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An ODE-based trust region filter algorithm for unconstrained optimization

机译:基于ODE的无约束优化信任域过滤算法

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摘要

In this article, an ODE-based trust region filter algorithm for unconstrained optimization is proposed. It can be regarded as a combination of trust region and filter techniques with ODE-based methods. Unlike the existing trust-region-filter methods and ODE-based methods, a distinct feature of this method is that at each iteration, a reduced linear system is solved to obtain a trial step, thus avoiding solving a trust region subproblem. Under some standard assumptions, it is proven that the algorithm is globally convergent. Preliminary numerical results show that the new algorithm is efficient for large scale problems.
机译:本文提出了一种基于ODE的无约束优化信任域过滤算法。它可以被视为信任区域和过滤器技术与基于ODE的方法的结合。与现有的信任区域过滤器方法和基于ODE的方法不同,此方法的显着特征是在每次迭代中,都需要求解简化的线性系统以获得试验步骤,从而避免了解决信任区域子问题的问题。在某些标准假设下,证明了该算法是全局收敛的。初步数值结果表明,该新算法对大规模问题是有效的。

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