2015
DOI: 10.1007/978-1-4899-7547-8_2
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Metamodel-Based Robust Simulation-Optimization: An Overview

Abstract: The simulation-optimization process aims to identify the setting of input parameters leading to optimal system performance, evaluated through a simulation model of the system itself. The factors involved in the simulation model are often noisy and cannot be controlled or varied during the decision process, due to measurement errors or other implementation issues; moreover, some factors are determined by the environment, rather than by managers or decision makers. Therefore, the presumed optimal solution may tu… Show more

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Cited by 17 publications
(19 citation statements)
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References 61 publications
(72 reference statements)
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“…Therefore, meta-models could be used to simulate and approximate the relationship between output and inputs parameters in the process. The metamodel and its counterpart as robust design approach have been studied, to guarantee that the problem keeps its tractability under uncertainties with at least computational costs (Dellino et al, 2015). Naturally, it is up to the process engineer to decide which method is the best for a particular problem.…”
Section: Basic Informationmentioning
confidence: 99%
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“…Therefore, meta-models could be used to simulate and approximate the relationship between output and inputs parameters in the process. The metamodel and its counterpart as robust design approach have been studied, to guarantee that the problem keeps its tractability under uncertainties with at least computational costs (Dellino et al, 2015). Naturally, it is up to the process engineer to decide which method is the best for a particular problem.…”
Section: Basic Informationmentioning
confidence: 99%
“…In this context, we concentrate more in Taguchi philosophy for the uncertain and noisy condition of the problem in the real world. Recent comprehensive overview of historical and technical aspects of robust optimization methods can be found in (Bertsimas et al, 2011;Beyer & Sendhoff, 2007;Dellino et al, 2015;Gabrel et al, 2014;Geletu & Li, 2014;Wang & Shan, 2011).…”
Section: Uncertaintymentioning
confidence: 99%
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