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SleePS: Sleep position tracking system for screening sleep quality by wristbands

机译:SleePS:睡眠位置跟踪系统,可通过腕带检查睡眠质量

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摘要

Sleep plays an important role in recovering physical and mental functions. Sleep position is known to affect sleep quality, hence, managing sleep position is beneficial for patients suffering from sleep disorders. For a long-term sleep management, we propose a sleep position tracking system using two wristbands. From the data collected from the wristbands, the system detects sleep positions and their changes. We define a sleep position motion model that consists of seven transitions between three sleep positions. Then, we propose pre-processing methods to overcome difficulties in analyzing sleep motion data, i.e., discontinuity, uncertainty, and time-variability. We tested experimental data in state-of-art pre-trained convolution neural networks by transfer learning. The accuracy of our proposed system was 96.03% and 88.02% in pilot experiment and on-site sleep experiment, respectively. Our experimental results demonstrate that the proposed system effectively and accurately keeps track of sleep positions without causing any inconvenience to users, and hence, serves as a key building block for cost-effective 24/7 sleep monitoring solutions
机译:睡眠在恢复身心功能方面起着重要作用。已知睡眠姿势会影响睡眠质量,因此,控制睡眠姿势对患有睡眠障碍的患者有益。对于长期睡眠管理,我们建议使用两个腕带的睡眠位置跟踪系统。根据从腕带收集的数据,系统可以检测睡眠位置及其变化。我们定义了一个睡眠位置运动模型,该模型由三个睡眠位置之间的七个过渡组成。然后,我们提出了预处理方法来克服分析睡眠运动数据的困难,即不连续性,不确定性和时变性。我们通过转移学习在最先进的预训练卷积神经网络中测试了实验数据。我们提出的系统在中试和现场睡眠实验中的准确度分别为96.03%和88.02%。我们的实验结果表明,所提出的系统可以有效,准确地跟踪睡眠位置,而不会给用户带来任何不便,因此,它是经济高效的24/7睡眠监测解决方案的关键组成部分

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