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PARTICLE SWARM OPTIMIZATION-BASED ALGORITHM FOR BILEVEL JOINT PRICING AND LOT-SIZING DECISIONS IN A SUPPLY CHAIN

机译:供应链中基于微粒群优化的双节点联合定价和批量决策的算法

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摘要

This study considers joint pricing and lot-sizing policies in a single-manufacturer-single-retailer system. Because a supply chain is a hierarchical system, we adopt a bilevel programming technique to establish a bilevel joint pricing and lot-sizing model guided by the manufacturer. The objective of the problem here is to respectively maximize the manufacturer's and the retailer's net profits by determining the manufacturer's and retailer's lot size, the wholesale price and the retail price simultaneously. Following the properties of the bilevel programming problem (BLPP), we design a novel bilevel particle swarm optimization algorithm (BPSO), and it can solve BLPP without any assumed conditions of the problem. BPSO shows a good performance on eight benchmark bilevel problems. Then BPSO is employed to solve the proposed bilevel model, and the experimental data are used to analyze the features of the proposed bilevel model, and the results support the finding that BPSO is effective in optimizing BLPP.
机译:本研究考虑了单一制造商-单一零售商系统中的联合定价和批量策略。由于供应链是分层系统,因此我们采用双层编程技术来建立由制造商指导的双层联合定价和批量确定模型。问题的目的是通过同时确定制造商和零售商的手数,批发价和零售价来分别最大化制造商和零售商的净利润。根据双层规划问题(BLPP)的性质,我们设计了一种新颖的双层粒子群优化算法(BPSO),它可以在没有任何假定条件的情况下解决BLPP问题。 BPSO在八个基准两级问题上显示出良好的性能。然后采用BPSO对提出的双层模型进行求解,并通过实验数据分析了提出的双层模型的特征,结果支持了BPSO有效优化BLPP的发现。

著录项

  • 来源
    《Applied Artificial Intelligence》 |2013年第7期|441-460|共20页
  • 作者

    Weimin Ma; Miaomiao Wang;

  • 作者单位

    School of Economics and Management, Tongji University, Shanghai, PR China;

    School of Economics and Management, Tongji University, Siping Road 1239, Shanghai, P. R. China;

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  • 正文语种 eng
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