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Improved Sleep Detection Through the Fusion of Phone Agent and Wearable Data Streams

机译:通过融合电话代理和可穿戴数据流来改善睡眠检测

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Commercial grade activity trackers and phone agents are increasingly being deployed as sensors for sleep in large scale, longitudinal designs. In general, wearables detect sleep through diminished movement and decreased heart rate (HR), while phone agents look for lack of user input, movement, sound or light. However, recent literature suggests that commercial-grade wearables and phone apps vary greatly in the accuracy of sleep predictions. Constant innovation in wearables and proprietary algorithms further make it difficult to evaluate their efficacy for scientific study, especially outside of the laboratory. In a longitudinal study, we find that wearables cannot detect when a person is laying still but using their phones, a common behavior, overestimating sleep when compared to self-reports. Therefore, we propose that fusing wearables and phone sensors allows for more accurate sleep detection by capitalizing on the benefits of both streams: combining the movement detection of wearables with the technology usage detected by cell phones. We determine that fusing phone activity to wearables can generate better models of self-reported sleep than either stream alone, and test models in two separate datasets.
机译:商业级活动跟踪器和电话代理越来越多地部署为大规模睡眠的传感器,纵向设计。通常,可穿戴设备通过减少的运动检测睡眠并降低心率(HR),而手机代理寻找缺乏用户输入,运动,声音或光线。然而,最近的文献表明,商业级可穿戴物和手机应用在睡眠预测的准确性方面变化很大。可穿戴设备和专有算法的不断创新进一步使其难以评估它们对科学研究的疗效,特别是在实验室之外。在一个纵向研究中,我们发现可穿戴设备无法检测到一个人仍然仍然仍然仍然使用他们的手机,共同行为,与自我报告相比睡眠高估睡眠。因此,我们提出了融合的可穿戴设备和电话传感器通过利用两个流的益处来进行更准确的睡眠检测:将可穿戴性的移动检测与手机检测到的技术使用相结合。我们确定融合手机活动可穿戴物品可以生成比单独流的更好的自我报告睡眠模型,并在两个单独的数据集中测试模型。

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