A comprehensive performance analysis of EEMD-BLMS and DWT-NN hybrid algorithms for ECG denoising

被引:39
作者
Kaergaard, Kevin [1 ]
Jensen, Soren Hjollund [1 ]
Puthusserypady, Sadasivan [1 ]
机构
[1] Tech Univ Denmark, Dept Elect Engn, DK-2800 Lyngby, Denmark
关键词
Electrocardiogram (ECG); Denoising; Ensemble empirical mode decomposition (EEMD); Block least mean square (BLMS); Discrete Wavelet Transform (DWT); Neural Networks (NN); NOISE-REDUCTION; SIGNALS; FILTER;
D O I
10.1016/j.bspc.2015.11.012
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Electrocardiogram (ECG) is a widely used non-invasive method to study the rhythmic activity of the heart. These signals, however, are often obscured by artifacts/noises from various sources and minimization of these artifacts is of paramount importance for detecting anomalies. This paper presents a thorough analysis of the performance of two hybrid signal processing schemes ((i) Ensemble Empirical Mode Decomposition (EEMD) based method in conjunction with the Block Least Mean Square (BLMS) adaptive algorithm (EEMD-BLMS), and (ii) Discrete Wavelet Transform (DWT) combined with the Neural Network (NN), named the Wavelet NN (WNN)) for denoising the ECG signals. These methods are compared to the conventional EMD (C-EMD), C-EEMD, EEMD-LMS as well as the DWT thresholding (DWT-Th) based methods through extensive simulation studies on real as well as noise corrupted ECG signals. Results clearly show the superiority of the proposed methods. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:178 / 187
页数:10
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