首页> 外文会议>2013 IEEE International Conference on Electronics, Circuits, and Systems >Wavelet compression inspired implementation for high performances and low complexity ECG removal in wireless sEMG electrodes
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Wavelet compression inspired implementation for high performances and low complexity ECG removal in wireless sEMG electrodes

机译:小波压缩启发性的实现可实现无线sEMG电极中高性能和低复杂度的ECG去除

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This study addresses the removal of electrocardiogram pulses (ECG) from surface electromyography signals (sEMG) in wireless sEMG electrodes. We describe a wavelet-compression inspired filtering technique in order to minimize the computational complexity required in wireless sEMG electrodes while providing higher filtering performance than when with standard means. Using semi-artificially prepared signals, we show that the discrete wavelet transform (DWT) enables a partial separation between the sEMG and ECG signals in time domain. Then, only the highly overlapped parts are fed into an adaptive noise cancellation (ANC) structure for lower computational complexity filtering. The simulation results confirm the improved noise rejection and the gain in computational complexity obtained with the proposed method.
机译:这项研究致力于消除无线sEMG电极中表面肌电信号(sEMG)中的心电图脉冲(ECG)。我们描述了一种基于小波压缩的滤波技术,以最大程度地降低无线sEMG电极所需的计算复杂性,同时提供比标准方式更高的滤波性能。使用半人工准备的信号,我们表明离散小波变换(DWT)在时域中实现sEMG和ECG信号之间的部分分离。然后,仅将高度重叠的部分馈入自适应噪声消除(ANC)结构,以降低计算复杂度。仿真结果证实了改进的噪声抑制能力以及所提方法获得的计算复杂度的提高。

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