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Differential Evolution Based Hyper-heuristic for the Flexible Job-Shop Scheduling Problem with Fuzzy Processing Time

机译:基于差异演化的基于超启发式的模糊处理时间灵活的作业商店调度问题

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In this paper, a differential evolution based hyper-heuristic (DEHH) algorithm is proposed to solve the flexible job-shop scheduling problem with fuzzy processing time (FJSPF). In the DEHH scheme, five simple and effective heuristic rules are designed to construct a set of low-level heuristics, and differential evolution is employed as the high-level strategy to manipulate the low-level heuristics to operate on the solution domain. Additionally, an efficient hybrid machine assignment scheme is proposed to decode a solution to a feasible schedule. The effectiveness of the DEHH is evaluated on two typical benchmark sets and the computational results indicate the superiority of the proposed hyper-heuristic scheme over the state-of-the-art algorithms.
机译:在本文中,提出了一种基于差分演化的超启发式(DEHH)算法来解决模糊处理时间(FJSPF)的灵活作业商店调度问题。在DEHH方案中,五种简单且有效的启发式规则旨在构建一套低级启发式,并且差分演变是用作操纵低级启发式的高级策略,以在解决方案域上运行。另外,提出了一种有效的混合机器分配方案来解码解决方案到可行的时间表。 DeHH的有效性在两个典型的基准组上进行评估,计算结果表明,在最先进的算法上提出的超级启发式方案的优势。

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