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Real-Time Cardiac Artifact Removal from EEG Using a Hybrid Approach

机译:使用混合方法从EEG实时去除心脏伪影

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BACKGROUND: Electroencephalogram (EEG) signals are sometimes contaminated by cardiac artifacts (CAs). The artifacts resulted by electrical activities of heart, named electrocardiogram (ECG), appear in EEG recordings as spiky potentials that may obscure the information in EEG data and reduce their interpretability. OBJECTIVE: Real-time removal of CAs is of great importance in several applications of EEG, and particularly brain-computer interface (BCI). The process is, however, often neglected due to the time-consuming computations. METHODS: This paper applies a new real-time hybrid approach to remove ECG artifacts from EEG signals. The method is based on the combination of independent component analysis (ICA) and adaptive noise cancellation (ANC), referred to as ICA-ANC. ICA is applied to a few EEG signals in order to extract the reference signal for ANC. The method so utilizes a few EEG channels without synchronous ECG channel, and thus is suited to portable BCI applications. RESULTS: ICA-ANC is evaluated for datasets of five different subjects. CAs are efficiently removed while preserving the cerebral information. The approach is shown to outperform a state of the art method. CONCLUSION: The proposed new algorithm is capable of real-time cardiac artifacts removal using a few EEG channels.
机译:背景:脑电图(EEG)信号有时会被心脏伪影(CA)污染。由心电活动引起的伪影,称为心电图(ECG),在EEG记录中显示为尖峰电位,可能掩盖EEG数据中的信息并降低其可解释性。目的:在脑电图的某些应用中,尤其是在脑机接口(BCI)中,实时删除CA非常重要。然而,由于耗时的计算,该过程经常被忽略。方法:本文采用了一种新型的实时混合方法从脑电信号中去除心电信号。该方法基于独立分量分析(ICA)和自适应噪声消除(ANC)的组合,称为ICA-ANC。 ICA被应用于一些EEG信号,以便提取ANC的参考信号。该方法因此利用了几个EEG通道而没有同步ECG通道,因此适用于便携式BCI应用。结果:对ICA-ANC评估了五个不同主题的数据集。在保留大脑信息的同时,可以有效地去除CA。该方法的性能优于现有方法。结论:提出的新算法能够使用几个EEG通道实时去除心脏伪影。

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