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Mathematical programming and game theory optimization-based tool for supply chain planning in cooperative/competitive environments

机译:基于数学编程和博弈论优化的工具,用于合作/竞争环境中的供应链计划

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摘要

This work proposes to improve the tactical decision-making of a supply chain (SC) under an uncertain competition scenario through the use of different optimization criteria, which allows to manage not only the specific objectives of the SC of interest, but also the way how its clients address their selection between different potential suppliers, identifying best market share for the SC of interest and the strategy to attain it. The resulting multi-objective optimization problem has been solved using the e-constraint method in order to approximate the Pareto space of non-dominated solutions while a framework based on game theory is used as a reactive decision making support tool to deal with the uncertainty of the competitive scenario. The use of the proposed system is illustrated through its application to a multi-product, multi-echelon supply chain case study, which is intended to cooperate or to compete with another SC of similar characteristics.
机译:这项工作建议通过使用不同的优化标准来改善不确定竞争情况下供应链(SC)的战术决策,这不仅可以管理感兴趣的SC的特定目标,而且可以管理其客户可以在不同的潜在供应商之间进行选择,从而确定感兴趣的SC的最佳市场份额以及实现这一目标的策略。使用电子约束方法解决了由此产生的多目标优化问题,以便近似非支配解的帕累托空间,同时将基于博弈论的框架用作反应性决策支持工具来处理不确定性问题。竞争场景。通过将其应用到多产品,多级供应链案例研究中,说明了所建议系统的用法,该案例旨在与具有类似特征的另一个SC合作或竞争。

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