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Testing Independent Component Patterns by Inter-Subject or Inter-Session Consistency

机译:通过主题间或会话间一致性测试独立的组件模式

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摘要

Independent component analysis (ICA) is increasingly used to analyze patterns of spontaneous activity in brain imaging. However, there are hardly any methods for answering the fundamental question: are the obtained components statistically significant? Most methods considering the significance of components either consider group-differences or use arbitrary thresholds with weak statistical justification. In previous work, we proposed a statistically principled method for testing if the coefficients in the mixing matrix are similar in different subjects or sessions. In many applications of ICA, however, we would like to test the reliability of the independent components themselves and not the mixing coefficients. Here, we develop a test for such an inter-subject consistency by extending our previous theory. The test is applicable, for example, to the spatial activity patterns obtained by spatial ICA in resting-state fMRI. We further improve both this and the previously proposed testing method by introducing a new way of correcting for multiple testing, new variants of the clustering method, and a computational approximation which greatly reduces the memory and computation required.
机译:独立成分分析(ICA)越来越多地用于分析大脑成像中自发活动的模式。但是,几乎没有任何方法可以回答基本问题:获得的成分在统计上是否有意义?大多数考虑组件重要性的方法要么考虑组差异,要么使用统计合理性较弱的任意阈值。在以前的工作中,我们提出了一种统计原理上的方法来测试混合矩阵中的系数在不同主题或课程中是否相似。但是,在ICA的许多应用中,我们要测试独立组件本身的可靠性,而不是混合系数。在这里,我们通过扩展我们以前的理论来开发这种受试者间一致性的测试。该测试适用于例如在静止状态fMRI中通过空间ICA获得的空间活动模式。通过引入针对多种测试的校正新方法,聚类方法的新变体以及极大地减少所需内存和计算量的计算近似值,我们进一步改进了该方法以及先前提出的测试方法。

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