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How many sleep stages do we need for an efficient automatic insomnia diagnosis?

机译:一个有效的自动失眠诊断需要多少个睡眠阶段?

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Tools used by clinicians to diagnose and treat insomnia typically include sleep diaries and questionnaires. Overnight polysomnography (PSG) recordings are used when the initial diagnosis is uncertain due to the presence of other sleep disorders or when the treatment, either behavioral or pharmacologic, is unsuccessful. However, the analysis and the scoring of PSG data are time-consuming. To simplify the diagnosis process, in this paper we have proposed an efficient insomnia detection algorithm based on a central single electroencephalographic (EEG) channel (C3) using only deep sleep. We also analyzed several spectral and statistical EEG features of good sleeper controls and subjects suffering from insomnia in different sleep stages to identify the features that offered the best discrimination between the two groups. Our proposed algorithm was evaluated using EEG recordings from 19 patients diagnosed with primary insomnia (11 females, 8 males) and 16 matched control subjects (11 females, 5 males). The sensitivity of our algorithm is 92%, the specificity is 89.9%, the Cohen's kappa is 0.81 and the agreement is 91%, indicating the effectiveness of our proposed method.
机译:临床医生用于诊断和治疗失眠的工具通常包括睡眠日记和问卷。当由于其他睡眠障碍的存在而无法确定最初的诊断或行为或药物治疗均不成功时,可使用隔夜多导睡眠图(PSG)记录。但是,PSG数据的分析和评分非常耗时。为了简化诊断过程,在本文中,我们提出了一种仅使用深度睡眠的基于中央单脑电图(EEG)通道(C3)的有效失眠检测算法。我们还分析了良好的睡眠者对照以及在不同睡眠阶段患有失眠症的受试者的几种频谱和统计脑电图特征,以找出在两组之间提供最佳区分的特征。我们对19名被诊断为原发性失眠的患者(11名女性,8名男性)和16名匹配的对照组(11名女性,5名男性)的脑电图记录对我们提出的算法进行了评估。该算法的灵敏度为92%,特异性为89.9%,Cohen的kappa为0.81,一致性为91%,表明了该方法的有效性。

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