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The base-scale entropy analysis of short-term heart rate variability signal

机译:短期心率变异性信号的基本尺度熵分析

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The complexity of heart rate variability (HRV) signal can reflect physiological functions and healthy status of heart system. Detecting complexity of the short-term HRV signal has an important practical meaning. We introduce the base-scale entropy method to analyze the complexity of time series. The advantages of our method are its simplicity, extremely fast calculation for very short data and anti-noise characteristic. For the well-known chaotic dynamical system - logistic map, it is shown that our complexity behaves similarly to Lyapunov exponents, and is especially effective in the presence of random Gaussian noise. This paper addresses the use of base-scale entropy method to 3 low-dimensional nonlinear deterministic systems. At last, we apply this idea to short-term HRV signal, and the result shows the method could robustly identify patterns generated from healthy and pathologic states, as well as aging. The base-scale entropy can provide convenience in practically applications.
机译:心率变异性(HRV)信号的复杂性可以反映出生理功能和心脏系统的健康状况。检测短期HRV信号的复杂度具有重要的实际意义。我们引入了基尺度熵方法来分析时间序列的复杂性。我们的方法的优点是它的简单性,对于非常短的数据非常快速的计算以及抗噪声特性。对于众所周知的混沌动力学系统-Logistic映射,它表明我们的复杂度的行为与Lyapunov指数相似,并且在存在随机高斯噪声的情况下特别有效。本文讨论了将基尺度熵方法用于3个低维非线性确定性系统的问题。最后,我们将此思想应用于短期HRV信号,结果表明该方法可以可靠地识别从健康,病理状态以及衰老产生的模式。基本尺度的熵可以在实际应用中提供便利。

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