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A General Approach for Quantifying Nonlinear Connectivity in the Nervous System Based on Phase Coupling

机译:基于相位耦合的神经系统非线性连通性量化通用方法

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Interaction between distant neuronal populations is essential for communication within the nervous system and can occur as a highly nonlinear process. To better understand the functional role of neural interactions, it is important to quantify the nonlinear connectivity in the nervous system. We introduce a general approach to measure nonlinear connectivity through phase coupling: the multi-spectral phase coherence (MSPC). Using simulated data, we compare MSPC with existing phase coupling measures, namely n : m synchronization index and bi-phase locking value. MSPC provides a system description, including (i) the order of the nonlinearity, (ii) the direction of interaction, (iii) the time delay in the system, and both (iv) harmonic and (v) intermodulation coupling beyond the second order; which are only partly revealed by other methods. We apply MSPC to analyze data from a motor control experiment, where subjects performed isotonic wrist flexions while receiving movement perturbations. MSPC between the perturbation, EEG and EMG was calculated. Our results reveal directional nonlinear connectivity in the afferent and efferent pathways, as well as the time delay (43 +/- 8 ms) between the perturbation and the brain response. In conclusion, MSPC is a novel approach capable to assess high-order nonlinear interaction and timing in the nervous system.
机译:遥远的神经元种群之间的相互作用对于神经系统内的交流至关重要,并且可以作为高度非线性的过程发生。为了更好地理解神经相互作用的功能,重要的是量化神经系统中的非线性连接。我们介绍了一种通过相位耦合来测量非线性连通性的通用方法:多光谱相位相干(MSPC)。使用模拟数据,我们将MSPC与现有的相位耦合措施进行了比较,即n:m同步指数和双相锁定值。 MSPC提供了系统描述,包括(i)非线性的阶数,(ii)相互作用的方向,(iii)系统中的时间延迟,以及(iv)谐波和(v)超出第二阶的互调耦合;其他方法只能部分揭示这些信息。我们将MSPC应用到运动控制实验的数据分析中,受试者在接受运动扰动的同时进行了等张腕屈。计算了摄动,EEG和EMG之间的MSPC。我们的研究结果揭示了传入和传出路径中的方向性非线性连接以及扰动和大脑反应之间的时间延迟(43 +/- 8毫秒)。总之,MSPC是一种能够评估神经系统中高阶非线性相互作用和时间的新颖方法。

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