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A New LMS Based Noise Removal and DWT Based R-peak Detection in ECG Signal for Biotelemetry Applications

机译:用于生物遥测应用的心电信号中基于LMS的新噪声消除和基于DWT的R峰检测

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摘要

ECG signals are non-stationary pseudo periodic in nature and whose behavior changes with time. The proper processing of ECG signal and its accurate feature extraction is very much essential since it determines the condition of the heart. Least mean square (LMS) based adaptive filters are widely deployed for removing artifacts in ECGs due to less number of computations. But they posses high mean square error (MSE) under noisy environment. The MSE can be reduced by transform domain variable step size LMS algorithm at the cost of computational complexity. In this paper, a variable step size delayed LMS adaptive filter is used to remove the artifacts from ECG signal for improved feature extraction. Moreover, the extraction of R peak in ECG is carried out using discrete wavelet transform based QRS detection algorithm. Due to the high speed of our method, the ECG de-nosing and R Peak extracting could be both realized at real time, which is an effective method to monitor the patients in biotelemetry applications
机译:ECG信号本质上是非平稳的伪周期信号,其行为会随时间变化。正确处理ECG信号及其准确的特征提取非常重要,因为它决定了心脏的状况。由于计算量较少,基于最小均方(LMS)的自适应滤波器已广泛用于消除ECG中的伪影。但是它们在嘈杂的环境下具有较高的均方误差(MSE)。可以通过变换域可变步长LMS算法来降低MSE,但会降低计算复杂性。在本文中,使用可变步长的延迟LMS自适应滤波器从ECG信号中去除伪像,以改善特征提取。此外,使用基于离散小波变换的QRS检测算法进行ECG中R峰的提取。由于我们方法的高速性,因此可以实时实现ECG去噪和R峰提取,这是在生物遥测应用中监控患者的有效方法

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