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Empirical mode decomposition vs. variational mode decomposition on ECG signal processing: A comparative study

机译:ECG信号处理中的经验模式分解与变分模式分解:对比研究

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Most of the non-stationary signals need adaptive processing technique for denoising, signal processing for feature extraction and analysis. In this regard, signal decomposition methods plays a vital role as selective reconstruction extracts the enhanced version of the signal buried in the noise. Decomposition mode based analysis also becomes popular especially in case of biosignals due to their highly non-stationary nature. Biosignals are better decomposed by a technique where basis function is derived from the signal itself. This data adaptive decomposition of biosignals into different frequency modes is very effective irrespective of multiple periodicities present in the signal or unknown sampling rate. This paper aims to study the performance of Empirical Mode Decomposition (EMD) and the Variational Mode Decomposition (VMD) technique over the popular ECG signal in terms of different periodicities during various cardiac abnormalities. The results highlight the main differences between the methods in range of signal decomposition levels as well as ability of extracting both low and high frequency from the signal.
机译:大多数非平稳信号需要用于降噪的自适应处理技术,用于特征提取和分析的信号处理。在这方面,信号分解方法起着至关重要的作用,因为选择性重建可提取出掩埋在噪声中的信号的增强版本。基于分解模式的分析也变得很流行,特别是在生物信号的情况下,由于其高度的不稳定性。通过从信号本身获得基函数的技术,生物信号可以更好地分解。无论信号中存在多个周期性还是未知的采样率,这种将生物信号数据自适应分解为不同频率模式的方法都是非常有效的。本文旨在研究各种心电异常期间不同周期下,经验模式分解(EMD)和变异模式分解(VMD)技术对流行的ECG信号的性能。结果突出了这两种方法在信号分解级别范围以及从信号中提取低频和高频的能力之间的主要差异。

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