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Data and performance profiles applying an adaptive truncation criterion, within linesearch-based truncated Newton methods, in large scale nonconvex optimization

机译:数据和性能配置文件应用自适应截断标准,在基于LineSearch的截断牛顿方法中,大规模非耦合优化

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In this paper, we report data and experiments related to the research article entitled “An adaptive truncation criterion, for linesearch-based truncated Newton methods in large scale nonconvex optimization” by Caliciotti et al. [1]. In particular, in Caliciotti et al. [1], large scale unconstrained optimization problems are considered by applying linesearch-based truncated Newton methods. In this framework, a key point is the reduction of the number of inner iterations needed, at each outer iteration, to approximately solving the Newton equation. A novel adaptive truncation criterion is introduced in Caliciotti et al. [1] to this aim. Here, we report the details concerning numerical experiences over a commonly used test set, namely CUTEst (Gould et al., 2015) [2]. Moreover, comparisons are reported in terms of performance profiles (Dolan and Moré, 2002) [3], adopting different parameters settings. Finally, our linesearch-based scheme is compared with a renowned trust region method, namely TRON (Lin and Moré, 1999) [4].
机译:在本文中,我们通过Caliciotti等人报告了与标题为“自适应截断标准的研究文章”的研究文章相关的数据和实验。 [1]。特别是,在Caliciotti等。 [1],通过应用基于Linesearch的截断的牛顿方法考虑大规模的无约束优化问题。在该框架中,关键点是在每个外部迭代到近似求解牛顿方程所需的内部迭代的数量的减少。在Caliciotti等人中引入了一种新颖的自适应截断标准。 [1]到这个目的。在这里,我们报告了有关常用测试集的数值经验的细节,即最可爱的(Gould等,2015)[2]。此外,在性能配置文件(Dolan和Moré,2002)[3]中报告了比较,采用不同的参数设置。最后,我们的全线搜索方案与着名的信任区域方法进行了比较,即Tron(林和普查,1999)[4]。

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