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A Riemannian Framework for Longitudinal Analysis of Resting-State Functional Connectivity

机译:静态状态连通性纵向分析的黎曼框架

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Even though the number of longitudinal resting-state-fMRI studies is increasing, accurately characterizing the changes in functional connectivity across visits is a largely unexplored topic. To improve characterization, we design a Riemannian framework that represents the functional connectivity pattern of a subject at a visit as a point on a Riemannian manifold. Geodesic regression across the 'sample' points of a subject on that manifold then defines the longitudinal trajectory of their connectivity pattern. To identify group differences specific to regions of interest (ROI), we map the resulting trajectories of all subjects to a common tangent space via the Lie group action. We account for the uncertainty in choosing the common tangent space by proposing a test procedure based on the theory of latent p-values. Unlike existing methods, our proposed approach identifies sex differences across 246 subjects, each of them being characterized by three rs-fMRI scans.
机译:即使纵向静息状态功能磁共振成像研究的数量在增加,准确地表征出诊之间功能连接的变化仍是一个主要尚未探讨的话题。为了改善表征,我们设计了一个黎曼框架,该框架表示访问时对象的功能连通性模式,作为黎曼流形上的一个点。然后,通过该歧管上对象的“样本”点的测地回归定义其连通性模式的纵向轨迹。为了确定特定于关注区域(ROI)的组差异,我们通过李群操作将所有对象的最终轨迹映射到公共切线空间。通过提出基于潜在p值理论的测试程序,我们考虑了选择公共切线空间时的不确定性。与现有方法不同,我们提出的方法可识别246个受试者的性别差异,每个受试者均具有3个rs-fMRI扫描特征。

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