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首页> 外文期刊>Journal of Computational and Applied Mathematics >Combining nonmonotone conic trust region and line search techniques for unconstrained optimization
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Combining nonmonotone conic trust region and line search techniques for unconstrained optimization

机译:结合非单调圆锥信赖域和线搜索技术进行无约束优化

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摘要

In this paper, we propose a trust region method for unconstrained optimization that can be regarded as a combination of conic model, nonmonotone and line search techniques. Unlike in traditional trust region methods, the subproblem of our algorithm is the conic minimization subproblem; moreover, our algorithm performs a nonmonotone line search to find the next iteration point when a trial step is not accepted, instead of resolving the subproblem. The global and superlinear convergence results for the algorithm are established under reasonable assumptions. Numerical results show that the new method is efficient for unconstrained optimization problems.
机译:在本文中,我们提出了一种用于无约束优化的信任区域方法,该方法可以视为圆锥模型,非单调和线搜索技术的组合。与传统的信任区域方法不同,我们算法的子问题是圆锥最小化子问题。此外,我们的算法执行非单调线搜索以在不接受试用步骤时找到下一个迭代点,而不是解决子问题。在合理的假设下建立了该算法的全局和超线性收敛结果。数值结果表明,该方法对于无约束优化问题是有效的。

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