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A Response Surface Methodology Based on Improved Compactly Supported Radial Basis Function and Its Application to Rapid Optimizations of Electromagnetic Devices

机译:基于改进的紧支撑径向基函数的响应面方法及其在电磁装置快速优化中的应用

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摘要

The compactly supported radial basis function (CS-RBF) is improved and used to design a new response surface model. The model is incorporated into stochastic global optimal methods to develop a fast and efficient global optimal design strategy with the main target to reduce the number of function calls that involve computationally heavy procedures such as, for example, the repetitive usage of finite element analysis which is generally required in solving inverse problems. In order to employ a multistep method to automatically adjust the support of the CS-RBF to realize the "best" tradeoff between computational efficiency and accuracy, a cluster algorithm is proposed to decompose the sample points into a nested sequence of subsets. To validate the proposed algorithm, typical numerical results on two different examples are reported.
机译:改进了紧凑支持的径向基函数(CS-RBF),并用于设计新的响应面模型。该模型被并入随机全局最优方法中,以开发一种快速有效的全局最优设计策略,其主要目标是减少涉及计算量大的过程(例如重复使用有限元分析)的函数调用的数量。解决反问题通常需要的。为了采用多步方法自动调整CS-RBF的支持以实现计算效率和准确性之间的“最佳”折衷,提出了一种聚类算法,将样本点分解为嵌套的子集序列。为了验证所提出的算法,报告了两个不同示例的典型数值结果。

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