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A self-adaptive conic filter-trust region method for unconstrained optimization and its global convergence

机译:一种无约束优化的自适应圆锥滤波器-信赖域方法及其全局收敛性

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摘要

A conic filter-trust region algorithm is proposed for unconstrained optimization problems. The method can be regarded as a combination of filter technique and conic trust region method. When trail step is not accepted, we will use line search rules for a suitable step length, then generate next iterative point. It need not resolve the conic trust region subproblem. The theoretical analysis shows that the algorithm is not only global convergence but also super linearly convergence under some suitable conditions. Numerical results show that this algorithm is effective in minimizing unconstrained optimization problems.
机译:针对无约束优化问题,提出了一种圆锥滤波器-信赖域算法。该方法可以看作是过滤技术和圆锥信赖域方法的结合。如果不接受尾随步长,我们将使用线搜索规则来确定合适的步长,然后生成下一个迭代点。它不需要解决圆锥形信任区域子问题。理论分析表明,该算法不仅具有全局收敛性,而且在一定条件下具有超线性收敛性。数值结果表明,该算法在最小化无约束优化问题上是有效的。

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