A decision-theoretic method for surrogate model selection

The use of surrogate models to approximate computationally expensive simulation models, e.g., large comprehensive finite element models, is widespread. Typical uses of surrogate models include design, optimization, sensitivity analysis and/or uncertainty quantification. A surrogate model is defined...

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Published inJournal of sound and vibration Vol. 311; no. 3; pp. 1371 - 1390
Main Author Field, R.V.
Format Journal Article
LanguageEnglish
Published London Elsevier Ltd 08.04.2008
Elsevier
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ISSN0022-460X
1095-8568
DOI10.1016/j.jsv.2007.10.030

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Abstract The use of surrogate models to approximate computationally expensive simulation models, e.g., large comprehensive finite element models, is widespread. Typical uses of surrogate models include design, optimization, sensitivity analysis and/or uncertainty quantification. A surrogate model is defined by a postulated functional form, and values for the surrogate model parameters are estimated using results from a limited number of solutions to the comprehensive model. In general, there may be multiple surrogate models, each defined by possibly a different functional form, consistent with the limited data from the comprehensive model. We refer to each as a candidate surrogate model. Methods are developed and applied to select the optimal surrogate model from the collection of candidate surrogate models. One approach is to select the surrogate model that best fits the data provided by the comprehensive model, regardless of its intended use. The proposed approach applies techniques from decision theory, where postulated utility functions are used to account for the model use within the selection process. Three applications are presented to illustrate the methods. These include surrogate model selection for the purpose of: (1) estimating the minimum of a deterministic function, (2) the design under uncertainty of a simple oscillator, and (3) the uncertainty quantification of a complex engineering system subject to a severe shock and vibration environment.
AbstractList The use of surrogate models to approximate computationally expensive simulation models, e.g., large comprehensive finite element models, is widespread. Typical uses of surrogate models include design, optimization, sensitivity analysis and/or uncertainty quantification. A surrogate model is defined by a postulated functional form, and values for the surrogate model parameters are estimated using results from a limited number of solutions to the comprehensive model. In general, there may be multiple surrogate models, each defined by possibly a different functional form, consistent with the limited data from the comprehensive model. We refer to each as a candidate surrogate model. Methods are developed and applied to select the optimal surrogate model from the collection of candidate surrogate models. One approach is to select the surrogate model that best fits the data provided by the comprehensive model, regardless of its intended use. The proposed approach applies techniques from decision theory, where postulated utility functions are used to account for the model use within the selection process. Three applications are presented to illustrate the methods. These include surrogate model selection for the purpose of: (1) estimating the minimum of a deterministic function, (2) the design under uncertainty of a simple oscillator, and (3) the uncertainty quantification of a complex engineering system subject to a severe shock and vibration environment.
Author Field, R.V.
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10.1016/S0020-7683(97)00017-6
10.1016/0734-743X(92)90167-R
10.1061/(ASCE)0733-9399(2007)133:7(780)
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Issue 3
Keywords Finite element method
Uncertain system
Sensitivity analysis
Vibration
Model matching
Complex system
Deterministic approach
Modeling
Optimization
Language English
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  article-title: High velocity penetration of steel targets
  publication-title: International Journal of Impact Engineering
  doi: 10.1016/0734-743X(91)90034-D
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Snippet The use of surrogate models to approximate computationally expensive simulation models, e.g., large comprehensive finite element models, is widespread. Typical...
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SubjectTerms Applied sciences
Approximation
Design engineering
Exact sciences and technology
Fundamental areas of phenomenology (including applications)
Mathematical analysis
Mathematical models
Mechanical engineering. Machine design
Optimization
Physics
Sensitivity analysis
Solid mechanics
Structural and continuum mechanics
Uncertainty
Vibration
Vibration, mechanical wave, dynamic stability (aeroelasticity, vibration control...)
Title A decision-theoretic method for surrogate model selection
URI https://dx.doi.org/10.1016/j.jsv.2007.10.030
https://www.proquest.com/docview/1082203367
https://www.proquest.com/docview/1762114911
https://www.proquest.com/docview/31983972
Volume 311
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