An alternative three-dimensional subspace method based on conic model for unconstrained optimization

IF 1.8 4区 管理学 Q3 OPERATIONS RESEARCH & MANAGEMENT SCIENCE
Guoxin Wang, Mingyang Pei, Zengxin Wei, Shengwei Yao
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引用次数: 0

Abstract

In this paper, a three-dimensional subspace conjugate gradient method is proposed, in which the search direction is generated by minimizing the approximation model of the objective function in a three-dimensional subspace. The approximation model is not unique and is alternative between quadratic model and conic model by the specific criterions. The strategy of initial stepsize and nonmonotone line search are adopted, and the global convergence of the presented algorithm is established under mild assumptions. In numerical experiments, we use a collection of 80 unconstrained optimization test problems to show the competitive performance of the presented method.
一种基于二次曲线模型的三维备选子空间无约束优化方法
本文提出了一种三维子空间共轭梯度法,该方法通过最小化目标函数在三维子空间中的近似模型来生成搜索方向。该近似模型不是唯一的,根据特定的准则可在二次模型和二次模型之间选择。采用初始步长和非单调直线搜索策略,在温和的假设条件下证明了算法的全局收敛性。在数值实验中,我们使用了80个无约束优化测试问题的集合来显示所提出的方法的竞争性能。
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来源期刊
Rairo-Operations Research
Rairo-Operations Research 管理科学-运筹学与管理科学
CiteScore
3.60
自引率
22.20%
发文量
206
审稿时长
>12 weeks
期刊介绍: RAIRO-Operations Research is an international journal devoted to high-level pure and applied research on all aspects of operations research. All papers published in RAIRO-Operations Research are critically refereed according to international standards. Any paper will either be accepted (possibly with minor revisions) either submitted to another evaluation (after a major revision) or rejected. Every effort will be made by the Editorial Board to ensure a first answer concerning a submitted paper within three months, and a final decision in a period of time not exceeding six months.
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