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Partial correlation mapping of brain functional connectivity with resting state fMRI

机译:脑功能连接与静止状态功能磁共振成像的偏相关图

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The methods to detect resting state functional connectivity presented so far mainly focus on Pearson correlation analysis which calculates Pearson Product Moment correlation coefficient between the time series of two distinct voxels or regions to measure the functional dependency between them. Due to artifacts and noises in the data, functional connectivity maps resulting from the Pearson correlation analysis may risk arising from the correlation of interfering signals other than the neural sources. In the paper, partial correlation analysis is proposed to map resting state functional connectivity. By eliminating of the contributions of interfering signals to pairwise correlations between different voxels or regions, partial correlation analysis allows us to measure the real functional connectivity induced by neural activity. Experiments with real fMRI data, demonstrate that mapping functional connectivity with partial correlation analysis leads to disappearance of a considerable part of the functional connectivity networks relative to that from Pearson correlation analysis and showing small, but consistent networks. The results indicate that partial correlation analysis could perform a better mapping of brain functional connectivity than Pearson correlation analysis.
机译:到目前为止,提出的检测静止状态功能连通性的方法主要集中在Pearson相关分析上,该分析计算两个不同体素或区域的时间序列之间的Pearson乘积矩相关系数,以测量它们之间的功能依赖性。由于数据中的伪影和噪声,由Pearson相关分析得出的功能连接图可能会因神经源以外的干扰信号之间的相关性而产生风险。在本文中,提出了部分相关分析来映射静止状态功能的连通性。通过消除干扰信号对不同体素或区域之间的成对相关性的贡献,部分相关性分析使我们能够测量由神经活动引起的实际功能连接性。用真实的fMRI数据进行的实验表明,与部分相关性分析相比,映射功能连通性会导致功能连接网络的相当一部分消失,相对于Pearson相关性分析而言,功能连接网络显示出较小但一致的网络。结果表明,与Pearson相关分析相比,部分相关分析可以更好地绘制大脑功能连接。

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