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Undernutrition Prevention for Disabled and Elderly People in Smart Home with Bayesian Networks and RFID Sensors

机译:利用贝叶斯网络和RFID传感器预防智能家居中的残疾人和老年人的营养不足

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Undernutrition prevention or detection for disabled or elderly people must be performed rapidly to avoid irremediable consequences. In this paper a classification of uncertainties centered on a meal notion is first proposed. Two of these uncertainties are developed in a smart home and homecare context. Meal preparation probability is evaluated by a simulation based on Naive Bayesian Networks. To determine if a person is at risk of malnutrition or undernutrition, and to supervise prepared meal quality and quantity in terms of nutrients, the use of RFID tags is discussed, bringing many open issues for which additional sensors are proposed. This research work was initiated in a collaborative project called CaptHom.
机译:必须迅速进行针对残疾人或老年人的营养不良预防或检测,以避免不可挽回的后果。在本文中,首先提出了以用餐概念为中心的不确定性分类。这些不确定性中的两个是在智能家居和家庭护理环境中发展的。通过基于朴素贝叶斯网络的模拟来评估进餐概率。为了确定一个人是否有营养不良或营养不良的风险,并就营养成分对准备的餐食质量和数量进行监督,讨论了RFID标签的使用,这带来了许多未解决的问题,为此提出了额外的传感器。这项研究工作是在一个名为CaptHom的合作项目中发起的。

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