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Adaptive wavelet EMG compression based on local optimization of filter banks

机译:基于滤波器组局部优化的自适应小波EMG压缩

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This paper presents an adaptive wavelet technique for compression of surface electromyographic signals. The technique employs an optimization algorithm to adjust the wavelet filter bank in order to minimize the distortion of the compressed signal. Orthogonality of the transform is ensured by using a restriction-free parametrization described elsewhere. A case study involving real-life isotonic and isometric electromyographic signals is presented for illustration. The results show that the proposed approach outperforms the standard non-optimized wavelet technique in terms of the percent residual difference for a given compression factor.
机译:本文提出了一种用于表面肌电信号压缩的自适应小波技术。该技术采用优化算法来调整小波滤波器组,以使压缩信号的失真最小。通过使用其他地方介绍的无限制参数化,可以确保变换的正交性。提出了一个涉及现实生活中的等渗和等距肌电信号的案例研究。结果表明,对于给定的压缩因子,该方法在残差百分比方面优于标准的非优化小波技术。

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