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首页> 外文期刊>International Journal of Information Systems and Supply Chain Management >Genetic Algorithm for Inventory Levels and Routing Structure Optimization in Two Stage Supply Chain
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Genetic Algorithm for Inventory Levels and Routing Structure Optimization in Two Stage Supply Chain

机译:两阶段供应链中库存水平的遗传算法和路径结构优化

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摘要

Several analytical models have been developed to solve the integrated production distribution problems in Supply Chain Management (SCM). In certain multi-stage service supply chain like blood banks, the term 'production' is referred as collection. It is often crucial to consider the inventory and distribution costs for successful decision making in multi-stage service supply chain. In this paper, the authors have explored this problem by considering a Two - Stage Collection - Distribution fl'SCD) Model for blood collection and distribution that faces a deterministic stream of external demands for blood product. A finite supply and collection of blood at stage one Central Blood Bank (CBB) has been assumed. Blood is collected at stage one CBB and distributed to stage two Regional Blood Bank (RBB), where the storage capacity of the RBB is limited. Packaging is completed at stage two (that is, value is added to each Hem, but no new items are created), and the packed blood bags are stored which is used to meet the final demand of customer zone. During each period, the optimal collection rate at CBB, distribution rate between CBB and RBB and routing structure from the CBB to RBB and then to customer zone, must be determined. This TSCD model with capacity constraints at both stages is optimized using Genetic Algorithms (GA) and compared with the standard operations research software LIN DO for small problems.
机译:已经开发了几种分析模型来解决供应链管理(SCM)中的集成生产分配问题。在某些类似血液库的多阶段服务供应链中,术语“生产”被称为收集。通常,考虑库存和分销成本对于成功地在多阶段服务供应链中做出决策至关重要。在本文中,作者通过考虑面向血液产品外部需求的确定性流的血液收集和分配的两阶段收集-分配模型来探讨了这个问题。假定第一阶段中央血库(CBB)的血液供应有限。血液在第一阶段的血脑屏障收集,并分配到第二阶段的区域血库(RBB),那里的血脑屏障的储存能力有限。包装在第二阶段完成(即,每个下摆都增加了价值,但没有创建新物品),并且存储了已包装的血袋,用于满足客户区域的最终需求。在每个阶段,必须确定最佳的CBB收集率,CBB与RBB之间的分配率以及从CBB到RBB再到客户区域的路由结构。使用遗传算法(GA)优化了在两个阶段都具有容量限制的TSCD模型,并将其与标准运筹学软件LIN DO进行比较,以解决小问题。

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