首页> 外文会议>The Second International Joint Conference on Computational Science and Optimization(CSO 2009)(2009 国际计算科学与优化会议)论文集 >A Fuzzy Chance Constraint Programming Approach for Location-allocation Problem under Uncertainty in a Closed-loop Supply Chain
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A Fuzzy Chance Constraint Programming Approach for Location-allocation Problem under Uncertainty in a Closed-loop Supply Chain

机译:闭环供应链不确定条件下位置分配问题的模糊机会约束规划方法

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As cost pressure and worldwide resource limitation continue to mount in this era of economic slowdowns, more and more firms and communities have begun to explore the possibility of managing both of the forward and reverse flows within a closed-loop supply chain in a more cost-efficient and timely manner. But limited number of research set foot in this area, especially for the location-allocation problem, a basilica part of the supply chain network design, which plays an important role in reducing the whole cost and provide better service. Meanwhile, uncertainties, which can not be avoided in the process of supply chain, should be taken into account so as to decrease the influence of bullwhip effect. In this paper, a fuzzy chance constraint programming approach is put forward and an adaptive genetic algorithm is applied to search for the optimization. Finally, concluding remarks and some recommendations for further research are also presented.
机译:在这个经济放缓的时代,随着成本压力和全球资源限制的持续加剧,越来越多的公司和社区开始探索以成本更高的方式管理闭环供应链中的正向和反向流动的可能性。高效及时的方式。但是涉足这一领域的研究很少,特别是对于位置分配问题而言,这是供应链网络设计的重要组成部分,在降低整体成本和提供更好的服务方面起着重要作用。同时,应考虑供应链过程中无法避免的不确定性,以减少牛鞭效应的影响。提出了一种模糊机会约束规划方法,并采用自适应遗传算法进行了寻优。最后,还提供了总结性意见和一些进一步研究的建议。

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