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Discrimination power of long-term heart rate variability measures for chronic heart failure detection

机译:长期心率变异性测量对慢性心力衰竭的鉴别能力

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摘要

The aim of this study was to investigate the discrimination power of standard long-term heart rate variability (HRV) measures for the diagnosis of chronic heart failure (CHF). The authors performed a retrospective analysis on four public Holter databases, analyzing the data of 72 normal subjects and 44 patients suffering from CHF. To assess the discrimination power of HRV measures, an exhaustive search of all possible combinations of HRV measures was adopted and classifiers based on Classification and Regression Tree (CART) method was developed, which is a non-parametric statistical technique. It was found that the best combination of features is: Total spectral power of all NN intervals up to 0.4 Hz (TOTPWR), square root of the mean of the sum of the squares of differences between adjacent NN intervals (RMSSD) and standard deviation of the averages of NN intervals in all 5-min segments of a 24-h recording (SDANN). The classifiers based on this combination achieved a specificity rate and a sensitivity rate of 100.00 and 89.74%, respectively. The results are comparable with other similar studies, but the method used is particularly valuable because it provides an easy to understand description of classification procedures, in terms of intelligible “if … then …” rules. Finally, the rules obtained by CART are consistent with previous clinical studies.
机译:这项研究的目的是调查标准的长期心率变异性(HRV)措施对慢性心力衰竭(CHF)的诊断能力。作者对四个公共Holter数据库进行了回顾性分析,分析了72名正常受试者和44例CHF患者的数据。为了评估HRV措施的区分能力,对HRV措施的所有可能组合进行了详尽搜索,并开发了基于分类和回归树(CART)方法的分类器,这是一种非参数统计技术。研究发现,特征的最佳组合是:所有NN间隔(最高0.4 Hz)的总频谱功率(TOTPWR),相邻NN间隔之间的差平方和的均方根的均方根(RMSSD)和24小时记录(SDANN)的所有5分钟片段中NN间隔的平均值。基于这种组合的分类器分别达到了100.00和89.74%的特异性率和敏感性。结果与其他类似研究可比,但所使用的方法特别有价值,因为它以易于理解的“如果……那么……”规则来提供对分类程序的易于理解的描述。最后,通过CART获得的规则与以前的临床研究一致。

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