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Modeling and Pareto optimization of multi-objective order scheduling problems in production planning

机译:生产计划中多目标订单调度问题的建模和帕累托优化

摘要

This paper addresses a multi-objective order scheduling problem in production planning under a complicated production environment with the consideration of multiple plants, multiple production departments and multiple production processes. A Pareto optimization model, combining a NSGA-II-based optimization process with an effective production process simulator, is developed to handle this problem. In the NSGA-II-based optimization process, a novel chromosome representation and modified genetic operators are presented while a heuristic pruning and final selection decision-making process is developed to select the final order scheduling solution from a set of Pareto optimal solutions. The production process simulator is developed to simulate the production process in the complicated production environment. Experiments based on industrial data are conducted to validate the proposed optimization model. Results show that the proposed model can effectively solve the order scheduling problem by generating Pareto optimal solutions which are superior to industrial solutions.
机译:本文考虑了多个工厂,多个生产部门和多个生产流程,解决了复杂生产环境下生产计划中的多目标订单调度问题。开发了帕累托优化模型,将基于NSGA-II的优化过程与有效的生产过程模拟器相结合,以解决此问题。在基于NSGA-II的优化过程中,提出了一种新颖的染色体表示形式和经过修改的遗传算子,同时开发了启发式修剪和最终选择决策过程,以从一组Pareto最优解中选择最终订单调度解决方案。开发生产过程模拟器是为了模拟复杂生产环境中的生产过程。进行了基于工业数据的实验,以验证所提出的优化模型。结果表明,所提出的模型能够产生优于工业解决方案的帕累托最优解,可以有效地解决订单调度问题。

著录项

  • 作者

    Guo ZX; Wong WK; Li Z; Ren P;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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