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LumberJack: Intelligent Discovery and Analysis of Web User Traffic Composition

机译:LUMBERJACK:Web用户交通构成的智能发现和分析

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Web Usage Mining enables new understanding of user goals on the Web. This understanding has broad applications, and traditional mining techniques such as association rules have been used in business applications. We have developed an automated method to directly infer the major groupings of user traffic on a Web site [Heer01]. We do this by utilizing multiple data features of user sessions in a clustering analysis. We have performed an extensive, systematic evaluation of the proposed approach, and have discovered that certain clustering schemes can achieve categorization accuracies as high as 99% [Heer02b]. In this paper, we describe the further development of this work into a prototype service called LumberJack, a push-button analysis system that is both more automated and accurate than past systems.
机译:Web使用挖掘可以新的了解网络上的用户目标。此了解具有广泛的应用程序,以及传统的挖掘技术,如关联规则已用于业务应用程序。我们开发了一种自动化方法,可以直接推断网站上的用户流量的主要分组[heer01]。我们通过利用群集分析中使用用户会话的多个数据特征来执行此操作。我们对所提出的方法进行了广泛,系统的评估,并发现某些聚类方案可以实现高达99%[HEER02B]的分类精度。在本文中,我们将这项工作的进一步发展成为一种称为Lumberjack的原型服务,这是一个比过去的系统更自动化和准确的按钮分析系统。

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