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Denoising of weak ECG signals by using wavelet analysis and fuzzy thresholding

机译:基于小波分析和模糊阈值的弱心电信号降噪

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The electrocardiogram (ECG) is a biological signal that contains important information about the cardiac activities of heart. ECG signal plays a very important role in the diagnosis and analysis of heart diseases. ECG signal is corrupted by various types of noise such as electrode movement, strong electromagnetic effect and muscle noise. Noisy ECG signal has been extracted using signal processing. This paper presents a weak ECG signal denoising method based on fuzzy thresholding and wavelet packet analysis. Firstly, the weak ECG signal is decomposed into various levels by wavelet packet transform. Then, the threshold value is determined using the fuzzy s-function. The reconstruction of the ECG signal from the retained coefficients is achieved by using inverse wavelet packet transform. We carried out several experiments to show the effectiveness of the proposed method and compared the results with the traditional wavelet packet soft and hard thresholding methods for weak signal denoising. The results are satisfactory according to calculated the correlation coefficient.
机译:心电图(ECG)是一种生物信号,其中包含有关心脏心脏活动的重要信息。心电图信号在心脏病的诊断和分析中起着非常重要的作用。心电图信号会因各种类型的噪声而损坏,例如电极移动,强电磁效应和肌肉噪声。使用信号处理已提取出嘈杂的ECG信号。本文提出了一种基于模糊阈值和小波包分析的弱心电信号去噪方法。首先,通过小波包变换将弱心电信号分解为各种电平。然后,使用模糊S函数确定阈值。通过使用逆小波包变换,可以从保留系数重构ECG信号。我们进行了几次实验以证明该方法的有效性,并将结果与​​传统的小波包软阈值和硬阈值方法进行弱信号降噪。根据计算出的相关系数,结果令人满意。

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