Sleep spindle detection in sleep EEG signal using sparse bump modeling

M. Najafi, Zahra Ghanbari, B. Molaee-Ardekani, M. Shamsollahi, T. Penzel
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引用次数: 4

Abstract

Sleep spindle is the hallmark of second stage of sleep in human being, which is defined as a rhythmic sequence with waxing and waning waves, whose frequency is approximately between 8 to 14 Hz, and its time duration is between 0.5 to 2 seconds. Bump modeling is a method for extracting regions with higher amounts of energy in a related time-frequency map. The bump model of the sleep spindle consists of a group of high energy bumps concentrating in approximately 8 to 14 Hz frequency band. In this study, it will be shown that the power of bumps of EEG can be used in automated detection of sleep spindle. The presented method sensitivity is 99.41% which shows high correctly detection rate, and its error detection ratio is 14.51%, which demonstrates the low dependency of the presented algorithm to the subjects, and its low false detection ratio.
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稀疏凹凸建模在睡眠脑电图信号中的睡眠纺锤波检测
睡眠纺锤波是人类第二阶段睡眠的标志,它被定义为一种有节奏的起伏波序列,其频率大约在8 ~ 14hz之间,持续时间在0.5 ~ 2秒之间。凹凸建模是一种在相关时频图中提取具有较高能量的区域的方法。睡眠纺锤体的颠簸模型由一组高能量的颠簸组成,这些颠簸集中在大约8 ~ 14hz的频带内。在本研究中,将证明脑电图的起伏功率可以用于睡眠纺锤体的自动检测。该方法灵敏度为99.41%,正确检出率高;错误率为14.51%,对被试的依赖性低,误检率低。
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