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A Taxonomic Relationship Learning Approach for Log Ontology Content Event

机译:日志本体内容事件的分类关系学习方法

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摘要

To construct the log ontology is one of the main tasks of semantic Web usage mining. In order to discover the hierarchy of users' visit interesting for web sites, we propose a taxonomic relationship learning approach for content events on log ontology. In this method, event is used to express the users' visiting action, and content event is the semantic behavior of users' visiting to the page content of sites. This method extracts the taxonomic relationship of content event by web document cluster based on swarm intelligence, which combines web content mining and web usage mining. This method improves the results of semantic Web usage mining and provides more decision-making for optimizing the structure of Web sites. The simulation experimental results show that this method is effective and quite feasible to solve practical problems.
机译:构造日志本体是语义Web使用挖掘的主要任务之一。为了发现网站感兴趣的用户访问层次结构,我们提出了一种用于日志本体内容事件的分类关系学习方法。在这种方法中,事件用来表示用户的访问行为,内容事件是用户访问站点页面内容的语义行为。该方法基于群体智能,结合Web内容挖掘和Web使用挖掘,通过Web文档簇提取内容事件的分类关系。该方法提高了语义Web用法挖掘的结果,并为优化Web站点的结构提供了更多决策。仿真实验结果表明,该方法有效解决了实际问题。

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