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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >A New Approach to Reducing Search Space and Increasing Efficiency in Simulation Optimization Problems via the Fuzzy-DEA-BCC
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A New Approach to Reducing Search Space and Increasing Efficiency in Simulation Optimization Problems via the Fuzzy-DEA-BCC

机译:通过Fuzzy-DEA-BCC减少仿真优化问题中搜索空间并提高效率的新方法

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The development of discrete-event simulation software was one of the most successful interfaces in operational research with computation. As a result, research has been focused on the development of new methods and algorithms with the purpose of increasing simulation optimization efficiency and reliability. This study aims to define optimum variation intervals for each decision variable through a proposed approach which combines the data envelopment analysis with the Fuzzy logic (Fuzzy-DEA-BCC), seeking to improve the decision-making units’ distinction in the face of uncertainty. In this study, Taguchi’s orthogonal arrays were used to generate the necessary quantity of DMUs, and the output variables were generated by the simulation. Two study objects were utilized as examples of mono- and multiobjective problems. Results confirmed the reliability and applicability of the proposed method, as it enabled a significant reduction in search space and computational demand when compared to conventional simulation optimization techniques.
机译:离散事件模拟软件的开发是带有计算的运筹学中最成功的接口之一。结果,研究集中在新方法和算法的开发上,以提高仿真优化效率和可靠性。这项研究旨在通过将数据包络分析与模糊逻辑(Fuzzy-DEA-BCC)相结合的提议方法,为每个决策变量定义最佳变化区间,以寻求在不确定性面前提高决策部门的区分度。在这项研究中,田口的正交阵列用于生成必要数量的DMU,并且输出变量是通过模拟生成的。两个研究对象被用作单目标和多目标问题的例子。结果证实了所提方法的可靠性和适用性,因为与传统的仿真优化技术相比,它可以显着减少搜索空间和计算需求。

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