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A robust trust region method for nonlinear optimization with inequality constraint

机译:不等式约束非线性优化的鲁棒信赖域方法

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摘要

A new trust region algorithm for inequality constrained optimization is presented, which solves two linear programming subproblems and a serious of quadratic subproblems at each successful iteration to obtain a acceptable trial step. The algorithm can circumvent the difficulties associated with the possible inconsistency of trust region subproblem. Moreover, the algorithm can converge to a point which satisfies a certain first-order necessary condition even when the original problems itself is infeasible. Some global convergence properties are proved without regularity assumption and local superlinear convergence of the algorithm is obtained under standard conditions. Preliminary numerical results are reported on some classic problems. (c) 2005 Elsevier Inc. All rights reserved.
机译:提出了一种新的不等式约束优化的信赖域算法,该算法在每次成功的迭代中求解两个线性规划子问题和一个严重的二次子问题,以获得可接受的试验步骤。该算法可以避免与信任区域子问题可能不一致有关的困难。而且,即使原始问题本身是不可行的,该算法也可以收敛到满足某个一阶必要条件的点。在没有规则假设的情况下证明了一些全局收敛性,并在标准条件下获得了算法的局部超线性收敛。关于一些经典问题的初步数值结果已有报道。 (c)2005 Elsevier Inc.保留所有权利。

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