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A filter inexact-restoration method for nonlinear programming

机译:非线性规划的滤波器不精确恢复方法

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A new iterative algorithm based on the inexact-restoration (IR) approach combined with the filter strategy to solve nonlinear constrained optimization problems is presented. The high level algorithm is suggested by Gonzaga et al. (SIAM J. Optim. 14:646–669, 2003) but not yet implement—the internal algorithms are not proposed. The filter, a new concept introduced by Fletcher and Leyffer (Math. Program. Ser. A 91:239–269, 2002), replaces the merit function avoiding the penalty parameter estimation and the difficulties related to the nondifferentiability. In the IR approach two independent phases are performed in each iteration, the feasibility and the optimality phases. The line search filter is combined with the first one phase to generate a “more feasible” point, and then it is used in the optimality phase to reach an “optimal” point.
机译:提出了一种基于不精确复原(IR)方法与滤波策略相结合的新型迭代算法,以解决非线性约束优化问题。 Gonzaga等人提出了高级算法。 (SIAM J. Optim。14:646–669,2003),但尚未实现,因此未提出内部算法。滤波器是Fletcher和Leyffer(Math。Program。Ser。A 91:239–269,2002)提出的新概念,它取代了优点函数,从而避免了罚分参数估计和与不可微性相关的困难。在IR方法中,每次迭代执行两个独立阶段,即可行性阶段和最优阶段。线搜索滤波器与第一个阶段组合在一起以生成一个“更可行的”点,然后在最佳阶段使用它来达到一个“最佳”点。

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