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Exploiting Community Behavior for Enhanced Link Analysis and Web Search

机译:利用社区行为进行增强链接分析和Web搜索

摘要

Methods for Web link analysis and authority ranking such as PageRank are based on the assumption that a user endorses a Web page when creating a hyperlink to this page. There is a wealth of additional user-behavior information that could be considered for improving authority analysis, for example, the history of queries that a user community posed to a search engine over an extended time period, or observations about which query-result pages were clicked on and which ones were not clicked on after a user saw the summary snippets of the top-10 results.We study enhancements of link analysis methods by incorporating additional user assessments based on query logs and click streams, including negative feedback when a query-result page does not satisfy the user demand or is even perceived as spam. Our methods use various novel forms of Markov models whose states correspond to users and queries in addition to Web pages and whose links also reflect the relationships derived from query-result clicks, query refinements, and explicit ratings.
机译:用于Web链接分析和权限排名的方法(例如PageRank)基于以下假设:用户在创建指向该页面的超链接时会认可该Web页面。可以考虑使用大量其他用户行为信息来改进权限分析,例如,用户社区在较长时间内向搜索引擎提出的查询历史记录,或者观察哪些查询结果页面是在用户看到前10个结果的摘要后,单击了哪些按钮,哪些没有被单击。我们研究了链接分析方法的增强功​​能,它结合了基于查询日志和点击流的其他用户评估,包括查询时的负面反馈。结果页面无法满足用户需求,甚至被视为垃圾邮件。我们的方法使用了各种新颖形式的马尔可夫模型,其状态与Web页面以及用户和查询相对应,并且其链接也反映了从查询结果点击次数,查询细化度和明确评级得出的关系。

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