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Detection of quadratic phase coupling from human EEG signals using higher order statistics and spectra - Springer

机译:使用高阶统计量和频谱从人脑电信号中检测二次相位耦合-Springer

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摘要

Interactions among neural signals in different frequency components have become a focus of strong interest in biomedical signal processing. The bispectrum is a method to detect the presence of quadratic phase coupling (QPC) between different frequency bands in a signal. The traditional way to quantify phase coupling is by means of the bicoherence index (BCI), which is essentially a normalized bispectrum. The main disadvantage of the BCI is that the determination of significant QPC becomes compromised with noise. To mitigate this problem, a statistical approach that combines the bispectrum with an improved surrogate data method to determine the statistical significance of the phase coupling is introduced. The method was first tested on two simulation examples. It was then applied to the human EEG signal that has been recorded from the scalp using international 10–20 electrodes system. The frequency domain method, based on normalized spectrum and bispectrum, describes frequency interactions associated with nonlinearities occurring in the observed EEG.
机译:在不同频率分量中的神经信号之间的相互作用已经成为生物医学信号处理中的强烈关注的焦点。双频谱是一种检测信号中不同频段之间是否存在二次相位耦合(QPC)的方法。量化相位耦合的传统方法是借助双相干指数(BCI),它本质上是归一化双谱。 BCI的主要缺点是有效QPC的确定会受到噪声的影响。为了缓解此问题,引入了一种将双谱与改进的替代数据方法结合起来以确定相位耦合的统计意义的统计方法。该方法首先在两个仿真示例上进行了测试。然后将其应用于使用国际10-20电极系统从头皮记录的人类脑电信号。基于归一化频谱和双频谱的频域方法描述了与观察到的脑电图中发生的非线性相关的频率相互作用。

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