A model for generating proactive context-aware recommendations in e-Learning systems

Daniel Gallego, E. Barra, S. Aguirre, G. Huecas
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引用次数: 32

Abstract

A proactive recommender system pushes recommendations to the user when the current situation seems appropriate, without explicit user request. This is suitable in e-Learning scenarios in which a great amount of learning objects are available but it is difficult to find them according to the user's needs. In this paper, we present a model for generating proactive context-aware recommendations in the Virtual Science Hub (ViSH), a educational platform related to the GLOBAL excursion European project. The model relies on domain-dependent context modeling in several categories to generate personalized recommendations to teachers and scientists that will produce the learning resources the students will consume. The recommendation process is divided into three phases. First, the generation of the social context information related to the users in the platform. Then, the current situation considering the social, location and user context is analyzed. Finally, the suitability of particular learning objects to be recommended is examined. Therefore, details about the recommendation model proposed and advantages related to applying the model in ViSH can be found in the paper, in addition to some conclusion remarks and outlook on future work.
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主动推荐系统在当前情况似乎合适时向用户推送推荐,而不需要用户明确的请求。这适用于有大量可用的学习对象,但很难根据用户的需要找到它们的e-Learning场景。在本文中,我们提出了一个模型,用于在虚拟科学中心(ViSH)中生成主动上下文感知建议,ViSH是一个与全球游览欧洲项目相关的教育平台。该模型依赖于几个类别的领域相关上下文建模,为教师和科学家生成个性化的建议,这些建议将产生学生将使用的学习资源。推荐过程分为三个阶段。首先,生成平台中与用户相关的社会语境信息。然后,结合社交、地理位置和用户语境对现状进行了分析。最后,对推荐的特定学习对象的适用性进行了检查。因此,本文详细介绍了所提出的推荐模型以及在ViSH中应用该模型的优势,并给出了一些结论和对未来工作的展望。
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