A new supermemory gradient method for unconstrained optimization problems

被引:0
|
作者
Yi-gui Ou
Guan-shu Wang
机构
[1] Hainan University,Department of Applied Mathematics
来源
Optimization Letters | 2012年 / 6卷
关键词
Unconstrained optimization; Supermemory gradient method; Trust region technique; ODE-based methods; Global convergence;
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学科分类号
摘要
This paper presents a new supermemory gradient method for unconstrained optimization problems. It can be regarded as a combination of ODE-based methods, line search and subspace techniques. The main characteristic of this method is that, at each iteration, a lower dimensional system of linear equations is solved only once to obtain a trial step, thus avoiding solving a quadratic trust region subproblem. Another is that when a trial step is not accepted, this proposed method generates an iterative point whose step-length satisfies Armijo line search rule, thus avoiding resolving linear system of equations. Under some reasonable assumptions, the method is proven to be globally convergent. Numerical results show the efficiency of this proposed method in practical computation.
引用
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页码:975 / 992
页数:17
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