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A Filter and Nonmonotone Adaptive Trust Region Line Search Method for Unconstrained Optimization

机译:过滤器和非单调的自适应信任区域线路搜索方法,用于无约束优化

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摘要

In this paper, a new nonmonotone adaptive trust region algorithm is proposed for unconstrained optimization by combining a multidimensional filter and the Goldstein-type line search technique. A modified trust region ratio is presented which results in more reasonable consistency between the accurate model and the approximate model. When a trial step is rejected, we use a multidimensional filter to increase the likelihood that the trial step is accepted. If the trial step is still not successful with the filter, a nonmonotone Goldstein-type line search is used in the direction of the rejected trial step. The approximation of the Hessian matrix is updated by the modified Quasi-Newton formula (CBFGS). Under appropriate conditions, the proposed algorithm is globally convergent and superlinearly convergent. The new algorithm shows better performance in terms of the Dolan–Moré performance profile. Numerical results demonstrate the efficiency and robustness of the proposed algorithm for solving unconstrained optimization problems.
机译:本文通过结合多维滤波器和Goldstein型线搜索技术,提出了一种新的非单调自适应信任区域算法。提出了修改的信任区域比,这导致准确模型和近似模型之间的更合理的一致性。当拒绝试验步骤时,我们使用多维过滤器来增加接受试验步骤的可能性。如果滤波器仍然不成功,则在拒绝的试验步骤的方向上使用非单调的GoldStein型线搜索。 Hessian矩阵的近似由修改的Quasi-Newton公式(CBFG)更新。在适当的条件下,所提出的算法是全球会聚和超级收敛的。新算法在Dolan-Moré性能简介方面显示出更好的性能。数值结果证明了解决无约束优化问题的所提出算法的效率和鲁棒性。

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