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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Mathematical modeling and a memetic algorithm for the integration of process planning and scheduling considering uncertain processing times
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Mathematical modeling and a memetic algorithm for the integration of process planning and scheduling considering uncertain processing times

机译:考虑到不确定的处理时间的过程计划和调度集成的数学建模和模因算法

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摘要

The integration of process planning and scheduling is important for an efficient utilization of manufacturing resources. However, the focus of existing works is mainly on deterministic constraints of jobs. This article proposes a novel memetic algorithm for the integrated process planning and scheduling problem with processing time uncertainty based on processing time scenarios. First, a mathematical model for the stochastic integrated process planning and scheduling problem based on the network graph is established. Due to the nonlinearity in the model and the complexity of the problem, a memetic algorithm is then suggested for this problem. A novel local search (variable neighborhood search) algorithm is incorporated into the memetic algorithm. Two effective neighborhood structures are employed in the variable neighborhood search algorithm to improve the overall performance of the population. Furthermore, for the uncertainty in processing times, a set of scenarios have been generated to evaluate each individual. Finally, two performance measuresthe expected performance measure and the worst-case deviation measureare introduced and compared. In the experimental studies, the proposed memetic algorithm is tested on typical benchmark instances. Computational results show that the expected makespan measure performs better than the worst-case deviation measure and the proposed method exhibits high performance especially for large-scale instances. In addition, the results obtained by the proposed memetic algorithm are more satisfactory than those obtained by the algorithm that considers deterministic processing times only.
机译:工艺计划和计划的集成对于有效利用制造资源很重要。但是,现有工作的重点主要在于工作的确定性约束。针对处理时间不确定的处理时间不确定的集成过程计划与调度问题,本文提出了一种新颖的模因算法。首先,建立了基于网络图的随机集成过程计划与调度问题的数学模型。由于模型中的非线性和问题的复杂性,针对此问题提出了一种模因算法。一种新颖的局部搜索(可变邻域搜索)算法被纳入了模因算法。可变邻域搜索算法中采用了两个有效的邻域结构,以提高总体总体性能。此外,由于处理时间的不确定性,已经生成了一组方案来评估每个人。最后,介绍并比较了两个性能指标:预期性能指标和最坏情况偏差指标。在实验研究中,在典型的基准实例上测试了提出的模因算法。计算结果表明,预期的跨度测量方法比最坏情况下的偏差测量方法性能更好,并且所提出的方法具有较高的性能,特别是对于大型实例。另外,与仅考虑确定性处理时间的算法所获得的结果相比,所提出的模因算法所获得的结果更加令人满意。

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