4.5 Article

An efficient ensemble of radial basis functions method based on quadratic programming

Journal

ENGINEERING OPTIMIZATION
Volume 48, Issue 7, Pages 1202-1225

Publisher

TAYLOR & FRANCIS LTD
DOI: 10.1080/0305215X.2015.1100470

Keywords

radial basis function; ensemble of surrogates; quadratic programming; multidisciplinary design optimization

Funding

  1. National Natural Science Foundation of China [51105040, 11372036]
  2. Aeronautic Science Foundation of China [2011ZA72003]
  3. Excellent Young Scholars Research Fund of Beijing Institute of Technology [2010Y0102]
  4. Fundamental Research Fund of Beijing Institute of Technology [20130142008]

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Radial basis function (RBF) surrogate models have been widely applied in engineering design optimization problems to approximate computationally expensive simulations. Ensemble of radial basis functions (ERBF) using the weighted sum of stand-alone RBFs improves the approximation performance. To achieve a good trade-off between the accuracy and efficiency of the modelling process, this article presents a novel efficient ERBF method to determine the weights through solving a quadratic programming subproblem, denoted ERBF-QP. Several numerical benchmark functions are utilized to test the performance of the proposed ERBF-QP method. The results show that ERBF-QP can significantly improve the modelling efficiency compared with several existing ERBF methods. Moreover, ERBF-QP also provides satisfactory performance in terms of approximation accuracy. Finally, the ERBF-QP method is applied to a satellite multidisciplinary design optimization problem to illustrate its practicality and effectiveness for real-world engineering applications.

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