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A new minimum pheromone threshold strategy (MPTS) for max-min ant system

机译:用于最大最小蚂蚁系统的新最小信息素阈值策略(MPTS)

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摘要

In recent years, various metaheuristic approaches have been created to solve quadratic assignment problems (QAPs). Among others is the ant colony optimization (ACO) algorithm, which was inspired by the foraging behavior of ants. Although it has solved some QAPs successfully, it still contains some weaknesses and is unable to solve large QAP instances effectively. Thereafter, various suggestions have been made to improve the performance of the ACO algorithm. One of them is through the development of the max-min ant system (MMAS) algorithm. In this paper, a discussion will be given on the working structure of MMAS and its associated weaknesses or limitations. A new strategy that could further improve the search performance of MMAS will then be presented. Finally, the results of an experimental evaluation conducted to evaluate the usefulness of this new strategy will be described.
机译:近年来,已经创建了各种元启发式方法来解决二次分配问题(QAP)。其中一个是蚁群优化(ACO)算法,该算法受蚂蚁的觅食行为启发。尽管它已经成功解决了一些QAP,但它仍然存在一些缺陷,无法有效解决大型QAP实例。此后,提出了各种建议以改善ACO算法的性能。其中之一是通过开发最大最小蚂蚁系统(MMAS)算法。在本文中,将对MMAS的工作结构及其相关的弱点或局限性进行讨论。然后将提出一种可以进一步提高MMAS搜索性能的新策略。最后,将描述为评估这种新策略的有效性而进行的实验评估的结果。

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