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Computation of resting state networks from fMRI through a measure of phase synchrony

机译:通过相位同步测量从功能磁共振成像计算静息状态网络

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Resting-state fMRI (rs-fMRI) studies of the human brain have demonstrated that low-frequency fluctuations can define functionally relevant resting state networks (RSNs). The majority of these methods rely on Pearson's correlation for quantifying the functional connectivity between the time series from different regions. However, it is well-known that correlation is limited to quantifying only linear relationships between the time series and assumes stationarity of the underlying processes. Many empirical studies indicate nonstationarity of the BOLD signals. In this paper, we adapt a measure of time-varying phase synchrony to quantify the functional connectivity and modify it to distinguish between synchronization and desynchronization. The proposed measure is compared to the conventional Pearson's correlation method for rs-fMRI analyses on two subjects (six scans per subject) in terms of their reproducibility.
机译:对人脑的静息状态功能磁共振成像(rs-fMRI)研究表明,低频波动可以定义功能相关的静息状态网络(RSN)。这些方法中的大多数都依赖于Pearson相关性来量化来自不同地区的时间序列之间的功能连通性。但是,众所周知,相关性仅限于仅量化时间序列之间的线性关系,并假定基础过程的平稳性。许多经验研究表明,BOLD信号不稳定。在本文中,我们采用了时变相位同步的方法来量化功能连通性,并对其进行修改以区分同步和不同步。将所建议的措施与针对两个对象(每个对象进行六次扫描)的rs-fMRI分析的常规Pearson相关方法进行了比较(就其可重复性而言)。

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