STG))应用于不同人群。合成数据库可以对提出的算法进行定量评估,而获得的实际临床数据结果与已发表的有关精神分裂症患者所测皮层和皮层下结构中灰质减少的发现相一致。

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