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首页> 外文期刊>International journal of artificial life research >Ant Miner: A Hybrid Pittsburgh Style Classification Rule Mining Algorithm
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Ant Miner: A Hybrid Pittsburgh Style Classification Rule Mining Algorithm

机译:蚂蚁矿工:一种混合的匹兹堡风格分类规则挖掘算法

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摘要

In data mining the task of extracting classification rules from large data is an important task and is gaining considerable attention. This article presents a novel ant miner for classification rule mining. The ant miner is inspired by researches on the behaviour of real ant colonies, simulated annealing, and some data mining concepts as well as principles. This paper presents a Pittsburgh style approach for single objective classification rule mining. The algorithm is tested on a few benchmark datasets drawn from UCI repository. The experimental outcomes confirm that ant miner-HPB (Hybrid Pittsburgh Style Classification) is significantly better than ant-miner-PB (Pittsburgh Style Classification).
机译:在数据挖掘中,从大数据中提取分类规则的任务是一项重要的任务,并且引起了广泛的关注。本文介绍了一种用于分类规则挖掘的新型蚂蚁矿机。蚂蚁矿工的灵感来自对真实蚁群行为,模拟退火以及一些数据挖掘概念和原理的研究。本文提出了一种用于单个目标分类规则挖掘的匹兹堡风格方法。该算法在从UCI存储库中提取的一些基准数据集中进行了测试。实验结果证实,ant miner-HPB(匹兹堡风格分类)明显优于ant-miner-PB(匹兹堡风格分类)。

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