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首页> 外文期刊>Optimization: A Journal of Mathematical Programming and Operations Research >A trust region method for solving linearly constrained locally Lipschitz optimization problems
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A trust region method for solving linearly constrained locally Lipschitz optimization problems

机译:一种用于解决线性约束的信任区域方法,局部嘴唇尖舍优化问题

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摘要

In this paper, we present a nonsmooth trust region method for solving linearly constrained optimization problems with a locally Lipschitz objective function. Using the approximation of the steepest descent direction, a quadratic approximation of the objective function is constructed. The null space technique is applied to handle the constraints of the quadratic subproblem. Next, the CG-Steihaug method is applied to solve the new approximation quadratic model with only the trust region constraint. Finally, the convergence of presented algorithm is proved. This algorithm is implemented in the MATLAB environment and the numerical results are reported.
机译:在本文中,我们介绍了一种用于解决当地Lipschitz目标函数的线性约束优化问题的非运动区域方法。 使用近陡方向的近似,构造了目标函数的二次近似。 空格技术应用于处理二次子问题的约束。 接下来,应用CG-STEIHAUG方法以解决新的近似二次模型,只有信任区域约束。 最后,证明了呈现算法的收敛。 该算法在MATLAB环境中实现,报告了数值结果。

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