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A Recommender System Based on Hierarchical Clustering for Cloud e-Learning

机译:基于分层聚类的云电子学习推荐系统

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Cloud e-Learning (CeL) is a new paradigm for e-Learning, aiming towards using any possible learning object from the cloud in a smart way and generate a personalised learning path for individual learners. An issue that appears before the generation of the learning path through automated planning, is to filter a pool of resources that are relevant to the learners profile and desires in order to enhance their knowledge and skills at a higher cognitive level. In this paper, we present a Recommender System for Cloud e-Leaning (CeLRS) that uses hierarchical clustering to select the most appropriate resources and utilise a vector space model to rank these resources in order of relevance for any individual learner. We discuss the issues raised and we demonstrate how CeLRS works.
机译:云电子学习(CeL)是一种新的电子学习范例,旨在以智能方式使用云中任何可能的学习对象,并为单个学习者生成个性化的学习路径。在通过自动计划生成学习路径之前出现的一个问题是,过滤与学习者的个人资料和需求相关的资源池,以便在更高的认知水平上增强他们的知识和技能。在本文中,我们提出了一种云电子学习推荐系统(CeLRS),该系统使用层次化聚类来选择最合适的资源,并利用向量空间模型对这些资源进行排序,以使其与任何学习者相关。我们讨论提出的问题,并演示CeLRS的工作原理。

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