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A system based on hierarchical fuzzy clustering for web users profiling

机译:基于分层模糊聚类的Web用户配置系统

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In this paper, we present a system based on an Unsupervised Fuzzy Divisive Hierarchical Clustering (UFDHC) algorithm to determine a hierarchy of profiles of web site typical users from the web access log. These profiles can be extremely useful, for instance, to customize the web site, or to send personalized advertisements. After eliminating categories that have not been accessed by a significant percentage of users and removing the occasional users, the access log data are input to the UFDHC algorithm which clusters the users of the web site into a hierarchy of groups characterized by a set of common interests and represented by a prototype, which defines the profile of the group typical member. To show the effectiveness of our system, we describe how the profiles determined by the UFDHC algorithm from access log data collected along a period of 15 days allow classifying approximately 95% of the users defined by access log data collected during subsequent 60 days.
机译:在本文中,我们提出了一种基于无监督模糊分裂层次聚类(UFDHC)算法的系统,用于从Web访问日志中确定网站典型用户的个人资料的层次结构。这些配置文件对于例如自定义网站或发送个性化广告非常有用。在消除了相当一部分用户尚未访问的类别并删除了偶发用户之后,访问日志数据输入到UFDHC算法,该算法将网站的用户聚类为一组具有共同兴趣的群体层次结构并以原型为代表,该原型定义了小组典型成员的个人资料。为了展示我们系统的有效性,我们描述了由UFDHC算法从15天内收集的访问日志数据中确定的配置文件如何对约60%的用户(由随后60天内收集的访问日志数据定义)进行分类。

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