Complexity in Heart Rate Variability after Postural Sympathovagal Change by Sample, Fuzzy, and Distribution Entropy

P. Castiglioni, G. Merati, G. Parati, A. Faini
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引用次数: 1

Abstract

Distribution Entropy (DistEn) has been proposed to quantify the heart rate variability (HRV) complexity as an alternative to Sample (SampEn) or Fuzzy (FuzzyEn) entropies, which essentially measure the HRV randomness. We aim to evaluate if postural sympathovagal activations in healthy individuals induce changes in HRV complexity or randomness by jointly estimating DistEn, SampEn, and FuzzyEn. We compared the estimators on white, pink, and random noises, and on chaotic and periodic series. Then, we considered supine (Sup) and sitting (Sit) heart-rate recordings of 34 volunteers comparing SampEn, FuzzyEn, and DistEn between postures. Synthesized series highlighted the different nature of the estimators, being the highest entropy that of white noise for SampEn and FuzzyEn, that of the chaotic series for DistEn. SampEn and FuzzyEn of real heart rate series were greater in Sup, while DistEn did not differ between postures. Thus, the postural change does not change the HRV complexity as quantified by DistEn and DistEn is not an index of sympathovagal balance, unlike SampEn or FuzzyEn.
通过样本、模糊和分布熵分析体位交感迷走神经改变后心率变异性的复杂性
分布熵(DistEn)已被提出用于量化心率变异性(HRV)复杂性,作为样本熵(SampEn)或模糊熵(FuzzyEn)熵的替代方法,后者本质上是衡量心率变异性的随机性。我们的目的是通过联合估计DistEn、SampEn和FuzzyEn来评估健康个体体位交感迷走神经激活是否会诱导HRV复杂性或随机性的变化。我们比较了白噪声、粉红噪声和随机噪声以及混沌序列和周期序列的估计量。然后,我们考虑了34名志愿者的平卧(Sup)和坐着(Sit)的心率记录,比较了SampEn、FuzzyEn和DistEn在不同姿势之间的差异。合成序列突出了估计量的不同性质,SampEn和FuzzyEn的白噪声熵最高,DistEn的混沌序列熵最高。真实心率系列的SampEn和FuzzyEn在Sup中更大,而DistEn在不同姿势之间没有差异。因此,与SampEn或FuzzyEn不同,姿势变化不会改变DistEn量化的HRV复杂性,DistEn也不是交感迷走神经平衡的指标。
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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