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Optimization of logistic systems using fuzzy weighted aggregation

机译:使用模糊加权聚合的物流系统优化

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Logistic scheduling problems are often multi-criteria optimization problems, with many contradictory objectives and constraints, which cannot be properly described by conventional cost functions. The use of fuzzy decision making may improve the performance of this type of systems, since it allows an easier and suitable description of the confluence of the different criteria of the scheduling process. This paper introduces the application of fuzzy weighted aggregation to formulate the logistic system optimization problem. Further, this paper also extends the application of this framework to different types of optimization methodologies: dispatching rules, if it is used as a performance index; or meta-heuristics, such as genetic algorithms (GA) or ant colony optimization (ACO), if it is used as an objective function. Simulation results show that the fuzzy combination of criteria improves the scheduling results whatever optimization methodology is used.
机译:物流调度问题通常是多准则优化问题,具有许多相互矛盾的目标和约束,传统成本函数无法正确描述这些问题。模糊决策的使用可以提高这类系统的性能,因为它允许对调度过程中不同标准的融合进行更简单,适当的描述。介绍了模糊加权聚合在制定物流系统优化问题中的应用。此外,本文还将此框架的应用扩展到不同类型的优化方法中:调度规则(如果用作性能指标);或元启发式算法(例如遗传算法(GA)或蚁群优化(ACO))(如果将其用作目标函数)。仿真结果表明,无论采用哪种优化方法,准则的模糊组合都能改善调度结果。

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