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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >A Hybrid Metaheuristic of Integrating Estimation of Distribution Algorithm with Tabu Search for the Max-Mean Dispersion Problem
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A Hybrid Metaheuristic of Integrating Estimation of Distribution Algorithm with Tabu Search for the Max-Mean Dispersion Problem

机译:禁忌搜索分布算法估计的混合成迁移算法对最大平均色散问题

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This paper presents a hybrid metaheuristic that combines estimation of distribution algorithm with tabu search (EDA-TS) for solving the max-mean dispersion problem. The proposed EDA-TS algorithm essentially alternates between an EDA procedure for search diversification and a tabu search procedure for search intensification. The designed EDA procedure maintains an elite set of high quality solutions, based on which a conditional preference probability model is built for generating new diversified solutions. The tabu search procedure uses a fast 1-flip move operator for solution improvement. Experimental results on benchmark instances with variables ranging from 500 to 5000 disclose that our EDA-TS algorithm competes favorably with state-of-the-art algorithms in the literature. Additional analysis on the parameter sensitivity and the merit of the EDA procedure as well as the search balance between intensification and diversification sheds light on the effectiveness of the algorithm.
机译:本文介绍了一个混合成分训练,将分发算法估计与禁忌搜索(EDA-TS)相结合,以解决最大平均色散问题。所提出的EDA-TS算法基本上是用于搜索多种化的EDA过程和搜索强化的禁忌搜索过程。设计的EDA程序维护了一组精英高质量解决方案,基于该精英件,基于其中构建了一种用于产生新的多样化解决方案的条件偏好概率模型。 Tabu搜索程序使用快速的1翻转移动操作员进行解决方案。基准实例的实验结果从500到5000范围内公开了我们的EDA-TS算法在文献中的最先进的算法竞争。关于参数灵敏度的额外分析和EDA程序的优点以及集约化和多样化之间的搜索平衡揭示了算法的有效性。

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