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Baseline correction of ECG using regression estimation method

机译:ECG使用回归估计方法的基线校正

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The presence of baseline wander in ECG signal severely affects the quality of ECG signal. Baseline wander is generally eliminated at the initial stage of preprocessing of ECG signal. In this paper a method using regression estimation is applied to ECG signal to remove the baseline wander. This method uses two stage median filter and regression estimation for smoothing and correction of baseline. The cross correlation is performed between the baseline wander containing ECG signal with corrected ECG signal. Then cross-correlation coefficient is calculated. The method evolves with the lowess and loess of local regression estimation, rlowess and rloess of robust local regression estimation. We found highest coefficient of 0.9914 for the baseline wander amplitude of 0.5mV using local regression method (lowess) and lowest coefficient of 0.9688 for the amplitude of 0.8mV using robust local regression method (rlowess). Further this method is validated on MIT-BIH, Noise Stress Test Database (NSTD).
机译:ECG信号中的基线漫游的存在严重影响了ECG信号的质量。在ECG信号的预处理初始阶段通常消除基线徘徊。在本文中,使用回归估计的方法应用于ECG信号以删除基线漂移。该方法使用两个阶段中值滤波器和回归估计来平滑和校正基线。在包含具有校正ECG信号的ECG信号的基线漂移之间执行互相关。然后计算互相关系数。该方法随着局部回归估计,Rlowess和rloess的杠杆和黄土的杠杆和稳健的本地回归估计而发展。在使用稳健的本地回归方法(Rlowess)(Rlowess),我们发现基线漫游幅度为0.5mV的基线漫游幅度为0.9914的最高系数为0.5mV,最低系数为0.9688。此外,该方法在MIT-BIH,噪声应力测试数据库(NSTD)上验证。

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