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A decomposition-based multi-objective genetic programming hyper-heuristic approach for the multi-skill resource constrained project scheduling problem

机译:基于分解的多目标遗传编程超启发式方法,用于多技能资源受限的项目调度问题

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In this paper, an efficient decomposition-based multi-objective genetic programming hyper-heuristic (MOGP-HH/D) approach is proposed for the multi-skill resource constrained project scheduling problem (MS-RCPSP) with the objectives of minimizing the makespan and the total cost simultaneously. First, the decomposition mechanism is presented to improve the diversity of solutions. Second, a single-list encoding scheme and an improved repair-based decoding scheme are designed to represent individuals and construct feasible schedules, respectively. Third, ten adaptive heuristics are developed elaborately to constitute a list of low-level heuristics (LLHs). Fourth, genetic programming is employed as the high-level heuristic (HLH) to generate a promising heuristics sequence from the LLHs set flexibly. Finally, the Taguchi method of design-of-experiment (DOE) is conducted to analyze the performance of parameter settings. The effectiveness of MOGP-HH/D is evaluated on a typical benchmark dataset and computational results exhibit the superiority of the proposed algorithm over the existing methods in solving multi-objective MS-RCPSP. (C) 2021 Elsevier B.V. All rights reserved.
机译:在本文中,提出了一种基于有效的分解的多目标遗传编程超启发式(Mogp-HH / D)方法,用于多技能资源受限的项目调度问题(MS-RCPSP),其目标最小化Makespan和总成本同时。首先,提出了分解机制以改善解决方案的多样性。其次,旨在分别表示单个列表编码方案和改进的基于维修的解码方案,以分别表示单个和构造可行的时间表。第三,制定了十大自适应启发式,制定了构成低级启发式列表(LLHS)。第四,遗传编程是用作高级启发式(HLH),以灵活地从LLHS设置产生有前途的启发式序列。最后,进行了实验设计(DOE)的Taguchi方法,以分析参数设置的性能。在典型的基准数据集和计算结果上评估MogP-HH / D的有效性,并在解决多目标MS-RCPSP中的现有方法上表现出所提出的算法的优越性。 (c)2021 elestvier b.v.保留所有权利。

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