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Comparison of different multivariate methods for the estimation of cortical connectivity: simulations and applications to EEG data

机译:评估皮质连通性的不同多元方法的比较:EEG数据的模拟和应用

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The problem of the definition and evaluation of brain connectivity has become a central one in neuroscience during the latest years, as a way to understand the organization and interaction of cortical areas during the execution of cognitive or motor tasks. Among various methods established during the years, the directed transfer function (DTF), the partial directed coherence (PDC) and the direct DTF (dDTF) are frequency-domain approaches to this problem, all based on a multivariate autoregressive modeling of time series and on the concept of Granger causality. In this paper we propose the use of these methods on cortical signals estimated from high resolution EEG recordings, a non invasive method which exhibits a higher spatial resolution than conventional cerebral electromagnetic measures. The principle contribution of this work are the results of a simulation study, testing the capability of the three estimators to reconstruct a connectivity model imposed, with a particular eye on the capability to distinguish between direct and indirect causality. An application to high resolution EEG recordings during a foot movement is also presented
机译:在最近几年中,大脑连通性的定义和评估问题已成为神经科学中的中心问题,作为理解认知或运动任务执行过程中皮层区域的组织和相互作用的一种方式。在这些年来建立的各种方法中,定向传递函数(DTF),部分定向相干性(PDC)和直接DTF(dDTF)是针对此问题的频域方法,它们均基于时间序列和变量的多元自回归建模。关于格兰杰因果关系的概念。在本文中,我们建议对高分辨率脑电图记录估计的皮质信号使用这些方法,这是一种非侵入性方法,与传统的大脑电磁测量相比,它具有更高的空间分辨率。这项工作的主要贡献是仿真研究的结果,测试了三个估计器重建所施加的连通性模型的能力,尤其着眼于区分直接和间接因果关系的能力。还介绍了脚运动过程中高分辨率脑电图记录的应用

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