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首页> 外文期刊>EURASIP journal on bioinformatics and systems biology >40-Hz ASSR fusion classification system for observing sleep patterns
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40-Hz ASSR fusion classification system for observing sleep patterns

机译:用于观察睡眠模式的40Hz ASSR融合分类系统

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This paper presents a fusion-based neural network (NN) classification algorithm for 40-Hz auditory steady state response (ASSR) ensemble averaged signals which were recorded from eight human subjects for observing sleep patterns (wakefulness W 0 and deep sleep N 3 or slow wave sleep SWS ). In SWS , sensitivity to pain is the lowest relative to other sleep stages and arousal needs stronger stimuli. 40-Hz ASSR signals were extracted by averaging over 900 sweeps on a 30-s window. Signals generated during N 3 deep sleep state show similarities to those produced when general anesthesia is given to patients during clinical surgery. Our experimental results show that the automatic classification system used identifies sleep states with an accuracy rate of 100% when the training and test signals come from the same subjects while its accuracy is reduced to 97.6%, on average, when signals are used from different training and test subjects. Our results may lead to future classification of consciousness and wakefulness of patients with 40-Hz ASSR for observing the depth and effects of general anesthesia (DGA). Keywords Adaptive classification Observing sleep patterns Features-level fusion ASSR extraction Depth of general anesthesia (DGA)
机译:本文提出了一种基于融合的神经网络(NN)分类算法,用于从八名人类受试者中记录的40 Hz听觉稳态响应(ASSR)集合平均信号,以观察睡眠模式(清醒度W 0 和深度睡眠N 3 或慢波睡眠SWS)。在SWS中,相对于其他睡眠阶段,对疼痛的敏感性最低,而唤醒需要更强的刺激。通过在30秒的窗口中平均进行900次扫描,提取40 Hz的ASSR信号。 N 3 深度睡眠状态期间产生的信号与临床手术中对患者进行全身麻醉时产生的信号相似。我们的实验结果表明,当训练和测试信号来自同一受试者时,所使用的自动分类系统以100%的准确率识别睡眠状态,而在不同训练中使用信号时,其准确度平均降低到97.6%和测试对象。我们的结果可能会导致将来对40 Hz ASSR患者的意识和觉醒进行分类,以观察全身麻醉(DGA)的深度和效果。关键词自适应分类观察睡眠模式特征级融合ASSR提取全身麻醉深度(DGA)。

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