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A dynamical systems approach for estimating phase interactions between rhythms of different frequencies from experimental data

机译:从实验数据估计不同频率的节奏之间的相位相互作用的动力学系统方法

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摘要

Synchronization of neural oscillations as a mechanism of brain function is attracting increasing attention. Neural oscillation is a rhythmic neural activity that can be easily observed by noninvasive electroencephalography (EEG). Neural oscillations show the same frequency and cross-frequency synchronization for various cognitive and perceptual functions. However, it is unclear how this neural synchronization is achieved by a dynamical system. If neural oscillations are weakly coupled oscillators, the dynamics of neural synchronization can be described theoretically using a phase oscillator model. We propose an estimation method to identify the phase oscillator model from real data of cross-frequency synchronized activities. The proposed method can estimate the coupling function governing the properties of synchronization. Furthermore, we examine the reliability of the proposed method using time-series data obtained from numerical simulation and an electronic circuit experiment, and show that our method can estimate the coupling function correctly. Finally, we estimate the coupling function between EEG oscillation and the speech sound envelope, and discuss the validity of these results.
机译:作为大脑功能机制的神经振荡的同步正引起越来越多的关注。神经振荡是一种有节奏的神经活动,可以通过无创脑电图(EEG)轻松观察到。神经振荡对各种认知和感知功能显示相同的频率和跨频同步。但是,尚不清楚通过动态系统如何实现这种神经同步。如果神经振荡是弱耦合振荡器,则可以使用相位振荡器模型从理论上描述神经同步的动力学。我们提出了一种估计方法,用于从跨频同步活动的真实数据中识别相位振荡器模型。所提出的方法可以估计控制同步特性的耦合函数。此外,我们使用从数值模拟和电子电路实验获得的时间序列数据检验了该方法的可靠性,并表明我们的方法可以正确估计耦合函数。最后,我们估计了脑电图振荡和语音包络之间的耦合函数,并讨论了这些结果的有效性。

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