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Higher dimensional analysis shows reduced dynamism of time-varying network connectivity in schizophrenia patients

机译:高维分析显示精神分裂症患者时变网络连接的动态性降低

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Assessments of functional connectivity between brain networks is a fixture of resting state fMRI research. Until very recently most of this work proceeded from an assumption of stationarity in resting state network connectivity. In the last few years however, interest in moving beyond this simplifying assumption has grown considerably. Applying group temporal independent component analysis (tICA) to a set of time-varying functional network connectivity (FNC) matrices derived from a large multi-site fMRI dataset (N=314; 163 healthy, 151 schizophrenia patients), we obtain a set of five basic correlation patterns (component spatial maps (SMs)) from which observed FNCs can be expressed as mutually independent linear combinations, i.e., the coefficient on each SM in the linear combination is maximally independent of the others. We study dynamic properties of network connectivity as they are reflected in this five-dimensional space, and report stark differences in connectivity dynamics between schizophrenia patients and healthy controls. We also find that the most important global differences in FNC dynamism between patient and control groups are replicated when the same dynamical analysis is performed on sets of correlation patterns obtained from either PCA or spatial ICA, giving us additional confidence in the results.
机译:评估大脑网络之间的功能连通性是静止状态功能磁共振成像研究的基础。直到最近,大多数这项工作都是从静止状态网络连接的平稳性假设出发的。然而,在最近几年中,人们对超越这一简化假设的兴趣大大增加。将组时态独立分量分析(tICA)应用于从大型多站点fMRI数据集(N = 314; 163位健康的151位精神分裂症患者)得出的一组时变功能网络连接(FNC)矩阵中,我们获得了一组五个基本的相关模式(组件空间图(SM)),从中可以将观察到的FNC表示为相互独立的线性组合,即,线性组合中每个SM的系数彼此最大独立。我们研究网络连接的动态特性,因为它们反映在此五维空间中,并报告了精神分裂症患者和健康对照之间的连接动态的显着差异。我们还发现,当对从PCA或空间ICA获得的相关模式集进行相同的动力学分析时,可以复制患者和对照组之间FNC动态的最重要的全局差异,从而使我们对结果有更多的信心。

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