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An ECG Extraction and Reconstruction System with Dynamic EMG Filtering Implemented on an ARM Chip

机译:动态EMG滤波的ECG提取与重建系统,在ARM芯片上实现

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This paper proposes two ECG signal processing algorithms for eliminating baseline drift and electromyogram (EMG) interference. Baseline drift in ECG signals is eliminated using Moving Average Filter (MAF) and the zero-crossing segmentation method is proposed so that the reconstructed ECG signal does not have an abnormal waveform. To eliminate the EMG component, the period-squared empirical learning method of pure EMG and ECG is proposed to find the threshold for identifying EMG, and then the peripheral weighted ECG method is used to reconstruct the ECG signal. Finally, a 12-lead ECG capture and filter board design is also implemented in this paper, which can be used to verify immediate ECG filtering performance.
机译:本文提出了两个ECG信号处理算法,用于消除基线漂移和电灰度(EMG)干扰。使用移动平均滤波器(MAF)消除ECG信号中的基线漂移,提出零交叉分割方法,使得重建的ECG信号没有异常波形。为了消除EMG分量,提出了纯EMG和ECG的周期平方经验学习方法,以找到识别EMG的阈值,然后使用外围加权的ECG方法来重建ECG信号。最后,在本文中也实施了12引导ECG捕获和过滤器板设计,可用于验证立即ECG滤波性能。

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