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Data for Healthy Decisions: Computation for Passive Monitoring of Medium-Risk Individuals at Home

机译:健康决策数据:在家中的中风险的被动监测的计算

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Many senior adults living independently are at some risk of severe health problems, and have adult caregivers who do not live with them. There is a need for positive indicators of well being to be available to those caregivers. Technology that requires the senior adult to actively perform tasks, such as filling out logs or hooking up sensors, may not be effective, due to the burden on the individual leading to non-compliance. What is needed is technology that is largely passive, installed unobtrusively in the home, that can generate the data needed for calculating indicators of well being. Such data is useful to remote caregivers as well as to medical professionals. One example of such a system, a prototype used to passively monitor and compute nocturnal trips to the bathroom, is presented. Data were collected from 7 senior adults living alone over a four-week period. Computational challenges were significant. Effectiveness of such technology requires social acceptance, ease of use, data security, and calculation of reliable, actionable metrics.
机译:独立生活的许多高级成年人都有一些严重的健康问题的风险,并有成年人护理人员与他们一起生活。需要对这些护理人员提供良好指标的正面指标。需要高级成年人积极执行任务的技术,例如填写日志或挂钩传感器,可能没有有效,因为个人导致不合规的负担。所需要的是技术在很大程度上是被动的,在家中安装不引人注目,可以生成计算井的指标所需的数据。这些数据对偏远的护理人员以及医学专业人员有用。提出了这样一个系统的一个例子,呈现用于被动监测和计算到浴室的夜间跳闸的原型。从4周内独自生活的高级成年人收集数据。计算挑战是显着的。这种技术的有效性需要社会验收,易用性,数据安全性和可靠,可操作的度量的计算。

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