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A Derivative-Free Trust Region Algorithm with Nonmonotone Filter Technique for Bound Constrained Optimization

机译:带非约束滤波的无导数无导数信赖域算法

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We propose a derivative-free trust region algorithm with a nonmonotone filter technique for bound constrained optimization. The derivative-free strategy is applied for special minimization functions in which derivatives are not all available. A nonmonotone filter technique ensures not only the trust region feature but also the global convergence under reasonable assumptions. Numerical experiments demonstrate that the new algorithm is effective for bound constrained optimization. Locally, optimal parameters with respect to overall computational time on a set of test problems are identified. The performance of the best choice of parameter values obtained by the algorithm we presented which differs from traditionally used values indicates that the algorithm proposed in this paper has a certain advantage for the nondifferentiable optimization problems.
机译:我们提出了一种具有非单调滤波器技术的无导数信任域算法,用于约束优化。无导数策略适用于并非全部可用的特殊最小化函数。在合理的假设下,非单调滤波器技术不仅可以确保信任区域特征,还可以确保全局收敛。数值实验表明,该算法对约束优化是有效的。在本地,确定关于一组测试问题的总体计算时间的最佳参数。通过我们提出的算法获得的最佳参数值选择性能与传统使用的值有所不同,这表明本文提出的算法对于不可微优化问题具有一定的优势。

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