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Selective association rule generation

机译:选择性关联规则生成

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摘要

Mining association rules is a popular and well researched method for discovering interesting relations between variables in large databases. A practical problem is that at medium to low support values often a large number of frequent itemsets and an even larger number of association rules are found in a database. A widely used approach is to gradually increase minimum support and minimum confidence or to filter the found rules using increasingly strict constraints on additional measures of interestingness until the set of rules found is reduced to a manageable size. In this paper we describe a different approach which is based on the idea to first define a set of “interesting” itemsets (e.g., by a mixture of mining and expert knowledge) and then, in a second step to selectively generate rules for only these itemsets. The main advantage of this approach over increasing thresholds or filtering rules is that the number of rules found is significantly reduced while at the same time it is not necessary to increase the support and confidence thresholds which might lead to missing important information in the database.
机译:挖掘关联规则是发现大型数据库中变量之间有趣关系的一种流行且经过深入研究的方法。一个实际的问题是,在中低支持值时,通常会在数据库中找到大量的频繁项目集和甚至更多的关联规则。一种广泛使用的方法是逐渐增加最小支持和最小置信度,或者使用对其他有趣程度的日益严格的约束来过滤找到的规则,直到找到的规则集减小到可管理的大小为止。在本文中,我们描述了一种不同的方法,该方法基于以下思想:首先定义一组“有趣的”项目集(例如,通过挖掘和专家知识的混合),然后在第二步中针对这些规则有选择地生成规则项目集。与增加阈值或过滤规则相比,此方法的主要优点在于,可以大大减少找到的规则的数量,同时不必增加可能导致数据库中重要信息丢失的支持和置信度阈值。

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  • 来源
    《Computational Statistics》 |2008年第2期|303-315|共13页
  • 作者单位

    Department of Information Systems and Operations Institut für Informationswirtschaft Wirtschaftsuniversität Wien Augasse 2-6 1090 Wien Austria;

    Institute for Tourism and Leisure Studies Wirtschaftsuniversität Wien Wien Austria;

    Department of Statistics and Mathematics Wirtschaftsuniversität Wien Wien Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Data mining; Association rules; Rule generation;

    机译:数据挖掘;关联规则;规则生成;

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