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Comparison of Metaheuristic Approaches for Multi-objective Simulation-Based Optimization in Supply Chain Inventory Management

机译:供应链库存管理多目标仿真优化的成群质培养方法比较

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A Supply Chain (SC) is a complex network of facilities with dissimilar and conflicting objectives, immersed in an unpredictable environment. Discrete-event simulation is often used to model and capture the dynamic interactions occurring in the SC and provide SC performance indicators. However, a simulator by itself is not an optimizer. This paper therefore considers the hybridization of Evolutionary Algorithms (EAs), well known for their multi-objective capability, with an SC simulation module in order to determine the inventory policy (order-point or order-level) of a single product SC, taking into account two conflicting objectives: the maximization of customer service level and the total inventory cost. Different evolutionary approaches, such as SPEA-II, SPEA-IIb, NSGA-II and MO-PSO, are tested in order to decide which algorithm is the most suited for simulation-based optimization. The research concludes that SPEA-II favors a rapid convergence and that variation and crossover schemes play and important role in reaching the true Pareto front in a reasonable amount of time.
机译:供应链(SC)是一个复杂的设施网络,其目标不相似,目标沉浸在不可预测的环境中。离散事件仿真通常用于模拟和捕获SC中发生的动态交互并提供SC性能指标。但是,模拟器本身不是优化器。因此,本文考虑了进化算法(EAS)的杂交,众所周知,具有SC仿真模块,以确定单一产品SC的库存策略(订单点或阶级),采取考虑到两个相互矛盾的目标:客户服务水平的最大化和总库存成本。测试不同的进化方法,例如SPEA-II,SPEA-IIB,NSGA-II和MO-PSO,以便确定哪种算法最适合基于模拟的优化。该研究得出结论,SPEA-II赞同快速收敛性,并且变化和交叉方案在合理的时间内到达真正的帕累托前面的作用和重要作用。

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