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Removal of EMG artifacts from single channel EEG signal using singular spectrum analysis

机译:使用奇异频谱分析从单通道EEG信号移除EMG伪影

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The electroencephalogram (EEG) signals often contaminated by muscle or electromyogram (EMG) artifacts. The presence of these artifacts obscure the desired information in the EEG signal. In this paper, we proposed an efficient subspace based technique named singular spectrum analysis (SSA), to remove the EMG artifacts from the single channel EEG signals. For this we proposed a new grouping technique to extract efficiently the desired component from the contaminated EEG signal by setting a threshold. Firstly, single channel signal is mapped into multichannel signal or data, called embedding. Next, the orthogonal eigenvectors are estimated from the covariance matrix of the multichannel data by singular value decomposition (SVD). Since the local variations of eigenvectors corresponding to the EEG signals are low compare with the EMG signals, we set an arbitrary threshold (0.275) to find these eigenvectors, which are used to create the subspace corresponding to the EEG signals. After identifying the subspace, the EEG signals are extracted by simply projecting the multichannel data onto this subspace followed by reverse process of embedding step. Finally, the proposed method is applied on synthetic noisy sinusoidal signals and EEG signals contaminated by the EMG artifacts. The results shows that the proposed method can efficiently removes the EMG artifacts without altering the desired components.
机译:脑电图(EEG)通常被肌肉或肌电图(EMG)伪像污染。这些伪影的存在掩盖了EEG信号中的所需信息。在本文中,我们提出了一种名为奇异频谱分析(SSA)的高效基于子空间的技术,用于从单通道EEG信号中移除EMG伪影。为此,我们提出了一种新的分组技术来通过设定阈值,从污染的eEG信号中有效地提取所需的组件。首先,单通道信号被映射到多声道信号或数据,称为嵌入。接下来,通过奇异值分解(SVD)从多通道数据的协方差矩阵估计正交特征向量。由于对应于EEG信号特征向量的局部变化被低与EMG信号进行比较,我们设定任意的阈值(0.275),以找到这些本征矢量,其用于创建对应于EEG信号子空间。在识别子空间之后,通过简单地将多声道数据投影到该子空间之后,提取EEG信号,然后提取嵌入步骤的反向过程。最后,所提出的方法应用于由EMG伪影污染的合成噪声正弦信号和脑电图信号。结果表明,该方法可以有效地去除EMG伪像而不改变所需的组分。

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