首页> 外文会议>European signal processing conference;EUSIPCO 2009 >AUTOMATIC REMOVAL OF OCULAR ARTIFACTS FROM EEG DATA USING ADAPTIVE FILTERING AND INDEPENDENT COMPONENT ANALYSIS
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AUTOMATIC REMOVAL OF OCULAR ARTIFACTS FROM EEG DATA USING ADAPTIVE FILTERING AND INDEPENDENT COMPONENT ANALYSIS

机译:自适应滤波和独立分量分析从脑电数据中自动去除人工眼影

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A method to eliminate eye movement artifacts based on Independent Component Analysis (ICA) and Recursive Least Squares (RLS) is presented. The proposed algorithm combines the effective ICA capacity of separating artifacts from brain waves, together with the online interference cancellation achieved by adaptive filtering. The method uses separate electrodes localized close to the eyes (Fpl, Fp2, F7 and F8), that register vertical and horizontal eye movements, to extract a reference signal. Each reference input is first projected into ICA domain and then the interference is estimated using the RLS algorithm. This interference estimation is subtracted from the EEG components in the ICA domain. Results from experimental data demonstrate that this approach is suitable for eliminating artifacts caused by eye movements, and the principles of this method can be extended to certain other sources of artifacts as well. The method is easy to implement, stable, and presents a low computational cost.
机译:提出了一种基于独立分量分析(ICA)和递归最小二乘(RLS)的消除眼球运动伪影的方法。所提出的算法结合了有效的ICA能力,可以将伪像与脑波分离,并通过自适应滤波实现在线干扰消除。该方法使用位于眼睛附近的单独电极(Fp1,Fp2,F7和F8)记录垂直和水平眼睛的运动,以提取参考信号。首先将每个参考输入投影到ICA域中,然后使用RLS算法估算干扰。从ICA域中的EEG分量中减去此干扰估计。实验数据的结果表明,该方法适用于消除由眼睛运动引起的伪影,并且该方法的原理也可以扩展到某些其他伪影源。该方法易于实现,稳定并且计算成本低。

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