远程教育环境下数字教育资源的混合推荐:以MOOC为例

Hamid Slimani, Oussama Hamal, N. E. Faddouli, S. Bennani, Naila Amrous
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引用次数: 3

摘要

在线培训中对学习者的陪伴和跟踪的目的是帮助学习者进行培训,保证学习者适应和高质量的学习。在学习过程中,数字化教育资源的个性化搜索和推荐构成了这种陪伴的几个方面。本文介绍了一种数字教育资源的搜索引擎和混合推荐。该引擎一方面允许过滤和个性化搜索,为用户的配置文件提供适应的资源;另一方面,将协同过滤、基于内容过滤和语义过滤相结合,提出其他附加资源。语义过滤基于对我们提出的系统中的SPARQL查询的利用。它们在包含可重用词汇表的远程服务器上执行,并根据关联的数据原则和技术(如Lod Cloud)进行形式化。获得的结果是一组链接到搜索查询中指定的关键字的术语。然后使用这些术语扩展搜索。我们使用通过表单输入关键字的搜索测试集,然后手动分析获得的链接术语和返回的文档。所得结果令人满意。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The hybrid recommendation of digital educational resources in a distance learning environment: the case of MOOC
The accompaniment and the follow-up of the learners in an online training aim at helping the learner to carry out his or her training and to guarantee an adapted and quality learning. During a learning process, personalized search and recommendation of digital educational resources form aspects of this accompaniment. This article presents a search engine and a hybrid recommendation of digital educational resources. This engine allows for filtering and personalized search by providing adapted resources to the users' profiles on the one hand; on the other hand, to making a combination of the collaborative, the content-based and the semantic filtering to propose other additional resources. The semantic filtering is based on the exploitation of SPARQL queries from the system that we propose. They are executed on a remote server containing reusable vocabularies and formalized according to the linked data principles and technologies, such as the Lod Cloud. The result obtained is a set of linked terms to the keywords specified in the search query. These terms are then used to extend the search. We used a search test-set by keywords entered via a form and then we manually analyzed the linked terms obtained and the documents returned. The results obtained by our approach are satisfactory.
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