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Association Rule Based Clustering of Electronic Resources in University Digital Library

机译:基于关联规则的大学数字图书馆电子资源聚类

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Library Analytics is used to analyze the huge amount of data that is collected by most colleges and universities when the library electronic resources are browsed. In this research work, we have analyzed the library usage data to accomplish the task of e-resource item clustering. We have compared different clustering algorithms and found that association-rule (ARM) based clustering is more accurate than others and it also identifies the hidden relationships between articles which are content-wise not similar. We have also shown that items in the same cluster offer a good source for recommendation.
机译:图书馆分析法用于分析大多数大学和大学在浏览图书馆电子资源时收集的大量数据。在这项研究工作中,我们分析了图书馆的使用数据,以完成电子资源项目聚类的任务。我们比较了不同的聚类算法,发现基于关联规则(ARM)的聚类比其他聚类更准确,并且还可以识别内容之间不相似的文章之间的隐藏关系。我们还显示,同一集群中的项目提供了很好的建议来源。

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