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A QP-free algorithm without a penalty function or a filter for nonlinear general-constrained optimization

机译:没有惩罚功能的无QP的算法或非线性常规约束优化的过滤器

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摘要

In this paper, we present a QP-free algorithm without a penalty function or a filter for nonlinear general-constrained optimization. At each iteration, three systems of linear equations with the same coefficient matrix are solved to yield search direction; the nonmonotone line search ensures that the objective function or constraint violation function is sufficiently reduced. There is no feasibility restoration phase in our algorithm, which is necessary for filter methods. The algorithm possesses global convergence as well as superlinear convergence under some mild conditions including a weaker assumption of positive definiteness. Finally, some preliminary numerical results are reported. (C) 2017 Elsevier Inc. All rights reserved.
机译:在本文中,我们提出了一种无惩罚功能的无QP的算法或用于非线性常规约束优化的滤波器。 在每次迭代时,解决了具有相同系数矩阵的三个线性方程系统以产生搜索方向; 非单调线搜索可确保客观函数或约束违规功能充分降低。 我们的算法中没有可行性恢复阶段,这对于过滤方法是必要的。 该算法具有全局收敛以及在一些温和条件下的超连线收敛,包括较弱的积极明确的假设。 最后,报告了一些初步数值结果。 (c)2017年Elsevier Inc.保留所有权利。

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