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A coordinated location-inventory problem with supply disruptions: A two-phase queuing theory-optimization model approach

机译:具有供应中断的协调库存问题:两阶段排队理论优化模型方法

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摘要

Despite their prominent role in real-life, supply disruptions and inherent variability in parameters have been virtually overlooked in the area of the location-inventory problem. To push forward the relevant literature, addressing the aforementioned issues is of paramount importance. In this sense, this paper deals with a coordinated location-inventory problem in a stochastic supply chain system where facilities are subject to random supply disruptions. The demand and replenishment lead-times are also considered to be hemmed in by uncertainties. To tackle the location-inventory problem in the concerned supply chain, a two-phase approach based on the queuing theory and optimization model techniques is devised. Applying the queuing theory, the first phase tackles the uncertainty issues and gains some performance measures of the system. The attained results are later incorporated into the optimization model. In the second phase, the optimization model determines the strategic and tactical decisions across the supply chain in an integrated manner. Because the presented model is complicated to solve through exact methods, a tailored hybrid genetic algorithm embedded with direct search method is exploited, which is capable of finding quality solutions in an efficient way. Eventually, various sensitivity analyses are conducted from which interesting insights are derived.
机译:尽管它们在现实生活中起着重要作用,但是在位置库存问题领域,供应中断和参数固有的可变性实际上已被忽略。为了推动相关文献的发展,解决上述问题至关重要。从这个意义上讲,本文研究的是随机供应链系统中的位置库存协调问题,其中设施受到随机供应中断的影响。需求和补货的前置时间也被不确定性所束缚。为了解决相关供应链中的库存问题,设计了一种基于排队论和优化模型技术的两阶段方法。应用排队理论,第一阶段解决了不确定性问题并获得了系统的一些性能指标。随后将获得的结果合并到优化模型中。在第二阶段,优化模型以集成方式确定整个供应链的战略和战术决策。由于提出的模型难以通过精确的方法求解,因此开发了一种嵌入有直接搜索方法的量身定制的混合遗传算法,该算法能够高效地找到质量解决方案。最终,进行了各种敏感性分析,从中得出了有趣的见解。

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