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使用随机森林进行腕戴加速度计数据的睡眠分类。

Sleep classification from wrist-worn accelerometer data using random forests.

机构信息

Netherlands eScience Center, Amsterdam, The Netherlands.

Department of Sleep and Cognition, Netherlands Institute for Neuroscience, Amsterdam, The Netherlands.

出版信息

Sci Rep. 2021 Jan 8;11(1):24. doi: 10.1038/s41598-020-79217-x.

Abstract

Accurate and low-cost sleep measurement tools are needed in both clinical and epidemiological research. To this end, wearable accelerometers are widely used as they are both low in price and provide reasonably accurate estimates of movement. Techniques to classify sleep from the high-resolution accelerometer data primarily rely on heuristic algorithms. In this paper, we explore the potential of detecting sleep using Random forests. Models were trained using data from three different studies where 134 adult participants (70 with sleep disorder and 64 good healthy sleepers) wore an accelerometer on their wrist during a one-night polysomnography recording in the clinic. The Random forests were able to distinguish sleep-wake states with an F1 score of 73.93% on a previously unseen test set of 24 participants. Detecting when the accelerometer is not worn was also successful using machine learning ([Formula: see text]), and when combined with our sleep detection models on day-time data provide a sleep estimate that is correlated with self-reported habitual nap behaviour ([Formula: see text]). These Random forest models have been made open-source to aid further research. In line with literature, sleep stage classification turned out to be difficult using only accelerometer data.

摘要

在临床和流行病学研究中,都需要准确且低成本的睡眠测量工具。为此,可穿戴加速度计被广泛应用,因为它们不仅价格低廉,而且还能对运动提供相当准确的估计。从高分辨率加速度计数据中分类睡眠的技术主要依赖于启发式算法。在本文中,我们探索了使用随机森林检测睡眠的潜力。使用来自三项不同研究的数据来训练模型,共有 134 名成年参与者(70 名患有睡眠障碍,64 名睡眠良好)在诊所进行一整夜多导睡眠记录期间将加速度计戴在手腕上。随机森林在之前未见过的 24 名参与者的测试集中,以 73.93%的 F1 得分为睡眠-觉醒状态提供了区分。使用机器学习([公式:见文本])成功地检测到加速度计未佩戴的情况,并且当与我们在白天数据上的睡眠检测模型结合使用时,提供了与自我报告的习惯性午睡行为相关的睡眠估计([公式:见文本])。这些随机森林模型已经开源,以帮助进一步的研究。与文献一致的是,仅使用加速度计数据,睡眠阶段分类结果证明很困难。

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