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Two-stage motion artefact reduction algorithm for electrocardiogram using weighted adaptive noise cancelling and recursive Hampel filter

机译:使用加权自适应噪声消除和递归扫描滤波器心电图的两级运动人工制品减少算法

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摘要

The presence of motion artefacts in ECG signals can cause misleading interpretation of cardiovascular status. Recently, reducing the motion artefact from ECG signal has gained the interest of many researchers. Due to the overlapping nature of the motion artefact with the ECG signal, it is difficult to reduce motion artefact without distorting the original ECG signal. However, the application of an adaptive noise canceler has shown that it is effective in reducing motion artefacts if the appropriate noise reference that is correlated with the noise in the ECG signal is available. Unfortunately, the noise reference is not always correlated with motion artefact. Consequently, filtering with such a noise reference may lead to contaminating the ECG signal. In this paper, a two-stage filtering motion artefact reduction algorithm is proposed. In the algorithm, two methods are proposed, each of which works in one stage. The weighted adaptive noise filtering method (WAF) is proposed for the first stage. The acceleration derivative is used as motion artefact reference and the Pearson correlation coefficient between acceleration and ECG signal is used as a weighting factor. In the second stage, a recursive Hampel filter-based estimation method (RHFBE) is proposed for estimating the ECG signal segments, based on the spatial correlation of the ECG segment component that is obtained from successive ECG signals. Real-World dataset is used to evaluate the effectiveness of the proposed methods compared to the conventional adaptive filter. The results show a promising enhancement in terms of reducing motion artefacts from the ECG signals recorded by a cost-effective single lead ECG sensor during several activities of different subjects.
机译:ECG信号中的运动人工制品的存在可能导致心血管状态的误导性解释。最近,减少了ECG信号的运动人工制品已经获得了许多研究人员的兴趣。由于具有ECG信号的运动人工制品的重叠性,难以减少运动伪像而不会扭曲原始的ECG信号。然而,自适应噪声消除器的应用已经示出了如果与ECG信号中的噪声相关的适当噪声参考,则在减少运动人工制品方面是有效的。不幸的是,噪声引用并不总是与运动人工制品相关的。因此,利用这种噪声参考滤波可能导致污染ECG信号。本文提出了一种两阶段滤波运动人工制品减少算法。在算法中,提出了两种方法,每个方法在一个阶段工作。为第一阶段提出了加权自适应噪声滤波方法(WAF)。加速衍生物用作运动人工制品参考,并且加速度与ECG信号之间的Pearson相关系数用作加权因子。在第二阶段,提出了一种基于从连续的ECG信号获得的ECG段分量的空间相关性来估计ECG信号段的递归汉汉滤波器基估计方法(RHFBE)。与传统自适应滤波器相比,真实世界数据集用于评估所提出的方法的有效性。结果表明,在不同对象的几种活动期间减少了由经济有效的单引线ECG传感器记录的ECG信号的动作人工制品的有望增强。

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