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An experimental analysis of the p-median problem under uncertainty: an evolutionary algorithm approach

机译:不确定性下p中值问题的实验分析:进化算法

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摘要

Facility location under uncertain environments is an important and challenging problem. The problem deals with the optimal placement of facilities that serve a set of spatially distributed nodes. One way to deal with this problem is to model uncertainty by means of scenarios and to optimise some robustness criteria such as the average and maximum regrets over these scenarios. We propose to model the robust design as a bi-objective optimisation problem and to use a well-known multi-objective evolutionary algorithm, the NSGA-II, to solve it. We also propose to use the bi-objective optimisation framework to analyse the effects of variations in the number of facilities to install, and of nodes to be served, on the quality of the Pareto solutions. Computational experiments show that the proposal can be used to design robust solutions and to study the effects of changes in the system parameters on the quality of the generated solutions.
机译:不确定环境下的设施位置是一个重要且具有挑战性的问题。该问题涉及为一组空间分布的节点提供服务的设施的最佳布置。解决此问题的一种方法是通过场景建模不确定性,并优化一些鲁棒性标准,例如这些场景的平均后悔和最大后悔。我们建议将鲁棒性设计建模为双目标优化问题,并使用著名的多目标进化算法NSGA-II进行求解。我们还建议使用双目标优化框架来分析安装设施数量和服务节点数量的变化对Pareto解决方案质量的影响。计算实验表明,该建议可用于设计健壮的解决方案以及研究系统参数变化对生成的解决方案质量的影响。

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