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首页> 外文期刊>Numerical algorithms >Partial spectral projected gradient method with active-set strategy for linearly constrained optimization
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Partial spectral projected gradient method with active-set strategy for linearly constrained optimization

机译:具有主动集策略的局部谱投影梯度法用于线性约束优化

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摘要

A method for linearly constrained optimization which modifies and generalizes recent box-constraint optimization algorithms is introduced. The new algorithm is based on a relaxed form of Spectral Projected Gradient iterations. Intercalated with these projected steps, internal iterations restricted to faces of the polytope are performed, which enhance the efficiency of the algorithm. Convergence proofs are given and numerical experiments are included and commented. Software supporting this paper is available through the Tango Project web page: http://www.ime.usp.br/similar to egbirgin/tango/.
机译:介绍了一种线性约束优化的方法,该方法修改并概括了最新的盒约束优化算法。新算法基于频谱投影梯度迭代的松弛形式。在这些计划步骤的插入下,执行仅限于多面体的面的内部迭代,从而提高了算法的效率。给出了收敛性证明,并包括了数值实验并进行了注释。可通过Tango Project网页获得支持本文的软件:http://www.ime.usp.br/与egbirgin / tango /类似。

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