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Personalized recommendation based hashtags on e-learning systems

机译:电子学习系统上基于个性化推荐的主题标签

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The data generated by users on various social structures are growing exponentially over time. They become increasingly prodigious unmanageable and difficult to use. Therefore to easily find the content they produce among this mass of data, users label their own content using neologisms appointed hashtags. This practice attracts more and more the interest of researchers, because beyond the acquisition of knowledge, the Semantic Web approaches are also producing relevant information that may be used in practical situations. In this direction, we thought to exploit the activities of social Web users, mainly Hashtags. Hence, we focused on the identification of hashtags (as well as their different definitions) for personalized recommendation on e-learning systems. This paper aims at giving an insight on the pioneers' works and the opportunities raised by mixing the Social and the Semantic Web for education on one hand. And give the general architecture of our proposition and results obtained on the other hand.
机译:用户在各种社会结构上生成的数据随着时间呈指数增长。它们变得越来越难以管理且难以使用。因此,为了在大量数据中轻松找到他们产生的内容,用户使用新词指定的标签来标记自己的内容。这种实践吸引了越来越多的研究人员兴趣,因为除了获得知识之外,语义Web方法还产生了可在实际情况下使用的相关信息。在这个方向上,我们考虑利用社交Web用户(主要是Hashtags)的活动。因此,我们将重点放在用于电子学习系统的个性化推荐的主题标签(以及它们的不同定义)的识别上。本文旨在一方面了解先驱者的作品以及通过混合社交和语义网进行教育所带来的机遇。并给出我们的命题的总体架构以及从另一方面获得的结果。

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