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首页> 外文期刊>Computers in Human Behavior >MoodleREC: A recommendation system for creating courses using the moodle e-learning platform
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MoodleREC: A recommendation system for creating courses using the moodle e-learning platform

机译:MoodleREC:一个用于使用穆迪电子学习平台创建课程的推荐系统

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The field of education has never been indifferent to the new technologies, and eventually to the Internet. Technology-Enhanced Learning, progressively, has grown to be the area for research and practice on the application of information and communication technologies to teaching and learning. In particular for the teaching activity, the numerous standard compliant Learning Object Repositories available via the Internet, and Open Educational Resources repositories, provide formidable support to teachers when they need to develop a course that can also make use of already available learning materials. The search and selection of Learning Objects, however, can be an inherently complex operation involving accessing various repositories, each potentially involving different software tools, and different organization and specification formats for the learning resources. This complexity may hinder the very success of an e-learning course. Cross-repository aggregators, i.e., systems that can roam through different repositories to satisfy the user's/teacher's query, can help to reduce such complexity, although problems of course delivery may remain. This paper proposes a hybrid recommender system, MoodleRec, implemented as a plug-in of the Moodie Learning Management System. MoodleRec can sort through a set of supported standard compliant Learning Object Repositories, and suggest a ranked list of Learning Objects following a simple keyword-based query. The various recommendation strategies operate on two levels. First, a ranked list of Learning Objects is created, ordered by their correspondence to the query, and by their quality, as indicated by the repository of origin. Social generated features are then used to show the teacher how the Learning Objects listed have been exploited in other courses. A real life experimental study is also presented, and the validity of the MoodleRec approach discussed.
机译:教育领域从未对新技术无所不在,最终对互联网也无动于衷。逐渐地,技术增强学习已成为将信息和通信技术应用于教学的研究和实践领域。特别是在教学活动中,可通过Internet获得的众多符合标准的学习对象资源库和开放式教育资源资源库为教师在需要开发课程时也提供了强大的支持,这些课程也可以利用已经可用的学习材料。但是,学习对象的搜索和选择可能是一个固有的复杂操作,涉及访问各种存储库,每种存储库可能涉及不同的软件工具以及学习资源的不同组织和规格格式。这种复杂性可能会阻碍电子学习课程的成功。跨存储库聚合器,即可以漫游到不同存储库以满足用户/教师的查询的系统,可以帮助降低这种复杂性,尽管课程交付的问题可能仍然存在。本文提出了一种混合推荐系统MoodleRec,它是Moodie学习管理系统的插件。 MoodleRec可以对一组受支持的符合标准的学习对象存储库进行排序,并根据简单的基于关键字的查询建议学习对象的排名列表。各种推荐策略有两个层次。首先,创建学习对象的排名列表,按照它们与查询的对应关系以及它们的质量(由来源存储库指示)进行排序。然后使用社交生成的功能向老师展示如何在其他课程中利用列出的学习对象。还提出了现实生活中的实验研究,并讨论了MoodleRec方法的有效性。

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