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Multi-period lot-sizing with supplier selection using achievement scalarizing functions

机译:使用成就标度功能的多期间批量定货,选择供应商

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摘要

In this paper, an integration of Analytic Network Process (ANP) and achievement scalarizing functions is proposed to choose the best suppliers and define the optimum quantities among the selected suppliers by considering tangible-intangible criteria and time horizon. To reflect the decision maker's (DM's) preferences more accurate, an additive achievement function is defined consist of several components. In this additive function while unwanted deviations from periodic budget and aggregate quality goals are balanced by Minmax Goal Programming (MGP), and unwanted deviations from total cost, total value of purchasing (TVP) and aggregate quality are minimized by Achimedean Goal Programming (AGP) to provide more acceptable solutions. This multi-period model enables us to reflect DM's preferences more flexible than the other traditional models that use only one type of achievement function. The sensitivity analysis was also performed for different levels of periodic demands. It is also possible to enlarge the sensitivity analyses for other parameters such as different levels of capacity, and different weights of components.
机译:本文提出了分析网络过程(ANP)和成就标度功能的集成,以通过考虑有形-无形标准和时间范围来选择最佳供应商并在所选供应商中定义最佳数量。为了更准确地反映决策者(DM)的偏好,定义了一个由几个组成部分组成的累加成就函数。在此附加功能中,通过Minmax目标编程(MGP)可以平衡与定期预算和总体质量目标的不必要偏差,并通过Achimedean目标编程(AGP)将与总成本,采购总价值(TVP)和总体质量的不必要偏差最小化提供更可接受的解决方案。与仅使用一种成就函数类型的其他传统模型相比,这种多周期模型使我们能够更灵活地反映DM的偏好。还针对不同级别的定期需求执行了敏感性分析。对于其他参数(例如,不同的容量水平和不同的组件重量),也可以扩大灵敏度分析。

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