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Wavelet based multi-scale shape features on arbitrary surfaces for cortical thickness discrimination

机译:基于小波的任意尺度上的多尺度形状特征可识别皮层厚度

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Hypothesis testing on signals denned on surfaces (such as the cortical surface) is a fundamental component of a variety of studies in Neuroscience. The goal here is to identify regions that exhibit changes as a function of the clinical condition under study. As the clinical questions of interest move towards identifying very early signs of diseases, the corresponding statistical differences at the group level invariably become weaker and increasingly hard to identify. Indeed, after a multiple comparisons correction is adopted (to account for correlated statistical tests over all surface points), very few regions may survive. In contrast to hypothesis tests on point-wise measurements, in this paper, we make the case for performing statistical analysis on multi-scale shape descriptors that characterize the local topological context of the signal around each surface vertex. Our descriptors are based on recent results from harmonic analysis, that show how wavelet theory extends to non-Euclidean settings (i.e., irregular weighted graphs). We provide strong evidence that these descriptors successfully pick up group-wise differences, where traditional methods either fail or yield unsatisfactory results. Other than this primary application, we show how the framework allows performing cortical surface smoothing in the native space without mappint to a unit sphere.
机译:对表面(例如皮层表面)上形成的信号进行假设检验是神经科学领域各种研究的基本组成部分。此处的目标是确定表现出随所研究临床状况而变化的区域。随着关注的临床问题趋向于识别疾病的早期征兆,相应的组间统计差异不可避免地变得越来越弱,并且越来越难以识别。实际上,在采用多次比较校正后(考虑到所有表面点的相关统计检验),几乎没有区域可以幸存。与逐点测量的假设检验相反,在本文中,我们为在多尺度形状描述符上进行统计分析提供了条件,这些描述符描述了每个表面顶点周围信号的局部拓扑上下文。我们的描述符基于谐波分析的最新结果,表明小波理论如何扩展到非欧几里得设置(即不规则加权图)。我们提供有力的证据表明,这些描述符成功地获得了逐组差异,而传统方法要么失败要么产生不令人满意的结果。除了此主要应用程序外,我们还将展示该框架如何允许在原始空间中执行皮质表面平滑处理而不会将图钉映射到单位球体。

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