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A PSO-based algorithm for mining association rules using a guided exploration strategy

机译:一种基于PSO的挖掘协会规则算法,使用引导探索策略

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Association rule mining is one of the most important and active research areas in data mining. In the literature, several association rule miners have been proposed; among them, those based on particle swarm optimization (PSO) have reported the best results. However, these algorithms tend to prematurely fall into local solutions, avoiding a wide exploration that could produce even better results. In this paper, an algorithm based on PSO, called PSO-GES, for mining association rules using a Guided Exploration Strategy is introduced. Our experiments, over real-world transactional databases, show that our proposed algorithm mines better quality association rules than the most recent PSO-based algorithms for mining association rules of the state of the art. (C) 2020 Published by Elsevier B.V.
机译:协会规则挖掘是数据挖掘中最重要和最活跃的研究领域之一。在文献中,已经提出了一些关联统治雇主;其中,基于粒子群优化(PSO)的人报告了最佳结果。然而,这些算法往往是过早地陷入本地解决方案,避免了可能产生更好的结果的广泛探索。本文介绍了一种基于PSO的算法,称为PSO-GES,用于使用引导勘探策略采矿关联规则。我们的实验,通过现实世界的交易数据库,表明我们所提出的算法挖掘了更好的质量关联规则,而不是最近的基于PSO的挖掘算法的挖掘结社规则。 (c)2020由elsevier b.v发布。

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