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Hybrid surrogate-model-based multi-fidelity efficient global optimization applied to helicopter blade design

机译:基于混合的替代模型的多保真高效全球优化应用于直升机刀片设计

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摘要

A multi-fidelity optimization technique by an efficient global optimization process using a hybrid surrogate model is investigated for solving real-world design problems. The model constructs the local deviation using the kriging method and the global model using a radial basis function. The expected improvement is computed to decide additional samples that can improve the model. The approach was first investigated by solving mathematical test problems. The results were compared with optimization results from an ordinary kriging method and a co-kriging method, and the proposed method produced the best solution. The proposed method was also applied to aerodynamic design optimization of helicopter blades to obtain the maximum blade efficiency. The optimal shape obtained by the proposed method achieved performance almost equivalent to that obtained using the high-fidelity, evaluation-based single-fidelity optimization. Comparing all three methods, the proposed method required the lowest total number of high-fidelity evaluation runs to obtain a converged solution.
机译:研究了使用混合代理模型的有效的全局优化过程的多保真优化技术,以解决现实世界的设计问题。该模型使用径向基函数使用Kriging方法和全局模型构造局部偏差。计算预期的改进以确定可以改善模型的其他样本。通过解决数学测试问题首先进行该方法。将结果与普通Kriging方法和共克里格化方法的优化结果进行比较,所提出的方法产生了最佳解决方案。该方法还应用于直升机叶片的空气动力学设计优化,以获得最大叶片效率。通过所提出的方法获得的最佳形状实现了几乎相当于使用高保真,基于高保真的单一保真优化获得的性能。比较所有三种方法,所提出的方法需要最低总数的高保真评估运行以获得融合解决方案。

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