An approach for recommending personalized contents for homecare users in the context of health 2.0

F. M. M. Neto, Alisson A. L. Costa, Enio L. Sombra, Jonathan D. C. Moreira, J. Samper, Ricardo A. M. Valentim, R. Nascimento, C. Flores
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引用次数: 7

Abstract

This paper proposes a content recommendation mechanism as part of a model for implementing ubiquitous learning for supporting people with chronic diseases who are treated at home, so that they can learn more about treatments for their disease. In the proposed approach, the learning takes place based on day-to-day activities and real situations. In this case, the model supports the development of tools that can learn about the user's context, based on data obtained via sensors installed on users or in their home, as well as data supplied directly by the user interface of their mobile devices, and data provided by the healthcare team, and, after that, recommend contents about their diseases.
一种在健康2.0环境下为家庭护理用户推荐个性化内容的方法
本文提出了一种内容推荐机制,作为实施泛在学习模型的一部分,以支持在家接受治疗的慢性病患者,使他们能够更多地了解疾病的治疗方法。在建议的方法中,学习是基于日常活动和实际情况进行的。在这种情况下,该模型支持开发工具,可以根据安装在用户身上或家中的传感器获得的数据,以及移动设备用户界面直接提供的数据,以及医疗团队提供的数据,了解用户的情况,然后推荐有关其疾病的内容。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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