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Stress Monitoring Based on Stochastic Fuzzy Analysis of Heartbeat Intervals

机译:基于心跳间隔的随机模糊分析的压力监测

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Quantifying stress levels of an individual based on a mathematical analysis of real-time physiological data measurements is challenging. This study suggests a stochastic fuzzy analysis method to evaluate the short time series of R–R intervals (time intervals between consecutive heart beats) for a quantification of the stress level. The 5-min-long series of R–R intervals recorded under a given stress level are modeled by a stochastic fuzzy system. The stochastic model of heartbeat intervals is individual specific and corresponds to a particular stress level. Once the different heartbeat interval models are available for an individual, an analysis of the given R–R interval series generated under an unknown stress level is performed by a stochastic interpolation of the models. The stress estimation method has been implemented in a mobile telemedical application employing an e-health system for an efficient and cost-effective monitoring of patients while at home or at work. The experiments involve 50 individuals whose stress scores were assessed at different times of the day. The subjective rating scores showed a high correlation with the values predicted by the proposed analysis method.
机译:基于实时生理数据测量的数学分析来量化一个人的压力水平具有挑战性。这项研究提出了一种随机的模糊分析方法,可以评估R-R间隔的短时间序列(连续心跳之间的时间间隔)以量化压力水平。在给定应力水平下记录的5分钟长的R–R间隔序列是由随机模糊系统建模的。心跳间隔的随机模型是个人特定的,并且对应于特定的压力水平。一旦每个人都有不同的心跳间隔模型,就可以通过模型的随机插值来分析在未知应力水平下生成的给定R-R间隔序列。压力估计方法已在采用电子医疗系统的移动远程医疗应用中实现,以便在家里或工作中对患者进行有效且具有成本效益的监控。实验涉及50个人,他们的压力评分是在一天的不同时间进行评估的。主观评分得分与所提出的分析方法预测的值具有高度相关性。

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