A Hybrid Model for E-Learning Resources Recommendations in the Developing Countries

Jean-Pierre Niyigena, Qingshan Jiang
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引用次数: 5

Abstract

E-learning has changed the education style in the developed countries. However, in the developing nations such as the East African (EA) countries, the students are still challenged by the accessibility of online learning materials. In this paper, we sought to alleviate this issue by proposing a recommendation method that helps the students from the developing countries in selecting more appropriate e-learning resources. To achieve this goal, an e-learning dataset composes of 1237 students from three different universities in East Africa is used and the learners' information including contextual, demographic, and ratings predictions are hybridized by applying a developed knowledge-based computational model to generate the recommendations in a unified manner. Results from experimental evaluations are presented and discussed to demonstrate the benefits of the proposed system.
发展中国家电子学习资源推荐的混合模式
网络学习改变了发达国家的教育方式。然而,在发展中国家,如东非(EA)国家,学生仍然面临着在线学习材料可及性的挑战。在本文中,我们试图通过提出一种推荐方法来缓解这一问题,该方法可以帮助发展中国家的学生选择更合适的电子学习资源。为了实现这一目标,使用了一个由来自东非三所不同大学的1237名学生组成的电子学习数据集,并通过应用开发的基于知识的计算模型,将学习者的信息(包括上下文、人口统计和评级预测)混合起来,以统一的方式生成建议。实验评估的结果被提出和讨论,以证明所提出的系统的好处。
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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