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Phase relationships between two or more interacting processes from one-dimensional time series. II. Application to heart-rate-variability data.

机译:一维时间序列中两个或多个交互过程之间的相位关系。二。适用于心率变异性数据。

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摘要

The recently proposed approach to detect synchronization from univariate data is applied to heart-rate-variability (HRV) data from ten healthy humans. The approach involves introducing angles for return times map and studying their behavior. For filtered human HRV data, it is demonstrated that: (i) in many of the subjects studied, interactions between different processes within the cardiovascular system can be considered as weak, and the angles can be well described by the derived model; (ii) in some of the subjects the strengths of the interactions between the processes are sufficiently large that the angles map has a distinctive structure, which is not captured by our model; (iii) synchronization between the processes involved can often be detected; (iv) the instantaneous radii are rather disordered.
机译:最近提出的从单变量数据中检测同步的方法被应用于来自十个健康人的心率变异性(HRV)数据。该方法涉及为返回时间图引入角度并研究其行为。对于过滤的人类HRV数据,证明:(i)在许多研究的受试者中,心血管系统内不同过程之间的相互作用可被认为是微弱的,并且可以通过导出的模型很好地描述角度; (ii)在某些主题中,过程之间的交互作用的强度足够大,以至于角度图具有独特的结构,而我们的模型无法捕获该结构; (iii)通常可以检测到所涉及的流程之间的同步; (iv)瞬时半径相当混乱。

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