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Discrete evolutionary multi-objective optimization for energy-efficient blocking flow shop scheduling with setup time

机译:具有设置时间的节能阻塞流程店的离散进化多目标优化

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摘要

Sustainable scheduling problems have been attracted great attention from researchers. For the flow shop scheduling problems, researches mainly focus on reducing economic costs, and the energy consumption has not yet been well studied up to date especially in the blocking flow shop scheduling problem. Thus, we construct a multi-objective optimization model of the blocking flow shop scheduling problem with makespan and energy consumption criteria. Then a discrete evolutionary multi-objective optimization (DEMO) algorithm is proposed. The three contributions of DEMO are as follows. First, a variable single-objective heuristic is proposed to initialize the population. Second, the self-adaptive exploitation evolution and self-adaptive exploration evolution operators are proposed respectively to obtain high quality solutions. Third, a penalty-based boundary interstation based on the local search, called by PBI-based-local search, is designed to further improve the exploitation capability of the algorithm. Simulation results show that DEMO outperforms the three state-of-the-art algorithms with respect to hypervolume, coverage rate and distance metrics. (C) 2020 Elsevier B.V. All rights reserved.
机译:可持续的调度问题受到研究人员的巨大关注。对于流量店调度问题,研究主要关注降低经济成本,并且迄今尚未得到很好的研究能源消耗,特别是在阻塞流店调度问题上。因此,我们通过Makespan和能量消耗标准构建了阻塞流店调度问题的多目标优化模型。然后提出了一种离散的进化多目标优化(演示)算法。演示的三个贡献如下。首先,提出了一种可变的单目标启发式才能初始化人口。其次,分别提出了自适应开发演化和自适应勘探进化运营商,以获得高质量的解决方案。第三,基于PBI的本地搜索的基于地方搜索的基于惩罚的边界障碍,旨在进一步提高算法的开发能力。仿真结果表明,演示优于三种最先进的算法,相对于超高型,覆盖率和距离指标。 (c)2020 Elsevier B.V.保留所有权利。

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