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Digital fractional order low-pass differentiators for detecting peaks of surface EMG signal
- Lee, Jin;
- Kim, Sung-hwan
SCOPUS
0초록
Signal processing techniques based on fractional order calculus have been successfully applied in analyzing heavy-tailed non-Gaussian signals. It was found that the surface EMG signals from the muscles having nuero-muscular disease are best modeled by using the heavy-tailed non-gaussian random processes. In this regard, this paper describes an application of digital fractional order lowpass differentiators(FOLPD, weighted FOLPD) based on the fractional order calculus in detecting peaks of surface EMG signal. The performances of the FOLPD and WFOLPD are analyzed based on different filter length and varying MUAP wave shape from recorded and simulated surface EMG signals. As a results, the WFOLPD showed better SNR improving factors than the existing WLPD and to be more robust under the various surface EMG signals.
키워드
- 제목
- Digital fractional order low-pass differentiators for detecting peaks of surface EMG signal
- 저자
- Lee, Jin; Kim, Sung-hwan
- 발행일
- 2013
- 유형
- Article
- 저널명
- 전기학회논문지
- 권
- 62
- 호
- 7
- 페이지
- 1014 ~ 1019