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An Empirical Evaluation Of Learner Performance In E-Learning Recommender Systems And An Adaptive Hypermedia System

机译:电子学习推荐系统和自适应超媒体系统中学习者表现的实证评估

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This paper introduces a novel architecture for an e-learning recommender system which is based on good learners’ average ratings strategy and content-based filtering approach. The feasibility of the proposed system is conducted by comparing its performance against other recommender systems and an adaptive hypermedia system in order to measure the effectiveness of the proposed strategy in improving students’ learning performance. Experimental result has shown that the recommender strategy can improve students’ performance by at least 12.16%, as compared to other recommendation techniques. A performance evaluation with an adaptive hypermedia system that uses knowledge level as its adaptation feature also showed a positive increase of 14.99% in terms of students’ performance.
机译:本文介绍了一种基于电子学习推荐系统的新颖架构,该系统基于优秀学习者的平均评分策略和基于内容的过滤方法。拟议系统的可行性是通过将其与其他推荐系统和自适应超媒体系统的性能进行比较来进行的,以衡量拟议策略在提高学生学习成绩方面的有效性。实验结果表明,与其他推荐技术相比,推荐策略可以使学生的表现提高至少12.16%。使用以知识水平为适应功能的自适应超媒体系统进行的绩效评估也显示出学生表现的正增长14.99%。

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