A comparison of robust Kalman filtering methods for artifact correction in heart rate variability analysis

TecnoLogicas Pub Date : 2015-01-15 DOI:10.22430/22565337.213
C. Zuluaga-Ríos, M. Álvarez-López, A. Orozco-Gutierrez
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引用次数: 3

Abstract

Heart rate variability (HRV) has received considerable attention for many years, since it provides a quantitative marker for examining the sinus rhythm modulated by the autonomic nervous system (ANS). The ANS plays an important role in clinical and physiological fields. HRV analysis can be performed by computing several time and frequency domain measurements. However, the computation of such measurements can be affected by the presence of artifacts or ectopic beats in the electrocardiogram (ECG) recording. This is particularly true for ECG recordings from Holter monitors. The aim of this work was to study the performance of several robust Kalman filters for artifact correction in Inter-beat (RR) interval time series. For our experiments, two data sets were used: the first data set included 10 RR interval time series from a realistic RR interval time series generator. The second database contains 10 sets of RR interval series from five healthy patients and five patients suffering from congestive heart failure. The standard deviation of the RR interval was computed over the filtered signals. Results were compared with a state of the art processing software, showing similar values and behavior. In addition, the proposed methods offer satisfactory results in contrast to standard Kalman filtering.
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心率变异性分析中伪象校正鲁棒卡尔曼滤波方法的比较
心率变异性(HRV)作为检测自主神经系统(ANS)调节的窦性心律的定量指标,多年来一直受到广泛关注。ANS在临床和生理领域发挥着重要作用。HRV分析可以通过计算几个时间和频域测量来完成。然而,这种测量的计算可能会受到在心电图(ECG)记录中存在的伪影或异位跳动的影响。这对于动态心电图仪的心电图记录来说尤其如此。本研究的目的是研究几种鲁棒卡尔曼滤波器对间隔时间序列伪影校正的性能。在我们的实验中,使用了两个数据集:第一个数据集包括来自现实RR区间时间序列生成器的10个RR区间时间序列。第二个数据库包含5名健康患者和5名充血性心力衰竭患者的10组RR区间序列。对滤波后的信号计算RR区间的标准差。结果与最先进的处理软件进行了比较,显示出相似的值和行为。此外,与标准卡尔曼滤波相比,所提出的方法提供了令人满意的结果。
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审稿时长
28 weeks
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