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首页> 外文期刊>Journal of medical engineering & technology >Powerline interference reduction in ECG signals using empirical wavelet transform and adaptive filtering
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Powerline interference reduction in ECG signals using empirical wavelet transform and adaptive filtering

机译:使用经验小波变换和自适应滤波降低ECG信号中的电力线干扰

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Separating an information-bearing signal from the background noise is a general problem in signal processing. In a clinical environment during acquisition of an electrocardiogram (ECG) signal, The ECG signal is corrupted by various noise sources such as powerline interference (PLI), baseline wander and muscle artifacts. This paper presents novel methods for reduction of powerline interference in ECG signals using empirical wavelet transform (EWT) and adaptive filtering. The proposed methods are compared with the empirical mode decomposition (EMD) based PLI cancellation methods. A total of six methods for PLI reduction based on EMD and EWT are analysed and their results are presented in this paper. The EWT-based de-noising methods have less computational complexity and are more efficient as compared with the EMD-based de-noising methods.
机译:将带有信息的信号与背景噪声分开是信号处理中的普遍问题。在获取心电图(ECG)信号期间的临床环境中,ECG信号会受到各种噪声源(如电力线干扰(PLI),基线漂移和肌肉伪影)的破坏。本文提出了使用经验小波变换(EWT)和自适应滤波减少ECG信号中电力线干扰的新方法。将该方法与基于经验模式分解(EMD)的PLI消除方法进行了比较。总共分析了六种基于EMD和EWT的PLI降低方法,并给出了其结果。与基于EMD的降噪方法相比,基于EWT的降噪方法具有较少的计算复杂度,并且效率更高。

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