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Optimal design of electrical machines assisted by hybrid surrogate model based algorithm

机译:混合替代模型算法辅助电机的最优设计

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In this paper, for design of large-scale electromagnetic problems, a novel robust global optimization algorithm based on surrogate models is presented. The proposed algorithm can automatically select a proper meta-model technique among multiple alternatives. In this paper, three representative meta-modeling techniques including ordinary Kriging, universal Kriging, and response surface method with multi-quadratic radial basis functions are applied. In each optimization iteration, the above three models are used for parallel calculation. The proposed hybrid surrogate model optimization algorithm synthesizes advantages of these different meta-models. Without verification of a specific meta-model, a suitable one for the engineering problem to be analyzed is automatically selected. Therefore, the proposed algorithm intends to make a better trade-off between numerical efficiency and searching accuracy for solving engineering problems, which are characterized by stronger non-linearity, higher complexity, non-convex feasible region, and expensive performance analysis.
机译:本文介绍了大规模电磁问题的设计,提出了一种基于代理模型的新型鲁棒全局优化算法。该算法可以自动在多个替代方案中自动选择适当的元模型技术。在本文中,应用包括具有多二次径向基函数的普通克里格,通用克里格和响应表面方法的三种代表性的元建模技术。在每个优化迭代中,上述三种模型用于并行计算。所提出的混合代理模型优化算法合成了这些不同元模型的优点。如果没有验证特定的元模型,则会自动选择要分析的工程问题的合适。因此,所提出的算法打算在数值效率和搜索准确性之间进行更好的权衡,以解决工程问题,其特征在于较强的非线性,复杂性更高,复杂性,非凸起的可行区域和昂贵的性能分析。

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