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An adaptive level dependent wavelet thresholding for ECG denoising

机译:自适应水平相关小波阈值的ECG去噪

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摘要

This paper describes the research carried out to eliminate the noise found in ECG signal and cardiac rhythm. For this, ECG signals were collected carefully from BIOPAC data acquisition system and MIT-BIH database. MIT-BIH noise stress test database was used for generating realistic noises. In addition, to get a better denoised ECG, Symlet wavelet was chosen because its scaling function is closely related to the shape of ECG. For denoising ECG signal, a novel modified S-median thresholding technique is proposed and evaluated in this paper. The optimal Symlet wavelet of order 6 and decomposition level of 8 are attained for modified S-median thresholding technique. The evaluation results showed that the proposed system performed better than S-median and other existing techniques in the time domain. The frequency domain analysis also showed the preservation of important phenomena of ECG. The scalogram difference of 0.004% indicates the well preservation of time-frequency information. (C) 2014 Nalecz Institute of Biocybemetics and Biomedical Engineering. Published by Elsevier Urban & Partner Sp. z o.o. All rights reserved.
机译:本文介绍了为消除心电图信号和心律中发现的噪声而进行的研究。为此,从BIOPAC数据采集系统和MIT-BIH数据库中仔细收集了ECG信号。 MIT-BIH噪声压力测试数据库用于生成实际噪声。另外,为了获得更好的去噪ECG,选择Symlet小波是因为其缩放函数与ECG的形状密切相关。为了对ECG信号进行降噪,本文提出了一种新的改进的S-中阈值技术。对于改进的S中值阈值技术,获得了6阶和8级分解的最优Symlet小波。评估结果表明,所提出的系统在时域上的性能优于S-median和其他现有技术。频域分析还显示了ECG重要现象的保留。比例尺差异为0.004%表示时间-频率信息的保存良好。 (C)2014 Nalecz生物仿制药和生物医学工程研究所。由Elsevier Urban&Partner Sp。动物园。版权所有。

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