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Third order spectral analysis robust to mixing artifacts for mapping cross-frequency interactions in EEG/MEG

机译:三阶频谱分析对混合伪影具有鲁棒性可用于映射EEG / MEG中的跨频相互作用

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摘要

We present a novel approach to the third order spectral analysis, commonly called bispectral analysis, of electroencephalographic (EEG) and magnetoencephalographic (MEG) data for studying cross-frequency functional brain connectivity. The main obstacle in estimating functional connectivity from EEG and MEG measurements lies in the signals being a largely unknown mixture of the activities of the underlying brain sources. This often constitutes a severe confounder and heavily affects the detection of brain source interactions. To overcome this problem, we previously developed metrics based on the properties of the imaginary part of coherency. Here, we generalize these properties from the linear to the nonlinear case. Specifically, we propose a metric based on an antisymmetric combination of cross-bispectra, which we demonstrate to be robust to mixing artifacts. Moreover, our metric provides complex-valued quantities that give the opportunity to study phase relationships between brain sources.The effectiveness of the method is first demonstrated on simulated EEG data. The proposed approach shows a reduced sensitivity to mixing artifacts when compared with a traditional bispectral metric. It also exhibits a better performance in extracting phase relationships between sources than the imaginary part of cross-spectrum for delayed interactions. The method is then applied to real EEG data recorded during resting state. A cross-frequency interaction is observed between brain sources at 10 Hz and 20 Hz, i.e., for alpha and beta rhythms. This interaction is then projected from signal to source level by using a fit-based procedure. This approach highlights a 10–20 Hz dominant interaction localized in an occipito-parieto-central network.
机译:我们为脑电图(EEG)和磁脑电图(MEG)数据的三阶频谱分析(通常称为双谱分析)提出了一种新颖的方法,用于研究跨频功能性大脑的连通性。从EEG和MEG测量值估计功能连通性的主要障碍在于信号是基础脑源活动的很大程度上未知的混合物。这通常构成严重的混杂因素,并严重影响脑源交互作用的检测。为了克服这个问题,我们先前基于一致性的虚部的特性开发了度量。在这里,我们将这些属性从线性情况推广到非线性情况。具体来说,我们提出了一种基于交叉双谱图的反对称组合的度量,我们证明了该度量对于混合伪像具有鲁棒性。此外,我们的度量标准提供了复数值量,从而有机会研究脑源之间的相位关系。该方法的有效性首先在模拟的EEG数据上得到了证明。与传统的双光谱度量相比,所提出的方法显示出降低了对混合伪像的敏感性。与延迟交互作用的交叉谱的虚部相比,它在提取源之间的相位关系方面也表现出更好的性能。然后将该方法应用于在静止状态期间记录的实际EEG数据。在10 Hz和20 Hz的脑源之间观察到了跨频交互作用,即α和β节律。然后,使用基于拟合的过程将这种交互作用从信号级别投影到源级别。这种方法强调了位于枕骨顶中央网络中的10–20 Hz主导相互作用。

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