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A framework for response surface methodology for simulation optimization

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Author Info
H.G. Neddermeijer
G.J. van Oortmarssen ()
N. Piersma ()
R. Dekker () (FEW-Econometrie en besliskunde)

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Abstract

We develop a framework for automated optimization of stochastic simulation models using Response Surface Methodology. The framework is especially intended for simulation models where the calculation of the corresponding stochastic response function is very expensive or time-consuming. Response Surface Methodology is frequently used for the optimization of stochastic simulation models in a non-automated fashion. In scientific applications there is a clear need for a standardized algorithm based on Response Surface Methodology. In addition, an automated algorithm is less time-consuming, since there is no need to interfere in the optimization process. In our framework for automated optimization we describe all choices that have to be made in constructing such an algorithm.

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Publisher Info
Paper provided by Erasmus University Rotterdam, Econometric Institute in its series Econometric Institute Report with number 192.

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Date of creation: 2000
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Handle: RePEc:dgr:eureir:2000192

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Related research
Keywords: optimization; simulation;

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This paper has been announced in the following NEP Reports: References listed on IDEAS
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  1. Greenwood, Allen G. & Rees, Loren Paul & Siochi, Fernando C., 1998. "An investigation of the behavior of simulation response surfaces," European Journal of Operational Research, Elsevier, vol. 110(2), pages 282-313, October. [Downloadable!] (restricted)
  2. Kleijnen, J.P.C., 1997. "Experimental design for sensitivity analysis, optimization, and validation of simulation models," Discussion Paper 52, Tilburg University, Center for Economic Research. [Downloadable!]
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(explanations, Please report citation or reference errors to , or , if you are the registered author of the cited work, log in to your RePEc Author Service profile, click on "citations" and make appropriate adjustments.)

  1. S.Y.G.L. Tan & G.J. Oortmarssen van & N. Piersma, 2000. "Estimting parameters of a microsimulation model for breast cancer screening using the score function method," Econometric Institute Report 208, Erasmus University Rotterdam, Econometric Institute. [Downloadable!]
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