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Research on removal algorithm of EOG artifacts in single-channel EEG signals based on CEEMDAN-BD

机译:基于CeeMDAN-BD的单通道EEG信号中EOG伪影的移除算法研究

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摘要

Single-channel electroencephalography (EEG) signals are more susceptible to electro-oculography (EOG) interference, which could be attributed to the acquisition device of the single-channel. To realize EOG artifacts separation in this paper, the blind deconvolution (BD) model was investigated based on complete ensemble empirical mode decomposition with adaptive noise (CEEMDAN). The CEEMDAN method was firstly used to decompose the EEG data contained artifacts into several intrinsic mode functions (IMF). After that, the modal component used as the observed signal was provided to the BD model, which was formed by the source signal of the EEG signal and the EOG artifacts. Consequently, we successfully realized the separation of EEG signal and EOG artifacts by the constructing cost function iteratively, and our results demonstrated that the separation effect of this method on EOG artifacts is better than previous studies. Further, the correlation coefficient of real-life data after CEEMDAN-BD algorithm processing reaches 0.81. Moreover, the modal aliasing problem was solved with most of the original EEG signal components retained. In a word, this novel method provides theory and practice references for the processing of EEG signals and other physiological signals.
机译:单通道脑电图(EEG)信号更容易受到电神学(EOG)干扰的影响,这可能归因于单通道的采集设备。为了实现本文的Eog伪影分离,基于具有自适应噪声(CeeMDAN)的完整集成经验模式分解研究了盲解卷积(BD)模型。首先使用CeeMDAN方法将包含伪像的EEG数据分解为几个内在模式函数(IMF)。之后,向BD模型提供用作观察信号的模态分量,该BD模型由EEG信号的源信号和EOG伪影形成。因此,我们成功地实现了EEG信号和EOG伪像迭代的构建成本函数的分离,我们的结果表明这种方法对EOG伪影的分离效果优于先前的研究。此外,CeeMDAN-BD算法处理达到0.81之后的现实生活数据的相关系数。此外,通过保留的大多数原始EEG信号分量解决了模态次叠种问题。总之,这种新方法提供了对eEG信号和其他生理信号的处理的理论和实践参考。

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