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Removal of Baseline Wander in ECG Signals Using Singular Spectrum Analysis

机译:使用奇异频谱分析消除ECG信号中的基线漂移

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摘要

A technique of removal baseline wander (BW) from electrocardiogram (ECG) signals based on singular spectrum analysis (SSA) is presented. With SSA applied, the ECG signal can be decomposed into trends, oscillations or noise components based on the singular value decomposition (SVD). By applying frequency analysis on the factor vectors which are produced by SVD, the decomposition components that may be interpretable as basic trend is selected to reconstruct the BW signal and then removal it from the ECG signal. The proposed method is compared with the state-of-the-art BW removal methods utilizing Hilbert vibration decomposition and multivariate empirical mode decomposition. The simulations were performed using real BW and clinical ECG signals and the results show that the proposed method performs better in terms of correlation coefficient and signal-to-noise ratio.
机译:提出了一种基于奇异频谱分析(SSA)的从心电图(ECG)信号中消除基线漂移(BW)的技术。使用SSA,可以基于奇异值分解(SVD)将ECG信号分解为趋势,振荡或噪声成分。通过对SVD产生的因子向量进行频率分析,选择可以解释为基本趋势的分解分量来重构BW信号,然后将其从ECG信号中删除。将该方法与采用希尔伯特振动分解和多元经验模态分解技术的最新BW去除方法进行了比较。使用实际体重和临床心电信号进行了仿真,结果表明,该方法在相关系数和信噪比方面表现更好。

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