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A Real-Time Analysis Method for Pulse Rate Variability Based on Improved Basic Scale Entropy

机译:基于改进的基本尺度熵的脉率变异性实时分析方法

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摘要

Base scale entropy analysis (BSEA) is a nonlinear method to analyze heart rate variability (HRV) signal. However, the time consumption of BSEA is too long, and it is unknown whether the BSEA is suitable for analyzing pulse rate variability (PRV) signal. Therefore, we proposed a method named sliding window iterative base scale entropy analysis (SWIBSEA) by combining BSEA and sliding window iterative theory. The blood pressure signals of healthy young and old subjects are chosen from the authoritative international database MIT/PhysioNet/Fantasia to generate PRV signals as the experimental data. Then, the BSEA and the SWIBSEA are used to analyze the experimental data; the results show that the SWIBSEA reduces the time consumption and the buffer cache space while it gets the same entropy as BSEA. Meanwhile, the changes of base scale entropy (BSE) for healthy young and old subjects are the same as that of HRV signal. Therefore, the SWIBSEA can be used for deriving some information from long-term and short-term PRV signals in real time, which has the potential for dynamic PRV signal analysis in some portable and wearable medical devices.
机译:基本尺度熵分析(BSEA)是一种用于分析心率变异性(HRV)信号的非线性方法。然而,BSEA的时间消耗太长,并且未知BSEA是否适合于分析脉搏率可变性(PRV)信号。因此,我们结合BSEA和滑窗迭代理论,提出了一种称为滑窗迭代基础尺度熵分析(SWIBSEA)的方法。从权威的国际数据库MIT / PhysioNet / Fantasia选择健康的年轻人和老年人的血压信号,以产生PRV信号作为实验数据。然后,用BSEA和SWIBSEA分析实验数据。结果表明,SWIBSEA减少了时间消耗并减少了缓冲区高速缓存空间,同时它获得了与BSEA相同的熵。同时,健康年轻人和老年人的基本尺度熵(BSE)的变化与HRV信​​号相同。因此,SWIBSEA可用于实时从长期和短期PRV信号中获取某些信息,这在某些便携式和可穿戴医疗设备中具有动态PRV信号分析的潜力。

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