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A filter proximal bundle method for nonsmooth nonconvex constrained optimization

机译:用于非耦合限制优化的滤波器近端束法

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A filter proximal bundle algorithm is presented for nonsmooth nonconvex constrained optimization problems. The new algorithm is based on the proximal bundle method and utilizes the improvement function to regularize the constraint. At every iteration by solving a convex piecewise-linear subproblem a trial point is obtained. The process of the filter technique is employed either to accept the trial point as a serious iterate or to reject it as a null iterate. Under some mild and standard assumptions and for every possible choice of a starting point, it is shown that every accumulation point of the sequence of serious iterates is feasible. In addition, there exists at least one accumulation point which is stationary for the improvement function. Finally, some encouraging numerical results show that the proposed algorithm is effective.
机译:筛选滤波器近端束算法,用于非光滑非凸谐算法约束优化问题。新算法基于近端捆绑方法,利用改进功能来规范约束。通过求解凸面分段 - 线性子问题,获得试验点的每一次迭代。滤波器技术的过程用于接受试验点作为严重迭代或将其拒绝为空迭代。在一些温和和标准的假设和每个可能的选择的起点,结果表明,严重迭代序列的每个累积点是可行的。另外,存在至少一个难以用于改进功能的累积点。最后,一些令人鼓舞的数值结果表明,所提出的算法是有效的。

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