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The Decomposition of Surface EMG Signals Based on Blind Source Separation of Convolved Mixtures*

机译:基于卷积混合物盲源分离的表面肌电信号分解 *

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摘要

The decomposition of surface EMG signals can provide valuable information about the recruitment and firing of motor units from surface EMG recordings. According to the physiologic characteristic of the surface EMG signals generation, a method of the decomposition of SEMG signals based on the technique of convolved mixing blind source separation was proposed. Using simulated SEMG signals, the performance of the decomposition algorithm was analyzed and compared with that of the decomposition technique adopting Independent Component Analysis (ICA). The experiment results show that the proposed method could decompose SEMG signals effectively, and it''s performance is better than the ICA decomposition method, no matter for the simulated or recorded SEMG signals.
机译:表面EMG信号的分解可以提供有关表面EMG记录中电机单元的募集和点火的有价值的信息。根据表面肌电信号产生的生理特点,提出了一种基于卷积混合盲源分离技术的肌电信号分解方法。使用模拟的SEMG信号,分析了分解算法的性能,并与采用独立成分分析(ICA)的分解技术进行了比较。实验结果表明,无论是模拟还是记录的SEMG信号,该方法都能有效地分解SEMG信号,其性能优于ICA分解方法。

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