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A reduced Hessian algorithm with line search filter method for nonlinear programming

机译:线性搜索的简化Hessian算法和线搜索滤波器方法

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摘要

This paper proposes a line search filter reduced Hessian method for nonlinear equality constrained optimization. The feature of the presented algorithm is that the reduced Hessian method is used to produce a search direction, a backtracking line search procedure to generate step size, some filtered rules to determine step acceptance, second order correction technique to reduce infeasibility and overcome the Maratos effects. It is shown that this algorithm does not suffer from the Maratos effects by using second order correction step, and under mild assumptions fast convergence to second order sufficient local solutions is achieved. The numerical experiment is reported to show the effectiveness of the proposed algorithm.
机译:本文提出了一种用于非线性等式约束优化的线搜索滤波器归约Hessian方法。提出的算法的特点是:使用简化的Hessian方法生成搜索方向,使用回溯线搜索过程生成步长,使用一些过滤规则来确定步长可接受性,采用二阶校正技术来减少不可行性并克服Maratos效应。结果表明,该算法通过使用二阶校正步骤不会受到Maratos效应的影响,在温和的假设下,可以快速收敛到二阶足够的局部解。数值实验表明该算法是有效的。

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