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BI-OBJECTIVE INTEGRATED SUPPLY CHAIN DESIGN WITH TRANSPORTATION CHOICES: A MULTI-OBJECTIVE PARTICLE SWARM OPTIMIZATION

机译:具有运输选择的双目标集成供应链设计:多目标粒子群优化

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摘要

Motivated by observing the importance of logistics cost in the cost structure of some products, this paper aims at multi-objective optimization of integrating supply chain network design with the selection of transportation modes (TMs) for a single-product four-echelon supply chain composed of suppliers, production plants, distribution centers (DCs) and customer zones. The key design decisions are the number, capacity and location of plants and DCs, the flow of products through the network, and the selection of TMs for each flow path. A bi-objective mixed integer linear programming model is first formulated. The two incompatible objectives are minimizing the total cost and maximizing the demand fill rate. The model is validated by applying to the case of the design of fresh apple supply chain. Then, a new metaheuristic, called multi-objective modified particle swarm optimization (MMPSO), is presented to find non-dominated solutions. A new modified binary PSO for updating binary variables along with the adaptive mutation is incorporated into the MMPSO. The MMPSO is compared with a multi-objective basic PSO (MBPSO) and the NSGA-II against three small cases and six randomly generated medium and large size problems. The comparative results indicate that the MMPSO is better than the NSGA-II and the MBPSO with respect to solution quality and computation efficiency for the problem.
机译:基于观察物流成本在某些产品成本结构中的重要性的动机,本文旨在将供应链网络设计与运输模式(TM)的选择相结合的多目标优化,以构成单产品四级供应链供应商,生产工厂,分销中心(DC)和客户区域。关键的设计决策是工厂和DC的数量,容量和位置,产品通过网络的流量以及每个流路的TM选择。首先建立了一个双目标混合整数线性规划模型。两个不兼容的目标是最小化总成本和最大化需求满足率。该模型通过应用于新鲜苹果供应链设计案例进行了验证。然后,提出了一种新的元启发式方法,称为多目标修正粒子群优化(MMPSO),以查找非支配解。 MMPSO中集成了一个新的经过修改的二进制PSO,用于更新二进制变量以及自适应突变。将MMPSO与多目标基本PSO(MBPSO)和NSGA-II进行了比较,以解决三个小案例和六个随机产生的中型和大型问题。比较结果表明,在解决问题的质量和计算效率方面,MMPSO优于NSGA-II和MBPSO。

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