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Sleep-wake stages classification based on heart rate variability

机译:基于心率变异性的睡眠-觉醒阶段分类

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摘要

This paper presents a method aimed at classification of the sleep-wake stages using only the electrocardiogram (ECG) records. The feature extraction stage described in this paper was performed using method of Heart Rate Variability analysis (HRV). These features used in this study are based on QRS detection times. Therefore, this detection was generated automatically for all recordings using a new algorithm based on the detection of singularities through the local maxima in order to construct the RR series. We illustrate the performance of this method on an MIT/BIH Polysomnographic Database using Extreme learning machine (ELM).
机译:本文提出了一种仅使用心电图(ECG)记录进行睡眠-觉醒阶段分类的方法。本文所述的特征提取阶段是使用心率变异性分析(HRV)方法执行的。本研究中使用的这些功能基于QRS检测时间。因此,使用新算法基于通过局部最大值的奇异点检测为所有记录自动生成此检测,以构建RR系列。我们在使用极限学习机(ELM)的MIT / BIH多导睡眠图数据库上说明了该方法的性能。

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