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Analysis of cardiovascular time series using multivariate sample entropy: A comparison between normal and congestive heart failure subjects

机译:使用多元样本熵分析心血管时间序列:正常和充血性心力衰竭受试者之间的比较

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The cardiovascular (CV) system typically exhibits complex dynamical behavior, which is reflected not only within a single data channel, but more importantly across data channels. Multivariate sample entropy (MSE) has been proven as a useful tool to analyze both the within-and cross-channel coupled dynamics, providing an insight into the underlying system complexity and coupling relationship. In this study, the MSE method was used to monitor both the univariate and multivariate CV time series variability, focusing on identifying the differences between normal and congestive heart failure (CHF) subjects. Electrocardiogram, phonocardiogram and radial artery pressure waveforms were simultaneously recorded from 30 normal and 30 CHF subjects to determine three CV time series: RR interval, cardiac systolic time interval (STI) and pulse transit time (PTT). The MSE method was applied to univariate (RR, STI, PTT), bivariate (RR & STI, RR & PTT, STI & PTT) and trivariate (RR & STI & PTT) time series. The results showed that all MSE values in the CHF group were significantly lower than for the normal group (all P<;0.05, except for the univariate PTT series), which indicates that the complexity of univariate series decreased and the synchronization of multivariate series increased for CHF subjects. Moreover, the statistical significance between the two subject groups increased from using univariate to multivariate time series (with P<;0.05 to P<;0.001), confirming the advantage of multivariate analysis.
机译:心血管(CV)系统通常表现出复杂的动态行为,其不仅反映在单个数据信道中,而且反映在数据信道上更重要。多变量样本熵(MSE)已被证明是分析内部和交叉通道耦合动态的有用工具,提供对底层系统复杂性和耦合关系的洞察。在本研究中,MSE方法用于监测单变量和多变量的CV时间序列变异性,重点识别正常和充血性心力衰竭(CHF)受试者之间的差异。电磁图,音盲动脉压力波形同时从30个正常和30个CHF受试者记录,以确定三个CV时间序列:RR间隔,心脏收缩时间间隔(STI)和脉冲传输时间(PTT)。将MSE方法应用于单变量(RR,STI,PTT),Bifariate(RR&STI,RR&PTT,STI&PTT)和琐硅(RR&STI&PTT)时间序列。结果表明,CHF组中的所有MSE值显着低于正常组(除了单变量PTT系列外,除了单变量PTT系列外,所有P <0.05),这表明单变量系列的复杂性降低,多元系列的同步增加了对于CHF科目。此外,两个受试者之间的统计学意义增加了使用单变量与多变量时间序列(P <; 0.05至P <; 0.001),确认多变量分析的优势。

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