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A GENE EXPRESSION PROGRAMMING BASED KRIGING METHOD FOR METAMODEL CONSTRUCTION

机译:基于基于基于Metomodel结构的Kriging方法

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To reduce the computational time and cost of running computer-based simulation experiments, metamodels are becoming more and more popular for replacing the simulation codes for design and optimization. In this paper, a gene expression programming (GEP) based kriging method is proposed. In this method, the GEP algorithm is used to create regression functions in kriging metamodels. An asymmetric function is taken as an illustrative example to prove the validity and effectiveness of the proposed method. Compared to the GEP and original kriging methods, the proposed method can achieve more accurate approximation of a high-dimensional design space. The GEP based kriging method can not only improve the prediction performance of the original kriging method if strong trends exist in the original function relationships, but also deal with the approximation of the high-dimensional design space, where GEP shows poor performance.
机译:为了减少运行基于计算机的仿真实验的计算时间和成本,Metomodels正在变得越来越流行,用于更换设计和优化的仿真码。本文提出了一种基于基因表达规划(GEP)的Kriging方法。在此方法中,GEP算法用于在Kriging Metomodels中创建回归函数。采用非对称功能作为说明性示例,以证明该方法的有效性和有效性。与GEP和原始Kriging方法相比,所提出的方法可以实现更准确的高维设计空间的近似。基于GEP的Kriging方法不能仅提高原始克里格化方法的预测性能,如果在原始函数关系中存在强烈的趋势,还处理高维设计空间的近似,其中GEP表现出差。

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