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A study on facility location–allocation problem in mixed environment of randomness and fuzziness

机译:随机性和模糊性混合环境下设施选址分配问题的研究

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In logistics system, facility location–allocation problem, which can be used to determine the mode, the structure and the form of the whole logistics system, is a very important decision problem in the logistics network. It involves locating plants and distribution centers, and determining the best strategy for allocation the product from the plants to the distribution centers and from the distribution centers to the customers. Often uncertainty may be associated with demand, supply or various relevant costs. In many cases, randomness and fuzziness simultaneously appear in a system, in order to describe this phenomenon; we introduce the concept of hybrid variable and propose a mixed-integer programming model for random fuzzy facility location–allocation problem. By expected value and chance constraint programming technique, this model is reduced to a deterministic model. Furthermore, a priority-based genetic algorithm is designed for solving the proposed programming model and the efficacy and the efficiency of this method and algorithm are demonstrated by a numerical example. Till now, few has formulated or attacked the FLA problems in the above manner. Furthermore, the techniques illustrated in this paper can easily be applied to other SCN problems. Therefore, these techniques are the appropriate tools to tackle other supply chain network problems in realistic environments.
机译:在物流系统中,可以用来确定整个物流系统的模式,结构和形式的设施选址问题是物流网络中非常重要的决策问题。它涉及到定位工厂和配送中心,以及确定将产品从工厂分配到配送中心以及从配送中心分配给客户的最佳策略。通常,不确定性可能与需求,供应或各种相关成本有关。在许多情况下,随机性和模糊性会同时出现在系统中,以描述这种现象。我们介绍了混合变量的概念,并提出了一种用于随机模糊设施位置分配问题的混合整数规划模型。通过期望值和机会约束编程技术,此模型简化为确定性模型。此外,设计了一种基于优先级的遗传算法来求解所提出的编程模型,并通过数值算例证明了该方法和算法的有效性和效率。到目前为止,很少有人以上述方式制定或解决FLA问题。此外,本文说明的技术可以轻松地应用于其他SCN问题。因此,这些技术是解决现实环境中其他供应链网络问题的合适工具。

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