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Comparing Cuckoo Search, Bee Colony, Firefly Optimization, and Electromagnetism-Like Algorithms for Solving the Set Covering Problem

机译:比较布谷鸟搜索,蜂群,萤火虫优化和类似电磁的算法来解决集合覆盖问题

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The set covering problem is a classical model in the subject of combinatorial optimization for service allocation, that consists in finding a set of solutions for covering a range of needs at the lowest possible cost. In this paper, we report various approximate methods to solve this problem, such as Cuckoo Search, Bee Colony, Firefly Optimization, and Electromagnetism-Like Algorithms. We illustrate experimental results of these metaheuristics for solving a set of 65 non-unicost set covering problems from the Beasley's OR-Library.
机译:集合覆盖问题是服务分配组合优化主题中的经典模型,该模型在于找到一组解决方案,以最低的成本满足一系列需求。在本文中,我们报告了解决此问题的各种近似方法,例如布谷鸟搜索,蜂群,萤火虫优化和类似电磁的算法。我们说明了这些元启发式方法的实验结果,该结果用于解决涵盖Beasley OR图书馆问题的65个非单值集合。

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