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Non-dominated archiving multi-colony ant algorithm for multi-objective optimization: Application to multi-purpose reservoir operation

机译:用于多目标优化的非支配存档多蚁群算法:在多用途水库调度中的应用

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摘要

Multi-objective optimization using heuristic methods has been established as a subdiscipline that combines the fields of heuristic computation and classical multiple criteria decision making. This article presents the Non-dominated Archiving Ant Colony Optimization (NA-ACO), which benefits from the concept of a multi-colony ant algorithm and incorporates a new information-exchange policy. In the proposed information-exchange policy, after a given number of iterations, different colonies exchange information on the assigned objective, resulting in a set of non-dominated solutions. The non-dominated solutions are moved into an offline archive for further pheromone updating. Performance of the NA-ACO is tested employing two well-known mathematical multi-objective benchmark problems. The results are promising and compare well with those of well-known NSGA-II algorithms used in real-world multi-objective-optimization problems. In addition, the optimization of reservoir operating policy with multiple objectives (i.e. flood control, hydropower generation and irrigation water supply) is considered and the associated Pareto front generated.
机译:已经建立了使用启发式方法的多目标优化作为结合了启发式计算和经典多准则决策制定领域的子学科。本文介绍了非支配档案蚁群优化(NA-ACO),它得益于多殖民蚁算法的概念,并结合了新的信息交换策略。在提出的信息交换策略中,经过给定的迭代次数后,不同的菌落就分配的目标交换信息,从而导致一组非支配的解决方案。非支配的解决方案将移至脱机存档中,以进行进一步的信息素更新。使用两个众所周知的数学多目标基准问题测试了NA-ACO的性能。结果是有希望的,并且与在现实世界中多目标优化问题中使用的著名NSGA-II算法的结果相比较。此外,考虑了具有多个目标(即防洪,水力发电和灌溉水供应)的水库运行政策的优化,并产生了相关的帕累托锋线。

著录项

  • 来源
    《Engineering Optimization》 |2009年第4期|p.313-325|共13页
  • 作者

    A. Afshar; F. Sharifi;

  • 作者单位

    Department of Civil Engineering, Iran University of Science and Technology, Tehran, Iran Mahab Ghodss Consulting Engineering Company, Tehran, Iran;

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  • 正文语种 eng
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