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Smart Courses Recommender System for Online Learning Platform

机译:智能课程推荐在线学习平台系统

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The present work is a part of the ESTenLigne1project, which is the result of several years of experience for developing e-Iearning in the High School of Technology of Fez. It was started since 2012 by the EST network of Morocco. It aims the development of distance education based on new information and communication technologies through the implementation of open, adaptive and free e-Iearning platform. However, this platform faces many challenges, such as the increasing amount of data including the diversity of courses and a large number of learners that makes harder to find what the learners are really looking for. Furthermore, most of the students in this platform are new graduates who have just come to integrate higher education and who need a system to help them to find the relevant courses that take into account the requirements and needs of each learner. In this article, we develop a courses recommender system for the e-Iearning platform. It aims to discover relationships between student's courses activities using association rules mining method in order to help the student to choose the more appropriate learning materials. We also focus on the analysis of past historical data of the courses enrollments or log data. The article discusses particularly the frequent itemsets concept to determine the interesting rules in the transaction database. Then, we use the extracted rules to find the catalog of more suitable courses according to the learner's behaviors and preferences. Next, we implement our system using the FP-growth algorithm and R programming language. Finally, the experimental results prove the effectiveness and reliability of the proposed system to increase the quality of student's decision, guide them during the learning process and provide targeted online learning courses to meet the needs of the learners.
机译:现在的工作是estenligne的一部分 1 项目,这是在菲茨技术高中制定电子IERING的多年经验的结果。它自2012年以来开始由摩洛哥的EST网络开始。它旨在通过开放,自适应和免费电子IERING平台的实施,根据新信息和通信技术的基于新信息和通信技术的发展。然而,这个平台面临着许多挑战,例如越来越多的数据,包括课程的多样性以及大量的学习者,使更难找到学习者真正寻找的东西。此外,这个平台中的大多数学生都是新的毕业生,刚刚融入高等教育,谁需要一个系统来帮助他们找到考虑每个学习者的要求和需求的相关课程。在本文中,我们为电子IERING平台开发了一个课程推荐系统。它旨在使用关联规则采矿方法发现学生课程活动之间的关系,以帮助学生选择更合适的学习资料。我们还专注于分析课程入学或日志数据的过去的历史数据。本文特别讨论了频繁的项目集概念,以确定事务数据库中的有趣规则。然后,我们使用提取的规则根据学习者的行为和偏好来查找更合适的课程的目录。接下来,我们使用FP-Grows算法和R编程语言来实现我们的系统。最后,实验结果证明了提高系统的效力和可靠性,以提高学生决定的质量,引导他们在学习过程中,并提供有针对性的在线学习课程以满足学习者的需求。

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