Context-Aware Recommendation of Learning Resources Using Rules Engine

Lantao Hu, Z. Du, Qiuli Tong, Yongqi Liu
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引用次数: 11

Abstract

Although numerous studies have been conducted on learning resources recommendation in E-Learning, research extending this investigation into usage of users' contextual information is rare. This paper presents an innovative architecture of an intelligent personalized context-aware recommendation system in an E-Learning environment. The system offers users by recommending learning materials, tutors, or other learners with common interests combining users' social tags from external social network and tags about learning materials from autologous collaborative tagging system. A Rules Engine is used to manage a set of rules for each user to achieve personalized recommendation. The rules which define the relationship between tags construct the relationship graph model for users and learning resources thus graph-based collaborative filtering recommendation methods can be implemented. The rules will be adjusted depending on the user's feedbacks of previous recommendations.
使用规则引擎的上下文感知学习资源推荐
尽管对E-Learning中的学习资源推荐进行了大量的研究,但将这一调查扩展到用户上下文信息使用的研究却很少。本文提出了一种创新的E-Learning环境下的智能个性化上下文感知推荐系统架构。该系统结合用户来自外部社交网络的社交标签和来自自身协作标签系统的学习材料标签,向用户推荐具有共同兴趣的学习材料、导师或其他学习者。规则引擎用于为每个用户管理一组规则,以实现个性化推荐。定义标签之间关系的规则构建了用户与学习资源的关系图模型,从而实现了基于图的协同过滤推荐方法。规则将根据用户对之前推荐的反馈进行调整。
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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