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A simulation-optimization strategy to deal simultaneously with tens of decision variables and multiple performance measures in manufacturing

机译:一种仿真优化策略,同时处理数十个决策变量和制造中的多种性能措施

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摘要

This work addresses the multiple criteria simulation-optimization problem. This problem entails using an optimization strategy to manipulate the parameters of a simulation model to arrive at the best possible configurations in the presence of several performance measures in conflict. Pareto Efficiency conditions are used in an iterative framework based on experimental design and pairwise comparison. In particular, this work improves upon and replaces the use of Data Envelopment Analysis to determine the efficient frontier, and replaces the use of a single-pass algorithm previously proposed by our research group. The results show a rapid convergence to a more precise characterization of the Pareto-efficient frontier. In addition, the capability of the method to deal with fifty decision variables simultaneously is demonstrated through a study regarding the fine-tuning of a manufacturing line.
机译:这项工作解决了多个标准仿真优化问题。 此问题需要使用优化策略来操作模拟模型的参数,以在存在若干性能措施的存在下以最佳的配置到达。 帕累托效率条件用于基于实验设计和成对比较的迭代框架。 特别是,这项工作改进并取代了数据包络分析来确定有效的前沿,并替换我们的研究组先前提出的单通算法的使用。 结果表明,静态高效边疆的更精确表征的快速收敛性。 此外,通过关于制造线的微调的研究,通过研究来对处理五十判决变量来处理五十判决变量的能力。

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