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The development of a hybridized particle swarm for kriging hyperparameter tuning

机译:用于克里格超参数调整的混合粒子群算法的开发

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摘要

Optimizations involving high-fidelity simulations can become prohibitively expensive when an exhaustive search is employed. To remove this expense a surrogate model is often constructed. One of the most popular techniques for the construction of such a surrogate model is that of kriging. However, the construction of a kriging model requires the optimization of a multi-model likelihood function, the cost of which can approach that of the high-fidelity simulations upon which the model is based. The article describes the development of a hybridized particle swarm algorithm which aims to reduce the cost of this likelihood optimization by drawing on an efficient adjoint of the likelihood. This hybridized tuning strategy is compared to a number of other strategies with respect to the inverse design of an airfoil as well as the optimization of an airfoil for minimum drag at a fixed lift.
机译:当采用穷举搜索时,涉及高保真模拟的优化可能变得代价高昂。为了消除该费用,通常构建替代模型。构造这种替代模型的最流行技术之一是克里金法。但是,克里金模型的构建需要优化多模型似然函数,其成本可能接近该模型所基于的高保真模拟的成本。本文介绍了一种混合粒子群算法的开发,该算法旨在通过利用可能性的有效伴随物来降低这种可能性优化的成本。就机翼的逆向设计以及优化机翼以在固定升程处将阻力最小化方面而言,将这种混合调整策略与许多其他策略进行了比较。

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  • 来源
    《Engineering Optimization》 |2011年第6期|p.675-699|共25页
  • 作者

    D. J.J. Toal;

  • 作者单位

    University of Southampton, Southampton, SO17 1BJ Airbus Operations Ltd., New Filton House, Filton, Bristol, BS99 7AR;

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  • 正文语种 eng
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