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线性判别分析波束形成器:使用线性判别分析对事件相关电位源时间序列进行最优估计。

The LDA beamformer: Optimal estimation of ERP source time series using linear discriminant analysis.

作者信息

Treder Matthias S, Porbadnigk Anne K, Shahbazi Avarvand Forooz, Müller Klaus-Robert, Blankertz Benjamin

机构信息

Neurotechnology Group, Technische Universität Berlin, Germany; Behavioural & Clinical Neuroscience Institute, Department of Psychiatry, University of Cambridge, UK.

Machine Learning Laboratory, Technische Universität Berlin, Germany.

出版信息

Neuroimage. 2016 Apr 1;129:279-291. doi: 10.1016/j.neuroimage.2016.01.019. Epub 2016 Jan 20.

Abstract

We introduce a novel beamforming approach for estimating event-related potential (ERP) source time series based on regularized linear discriminant analysis (LDA). The optimization problems in LDA and linearly-constrained minimum-variance (LCMV) beamformers are formally equivalent. The approaches differ in that, in LCMV beamformers, the spatial patterns are derived from a source model, whereas in an LDA beamformer the spatial patterns are derived directly from the data (i.e., the ERP peak). Using a formal proof and MEG simulations, we show that the LDA beamformer is robust to correlated sources and offers a higher signal-to-noise ratio than the LCMV beamformer and PCA. As an application, we use EEG data from an oddball experiment to show how the LDA beamformer can be harnessed to detect single-trial ERP latencies and estimate connectivity between ERP sources. Concluding, the LDA beamformer optimally reconstructs ERP sources by maximizing the ERP signal-to-noise ratio. Hence, it is a highly suited tool for analyzing ERP source time series, particularly in EEG/MEG studies wherein a source model is not available.

摘要

我们介绍了一种基于正则化线性判别分析(LDA)来估计事件相关电位(ERP)源时间序列的新型波束形成方法。LDA和线性约束最小方差(LCMV)波束形成器中的优化问题在形式上是等效的。这两种方法的不同之处在于,在LCMV波束形成器中,空间模式是从源模型中推导出来的,而在LDA波束形成器中,空间模式是直接从数据(即ERP峰值)中推导出来的。通过形式证明和脑磁图(MEG)模拟,我们表明LDA波束形成器对相关源具有鲁棒性,并且比LCMV波束形成器和主成分分析(PCA)具有更高的信噪比。作为一个应用,我们使用来自一个oddball实验的脑电图(EEG)数据来展示如何利用LDA波束形成器检测单次试验ERP潜伏期并估计ERP源之间的连通性。总之,LDA波束形成器通过最大化ERP信噪比来最优地重建ERP源。因此,它是分析ERP源时间序列的非常合适的工具,特别是在没有源模型的EEG/MEG研究中。

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