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Co-clustering Analysis of Weblogs Using Bipartite Spectral Projection Approach

机译:使用双向光谱投影方法对Weblog进行共聚分析

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Web clustering is an approach for aggregating Web objects into various groups according to underlying relationships among them. Finding co-clusters of Web objects is an interesting topic in the context of Web usage mining, which is able to capture the underlying user navigational interest and content preference simultaneously. In this paper we will present an algorithm using bipartite spectral clustering to co-cluster Web users and pages. The usage data of users visiting Web sites is modeled as a bipartite graph and the spectral clustering is then applied to the graph representation of usage data. The proposed approach is evaluated by experiments performed on real datasets, and the impact of using various clustering algorithms is also investigated. Experimental results have demonstrated the employed method can effectively reveal the subset aggregates of Web users and pages which are closely related.
机译:Web集群是一种根据Web对象之间的潜在关系将Web对象聚合为各种组的方法。在Web使用挖掘的背景下,找到Web对象的共同集群是一个有趣的话题,它能够同时捕获潜在的用户导航兴趣和内容偏好。在本文中,我们将提出一种使用二分光谱聚类来共同聚类Web用户和页面的算法。将访问网站的用户使用情况数据建模为二部图,然后将光谱聚类应用于使用情况数据的图形表示。通过对真实数据集进行的实验对提出的方法进行了评估,并且还研究了使用各种聚类算法的影响。实验结果表明,所采用的方法可以有效地揭示网络用户和页面密切相关的子集。

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