一种新的基于小波的心电信号基线漂移消除算法

A. Sargolzaei, K. Faez, S. Sargolzaei
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引用次数: 27

摘要

小波变换是近年来出现的一种强大的时频分析和信号编码工具,被广泛用于复杂非平稳信号的分析。它在生物信号处理方面的应用一直处于这些发展的前沿,人们发现它在研究这些经常有问题的信号方面特别有用:没有比心电图(ECG)更有用的了。本文详细讨论了小波变换在心电信号预处理和去噪过程中的新作用。介绍了影响心电信号分析的主要噪声源之一基线漂移,提出了一种基于小波变换的心电信号分析方法。该方法利用离散小波变换对心电信号进行多分辨率分析,建立基线漂移模型,并利用该模型去除心电信号中的基线漂移。利用MIT-BIH噪声压力测试数据库和PTB诊断数据库进行了仿真,验证了算法的性能。结果表明,所提出的方法的结果质量达到或超过了使用其他传统方法(如卡尔曼滤波和传统数字滤波)的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new robust wavelet based algorithm for baseline wandering cancellation in ECG signals
Wavelet transform has been emerged over recent years as a powerful time-frequency analysis and signal coding tool favored for the interrogation of complex non stationary signals. Its application to bio-signal processing has been at the forefront of these developments where it has been found particularly useful in the study of these, often problematic, signals: none more so than the Electrocardiogram (ECG). In this paper, the emerging roles of the wavelet transform in the ECG preprocessing and noise removing step is discussed in detail. One of the most important noise sources, baseline wandering, which can be affected ECG signal analysis is introduced and a new method based on wavelet transform is being proposed. The proposed method construct a model of baseline wander with multiresolution analysis of the signal using discrete wavelet transform and then remove the baseline wander from the ECG signal using the constructed model. Simulations were carried out to show the performance of the algorithm using the MIT-BIH noise stress test database and PTB diagnosis database. The quality of the results by the proposed technique is found to meet or exceed that of published results using other conventional methods such as kalman filtering and conventional digital filters.
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