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Removing ocular artifacts from mixed EEG signals with FastKICA and DWT

机译:用FastKICA和DWT从混合的脑电信号中去除眼部伪影

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摘要

Ocular movements are inevitable in electroencephalograme (EEG) collection, and the resulting Ocular Artifact (OA) becomes one of the main interferences of EEG due to its great amplitude. Many methods have been proposed to remove OA from EEG recordings based on Blind Source Separation (BSS) algorithm. Often regression is performed in time or frequency domain by completely deleting the OA components. This can cause the overestimation of OA and the information loss of EEG, because EEG and electrooculogram (EOG) mix or spread bidirectionally. Furthermore, there exists a variety of noises, except for OA, and interference coupling in EEG, this also affects the OA removal performance, such as the robustness and anti-interference ability. Here, we propose a novel and generally applicable method, denoted as FKD, for removing OA from mixed EEG signals with the Fast Kernel Independent Component analysis (FastKICA) and Discrete Wavelet Transform (DWT). In two cases of linear and nonlinear mixed models, many experiments are conducted with Brain Computer Interface (BCI) data set. The experiment results show that FKD has good performance comparing with other BBS-based OA removal methods, and it is more acceptable in actual BCI system.
机译:脑电图(EEG)采集中不可避免地发生眼球运动,并且由于其幅度较大,因此产生的眼神器(OA)成为EEG的主要干扰之一。已经提出了许多基于盲源分离(BSS)算法从脑电图记录中删除OA的方法。通常,通过完全删除OA组件在时域或频域中执行回归。这可能会导致OA的高估和EEG的信息丢失,因为EEG和眼电图(EOG)双向混合或扩散。此外,除了OA以外,还有各种噪声,EEG中的干扰耦合也会影响OA的去除性能,例如鲁棒性和抗干扰能力。在这里,我们提出了一种新颖且普遍适用的方法,称为FKD,可通过快速核独立分量分析(FastKICA)和离散小波变换(DWT)从混合EEG信号中去除OA。在线性和非线性混合模型的两种情况下,使用脑计算机接口(BCI)数据集进行了许多实验。实验结果表明,与其他基于BBS的OA删除方法相比,FKD具有良好的性能,在实际的BCI系统中更可接受。

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