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多通道 EEG 记录中自动去除伪迹成分的伪迹子空间重建评估。

Evaluation of Artifact Subspace Reconstruction for Automatic Artifact Components Removal in Multi-Channel EEG Recordings.

出版信息

IEEE Trans Biomed Eng. 2020 Apr;67(4):1114-1121. doi: 10.1109/TBME.2019.2930186. Epub 2019 Jul 22.

Abstract

OBJECTIVE

Artifact subspace reconstruction (ASR) is an automatic, online-capable, component-based method that can effectively remove transient or large-amplitude artifacts contaminating electroencephalographic (EEG) data. However, the effectiveness of ASR and the optimal choice of its parameter have not been systematically evaluated and reported, especially on actual EEG data.

METHODS

This paper systematically evaluates ASR on 20 EEG recordings taken during simulated driving experiments. Independent component analysis (ICA) and an independent component classifier are applied to separate artifacts from brain signals to quantitatively assess the effectiveness of the ASR.

RESULTS

ASR removes more eye and muscle components than brain components. Even though some eye and muscle components retain after ASR cleaning, the power of their temporal activities is reduced. Study results also showed that ASR cleaning improved the quality of a subsequent ICA decomposition.

CONCLUSIONS

Empirical results show that the optimal ASR parameter is between 20 and 30, balancing between removing non-brain signals and retaining brain activities.

SIGNIFICANCE

With an appropriate choice of parameter, ASR can be a powerful and automatic artifact removal approach for offline data analysis or online real-time EEG applications such as clinical monitoring and brain-computer interfaces.

摘要

目的

伪迹子空间重建(ASR)是一种自动的、具有在线能力的基于组件的方法,可以有效地去除脑电图(EEG)数据中瞬态或大幅度的伪迹。然而,ASR 的有效性及其参数的最佳选择尚未得到系统的评估和报告,特别是在实际的 EEG 数据上。

方法

本文在模拟驾驶实验中采集的 20 段 EEG 记录上对 ASR 进行了系统评估。应用独立成分分析(ICA)和独立成分分类器将伪迹从脑信号中分离出来,以定量评估 ASR 的有效性。

结果

ASR 去除的眼电和肌电成分比脑成分多。即使在 ASR 清洁后仍保留一些眼电和肌电成分,但它们的时间活动的功率也会降低。研究结果还表明,ASR 清洁改善了后续 ICA 分解的质量。

结论

经验结果表明,最优的 ASR 参数在 20 到 30 之间,在去除非脑信号和保留脑活动之间取得平衡。

意义

通过选择合适的参数,ASR 可以成为离线数据分析或在线实时 EEG 应用(如临床监测和脑机接口)中一种强大而自动的伪迹去除方法。

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