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Removing Ocular Movement Artefacts by a Joint Smoothened Subspace Estimator

机译:通过联合平滑子空间估计器消除眼动伪影

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To cope with the severe masking of background cerebral activity in the electroencephalogram (EEG) by ocular movement artefacts, we present a method which combines lower-order, short-term and higher-order, long-term statistics. The joint smoothened subspace estimator (JSSE) calculates the joint information in both statistical models, subject to the constraint that the resulting estimated source should be sufficiently smooth in the time domain (i.e., has a large autocorrelation or self predictive power). It is shown that the JSSE is able to estimate a component from simulated data that is superior with respect to methodological artefact suppression to those of FastICA, SOBI, pSVD, or JADE/COM1 algorithms used for blind source separation (BSS). Interference and distortion suppression are of comparable order when compared with the above-mentioned methods. Results on patient data demonstrate that the method is able to suppress blinking and saccade artefacts in a fully automated way.
机译:为了应对眼动伪影对脑电图(EEG)中背景脑活动的严重掩盖,我们提出了一种结合了低阶,短期和高阶,长期统计的方法。联合平滑子空间估计器(JSSE)在两个统计模型中计算联合信息,但要遵循这样的约束:所得的估计源在时域中应足够平滑(即具有较大的自相关或自预测能力)。结果表明,JSSE能够从模拟数据中估计出一种方法论分量,该分量在方法伪影抑制方面优于用于盲源分离(BSS)的FastICA,SOBI,pSVD或JADE / COM1算法。与上述方法相比,干扰和失真抑制的等级相当。患者数据的结果表明,该方法能够以全自动方式抑制眨眼和扫视伪像。

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