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首页> 外文期刊>International Journal of Production Research >Coordinated scheduling of production and transportation in a two-stage assembly flowshop
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Coordinated scheduling of production and transportation in a two-stage assembly flowshop

机译:两阶段装配流程车间中生产和运输的协调调度

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摘要

To enhance the overall performance of supply chains, coordination among production and distribution stages has recently received an increasing interest. This paper considers the coordinated scheduling of production and transportation in a two-stage assembly flowshop environment. In this problem, product components are first produced and assembled in a two-stage assembly flowshop, and then completed final products are delivered to a customer in batches. Considering the NP-hard nature of this scheduling problem, two fast heuristics (SPT-based heuristic and LPT-based heuristic) and a new hybrid meta-heuristic (HGA-OVNS) are presented to minimise the weighted sum of average arrival time at the customer and total delivery cost. To guide the search process to more promising areas, the proposed HGA-OVNS integrates genetic algorithm with variable neighbourhood search (VNS) to generate the offspring individuals. Furthermore, to enhance the effectiveness of VNS, the opposition-based learning (OBL) is applied to establish some novel opposite neighbourhood structures. The proposed algorithms are validated on a set of randomly generated instances, and the computation results indicate the superiority of HGA-OVNS in quality of solutions.
机译:为了提高供应链的整体绩效,最近在生产和分销阶段之间的协调受到了越来越多的关注。本文考虑了两阶段装配流水车间环境中生产和运输的协调调度。在这个问题中,首先在两阶段的组装流水车间中生产和组装产品组件,然后将完成的最终产品分批交付给客户。考虑到此调度问题的NP难性,提出了两种快速启发式算法(基于SPT的启发式算法和基于LPT的启发式算法)和一种新的混合元启发式算法(HGA-OVNS),以最大程度地减少平均到达时间的加权和。客户和总交付成本。为了将搜索过程引导到更广阔的领域,提出的HGA-OVNS将遗传算法与可变邻域搜索(VNS)集成在一起以生成后代个体。此外,为了增强VNS的有效性,基于对立的学习(OBL)用于建立一些新颖的对立邻域结构。该算法在一组随机生成的实例上得到了验证,计算结果表明了HGA-OVNS在解决方案质量上的优越性。

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