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Optimizing a realistic large-scale frequency assignment problem using a new parallel evolutionary approach

机译:使用新的并行进化方法优化现实的大规模频率分配问题

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This article analyses the use of a novel parallel evolutionary strategy to solve complex optimization problems. The work developed here has been focused on a relevant real-world problem from the telecommunication domain to verify the effectiveness of the approach. The problem, known as frequency assignment problem (FAP), basically consists of assigning a very small number of frequencies to a very large set of transceivers used in a cellular phone network. Real data FAP instances are very difficult to solve due to the NP-hard nature of the problem, therefore using an efficient parallel approach which makes the most of different evolutionary strategies can be considered as a good way to obtain high-quality solutions in short periods of time. Specifically, a parallel hyper-heuristic based on several meta-heuristics has been developed. After a complete experimental evaluation, results prove that the proposed approach obtains very high-quality solutions for the FAP and beats any other result published.
机译:本文分析了使用新颖的并行进化策略来解决复杂的优化问题。此处开发的工作集中在电信领域的相关现实问题上,以验证该方法的有效性。这个问题被称为频率分配问题(FAP),基本上包括将非常少的频率分配给蜂窝电话网络中使用的大量收发器。由于问题的NP难点性质,实际数据FAP实例很难解决,因此使用有效的并行方法可以使大多数不同的进化策略成为可能,是在短期内获得高质量解决方案的好方法时间。具体地,已经开发了基于几种元启发式方法的并行超启发式方法。经过完整的实验评估,结果证明了该方法为FAP获得了非常高质量的解决方案,并且胜过了任何其他已发表的结果。

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  • 来源
    《Engineering Optimization》 |2011年第8期|p.813-842|共30页
  • 作者单位

    Department of Technologies of Computers and Communications, University of Extremadura, Escuela Politécnica, Av. Universidad s, 10071, Cáceres, Spain;

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