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首页> 外文期刊>Journal of Mechanics in Medicine and Biology >DCT-BASED VARIABLE STEP SIZE GRIFFITHS' LMS ALGORITHM FOR RANDOM NOISE CANCELLATION IN ECGs
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DCT-BASED VARIABLE STEP SIZE GRIFFITHS' LMS ALGORITHM FOR RANDOM NOISE CANCELLATION IN ECGs

机译:基于DCT的可变步长Griffiths的LMS算法用于ECG中的随机噪声消除

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摘要

This paper presents a new random noise cancellation technique for cancelling muscle artifact effects from ECG using ALE in the transformed domain. For this a transform domain variable step size griffith least mean square (TVGLMS) algorithm is proposed. The technique is based on the adaptation of the gradient of the error surface. The method frees both the step size and the gradient from observation noise and reduces the gradient mis-adjustment error. The sluggishness introduced due to the averaging of the gradient in the time domain is overcome by the transformed domain approach. The proposed algorithm uses a discrete cosine transform (DCT)-based signal decomposition due to its improved frequency resolution compared to a discrete Fourier transform (DFT). Furthermore, as the data used symmetrical, DCT usage results in low leakage (bias and variance). The performance of the proposed method has been tested on ECG signals combined with WGN, extracted from MIT database, and compared with several existing techniques like LMS, NLMS, and VGLMS.
机译:本文提出了一种新的随机噪声消除技术,用于在变换域中使用ALE消除ECG的肌肉伪影效应。为此,提出了一种变换域可变步长格里菲斯最小均方(TVGLMS)算法。该技术基于误差表面梯度的适应。该方法从观测噪声中释放了步长和梯度,并减少了梯度失调误差。变换域方法克服了由于在时域中对梯度进行平均而导致的缓慢。与离散傅里叶变换(DFT)相比,该算法提高了频率分辨率,因此使用了基于离散余弦变换(DCT)的信号分解。此外,由于数据使用对称,因此DCT的使用会导致低泄漏(偏差和方差)。该方法的性能已经在结合WGN的ECG信号上进行了测试,并从MIT数据库中提取出来,并与LMS,NLMS和VGLMS等几种现有技术进行了比较。

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