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Association Rules Mining Using Multi-objective Coevolutionary Algorithm

机译:多目标协同进化算法的关联规则挖掘

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Association rule mining can be considered as a multi-objective problem,rather than as a single objective one.To enhance the correlation degree and comprehensibility of association rule,two new measures,including statistical correlation and comprehensibility,as objection functions are proposed in this paper.Their calculating formulas and primary characteristics are given.Association rule mining is generally solved by lexicographic order method.On the basis of discussing the weakness of above method,a new coevolutionary algorithm is put forward in this paper to solve multi-objective optimization problem of association rule.Three coevolutionary operators are designed and the mining algorithm is realized in this paper.According to experimentation,the algorithm has been found suitable for association rule mining of large databases.
机译:关联规则挖掘可以被认为是一个多目标问题,而不是一个单一的目标问题。为了提高关联规则的关联度和可理解性,本文提出了两种新的措施,包括统计相关性和可理解性,作为反对函数给出了它们的计算公式和主要特征。通常用字典顺序法解决关联规则挖掘。在讨论上述方法的弱点的基础上,提出了一种新的协同进化算法来解决多目标优化问题。设计了三个协进化算子,并实现了挖掘算法。根据实验,发现该算法适用于大型数据库的关联规则挖掘。

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