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A new coherence estimating method: The magnitude squared coherence of smoothing minimum variance distortionless response

机译:一种新的相干估计方法:平滑最小方差无失真响应的幅度平方相干

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摘要

The magnitude squared coherence (MSC) is an important method to calculate the connectivity between neural signals. It provides a better spectral resolution than the Welch's method and is often used in analyzing electroencephalograph (EEG) synchronization activity. The minimum variance distortionless response (MVDR) is a spectral estimation method based on matched filterbank theory. The Cheriet-Belouchrani (CB) kernel is provided for measuring the energy of a signal in time-frequency distribution, which has significant interference mitigation and preserves high resolution measure values. By combining MVDR spectra and CB kernel, a new magnitude squared coherence estimating method is proposed in the paper by smoothing the MVDR with the CB kernel (SMVDR). The simulation results show that SMVDR MSC approach has better performances than the MVDR MSC method.
机译:幅度平方相干(MSC)是计算神经信号之间的连通性的重要方法。它提供比Welch方法更好的光谱分辨率,通常用于分析脑电图(EEG)同步活动。最小方差无失真响应(MVDR)是基于匹配滤波器组理论的频谱估计方法。 Cheriet-Belouchrani(CB)内核用于在时频分布中测量信号的能量,具有显着的干扰减轻效果,并保留了高分辨率的测量值。通过结合MVDR频谱和CB核,提出了一种新的幅度平方相干估计方法,即用CB核(SMVDR)对MVDR进行平滑处理。仿真结果表明,SMVDR MSC方法比MVDR MSC方法具有更好的性能。

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