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首页> 外文期刊>Physical and Engineering Sciences in Medicine >Preterm?term birth classification using EMD?based time?domain features of single?channel electrohysterogram data
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Preterm?term birth classification using EMD?based time?domain features of single?channel electrohysterogram data

机译:早产?时间吗?electrohysterogram数据

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摘要

Preterm birth anticipation is a crucial task that can reduce both the rate and the complications of preterm birth. Electrohysterogram (EHG) or uterine electromyogram (EMG) data have shown that they can provide useful information for preterm birth anticipation. Four distinct time-domain features (mean absolute value, average amplitude change, difference in absolute standard deviation value, and log detector) that are commonly applied to EMG signal processing were utilized and investigated in this study. A single channel of EHG data was decomposed into its constituent components (i.e., into intrinsic mode functions) by using empirical mode decomposition (EMD) before their time-domain features were extracted. The time-domain features of the intrinsic mode functions of the EHG data associated with preterm and term births were applied for preterm-term birth classification by using a support vector machine with a radial basis function. The preterm-term birth classifications were validated by using 10-fold cross validation. From the computational results, it was shown that excellent preterm-term birth classification can be achieved by using single-channel EHG data. The computational results further suggested that the best overall performance concerning preterm-term birth classification was obtained when thirteen (out of sixteen) EMD-based time-domain features were applied. The best accuracy, sensitivity, specificity, and F-1-score achieved were 0.9382, 0.9130, 0.9634, and 0.9366, respectively.
机译:早产预测是一个至关重要的任务可以降低率和并发症早产。子宫肌电图(EMG)数据显示他们可以为早产提供有用的信息生期待。特性(平均绝对值,平均振幅变化,差异绝对的标准偏差值,一般和日志探测器)应用于EMG信号处理是利用和调查研究。EHG数据分解成其组成组件(例如,到固有模式函数)利用经验模态分解(EMD)在时域特征提取。的时域特征固有的模式EHG数据与早产有关的函数出生是申请preterm-term和术语通过使用一个支持向量分类诞生机器与径向基函数。preterm-term出生分类验证通过使用10倍交叉验证。结果表明,计算的结果优秀的preterm-term分类可以诞生通过使用单通道EHG数据。计算结果进一步的建议有关preterm-term最佳的总体性能13时出生分类了(十六)EMD-based时域特性被应用。特异性,F-1-score达到0.9382,分别为0.9130、0.9634和0.9366。

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