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Independent Component Analysis for Source Localization of EEG Sleep Spindle Components

机译:独立成分分析用于脑电睡眠主轴组件的源定位

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摘要

Sleep spindles are bursts of sleep electroencephalogram (EEG) quasirhythmic activity within the frequency band of 11–16 Hz, characterized by progressively increasing, then gradually decreasing amplitude. The purpose of the present study was to process sleep spindles with Independent Component Analysis (ICA) in order to investigate the possibility of extracting, through visual analysis of the spindle EEG and visual selection of Independent Components (ICs), spindle “components” (SCs) corresponding to separate EEG activity patterns during a spindle, and to investigate the intracranial current sources underlying these SCs. Current source analysis using Low-Resolution Brain Electromagnetic Tomography (LORETA) was applied to the original and the ICA-reconstructed EEGs. Results indicated that SCs can be extracted by reconstructing the EEG through back-projection of separate groups of ICs, based on a temporal and spectral analysis of ICs. The intracranial current sources related to the SCs were found to be spatially stable during the time evolution of the sleep spindles.
机译:睡眠纺锤体是在11–16 Hz频带内的突发性脑电图(EEG)拟节奏活动,其特征是幅度逐渐增大,然后逐渐减小。本研究的目的是使用独立成分分析(ICA)处理睡眠纺锤,以研究通过对纺锤脑电图的视觉分析和对独立组分(IC)的目视选择来提取纺锤“成分”(SC)的可能性)对应于纺锤体中单独的EEG活动模式,并研究这些SC背后的颅内电流源。使用低分辨率脑电磁层析成像(LORETA)的电流源分析应用于原始和ICA重建的脑电图。结果表明,基于对IC的时间和频谱分析,可以通过对独立的IC组进行反投影来重建EEG,从而提取SC。发现与SCs相关的颅内电流源在睡眠纺锤体的时间演变过程中是空间稳定的。

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