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RR时间序列时域指标不确定性的估计。

Estimation of the uncertainty in time domain indices of RR time series.

作者信息

García-González Miguel A, Fernández-Chimeno Mireya, Ramos-Castro J

机构信息

Research Centre on Biomedical Engineering, Department of Electronic Engineering, Universitat Politècnica de Catalunya, C/ Jordi Girona 1-3, Edifici C-4, 08034 Barcelona, Spain.

出版信息

IEEE Trans Biomed Eng. 2007 Mar;54(3):556-63. doi: 10.1109/TBME.2006.890513.

Abstract

A method for estimating the uncertainty in time-domain indices of RR time series is described. The method relies on the central limit theorem that states that the distribution of a sample average of independent samples has an uncertainty that asymptotically approaches to the sample standard deviation divided by the square root of the number of samples. Because RR time series cannot be characterized by a set of independent samples, we propose to estimate the uncertainty of indices by computing them in blocks that satisfy that the obtained partial indices are independent. We propose a methodology to search sets of independent partial indices and apply this methodology to the estimation of the uncertainty in the mean RR, SDRR, and r-msDD indices. The results show that the uncertainty can be higher than the 10% of the index for the SDRR and even higher for the r-msDD. Moreover, a statistical test for the difference of two indices is proposed.

摘要

描述了一种估计RR时间序列时域指标不确定性的方法。该方法依赖于中心极限定理,该定理指出独立样本的样本均值分布具有的不确定性渐近接近样本标准差除以样本数量的平方根。由于RR时间序列不能由一组独立样本表征,我们建议通过在满足所获得的部分指标相互独立的块中计算指标来估计其不确定性。我们提出了一种搜索独立部分指标集的方法,并将该方法应用于平均RR、SDRR和r-msDD指标不确定性的估计。结果表明,SDRR指标的不确定性可能高于指标值的10%,而r-msDD指标的不确定性甚至更高。此外,还提出了一种用于两个指标差异的统计检验方法。

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