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Multiscale Distribution Entropy Analysis of Short-Term Heart Rate Variability

机译:短期心率变异性的多尺度分布熵分析

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摘要

Electrocardiogram (ECG) signal has been commonly used to analyze the complexity of heart rate variability (HRV). For this, various entropy methods have been considerably of interest. The multiscale entropy (MSE) method, which makes use of the sample entropy (SampEn) calculation of coarse-grained time series, has attracted attention for analysis of HRV. However, the SampEn computation may fail to be defined when the length of a time series is not enough long. Recently, distribution entropy (DistEn) with improved stability for a short-term time series has been proposed. Here, we propose a novel multiscale DistEn (MDE) for analysis of the complexity of short-term HRV by utilizing a moving-averaging multiscale process and the DistEn computation of each moving-averaged time series. Thus, it provides an improved stability of entropy evaluation for short-term HRV extracted from ECG. To verify the performance of MDE, we employ the analysis of synthetic signals and confirm the superiority of MDE over MSE. Then, we evaluate the complexity of short-term HRV extracted from ECG signals of congestive heart failure (CHF) patients and healthy subjects. The experimental results exhibit that MDE is capable of quantifying the decreased complexity of HRV with aging and CHF disease with short-term HRV time series.
机译:心电图(ECG)信号常用于分析心率变异性(HRV)的复杂性。为此,各种熵方法具有很大的感兴趣。 MultiScale熵(MSE)方法使用粗粒时间序列的样本熵(X X X X X X X Sampen)的计算,引起了对HRV分析的关注。然而,当时间序列的长度不够长时间时,夹名计算可能无法定义。最近,已经提出了具有改进的短期时间序列稳定性的分布熵(Disten)。这里,我们提出了一种新的多尺度驱动(MDE),用于通过利用移动平均多尺度过程和每个移动平均时间序列的驱动计算来分析短期HRV的复杂性。因此,它为从心电图提取的短期HRV提供了改进的熵评估稳定性。为了验证MDE的性能,我们采用了合成信号的分析,并确认了MDE在MSE上的优越性。然后,我们评估从充血性心力衰竭(CHF)患者和健康受试者的ECG信号中提取的短期HRV的复杂性。实验结果表明,MDE能够通过短期HRV时间序列量化HRV与衰老和CHF疾病的复杂性降低。

著录项

  • 期刊名称 Entropy
  • 作者

    Dae-Young Lee; Young-Seok Choi;

  • 作者单位
  • 年(卷),期 2018(20),12
  • 年度 2018
  • 页码 952
  • 总页数 15
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:心电图;心率变异性;多尺度分布熵;RR间隔;短期间隔间隔;

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