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Integrated intelligent method for solving multi-objective MPM job shop scheduling problem

机译:求解多目标MPM作业商店调度问题的集成智能方法

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The project portfolio scheduling problem has become very popular in recent years. Current project oriented organisations have to design a plan in order to execute a set of projects sharing common resources such as personnel teams. These projects must, therefore, be handled concurrently. This problem can be seen as an extension of the job shop scheduling problem; the multi-purpose job shop scheduling problem. In this paper, we propose a hybrid approach to deal with a bi-objective optimisation problem; Makespan and Total Weighted Tardiness. The approach consists of three phases; in the first phase we utilise a Genetic Algorithm (GA) to generate a set of initial solutions, which are used as inputs to recurrent neural networks (RNNs) in the second phase. In the third phase we apply adaptive learning rate and a Tabu Search like algorithm with the view to improve the solutions returned by the RNNs. The proposed hybrid approach is evaluated on some well-known benchmarks and the experimental results are very promising.
机译:项目组合调度问题近年来变得非常受欢迎。目前的项目导向组织必须设计计划,以便执行一组共享人员团队等共同资源的项目。因此,这些项目必须同时处理。这个问题可以被视为作业商店调度问题的延伸;多功能作业商店调度问题。在本文中,我们提出了一种混合方法来处理双目标优化问题; Makespan和总加权迟到。该方法包括三个阶段;在第一阶段,我们利用遗传算法(GA)来生成一组初始解决方案,其用作第二阶段中的反复性神经网络(RNN)的输入。在第三阶段,我们应用自适应学习速率和禁忌搜索等算法,以改善RNN返回的解决方案。提出的混合方法是在一些着名的基准中评估的,实验结果非常有前途。

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