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CANONICAL CORRELATION ANALYSIS APPLIED TO FUNCTIONAL CONNECTIVITY IN MEG

机译:典型相关分析应用于MEG中的功能连通性

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We present a multivariate method based on canonical correlation analysis for the study of functional connectivity in the brain with MEG data. We obtain a time-frequency representation of the brain activity on the cortical surface, and use the signal power at specific frequency bands as inputs to our model. Our measure of interaction between two spatial locations is the canonical correlation, and the vectors associated with it indicate the contribution of each individual frequency band to the interaction. The resulting canonical correlation maps are thresholded for significance using false discovery rate. We further provide a novel way to control for linear mixing by testing whether the correlation vectors are collinear. We apply our method to simulations and experimental data from an MEG visuomotor study, and demonstrate that it is able to detect functional interactions across space as well as the frequency bands that contribute to these interactions.
机译:我们介绍了一种基于规范相关性分析的多元化方法,以便在MEG数据中研究大脑功能连通性。 我们在皮质表面上获得了大脑活动的时频表示,并在特定频带处使用信号功率作为我们模型的输入。 我们在两个空间位置之间的相互作用的衡量标准相关性,并且与其相关联的矢量表示每个单独的频带对交互的贡献。 所得到的规范相关图是使用假发现速率的显着性的阈值。 我们进一步提供了一种通过测试相关矢量是否是线性的线性混合的新方法。 我们将我们的方法应用于来自Meg Visuomotor研究的模拟和实验数据,并证明它能够检测空间的功能相互作用以及有助于这些相互作用的频段。

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