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Evolving Dispatching Rules for Multi-objective Dynamic Flexible Job Shop Scheduling via Genetic Programming Hyper-heuristics

机译:通过遗传编程超高启发式管理多目标动态灵活作业商店调度调度规则

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Dynamic flexible job shop scheduling (DFJSS) is one of the well-known combinational optimisation problems, which aims to handle machine assignment (routing) and operation sequencing (sequencing) simultaneously in dynamic environment. Genetic programming, as a hyper-heuristic method, has been successfully applied to evolve the routing and sequencing rules for DFJSS, and achieved promising results. In the actual production process, it is necessary to get a balance between several objectives instead of simply focusing only one objective. No existing study considered solving multi-objective DFJSS using genetic programming. In order to capture multi-objective nature of job shop scheduling and provide different trade-offs between conflicting objectives, in this paper, two well-known multi-objective optimisation frameworks, i.e. non-dominated sorting genetic algorithm II (NSGA-II) and strength Pareto evolutionary algorithm 2 (SPEA2), are incorporated into the genetic programming hyper-heuristic method to solve the multi-objective DFJSS problem. Experimental results show that the strategy of NSGA-II incorporated into genetic programming hyper-heuristic performs better than SPEA2-based GPHH, as well as the weighted sum approaches, in the perspective of both training performance and generalisation.
机译:动态柔性作业车间调度(DFJSS)是著名的组合优化问题之一,其目的是把机分配(路由)和操作顺序(顺序)在动态环境同时进行。遗传编程,作为超启发式方法,已成功地应用于演变为DFJSS路由和排序规则,并取得了可喜的成果。在实际生产过程中,有必要获得几个目标之间的平衡,而不是仅仅着眼目的只有一个。没有现成的研究中考虑使用遗传编程求解多目标DFJSS。为了拍摄作业车间调度的多目标性质,提供相互冲突的目标之间的不同取舍,在本文中,两个著名的多目标优化框架,即非支配排序遗传算法II(NSGA-II)和强度帕累托进化算法2(SPEA2),被结合到遗传编程超启发式方法,以解决多目标DFJSS问题。实验结果表明,NSGA-II的结合到遗传编程超启发式进行比基于SPEA2-GPHH更好的策略,以及加权和接近,在这两种训练性能和泛化的角度。

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