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Erschienen in: Structural and Multidisciplinary Optimization 2/2019

13.09.2018 | Research Paper

A reliability-based optimization method using sequential surrogate model and Monte Carlo simulation

verfasst von: Xu Li, Chunlin Gong, Liangxian Gu, Zhao Jing, Hai Fang, Ruichao Gao

Erschienen in: Structural and Multidisciplinary Optimization | Ausgabe 2/2019

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Abstract

This paper presents a sequential surrogate model method for reliability-based optimization (SSRBO), which aims to reduce the number of the expensive black-box function calls in reliability-based optimization. The proposed method consists of three key steps. First, the initial samples are selected to construct radial basis function surrogate models for the objective and constraint functions, respectively. Second, by solving a series of special optimization problems in terms of the surrogate models, local samples are identified and added in the vicinity of the current optimal point to refine the surrogate models. Third, by solving the optimization problem with the shifted constraints, the current optimal point is obtained. Then, at the current optimal point, the Monte Carlo simulation based on the surrogate models is carried out to obtain the cumulative distribution functions (CDFs) of the constraints. The CDFs and target reliabilities are used to update the offsets of the constraints for the next iteration. Therefore, the original problem is decomposed to serial cheap surrogate-based deterministic problems and Monte Carlo simulations. Several examples are adopted to verify SSRBO. The results show that the number of the expensive black-box function calls is reduced exponentially without losing of precision compared to the alternative methods, which illustrates the efficiency and accuracy of the proposed method.

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Metadaten
Titel
A reliability-based optimization method using sequential surrogate model and Monte Carlo simulation
verfasst von
Xu Li
Chunlin Gong
Liangxian Gu
Zhao Jing
Hai Fang
Ruichao Gao
Publikationsdatum
13.09.2018
Verlag
Springer Berlin Heidelberg
Erschienen in
Structural and Multidisciplinary Optimization / Ausgabe 2/2019
Print ISSN: 1615-147X
Elektronische ISSN: 1615-1488
DOI
https://doi.org/10.1007/s00158-018-2075-3

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