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Order batching in a pick-and-pass warehousing system with group genetic algorithm

机译:使用群遗传算法的分拣式仓储系统中的订单批处理

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An order batching policy determines how orders are combined to form batches. Previous studies on order batching policy focused primarily on classic manual warehouses, and its effect on pick-and-pass systems has rarely been discussed. Pick-and-pass systems, a commonly used warehousing installation for small to medium-sized items, play a key role in managing a supply chain efficiently because the fast delivery of small and frequent inventory orders has become a crucial trading practice because of the rise of e-commerce and e-business. This paper proposes an order batching approach based on a group genetic algorithm to balance the workload of each picking zone and minimize the number of batches in a pick-and-pass system in an effort to improve system performance. A simulation model based on FlexSim is used to implement the proposed heuristic algorithm, and compare the throughput for different order batching policies. The results reveal that the proposed heuristic policy outperforms existing order batching policies in a pick-and-pass system. (C) 2015 Elsevier Ltd. All rights reserved.
机译:订单批处理策略确定如何组合订单以形成批次。以前关于订单批处理策略的研究主要集中在经典的手动仓库上,很少讨论其对接送系统的影响。取货和取货系统是中小型物品的常用仓储设施,在有效管理供应链中起着关键作用,因为随着数量的增加,快速交付小而频繁的库存订单已成为关键的贸易惯例电子商务和电子商务。本文提出了一种基于群体遗传算法的订单批处理方法,以平衡每个拣配区域的工作量,并最小化拣货和通过系统中的批处理数量,以提高系统性能。使用基于FlexSim的仿真模型来实现所提出的启发式算法,并比较不同订单批处理策略的吞吐量。结果表明,所提出的启发式策略在取货和通过系统中优于现有的订单批处理策略。 (C)2015 Elsevier Ltd.保留所有权利。

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