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A method for automatic removal of EOG artifacts from EEG based on ICA-EMD

机译:一种基于ICA-EMD自动删除EEG的EOG伪影的方法

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According to the interference of the ocular artifacts in the measurement process of EEG, a method combined independent component analysis (ICA) and empirical mode decomposition (EMD) is proposed. Firstly, ICA is applied to the mixed signal including EEG and EOG so as to obtain the independent components. Secondly, EMD threshold denoising is used to remove the ocular artifacts which have larger amplitude in the independent components, then the EEG signals are rebuilt by using the inverse ICA based on the new independent components. In order to evaluate the effect of the method quantitatively, the simulation data containing EOG interference is constructed. The correlation coefficient and the mean square error are used as indexes to evaluate the denoising performance. The results show that the proposed method can automatically and effectively remove the EOG interference, the reserved EEG information provide good conditions for further feature extraction and pattern recognition.
机译:根据EEG的测量过程中眼伪影的干扰,提出了一种组合的独立分量分析(ICA)和经验模式分解(EMD)。首先,ICA应用于混合信号,包括EEG和EOG,以获得独立的组件。其次,EMD阈值去噪用于去除独立组件中具有较大幅度的眼伪像,然后通过基于新的独立组件使用逆ICA重建EEG信号。为了定量评估方法的效果,构造了包含EoG干扰的模拟数据。相关系数和均方误差用作评估去噪性能的索引。结果表明,所提出的方法可以自动且有效地去除EOG干扰,保留的EEG信息为进一步的特征提取和模式识别提供良好的条件。

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