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Functional Interactivity in fMRI Using Multiple Seeds’ Correlation Analyses – Novel Methods and Comparisons

机译:使用多种种子相关分析FMRI的功能交互性 - 新型方法和比较

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This paper presents novel statistical methods for estimating brain networks from fMRI data. Functional interactions are detected by simultaneously examining multi-seed correlations via multiple correlation coefficients. Spatially structured noise in fMRI is also taken into account during the identification of functional interconnection networks through non-central F hypothesis tests. Furthermore, partial multiple correlations are introduced and formulated to measure any additional task-induced but not stimulus-locked relation over brain regions so that we can take the analysis of functional connectivity closer to the characterization of direct functional interactions of the brain. Evaluation for accuracy and advantages of the new approaches and comparison with the existing single-seed method were performed extensively using both simulated data and real fMRI data.
机译:本文介绍了从FMRI数据估算大脑网络的新型统计方法。通过通过多种相关系数同时检查多种子相关性来检测功能相互作用。在通过非中央F假设试验的识别功能互连网络期间,还考虑了FMRI中的空间结构噪声。此外,引入部分多个相关性并配制以测量任何额外的任务诱导但不受脑区域的刺激锁定关系,使得我们可以将功能连接的分析较近脑的表征越来越多。利用模拟数据和真实FMRI数据,对新方法的准确性和优点进行评估和与现有的单种方法的比较。

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