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NPUA: A new approach for the analysis of computer experiments
Authors:Holger Dette
Affiliation:
  • a Ruhr-Universität Bochum, Fakultät für Mathematik, 44780 Bochum, Germany
  • b Sheffield University, School of Probability and Statistics, Sheffield, UK
  • Abstract:An important problem in the analysis of computer experiments is the specification of the uncertainty of the prediction according to a meta-model. The Bayesian approach, developed for the uncertainty analysis of deterministic computer models, expresses uncertainty by the use of a Gaussian process. There are several versions of the Bayesian approach, which are different in many regards but all of them lead to time consuming computations for large data sets.In the present paper we introduce a new approach in which the distribution of uncertainty is obtained in a general nonparametric form. The proposed approach is called non-parametric uncertainty analysis (NPUA), which is computationally simple since it combines generic sampling and regression techniques. We compare NPUA with the Bayesian and Kriging approaches and show the advantages of NPUA for finding points for the next runs by reanalyzing the ASET model.
    Keywords:Computer experiments   Uncertainty analysis   Importance sampling   Stepwise regression   The jackknife technique   Sequential designs
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