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Multiscale analysis of heart rate variability in non-stationary environments

机译:非平稳环境下心率变异性的多尺度分析

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摘要

Heart rate variability (HRV) is highly non-stationary, even if no perturbing influences can be identified during the recording of the data. The non-stationarity becomes more profound when HRV data are measured in intrinsically non-stationary environments, such as social stress. In general, HRV data measured in such situations are more difficult to analyze than those measured in constant environments. In this paper, we analyze HRV data measured during a social stress test using two multiscale approaches, the adaptive fractal analysis (AFA) and scale-dependent Lyapunov exponent (SDLE), for the purpose of uncovering differences in HRV between chronic fatigue syndrome (CFS) patients and their matched-controls. CFS is a debilitating, heterogeneous illness with no known biomarker. HRV has shown some promise recently as a non-invasive measure of subtle physiological disturbances and trauma that are otherwise difficult to assess. If the HRV in persons with CFS are significantly different from their healthy controls, then certain cardiac irregularities may constitute good candidate biomarkers for CFS. Our multiscale analyses show that there are notable differences in HRV between CFS and their matched controls before a social stress test, but these differences seem to diminish during the test. These analyses illustrate that the two employed multiscale approaches could be useful for the analysis of HRV measured in various environments, both stationary and non-stationary.
机译:心率变异性(HRV)高度不稳定,即使在数据记录期间未发现干扰影响也是如此。当在本质上非平稳的环境(例如社会压力)中测量HRV数据时,非平稳性变得更加深刻。通常,在这种情况下测得的HRV数据比在恒定环境下测得的HRV数据更难分析。在本文中,我们分析了社会压力测试期间使用两种多尺度方法(自适应分形分析(AFA)和比例依赖的Lyapunov指数(SDLE))测得的HRV数据,目的是发现慢性疲劳综合征(CFS)之间的HRV差异)患者及其匹配的对照。 CFS是一种令人衰弱的异质性疾病,没有已知的生物标志物。 HRV作为一种微创的生理紊乱和创伤的非侵入性测量方法最近显示出了一些希望,否则很难评估。如果CFS患者的HRV与健康对照显着不同,则某些心脏异常可能是CFS的良好候选生物标志物。我们的多尺度分析表明,在进行社会压力测试之前,CFS与相匹配的对照组之间的HRV存在显着差异,但在测试期间这些差异似乎正在减少。这些分析表明,采用的两种多尺度方法可能对在固定和非固定两种环境下测量的HRV有用。

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