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Assessing multiscale complexity of short heart rate variability series through a model-based linear approach

机译:通过基于模型的线性方法评估短心率变异系列的多尺度复杂性

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摘要

We propose a multiscale complexity (MSC) method assessing irregularity in assigned frequency bands and being appropriate for analyzing the short time series. It is grounded on the identification of the coefficients of an autoregressive model, on the computation of the mean position of the poles generating the components of the power spectral density in an assigned frequency band, and on the assessment of its distance from the unit circle in the complex plane. The MSC method was tested on simulations and applied to the short heart period (HP) variability series recorded during graded head-up tilt in 17 subjects (age from 21 to 54 years, median = 28 years, 7 females) and during paced breathing protocols in 19 subjects (age from 27 to 35 years, median = 31 years, 11 females) to assess the contribution of time scales typical of the cardiac autonomic control, namely in low frequency (LF, from 0.04 to 0.15 Hz) and high frequency (HF, from 0.15 to 0.5 Hz) bands to the complexity of the cardiac regulation. The proposed MSC technique was compared to a traditional model-free multiscale method grounded on information theory, i.e., multiscale entropy (MSE). The approach suggests that the reduction of HP variability complexity observed during graded head-up tilt is due to a regularization of the HP fluctuations in LF band via a possible intervention of sympathetic control and the decrement of HP variability complexity observed during slow breathing is the result of the regularization of the HP variations in both LF and HF bands, thus implying the action of physiological mechanisms working at time scales even different from that of respiration. MSE did not distinguish experimental conditions at time scales larger than 1. Over a short time series MSC allows a more insightful association between cardiac control complexity and physiological mechanisms modulating cardiac rhythm compared to a more traditional tool such as MSE. Published by AIP Publishing.
机译:我们提出了一种多尺度复杂性(MSC)方法,评估分配的频带的不规则性,并且适合分析短时间序列。它基于识别自回归模型的系数,在计算分配的频带中的功率谱密度的组件的计算中的计算,以及从单元圈的距离的评估复杂的飞机。 MSC方法对模拟进行了测试,并应用于17个受试者分级抬头倾斜期间记录的短心周期(HP)可变性系列(21至54岁,中位数= 28岁,7名女性)以及节奏呼吸协议期间在19个科目(年龄从27至35岁,中位数= 31岁)评估心脏自主控制典型的时间尺度的贡献,即低频(LF,0.04至0.15 Hz)和高频( HF,​​从0.15至0.5Hz的频段到心脏调节的复杂性。将所提出的MSC技术与在信息理论上接地的传统的无尺寸方法进行比较,即多尺度熵(MSE)。该方法表明,在分级抬头倾斜期间观察到的HP变化复杂性的减少是由于LF带中的HP波动的正则化通过交感对照的可能介入,并且在慢呼吸期间观察到的HP变异性复杂性的递减是结果LF和HF频段的HP变化的正则化,从而暗示在甚至不同于呼吸的时间尺度工作的生理机制的作用。 MSE没有区分大于1.在短时间序列中的实验条件,序列MSC允许心脏控制复杂性和生理机制之间的更有洞察力的关联,并与更传统的工具如MSE相比,调节心节律。通过AIP发布发布。

著录项

  • 来源
    《Chaos》 |2017年第9期|共12页
  • 作者单位

    Univ Milan Dept Biomed Sci Hlth Milan Italy;

    IRCCS Policlin San Donato Dept Cardiothorac Vasc Anesthesia &

    Intens Care San Donato Milanese Italy;

    IRCCS Policlin San Donato Dept Cardiothorac Vasc Anesthesia &

    Intens Care San Donato Milanese Italy;

    Ist Milano IRCCS Ist Clinici Sci Maugeri Milan Italy;

    Politecn Milan Dept Elect Informat &

    Bioengn Milan Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自然科学总论;
  • 关键词

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