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Measuring changes in activity patterns during a norovirus epidemic at a retirement community

机译:退休社区在诺罗病毒流行病中测量活动模式的变化

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Ubiquitous and unobtrusive in-home monitoring has the potential to detect physical and mental decline earlier and with higher precision than current clinical methods. However, given that this field is in its infancy, the specific metrics through which these changes are detected are not well defined. The work presented here offers room-transitions, the act of physically moving from one area of a home to another, as a quantifiable measure for total daily activity that can be inferred from a network of passive infrared sensors. We describe a method to calculate this value from raw sensor data and validate this method on an acute health event: an 18-day quarantine at a retirement community that was initiated in the midst of a norovirus outbreak. The results from this case study show that room-transition values increased significantly as subjects remained in their homes during the quarantine, demonstrating a mean increase of 12 transitions per day. Furthermore, a time-adjusted measure of room-transitions is examined that did not significantly change across the group. Finally, the healthy subjects and those that fell ill were analyzed separately, and significant differences were found between them for both the raw and time-adjusted metrics. As detection algorithms improve, these types of measures may be useful in the early detection of a change in health status.
机译:无处不在的和不引人注目的家庭监测有可能检测早期的身心下降,并且比目前的临床方法更高。但是,鉴于此字段处于初期,检测到这些变化的特定指标不是很好的。这里介绍的工作提供了房间的转变,从一个家庭到另一个的一个区域物理移动,作为日常总活性可量化的指标,可以从被动红外传感器网络来推断的行为。我们描述了一种从原始传感器数据计算此值的方法,并在急性健康事件上验证此方法:在诺罗维病毒爆发中启动的退休社区中的18天检疫。本案例研究的结果表明,随着检疫期间的家园留在家庭中的受试者,房间过渡值显着增加,表明每天12个过渡的平均增加。此外,检查了一段时间调整的房间过渡量,这在该组上没有显着改变。最后,分别分别分析了健康的科目和下降的人,他们在原始和时间调整后的指标之间发现了显着的差异。由于检测算法改善,这些类型的措施可用于早期检测健康状况的变化。

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