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A new system for discovering usage profiles

机译:一种发现用法配置文件的新系统

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The exponential growth of information available on the web, makes need to intelligence systems can give required information immediately, more than before. Web Usage Mining (WUM) is one of the web mining techniques, that extracts useful web usage patterns from user's accessed web pages. In web personalization based on WUM, a set of objects like text, product, link and etc. with respect to a user's interests and preferences, recommend to active user. The operation is done with adoption active session of user with discovered usage profiles. Clustering is one of the usage profile discovery methods. In the distance based clustering methods, the precision of distance measure is very important. To effectively provide sage profiles, we have proposed a system that process log files of web servers then extract user sessions and prepare them for clustering and discovering usage profiles. We have introduced a new hybrid distance measure that involved both syntactic similarities between URL's of session and time connectivity between all pairs of URL's in a session. Our experimental results on music machine dataset show that by using new distance measure in proposed system, cluster coherency and accuracy of the usage profiles are increased.
机译:网络上可用信息的指数增长使得需要智能系统可以立即提供所需信息,而不是以前。 Web使用挖掘(WUM)是网络挖掘技术之一,从用户访问的网页中提取有用的Web使用模式。在基于WUM的Web个性化中,一组关于文本,产品,链接等的对象,关于用户的兴趣和偏好,推荐给活动用户。该操作是通过使用发现的使用配置文件的用户采用活动会话完成的。群集是使用配置文件发现方法之一。在基于距离的聚类方法中,距离测量的精度非常重要。为了有效地提供Sage配置文件,我们提出了一个系统的系统,该系统处理Web服务器的日志文件,然后提取用户会话并为群集和发现使用配置文件准备它们。我们引入了一种新的混合距离测量,涉及URL之间的句法相似性,并且在会话中所有URL之间的所有元件之间的时间连接之间的句法相似性。我们对音乐机器数据集的实验结果表明,通过在提出的系统中使用新的距离测量,增加使用简档的集群一致性和准确性。

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