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Sleep Staging Based on Signals Acquired Through Bed Sensor

机译:基于通过床传感器获取的信号的睡眠分期

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We describe a system for the evaluation of the sleep macrostructure on the basis of Emfit sensor foils placed into bed mattress and of advanced signal processing. The signals on which the analysis is based are heart-beat interval (HBI) and movement activity obtained from the bed sensor, the relevant features and parameters obtained through a time-variant autoregressive model (TVAM) used as feature extractor, and the classification obtained through a hidden Markov model (HMM). Parameters coming from the joint probability of the HBI features were used as input to a HMM, while movement features are used for wake period detection. A total of 18 recordings from healthy subjects, including also reference polysomnography, were used for the validation of the system. When compared to wake–nonrapid-eye-movement (NREM)–REM classification provided by experts, the described system achieved a total accuracy of $79pm 9$% and a kappa index of $0.43pm 0.17$ with only two HBI features and one movement parameter, and a total accuracy of $79pm 10$% and a kappa index of $0.44pm 0.19$ with three HBI features and one movement parameter. These results suggest that the combination of HBI and movement features could be a suitable alternative for sleep staging with the advantage of low cost and simplicity.
机译:我们描述了一种基于放置在床褥上的Emfit传感器箔和先进的信号处理技术来评估睡眠宏观结构的系统。分析所基于的信号是从床传感器获得的心跳间隔(HBI)和运动活动,通过用作特征提取器的时变自回归模型(TVAM)获得的相关特征和参数以及获得的分类通过隐马尔可夫模型(HMM)。来自HBI特征的联合概率的参数用作HMM的输入,而运动特征则用于唤醒周期检测。来自健康受试者的总共18条记录,包括参考的多导睡眠监测,被用于验证系统。与专家提供的非快速眼动(NREM)-REM分类相比,所描述的系统仅具有两个HBI功能和一个运动,实现了79pm $ 9 %%的总准确度和0.43pm 0.17 $的kappa指数。参数,总精度为$ 79pm 10 $%,kappa指数为$ 0.44pm 0.19 $,具有三个HBI功能和一个运动参数。这些结果表明,HBI和运动功能的结合可能具有低成本和简单性的优点,是睡眠分期的合适选择。

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