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APPLYING RECOMMENDER SYSTEMS AND ADAPTIVE HYPERMEDIA FOR E-LEARNING PERSONALIZATION

机译:应用推荐系统和自适应超媒体进行电子学习个性化

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Learners learn differently because they are different - and they grow more distinctive as they mature. Personalized learning occurs when e-learning systems make deliberate efforts to design educational experiences that fit the needs, goals, talents, and interests of their learners. Researchers had recently begun to investigate various techniques to help teachers improve e-learning systems. In this paper we present our design and implementation of an adaptive and intelligent web-based programming tutoring system - Protus, which applies recommendation and adaptive hypermedia techniques. This system aims at automatically guiding the learner's activities and recommend relevant links and actions to him/her during the learning process. Experiments on real data sets show the suitability of using both recommendation and hypermedia techniques in order to suggest online learning activities to learners based on their preferences, knowledge and the opinions of the users with similar characteristics.
机译:学习者学习不同是因为他们与众不同-随着他们的成熟,他们变得与众不同。当电子学习系统认真努力设计适合其学习者的需求,目标,才能和兴趣的教育体验时,就会发生个性化学习。研究人员最近开始研究各种技术,以帮助教师改进电子学习系统。在本文中,我们介绍了采用推荐和自适应超媒体技术的自适应和基于Web的自适应智能程序设计辅导系统Protus的设计和实现。该系统旨在自动指导学习者的活动,并在学习过程中向他/她推荐相关的链接和动作。真实数据集上的实验表明,同时使用推荐技术和超媒体技术,以根据学习者的喜好,知识和具有类似特征的用户的意见向学习者建议在线学习活动的适用性。

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