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A clonal selection algorithm to minimize reshuffling in container stacking operations

机译:一种克隆选择算法,可最大程度减少容器堆叠操作中的改组

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A container is a widely used solution for the cargo storage to be transported between ports, playing a central role in international trade. Consequently, ships grew in size in order to maximize their container transportation capacity in each trip. Due to increasing demand, container terminals face the challenges of increasing their service capacity and optimizing the loading and unloading time of ships. This paper presents the proposal of a novel meta-heuristic based on the Clonal Selection Algorithm, named MRCLONALG, to minimize the number of reshuffles in operations involving piles of containers. The performance of the proposed model was evaluated through simulations and results compared with those obtained by algorithms from the literature under the same test conditions. The results show that MRCLONALG is competitive in terms of minimizing the need of reshuffles, besides presenting a reduced processing time compared with models of similar performance.
机译:集装箱是在港口之间运输货物的广泛使用的解决方案,在国际贸易中发挥着核心作用。因此,船舶尺寸不断增加,以在每次行程中最大化其集装箱运输能力。由于需求的增长,集装箱码头面临着增加服务能力和优化船舶装卸时间的挑战。本文提出了一种基于克隆选择算法的新型元启发式算法,该算法名为MRCLONALG,以最大程度地减少涉及集装箱堆的作业中的改组次数。通过仿真评估了所提出模型的性能,并将结果与​​在相同测试条件下通过算法从文献中获得的结果进行了比较。结果表明,与具有类似性能的模型相比,MRCLONALG在最大程度地减少了改组需求方面具有竞争优势。

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