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Usage-based Clustering of Learning Objects for Recommendation

机译:基于使用情况的推荐学习对象聚类

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The growing amount of available information on the internet makes the process of filtering appropriate information an increasing challenge. Because currently existing approaches provide insufficient results in many cases, we propose a new way of relating objects based on their usage. We assume that objects which are significantly often used in the same session are semantically related. Thus, we build a usage-based relatedness graph, apply a graph-based clustering algorithm and evaluate the results with respect to semantic similarity measures. Our approach takes the learning domain into special consideration, its evaluation is performed within the Learning Object Repository MACE.
机译:Internet上可用信息的数量不断增长,使得过滤适当信息的过程成为一个日益严峻的挑战。因为当前存在的方法在许多情况下无法提供足够的结果,所以我们提出了一种基于对象使用情况来关联对象的新方法。我们假设在同一会话中经常使用的对象在语义上是相关的。因此,我们建立了一个基于用法的相关性图,应用了一个基于图的聚类算法,并就语义相似性度量对结果进行了评估。我们的方法特别考虑了学习领域,它的评估是在学习对象存储库MACE中执行的。

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