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A hybrid estimation of distribution algorithm for flexible job-shop scheduling problems with process plan flexibility

机译:一种流程计划灵活性灵活作业商店调度问题的分布算法的混合估计

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摘要

The flexible job-shop environments have become increasingly significant because of rapid improvements on shop floors such as production technologies, manufacturing processes and systems. Several real manufacturing and service companies have had to use alternative machines or processes for each operation and the availability of alternative process plans for each job in order to achieve good performance on the shop floor where conflicting objectives are common, e.g. the overall completion time for all jobs and the workload of the most loaded machine. In this paper, we propose a Pareto approach based on the hybridization of an estimation of distribution algorithm and the Mallows distribution in order to build better sequences for flexible job-shop scheduling problems with process plan flexibility and to solve conflicting objectives. This hybrid approach exploits the Pareto-front information used as an input parameter in the Mallows distribution. Various instances and numerical experiments are presented to illustrate that shop floor performance can be noticeably improved using the proposed approach. In addition, statistical tests are executed to validate this novel research.
机译:由于生产技术,制造工艺和系统等商店地板,灵活的工作店环境变得越来越重要。几个真实的制造和服务公司必须为每项操作使用替代机器或流程以及每项工作的替代过程计划的可用性,以便在跨境目标普通的船舶地板上实现良好的性能,例如,所有作业的整体完成时间和最负载机器的工作量。在本文中,我们提出了一种基于分布算法估计的杂交方法和抹布分布的剖腹产方法,以便为流程计划灵活性和解决冲突目标来构建灵活的作业商店调度问题的更好序列。该混合方法利用用作Mallows分布中用作输入参数的静态前部信息。提出了各种情况和数值实验以说明使用所提出的方法可以明显地改善车间性能。此外,执行统计测试以验证这项新的研究。

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