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EXTENDED RADIAL BASIS FUNCTIONS FOR METAMODELING: A COMPARATIVE STUDY

机译:元建模的扩展径向基函数:对比研究

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摘要

The process of constructing computationally benign approximations of expensive computer simulation codes, or metamodeling, is a critical component of several large-scale Multidisciplinary Design Optimization approaches. Such applications typically involve complex models, such as finite elements, computational fluid dynamics, or chemical processes. The decision regarding the most appropriate metamodeling approach usually depends on the type of application. However, several newly-proposed kernel-based metamodeling approaches can provide consistently accurate performance for a wide variety of applications. The authors recently proposed one such novel and effective metamodeling approach - the Extended Radial Basis Function approach - and reported encouraging results. To further understand the advantages and limitations of this new approach, we compare its performance to that of the typical radial basis function approach, and another closely related method - krig-ing. Several test functions with varying problem dimensions and degrees of nonlinearity are used to compare the accuracies of the metamodels using these metamodeling approaches. We consider several performance criteria, such as metamodel accuracy, effect of sampling technique, effect of problem dimension, and computational complexity. The results suggest that the E-RBF approach is a potentially powerful metamodeling approach for MDO-based applications.
机译:构建昂贵的计算机仿真代码或元模型的计算良性近似过程是几种大规模多学科设计优化方法的关键组成部分。这样的应用程序通常涉及复杂的模型,例如有限元,计算流体动力学或化学过程。关于最合适的元建模方法的决定通常取决于应用程序的类型。但是,几种新提出的基于内核的元建模方法可以为各种应用程序提供一致的准确性能。作者最近提出了这样一种新颖有效的元建模方法-扩展径向基函数方法-并报告了令人鼓舞的结果。为了进一步了解这种新方法的优点和局限性,我们将其性能与典型的径向基函数方法以及另一种紧密相关的方法-克里格法进行了比较。使用具有不同问题维度和非线性程度的几个测试函数,使用这些元建模方法来比较元模型的准确性。我们考虑几个性能标准,例如元模型准确性,抽样技术的影响,问题维度的影响和计算复杂性。结果表明,对于基于MDO的应用程序,E-RBF方法是一种潜在强大的元建模方法。

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