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首页> 外文期刊>Biomedical signal processing and control >Empirical mode decomposition based filtering techniques for power line interference reduction in electrocardiogram using various adaptive structures and subtraction methods
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Empirical mode decomposition based filtering techniques for power line interference reduction in electrocardiogram using various adaptive structures and subtraction methods

机译:基于经验模式分解的滤波技术,可通过各种自适应结构和减法来减少心电图中的电源线干扰

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摘要

Electrocardiogram (ECG) is a vital sign monitoring measurement of the cardiac activity. One of the main problems in biomedical signals like electrocardiogram is the separation of the desired signal from noises caused by power line interference, muscle artifacts, baseline wandering and electrode artifacts. Different types of digital filters are used to separate signal components from unwanted frequency ranges. Adaptive filter is one of the primary methods to filter, because it does not need the signal statistic characteristics. In contrast with Fourier analysis and wavelet methods, a new technique called EMD, a fully data-driven technique is used. It is an adaptive method well suited to analyze biomedical signals. This paper foregrounds an empirical mode decomposition based two-weight adaptive filter structure to eliminate the power line interference in ECG signals. This paper proposes four possible methods and each have less computational complexity compared to other methods. These methods of filtering are fully a signal-dependent approach with adaptive nature, and hence it is best suited for denoising applications. Compared to other proposed methods, EMD based direct subtraction method gives better SNR irrespective of the level of noises.
机译:心电图(ECG)是监测心脏活动的重要信号。生物医学信号(如心电图)中的主要问题之一是将所需信号与由电源线干扰,肌肉伪影,基线漂移和电极伪影引起的噪声分离。使用不同类型的数字滤波器将信号分量与不需要的频率范围分开。自适应滤波器是主要的滤波方法之一,因为它不需要信号统计特性。与傅立叶分析和小波方法相反,使用了一种称为EMD的新技术,即一种完全由数据驱动的技术。这是一种非常适合分析生物医学信号的自适应方法。本文提出了一种基于经验模式分解的二权自适应滤波器结构,以消除心电信号中的电源线干扰。本文提出了四种可能的方法,与其他方法相比,每种方法的计算复杂度都较低。这些滤波方法完全是具有自适应性质的信号相关方法,因此最适合于降噪应用。与其他提出的方法相比,基于EMD的直接减法方法无论噪声水平如何都可以提供更好的SNR。

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