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Solving distributed FMS scheduling problems subject to maintenance: genetic algorithms approach

机译:解决需要维护的分布式FMS调度问题:遗传算法

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In general, distributed scheduling problem focuses on simultaneously solving two issues: (i) allocation of jobs to suitable factories and (ii) determination of the corresponding production scheduling in each factory. The objective of this approach is to maximize the system efficiency by finding an optimal planning for a better collaboration among various processes. This makes distributed scheduling problems more complicated than classical production scheduling ones. With the addition of alternative production routing, the problems are even more complicated. Conventionally, machines are usually assumed to be available without interruption during the production scheduling. Maintenance is not considered. However, every machine requires maintenance, and the maintenance policy directly affects the machine's availability. Consequently, it influences the production scheduling. In this connection, maintenance should be considered in distributed scheduling. The objective of this paper is to propose a genetic algorithm with dominant genes (GADG) approach to deal with distributed flexible manufacturing system (FMS) scheduling problems subject to machine maintenance constraint. The optimization performance of the proposed GADG will be compared with other existing approaches, such as simple genetic algorithms to demonstrate its reliability. The significance and benefits of considering maintenance in distributed scheduling will also be demonstrated by simulation runs on a sample problem.
机译:通常,分布式调度问题集中于同时解决两个问题:(i)将工作分配给合适的工厂,以及(ii)确定每个工厂中相应的生产调度。这种方法的目的是通过找到在各个过程之间进行更好协作的最佳计划来最大化系统效率。这使得分布式调度问题比传统的生产调度问题更加复杂。随着其他生产路线的选择,问题变得更加复杂。常规上,通常假定机器在生产计划期间不中断地可用。不考虑维护。但是,每台机器都需要维护,维护策略直接影响机器的可用性。因此,它影响生产计划。在这方面,应在分布式调度中考虑维护。本文的目的是提出一种具有显性基因的遗传算法(GADG),以解决受机器维护约束的分布式柔性制造系统(FMS)调度问题。拟议的GADG的优化性能将与其他现有方法(例如简单的遗传算法)进行比较,以证明其可靠性。在样本问题上进行模拟运行,还将证明在分布式调度中考虑维护的重要性和好处。

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