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Mining cross-frequency coupling microstates (CFCμstates) from EEG recordings during resting state and mental arithmetic tasks

机译:在静息状态和心理算术任务中从EEG记录中挖掘跨频耦合微状态(CFCμ状态)

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The functional brain connectivity has been studied by analyzing synchronization between dynamic oscillations of identical frequency or between different frequencies of distinct brain areas. It has been hypothesized that cross-frequency coupling (CFC) between different frequency bands is the carrier mechanism for the coordination of global and local neural processes and hence supports the distributed information processing in the brain. In the present study, we attempt to study the dynamic evolution of CFC at resting-state and during a mental task. The concept of CFC microstates (CFCμstates) is introduced as emerged short-lived patterns of CFC. We analyzed dynamic CFC (dCFC) at resting-state and during a comparison task by adopting a phase-amplitude coupling (PAC) estimator for [δ phase-γ-amplitude] coupling at every sensor. Modifying a well-established framework for mining brain dynamics, we show that a small sized repertoire of CFCμstates can be derived so as to encapsulate connectivity variations and further provide novel insights into network's functional reorganization. By analyzing the transition dynamics among CFCμstates, in both tasks, we provided a clear evidence about intrinsic networks that may play a crucial role in information integration.
机译:通过分析相同频率的动态振荡之间或不同大脑区域的不同频率之间的同步,研究了功能性大脑的连通性。已经假设不同频带之间的跨频耦合(CFC)是协调全局和局部神经过程的载体机制,因此支持大脑中的分布式信息处理。在本研究中,我们尝试研究静息状态和精神任务期间CFC的动态演变。 CFC微状态(CFCμ状态)的概念是作为短期出现的CFC模式而引入的。我们通过在每个传感器的[δ相-γ-幅值]耦合中采用相幅耦合(PAC)估计器,来分析静止状态和比较任务期间的动态CFC(dCFC)。修改一个完善的框架来挖掘大脑动力学,我们表明可以导出一个小的CFCμ状态库,以封装连通性变化,并进一步提供对网络功能重组的新颖见解。通过分析这两个任务中CFCμ状态之间的过渡动​​态,我们提供了关于内在网络的清晰证据,内在网络可能在信息集成中起关键作用。

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