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Derivation and Global Convergence for Memoryless Non-quasi-Newton Method
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作者 jiao bao cong YU Jing Jing CHEN Lan Ping 《Journal of Mathematical Research and Exposition》 CSCD 2009年第3期423-433,共11页
In this paper, a new class of memoryless non-quasi-Newton method for solving unconstrained optimization problems is proposed, and the global convergence of this method with inexact line search is proved. Furthermore, ... In this paper, a new class of memoryless non-quasi-Newton method for solving unconstrained optimization problems is proposed, and the global convergence of this method with inexact line search is proved. Furthermore, we propose a hybrid method that mixes both the memoryless non-quasi-Newton method and the memoryless Perry-Shanno quasi-Newton method. The global convergence of this hybrid memoryless method is proved under mild assumptions. The initial results show that these new methods are efficient for the given test problems. Especially the memoryless non-quasi-Newton method requires little storage and computation, so it is able to efficiently solve large scale optimization problems. 展开更多
关键词 memoryless non-quasi-Newton method Wolfe line search global convergence.
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