Title of article :
Two Improved Nonlinear Conjugate Gradient Methods with the Strong Wolfe Line Search
Author/Authors :
Jian ، Jinbao Department of Mathematics - College of Mathematics and Physics - Guangxi University for Nationalities , Liu ، Pengjie Department of Mathematics - College of Mathematics and Physics - Guangxi University for Nationalities , Jiang ، Xianzhen Department of Mathematics - College of Mathematics and Physics - Guangxi University for Nationalities , He ، Bo Department of Mathematics - College of Mathematics and Information Science - Guangxi University
From page :
2297
To page :
2319
Abstract :
Two improved nonlinear conjugate gradient methods are proposed by using the second inequality of the strong Wolfe line search. Under usual assumptions, we proved that the improved methods possess the sufficient descent property and global convergence. By testing the unconstrained optimization problems which taken from the CUTE library and other usual test collections, some large-scale numerical experiments for the presented methods and their comparisons are executed. The detailed results are listed in tables and their corresponding performance profiles are reported in figures, which show that our improved methods are superior to their comparisons.
Keywords :
Unconstrained optimization , Conjugate gradient method , Strong Wolfe line search , Sufficient descent property , Global convergence
Journal title :
Bulletin of the Iranian Mathematical Society
Journal title :
Bulletin of the Iranian Mathematical Society
Record number :
2757009
Link To Document :
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