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fMRI resting state time series causality: comparison of Granger causality and phase slope index

机译:功能磁共振成像静息状态时间序列因果关系:格兰杰因果关系和相坡指数的比较

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Granger causality and Phase Slope Index (PSI) are recent approaches to measure how one signal depends on another, which gives an indication of information flow in complex systems. We show that the Granger causality and PSI mapping, voxel-by-voxel, for functional magnetic resonance imaging (fMRI) resting state data set. Slow fluctuations (< 0.1 Hz) in fMRI signal have been used to map several consistent resting state networks in the brain. The results demonstrate that PSI influence directions among reference regions and gray matter voxels were more consistent with the relevant previous studies compared with Granger causality. The PSI approach proposed is effective, computationally efficient, and easy to interpret.
机译:格兰杰因果关系和相坡指数(PSI)是测量一个信号如何依赖另一个信号的最新方法,这表明了复杂系统中的信息流。我们显示功能性磁共振成像(fMRI)静止状态数据集的Granger因果关系和PSI映射(逐像素)。 fMRI信号中的缓慢波动(<0.1 Hz)已用于绘制大脑中几个一致的静止状态网络。结果表明,与Granger因果关系相比,参考区域和灰质体素之间的PSI影响方向与先前的相关研究更加一致。提出的PSI方法有效,计算效率高且易于解释。

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