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Estimation of sleep posture using a patch-type accelerometer based device

机译:使用基于贴片式加速度计的设备估算睡眠姿势

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In this study, we developed a sleep posture estimation algorithm using 3-axis accelerometer signals measured from a patch-type sensor. Firstly, we inspected the characteristics of accelerometer signals for different sleep postures. Based on the results, we established decision rules to estimate 5 postures containing supine, left, right lateral, prone postures, and non-sleep postures such as sitting and standing. The algorithm was tested by the data from thirteen subjects during night time PSG. As a result, the algorithm estimated sleep postures with an average agreement of 99.16%, and cohen's kappa of 0.98 compared with reference sleep postures determined by position sensor and video recording. The proposed method with the device could be used as supportive purpose in routine PSG study and out-of-hospital environment.
机译:在这项研究中,我们开发了一种使用从贴片型传感器测量的3轴加速度计信号的睡眠姿势估计算法。首先,我们检查了不同睡眠姿势下加速度计信号的特征。根据结果​​,我们建立了决策规则,以估计5种姿势,包括仰卧,左侧,右侧,俯卧姿势和非睡眠姿势(例如坐着和站着)。在夜间PSG期间,通过来自13个受试者的数据对算法进行了测试。结果,与由位置传感器和视频记录确定的参考睡眠姿势相比,该算法估计睡眠姿势的平均一致性为99.16%,科恩kappa为0.98。该装置的建议方法可作为常规PSG研究和院外环境的支持目的。

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