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Heart Rate Regulation Processed Through Wavelet Analysis and Change Detection: Some Case Studies

机译:通过小波分析和变化检测处理心率调节:一些案例研究

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Heart rate variability (HRV) is an indicator of the regulation of the heart, see Task Force (Circulation 93(5):1043–1065, 1996). This study compares the regulation of the heart in two cases of healthy subjects within real life situations: Marathon runners and shift workers. After an update on the state of the art on HRV processing, we specify our probabilistic model: We choose modeling heartbeat series by locally stationary Gaussian process (Dahlhaus in Ann Stat 25, 1997). HRV is then processed by the combination of two statistical methods: (1) Continuous wavelet transform for calculating the spectral density energy in the high frequency (HF) and low frequency (LF) bands and (2) Change point analysis to detect changes of heart regulation. Next, we plot the variations of the HF and LF energy in extreme conditions for both populations. This puts in light, that physical activities (rest, moderate sport, marathon race) can be ordered in a logical continuum. This allows to define a new index based on HF and LF energy that is log HF + log LF which appears relevant to measure HR regulation. The results obtained are pertinent but have to be completed by further studies.
机译:心率变异性(HRV)是心脏调节的指标,请参阅工作组(Circulation 93(5):1043-1065,1996)。这项研究比较了现实生活中两种健康受试者的情况:马拉松运动员和轮班工人。更新了HRV处理的最新技术后,我们指定了概率模型:我们选择通过局部平稳的高斯过程对心跳序列进行建模(Dahlhaus,Ann Stat 25,1997)。然后通过两种统计方法的组合来处理HRV:(1)连续小波变换,用于计算高频(HF)和低频(LF)频段的频谱密度能量,以及(2)改变点分析以检测心脏的变化规。接下来,我们绘制了两种人群在极端条件下HF和LF能量的变化。这说明,可以按照逻辑连续性来安排体育活动(休息,中等运动,马拉松比赛)。这允许基于HF和LF能量定义一个新指标,即log HF + log LF,这似乎与测量HR调节有关。获得的结果是相关的,但必须通过进一步的研究来完成。

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