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首页> 外文期刊>Journal of Mathematics in Industry >A new nonmonotone adaptive trust region line search method for unconstrained optimization
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A new nonmonotone adaptive trust region line search method for unconstrained optimization

机译:一种新的非单调自适应信任区域线路搜索方法,用于无约束优化

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This paper proposes a new nonmonotone adaptive trust region line search method for solving unconstrained optimization problems, and presents a modified trust region ratio, which obtained more reasonable consistency between the accurate model and the approximate model. The approximation of Hessian matrix is updated by the modified BFGS formula. Trust region radius adopts a new adaptive strategy to overcome additional computational costs at each iteration. The global convergence and superlinear convergence of the method are preserved under suitable conditions. Finally, the numerical results show that the proposed method is very efficient.
机译:本文提出了一种新的非单调的自适应信任区域线路搜索方法,用于解决无约束优化问题,并提出了一种改进的信任区域比,其在准确模型和近似模型之间获得了更合理的一致性。修改的BFGS公式更新了Hessian矩阵的近似。信任地区半径采用新的自适应策略来克服每次迭代的额外计算成本。该方法的全局收敛和超线性收敛在合适的条件下保留。最后,数值结果表明,所提出的方法非常有效。

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