Discovery of interesting association rules from Livelink web log data

Xiangji Huang, Aijun An, N. Cercone, Gary Promhouse
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引用次数: 31

Abstract

We present our experience in mining web usage patterns from a large collection of Livelink log data. Livelink is a web-based product of Open Text, which provides automatic management and retrieval of different types of information objects over an intranet or extranet. We report our experience in preprocessing raw log data and post-processing the mining results for finding interesting rules. In particular we compare and evaluate a number of rule interestingness measures and find that two of the measures that have not been used in association rule learning work very well.
从Livelink web日志数据中发现有趣的关联规则
我们展示了从大量的Livelink日志数据中挖掘web使用模式的经验。Livelink是Open Text的一个基于web的产品,它通过内部网或外联网提供不同类型的信息对象的自动管理和检索。我们报告了我们在预处理原始日志数据和后处理挖掘结果以发现有趣规则方面的经验。特别地,我们比较和评估了一些规则兴趣度量,并发现在关联规则学习中没有使用的两个度量效果非常好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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