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An Approach Based on Enhanced Collaborative Optimization and Kriging Approximation in Multidisciplinary Design Optimization

机译:一种基于多学科设计优化中增强协作优化和Kriging近似的方法

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This paper concentrates on the computational challenge in multidisciplinary design optimization (MDO) and a comprehensive strategy combining enhanced collaborative optimization (ECO) and kriging approximation models is introduced. In this strategy, the computational and organizational advantages of original collaborative optimization (CO) are inherited by ECO, which can satisfy the strengthened consistency requirements. Kriging approximation models are constructed to replace high-fidelity simulation models in individual disciplines and reduce the expensive computational cost in practical MDO problems. The proposed methodology is demonstrated by solving the classical speed reducer design problem. The better results indicate that ECO using kriging approximation models can achieve a considerable reduction of computational expense while guaranteeing the accuracy of optimal solutions with efficient convergence.
机译:本文专注于多学科设计优化中的计算挑战(MDO),介绍了结合增强的协作优化(ECO)和Kriging近似模型的全面策略。在该策略中,原始协作优化(CO)的计算和组织优势由ECO继承,可以满足增强的一致性要求。 Kriging近似模型被构造成替换个人学科中的高保真仿真模型,并降低实际MDO问题中昂贵的计算成本。通过解决经典减速器设计问题,证明了所提出的方法。越好的结果表明,使用Kriging近似模型的ECO可以实现相当大降低计算费用,同时保证具有有效趋同的最佳解决方案的准确性。

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