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首页> 外文期刊>Journal of supercomputing >Nonlinear characterization and complexity analysis of cardiotocographic examinations using entropy measures
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Nonlinear characterization and complexity analysis of cardiotocographic examinations using entropy measures

机译:心电图检查的非线性特征和复杂性分析的熵测度

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摘要

The nonlinear analysis of biological time series provides new possibilities to improve computer aided diagnostic systems, traditionally based on linear techniques. The cardiotocography (CTG) examination records simultaneously the fetal heart rate (FHR) and the maternal uterine contractions. This paper shows, at first, that both signals present nonlinear components based on the surrogate data analysis technique and exploratory data analysis with the return (lag) plot. After that, a nonlinear complexity analysis is proposed considering two databases, intrapartum (CTG-I) and antepartum (CTG-A) with previously identified normal and suspicious/pathological groups. Approximate Entropy (ApEn) and Sample Entropy (SampEn), which are signal complexity measures, are calculated. The results show that low entropy values are found when the whole examination is considered, ApEn = 0.3244 +/- 0.1078 and SampEn = 0.2351 +/- 0.0758 (average +/- standard deviation). Besides, no significant difference was found between the normal (ApEn = 0.3366 +/- 0.1250 and SampEn = 0.2532 +/- 0.0818) and suspicious/pathological (ApEn = 0.3420 +/- 0.1220 and SampEn = 0.2457 +/- 0.0850) groups for the CTG-A database. For a better analysis, this work proposes a windowed entropy calculation considering 5-min window. The windowed entropies presented higher average values (ApEn = 0.6505 +/- 0.2301 and SampEn = 0.5290 +/- 0.1188) for the CTG-A and (ApEn = 0.5611 +/- 0.1970 and SampEn = 0.4909 +/- 0.1782) for the CTG-I. The changes during specific long-term events show that entropy can be considered as a first-level indicator for strong FHR decelerations (ApEn = 0.1487 +/- 0.0341 and SampEn = 0.1289 +/- 0.0301), FHR accelerations (ApEn = 0.1830 +/- 0.1078 and SampEn = 0.1501 +/- 0.0703) and also for pathological behavior such as sinusoidal FHR (ApEn = 0.1808 +/- 0.0445 and SampEn = 0.1621 +/- 0.0381).
机译:生物时间序列的非线性分析为传统上基于线性技术的计算机辅助诊断系统的改进提供了新的可能性。心电图(CTG)检查同时记录胎儿心率(FHR)和孕妇子宫收缩。本文首先显示,这两种信号都基于替代数据分析技术和具有返回(滞后)图的探索性数据分析而呈现非线性分量。之后,提出了一个非线性复杂性分析,其中考虑了两个数据库,分别是产前(CTG-I)和产前(CTG-A),这些数据库具有先前确定的正常和可疑/病理学组。计算信号复杂度的近似熵(ApEn)和样本熵(SampEn)。结果表明,在整个检查过程中,熵值较低,ApEn = 0.3244 +/- 0.1078和SampEn = 0.2351 +/- 0.0758(平均+/-标准偏差)。此外,正常(ApEn = 0.3366 +/- 0.1250和SampEn = 0.2532 +/- 0.0818)与可疑/病理(ApEn = 0.3420 +/- 0.1220和SampEn = 0.2457 +/- 0.0850)组之间没有发现显着差异。 CTG-A数据库。为了进行更好的分析,这项工作提出了考虑5分钟窗口的窗口熵计算。窗口熵表示CTG-A的平均值较高(ApEn = 0.6505 +/- 0.2301和SampEn = 0.5290 +/- 0.1188),CTG(ApEn = 0.5611 +/- 0.1970和SampEn = 0.4909 +/- 0.1782) -一世。在特定的长期事件中的变化表明,可以将熵视为强烈的FHR减速度(ApEn = 0.1487 +/- 0.0341和SampEn = 0.1289 +/- 0.0301),FHR加速度(ApEn = 0.1830 + / -0.1078和SampEn = 0.1501 +/- 0.0703),也适用于病理学行为,例如正弦FHR(ApEn = 0.1808 +/- 0.0445和SampEn = 0.1621 +/- 0.0381)。

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