Research of Mining Effective and Weighted Association Rules Based on Dual Confidence

Yihua Zhong, Yuxin Liao
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引用次数: 21

Abstract

Association rule is an important model in data mining. However, traditional association rules are mostly based on the support and confidence metrics, and most algorithms and researches assumed that each attribute in the database is equal. In fact, because the user preference to the item is different, the mining rules using the existing algorithms are not always appropriate to users. By introducing the concept of weighted dual confidence, a new algorithm which can mine effective weighted rules is proposed in this paper, which is on the basis of the dual confidence association rules used in algorithm. The case studies show that the algorithm can reduce the large number of meaningless association rules and mine interesting negative association rules in real life.
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基于对偶置信度的有效加权关联规则挖掘研究
关联规则是数据挖掘中的一种重要模型。然而,传统的关联规则大多基于支持度和置信度度量,大多数算法和研究都假设数据库中的各个属性是相等的。实际上,由于用户对项目的偏好不同,使用现有算法的挖掘规则并不总是适合用户。本文通过引入加权对偶置信度的概念,在算法中使用对偶置信度关联规则的基础上,提出了一种挖掘有效加权规则的新算法。实例研究表明,该算法可以减少大量无意义的关联规则,挖掘出现实生活中有趣的负面关联规则。
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