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Solving a stochastic demand multi-product supplier selection model with service level and budget constraints using Genetic Algorithm

机译:使用遗传算法求解具有服务水平和预算约束的随机需求多产品供应商选择模型

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摘要

This study presents a stochastic demand multi-product supplier selection model with service level and budget constraints using Genetic Algorithm. Recently, much attention has been given to stochastic demand due to uncertainty in the real world. Conflicting objectives also exist between profit, service level and resource utilization. In this study, the relationship between the expected profit and the number of trials as well as between the expected profit and the combination of mutation and crossover rates are investigated to identify better parameter values to efficiently run the Genetic Algorithm. Pareto optimal solutions and return on investment are analyzed to provide decision makers with the alternative options of achieving the proper budget and service level. The results show that the optimal value for the return on investment and the expected profit are obtained with a certain budget and service level constraint.
机译:本研究利用遗传算法提出了一种具有服务水平和预算约束的随机需求多产品供应商选择模型。近来,由于现实世界中的不确定性,对随机需求给予了很多关注。利润,服务水平和资源利用之间也存在矛盾的目标。在这项研究中,研究了预期利润与试验次数之间的关系,以及预期利润与突变率和交叉率的组合之间的关系,以识别出更好的参数值来有效地运行遗传算法。分析了帕累托最优解决方案和投资回报率,为决策者提供了实现适当预算和服务水平的替代选择。结果表明,在一定的预算和服务水平约束下,可获得最佳的投资回报率和预期利润。

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