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Journal of Zhejiang University SCIENCE B
ISSN 1673-1581(Print), 1862-1783(Online), Monthly
2006 Vol.7 No.10 P.844-848
Characterization of surface EMG signals using improved approximate entropy
Abstract: An improved approximate entropy (ApEn) is presented and applied to characterize surface electromyography (sEMG) signals. In most previous experiments using nonlinear dynamic analysis, this certain processing was often confronted with the problem of insufficient data points and noisy circumstances, which led to unsatisfactory results. Compared with fractal dimension as well as the standard ApEn, the improved ApEn can extract information underlying sEMG signals more efficiently and accurately. The method introduced here can also be applied to other medium-sized and noisy physiological signals.
Key words: Surface EMG (sEMG) signal, Nonlinear analysis, Approximate entropy (ApEn), Fractal dimension
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DOI:
10.1631/jzus.2006.B0844
CLC number:
R318.04
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2024-08-27
Received:
2023-10-17
Revision Accepted:
2024-05-08
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