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Comparative analysis of wavelet based approaches for reliable removal of ocular artifacts from single channel EEG

机译:基于小波的方法从单通道脑电图可靠去除眼部伪影的比较分析

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For biomedical and scientific fields, Electroencephalography (EEG) has turned out to be an important tool to understand, study, and utilize brain functionalities. To fully utilize EEG signals in real-life closed-loop applications, artifacts such as ocular must be removed. Wavelet transform is one of the powerful methods to remove ocular artifacts from single channel EEG devices. In this study, both stationary and discrete wavelet transforms (SWT and DWT, respectively) have been compared with various wavelet basis functions, such as sym3, haar, coif3, and bior4.4 using either universal threshold (UT) or statistical threshold (ST). Different combinations of wavelet transform techniques, mother wavelets, and thresholds are compared to identify an optimum combination for ocular artifact removal. Performance metrics like Correlation Coefficient (CC), Normalized Mean Square Error (NMSE), Time Frequency Analysis, and execution time have been calculated for measuring the effectiveness of each combination. According to CC, DWT+UT combination turned out to be a good option for the ocular artifact removal. However, according to NMSE and time frequency analysis, SWT+ST has generated better performance in keeping neural segments of EEG unaffected. According to the measurement of execution times, DWT+ST is faster compared to other combinations. The study shows that wavelet transform is suitable in artifact removal from single channel EEG data to implement in ambulatory real-time EEG systems.
机译:在生物医学和科学领域,脑电图(EEG)已成为理解,研究和利用大脑功能的重要工具。为了在现实的闭环应用中充分利用EEG信号,必须去除诸如眼图的伪影。小波变换是从单通道EEG设备去除眼部伪像的强大方法之一。在这项研究中,使用通用阈值(UT)或统计阈值(ST),将平稳小波变换和离散小波变换(分别为SWT和DWT)与各种小波基函数(例如sym3,haar,coif3和bior4.4)进行了比较。 )。比较小波变换技术,母小波和阈值的不同组合,以识别去除眼部伪影的最佳组合。已计算了诸如相关系数(CC),归一化均方误差(NMSE),时频分析和执行时间之类的性能指标,以衡量每种组合的有效性。根据CC的说法,DWT + UT组合被证明是去除人工眼的好选择。但是,根据NMSE和时频分析,SWT + ST在保持脑电图的神经段不受影响方面产生了更好的性能。根据执行时间的度量,与其他组合相比,DWT + ST更快。研究表明,小波变换适合从单通道EEG数据中去除伪像,以在动态实时EEG系统中实现。

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