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Rehabilitation Risk Management: Enabling Data Analytics with Quantified Self and Smart Home Data

机译:康复风险管理:通过量化的自我和智能家庭数据启用数据分析

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A variety of acute and chronic diseases require rehabilitation at home after treatment. Outpatient rehabilitation is crucial for the quality of the medical outcome but is mainly performed without medical supervision. Non-Compliance can lead to severe health risks and readmission to the hospital. While the patient is closely monitored in the hospital, methods and technologies to identify risks at home have to be developed. We analyze state-of-the-art monitoring systems and technologies and show possibilities to transfer these technologies into rehabilitation monitoring. For this purpose, we analyze sensor technology from the field of Quantified Self and Smart Homes. The available sensor data from this consumer grade technology is summarized to give an overview of the possibilities for medical data analytics. Subsequently, we show a conceptual roadmap to transfer data analytics methods to sensor based rehabilitation risk management.
机译:治疗后,各种急性和慢性疾病需要在家中康复。门诊康复对于医疗结果的质量至关重要,但主要在没有医疗监督的情况下进行。不合规可以导致医院的严重健康风险和入院。虽然患者在医院密切监测,但必须制定在家中识别风险的方法和技术。我们分析最先进的监测系统和技术,并表明将这些技术转移到康复监测中的可能性。为此目的,我们从量化的自我和智能家庭领域分析传感器技术。总结了来自该消费级技术的可用传感器数据,以概述医疗数据分析的可能性。随后,我们展示了一种概念路线图,可以将数据分析方法转移到基于传感器的康复风险管理。

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