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A global quantification of normal sleep schedules using smartphone data

机译:使用智能手机数据对正常睡眠时间表进行全球量化

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摘要

The influence of the circadian clock on sleep scheduling has been studied extensively in the laboratory; however, the effects of society on sleep remain largely unquantified. We show how a smartphone app that we have developed, ENTRAIN, accurately collects data on sleep habits around the world. Through mathematical modeling and statistics, we find that social pressures weaken and/or conceal biological drives in the evening, leading individuals to delay their bedtime and shorten their sleep. A country’s average bedtime, but not average wake time, predicts sleep duration. We further show that mathematical models based on controlled laboratory experiments predict qualitative trends in sunrise, sunset, and light level; however, these effects are attenuated in the real world around bedtime. Additionally, we find that women schedule more sleep than men and that users reporting that they are typically exposed to outdoor light go to sleep earlier and sleep more than those reporting indoor light. Finally, we find that age is the primary determinant of sleep timing, and that age plays an important role in the variability of population-level sleep habits. This work better defines and personalizes “normal” sleep, produces hypotheses for future testing in the laboratory, and suggests important ways to counteract the global sleep crisis.
机译:昼夜节律时钟对睡眠计划的影响已在实验室中进行了广泛研究。然而,社会对睡眠的影响在很大程度上还没有被量化。我们将展示我们开发的智能手机应用程序ENTRAIN如何准确地收集有关全球睡眠习惯的数据。通过数学建模和统计,我们发现社交压力在晚上减弱和/或隐藏了生物驱动力,导致个人延迟就寝时间并缩短睡眠时间。一个国家的平均就寝时间而非平均唤醒时间可预测睡眠时间。我们进一步证明,基于受控实验室实验的数学模型可以预测日出,日落和光照水平的定性趋势。然而,这些影响在现实世界中就寝时间已减弱。此外,我们发现女性比男性排定更多的睡眠时间,并且报告称其通常暴露于室外光下的用户入睡的时间要比报告室内光的人早,并且睡眠时间更多。最后,我们发现年龄是睡眠时间的主要决定因素,并且年龄在人口水平睡眠习惯的可变性中起着重要作用。这项工作可以更好地定义和个性化“正常”睡眠,为未来的实验室测试提供假设,并提出应对全球睡眠危机的重要方法。

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