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A telehealth framework for dementia care: an ADLs patterns recognition model for patients based on NILM

机译:痴呆症远程医疗框架:基于NILM的患者ADLs模式识别模型

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The ageing of the population and the increasing number of patients with dementia in modern society undoubtedly put tremendous pressure on the medical system. Providing telehealth care for potential patients and patients with dementia can reduce the burden on both the health system and care-givers. This paper describes a telehealth framework for dementia early detection and dementia care. Specifically, we propose an improved deep neural network model for Non-Intrusive Load Monitoring (NILM), which disaggregates the household's overall energy usage into those of individual appliances based on the sequence-to-point model and transfer learning. The daily behaviour regularities of patients are then inferred by combining principal component analysis and $K$-means clustering based on the disaggregated appliance-level consumptions. Experiments show that the proposed model can significantly improve training efficiency and maintain load disaggregation accuracy, and the inferred behaviour regularities have great potential to be used as useful inputs and prior knowledge to the dementia condition detection platform for early detection and real-time monitoring of patient's conditions.
机译:人口老龄化和现代社会痴呆症患者数量的增加无疑给医疗系统带来了巨大的压力。为潜在患者和痴呆症患者提供远程医疗可以减轻卫生系统和护理人员的负担。本文描述了一个用于痴呆症早期检测和痴呆症护理的远程医疗框架。具体而言,我们提出了一种改进的用于非侵入性负荷监测(NILM)的深度神经网络模型,该模型基于序列到点模型和转移学习,将家庭的总体能耗分解为单个家电的能耗。然后,结合主成分分析和回归分析,推断出患者的日常行为规律

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