智能家居中阿尔茨海默病患者的决策支持

Shuai Zhang, S. McClean, B. Scotney, Xin Hong, C. Nugent, M. Mulvenna
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引用次数: 42

摘要

需要为患有阿尔茨海默病的老年人提供智能家居中的辅助技术,以支持“就地衰老”。在本文中,我们提出了一种概率学习方法来表征智能家居中多居民的行为模式。然后提供决策支持以监测和协助患者完成日常生活活动(ADL)。推理是基于学习到的轮廓和部分观察到的低级传感器信息。数据存储在基于homl(一种用于在智能家居中表示信息的基于XML的模式)的建议的雪花模式中。已经开发了一个实验室,用于研究为多个用户“制作饮料”的活动。我们的学习和决策支持方法的评估是在真实和模拟数据上进行的。我们的方法的潜力,以支持辅助生活和家庭健康监测阿尔茨海默病患者被证明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Decision Support for Alzheimer's Patients in Smart Homes
Assistive technology in smart homes for elderly people with Alzheimer's disease is needed to support 'aging in place'. In this paper, we propose a probabilistic learning approach to characterise behavioural patterns for multi-inhabitants in smart homes. Decision support is then provided to monitor and assist patients to complete activities of daily living (ADL). Reasoning is based on the learned profiles and partially observed low-level sensors information. Data are stored in the proposed snow-flake schema based on homeML (an XML based schema for representation of information within smart homes). A laboratory has been developed for studying activities of 'making drinks' for multiple users. Evaluations of our learning and decision support approach are carried out on both real and simulated data. The potential of our approach to support assistive living and home-health monitoring of Alzheimer's patients is demonstrated.
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