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首页> 外文期刊>Journal of medical engineering & technology >A new algorithm developed based on a mixture of spectral and nonlinear techniques for the analysis of heart rate variability.
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A new algorithm developed based on a mixture of spectral and nonlinear techniques for the analysis of heart rate variability.

机译:一种基于频谱和非线性技术混合的新算法,用于分析心率变异性。

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摘要

In this paper, an algorithm based on a joint use of spectral and nonlinear techniques for heart rate variability (HRV) analysis is proposed. First, the measured RR data are passed into a trimmed moving average (TMA)-based filtering system to generate a lower frequency (LF) time series and a higher frequency (HF) one that approximately reflect the sympathetic and vagal activities, respectively. Since the Lyapunov exponent can be used to characterize the level of chaos in complex physiological systems, the largest Lyapunov exponents corresponding to the complex sympathetic and vagal systems are then estimated from the LF and HF time series, respectively, using an existing algorithm. Numerical results of a postural maneuver experiment indicate that both characteristic exponents or their combinations might serve as a set of innovative and robust indicators for HRV analysis, even under the contamination of sparse impulses due to aberrant beats in the RR data.
机译:本文提出了一种基于频谱和非线性技术联合使用的心率变异性(HRV)分析算法。首先,将测得的RR数据传递到基于修整移动平均(TMA)的滤波系统中,以分别产生一个低频(LF)时间序列和一个高频(HF)信号,分别近似地反映出交感神经活动和迷走神经活动。由于Lyapunov指数可用于表征复杂生理系统中的混沌程度,因此,使用现有算法,分别从LF和HF时间序列中分别估计与复杂交感和迷走神经系统相对应的最大Lyapunov指数。姿态操纵实验的数值结果表明,即使在由于RR数据异常搏动而导致的稀疏脉冲污染的情况下,这两个特征指数或其组合也可以作为一组创新而强大的HRV分析指标。

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