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Automatic removal of ocular artefacts in EEG signal by using independent component analysis and Chauvenet criterion

机译:通过使用独立成分分析和Chauvenet准则自动去除EEG信号中的人工眼

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摘要

Eye movements (saccade, blink and etc.) cause artefacts in Electroencephalogram recordings. The ocular artefact can distort the EEG signals. Removal of ocular artefact is important issue in EEG signal analysis. The main task of artefact removal algorithms is to obtain cleaned EEG without losing meaningful EEG signal. The main focus of this work is to remove ocular artefact automatically by using Independent Component Analysis and Chauvenet criterion. The method is tested on real dataset. Relative error and Correlation coefficient are used for the performance test. The performance of the proposed method was Relative error = 0.273±0.148, Correlation coefficients 0.943±0.042 in the dataset. The results show that the proposed method effectively removes ocular artefacts in EEG.
机译:眼球运动(扫视,眨眼等)会在脑电图记录中造成伪影。眼的伪影会扭曲脑电信号。眼球假体的去除是脑电信号分析中的重要问题。伪影去除算法的主要任务是获得干净的EEG,而不会丢失有意义的EEG信号。这项工作的主要重点是通过使用独立成分分析和Chauvenet准则自动去除人工眼。该方法在真实数据集上进行了测试。相对误差和相关系数用于性能测试。该方法在数据集中的相对误差为0.273±0.148,相关系数为0.943±0.042。结果表明,该方法可以有效去除脑电图中的人工眼。

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