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Extracting Topic Maps from Web histories by clustering with Web structure and contents

机译:通过使用Web结构和内容群集来从Web历史记录中提取主题映射

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In this paper, we propose a clustering method to extract Topic Maps from the Web browsing history. We improve the structure-based hierarchical clustering method using the contents similarity of the pages and the weight by the types of links and the hierarchical difference of the directories in which the pages are located. The topic maps show the topics that user has seen or not in Web browsing and the relationships between the topics. Using the Web browsing history, we experimentally extract the topic map and evaluate it.
机译:在本文中,我们提出了一种群集方法来从Web浏览历史中提取主题映射。我们使用页面类型的内容相似性以及页面所在的目录的类型的内容相似,提高基于结构的分层聚类方法。主题图显示了用户在Web浏览中看到的主题以及主题之间的关系。使用Web浏览历史记录,我们通过实验提取主题映射并评估它。

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