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PNP: Mining of Profile Navigational Patterns

机译:PNP:个人资料导航模式的含义

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摘要

Web usage mining is a key knowledge discovery research and as such has been well researched. So far, this research has focused mainly on databases containing access log data only. However, many real-world databases contain users profile data and current solutions for this situation are still insufficient. In this paper we have a large database containing of user profile information together with users web-pages navigational patterns. The user profile data includes quantitative attributes, such as salary or age, and categorical attributes, such as sex or marital status. we introduce the concept of profile navigation patterns, which discusses the problem of relating user profile information to navigation behavior. An example of such profile navigation pattern might be "20% of married people between age 25 and 30 have the similar navigational behavior <(a,c)(c,b)(b,e)(e,a)(a,d)>", where a, b, c, d, e are web pages in a web site. The navigation sequences may contain the generic traversal behavior, e.g. trend to backward moves, cycles etc. The objective of mining profile navigation patterns is to identify browser profile for web personalization. We present PNP, a new algorithm that discovers these profile navigation patterns. Scale-up experiments show that PNP scales linearly with the number of transactions.
机译:Web使用挖掘是一个关键知识发现研究,因此已经得到了很好的研究。到目前为止,该研究主要集中在仅包含访问日志数据的数据库上。但是,许多现实数据库包含用户配置文件数据,此情况的当前解决方案仍然不足。在本文中,我们将包含用户配置文件信息的大型数据库以及用户网页导航模式。用户简档数据包括定量属性,例如薪资或年龄,以及性别或婚姻状况等分类属性。我们介绍了简介导航模式的概念,讨论了将用户简档信息与导航行为相关的问题。这种简介导航模式的示例可能是“25岁之间的20%的已婚人士具有类似的导航行为<(a,c)(c,b)(b,e)(e,a)(a,d )>“,其中,其中a,b,c,d,e是网站中的网页。导航序列可能包含通用遍历行为,例如,向后移动,周期等趋势。采矿配置文件导航模式的目标是识别用于Web个性化的浏览器配置文件。我们呈现PNP,这是一种发现这些配置文件导航模式的新算法。扩展实验表明,PNP与交易数量线性缩放。

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