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Data driven multi-agent m-health system to characterize the daily activities of elderly people

机译:数据驱动的多主体移动医疗系统可表征老年人的日常活动

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With the continuous growing of aging population, the society is facing new challenges, namely the implementation of healthcare services for older people, as well as the promotion of the active aging and well-being. These challenges imply the optimization of these services through biomedical, physical, psychological and socio-environmental interventions. ICT technologies can support the implementation of these healthcare services, e.g., the use of wearable devices to collect the physiological data, cloud technology to store big amounts of data and advanced data analytics algorithms to extract valuable conclusions and actionable knowledge. This work proposes a multi-agent system driven data analysis approach to characterize the daily physiological conditions of a group of elderly people institutionalized in a nursing home, supporting the healthcare professionals to monitor their behavior and promote an active aging. The individual' data were collected by a set of Fitbit Charge HR wristbands and analyzed by clustering algorithms, running in the distributed autonomous agents, allowing to identify and characterize the individuals' daily habits and physiological conditions.
机译:随着人口老龄化的不断增长,社会面临着新的挑战,即为老年人提供医疗保健服务以及促进积极的老龄化和福祉。这些挑战意味着通过生物医学,身体,心理和社会环境干预措施来优化这些服务。 ICT技术可以支持这些医疗保健服务的实施,例如,使用可穿戴设备收集生理数据,使用云技术存储大量数据以及使用高级数据分析算法来提取有价值的结论和可操作的知识。这项工作提出了一种多代理系统驱动的数据分析方法,以表征在疗养院住院的一组老年人的日常生理状况,支持医疗保健专业人员监控其行为并促进活跃的衰老。通过一组Fitbit Charge HR腕带收集个人数据,并通过在分散的自治代理中运行的聚类算法进行分析,从而识别并表征个人的日常习惯和生理状况。

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