Filtering noisy ECG signals using the extended kalman filter based on a modified dynamic ECG model

R. Sameni, M. Shamsollahi, C. Jutten, M. Babaie-zadeh
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引用次数: 100

Abstract

In this paper an extended Kalman filter (EKF) has been proposed for the filtering of noisy ECG signals. The method is based on a modified nonlinear dynamic model, previously introduced for the generation of synthetic ECG signals. An automatic parameter selection method has also been suggested, to adapt the model with a vast variety of normal and abnormal ECG signals. The results show that the EKF output is able to track the original ECG signal shape even in the most noisiest epochs of the ECG signal. The proposed method may serve as an efficient filtering procedure for applications such as the noninvasive extraction of fetal cardiac signals from maternal abdominal signals
采用基于改进的动态心电模型的扩展卡尔曼滤波方法滤波噪声心电信号
本文提出了一种扩展卡尔曼滤波器(EKF)用于滤波有噪声的心电信号。该方法基于一种改进的非线性动态模型,该模型之前被引入到合成心电信号的生成中。本文还提出了一种自动参数选择方法,以适应各种正常和异常的心电信号。结果表明,即使在心电信号噪声最大的时期,该EKF输出也能跟踪原始心电信号的形状。所提出的方法可以作为一种有效的过滤程序,用于诸如从母体腹部信号中无创提取胎儿心脏信号等应用
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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