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Denoising of ECG signals based on noise reduction algorithms in EMD and wavelet domains

机译:基于EMD和小波域降噪算法的ECG信号去噪

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摘要

This paper presents a new ECG denoising approach based on noise reduction algorithms in empirical mode decomposition (EMD) and discrete wavelet transform (DWT) domains. Unlike the conventional EMD based ECG denoising approaches that neglect a number of initial intrinsic mode functions (IMFs) containing the QRS complex as well as noise, we propose to perform windowing in the EMD domain in order to reduce the noise from the initial IMFs instead of discarding them completely thus preserving the QRS complex and yielding a relatively cleaner ECG signal. The signal thus obtained is transformed in the DWT domain, where an adaptive soft thresholding based noise reduction algorithm is employed considering the advantageous properties of the DWT compared to that of the EMD in preserving the energy in the presence of noise and in reconstructing the original ECG signal with a better time resolution. Extensive simulations are carried out using the MIT-BIH arrythmia database and the performance of the proposed method is evaluated in terms of several standard metrics. The simulation results show that the proposed method is able to reduce noise from the noisy ECG signals more accurately and consistently in comparison to some of the stateof-the-art methods.
机译:本文提出了一种新的基于经验模式分解(EMD)和离散小波变换(DWT)域中的降噪算法的ECG去噪方法。与传统的基于EMD的ECG去噪方法忽略了许多包含QRS复数以及噪声的初始固有模式函数(IMF)不同,我们建议在EMD域中执行加窗操作,以减少来自初始IMF的噪声,而不是完全丢弃它们,从而保留QRS复合物并产生相对较干净的ECG信号。如此获得的信号在DWT域中进行变换,其中考虑到DWT与EMD相比在保留存在噪声时的能量和重建原始ECG方面的优势,采用了基于自适应软阈值的降噪算法时间分辨率更好的信号。使用MIT-BIH心律失常数据库进行了广泛的仿真,并根据几种标准指标评估了所提出方法的性能。仿真结果表明,与某些最新方法相比,该方法能够更准确,更一致地减少嘈杂的ECG信号中的噪声。

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