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Automatic removal of the eye blink artifact from EEG using an ICA-based template matching approach

机译:使用基于ICA的模板匹配方法自动从EEG中去除眨眼伪像

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摘要

Independent component analysis (ICA) proves to be effective in the removing the ocular artifact from electroencephalogram recordings (EEG). While using ICA in ocular artifact correction, a crucial step is to correctly identify the artifact components among the decomposed independent components. In most previous works, this step of selecting the artifact components was manually implemented, which is time consuming and inconvenient when dealing with a large amount of EEG data. We present a new method which automatically selects the eye blink artifact components based on the pattern of their scalp topographies, which can be exemplified as a template matching approach. The feasibility of using a fixed template for singling out the eye blink component after ICA decomposition was validated by an experiment in which 18 subjects among the 2 1 subjects involved exhibited a highly consistent pattern of eye blink scalp topographies. Since only the spatial feature is employed for singling out the eye blink component, the proposed method is very efficient and easy to implement. Objective evaluation of the real results shows that the proposed algorithm can remove the eye blink artifact from the EEG while causing little distortion to the underlying brain activities.
机译:独立成分分析(ICA)被证明可以有效地从脑电图记录(EEG)中消除眼部伪影。在将ICA用于眼部伪影校正时,至关重要的一步是正确地识别分解后的独立成分中的伪影成分。在大多数以前的工作中,手动选择工件构件的步骤是手动执行的,这在处理大量EEG数据时既费时又不方便。我们提出了一种新方法,该方法根据头皮地形图的模式自动选择眨眼伪像成分,可以将其示例为模板匹配方法。通过一项实验验证了在ICA分解后使用固定模板选出眨眼组件的可行性,在该实验中,涉及的2 1个受试者中有18个受试者表现出高度一致的眨眼头皮地形图模式。由于仅采用空间特征来选择眨眼分量,因此所提出的方法非常有效且易于实现。对真实结果的客观评估表明,所提出的算法可以从脑电图中消除眨眼伪影,同时对基本的脑部活动几乎不造成扭曲。

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