An Efficient Hybrid Conjugate Gradient Method with the Strong Wolfe-Powell Line Search

Author:

Alhawarat Ahmad1,Mamat Mustafa2,Rivaie Mohd3,Salleh Zabidin1

Affiliation:

1. School of Informatics and Applied Mathematics, Universiti Malaysia Terengganu, 21030 Kuala Terengganu, Terengganu, Malaysia

2. Faculty of Informatics and Computing, Universiti Sultan Zainal Abidin, 21300 Kuala Terengganu, Terengganu, Malaysia

3. Department of Computer Science and Mathematics, Universiti Teknologi MARA (UITM) Terengganu, Campus Kuala Terengganu, 21080 Kuala Terengganu, Terengganu, Malaysia

Abstract

Conjugate gradient (CG) method is an interesting tool to solve optimization problems in many fields, such as design, economics, physics, and engineering. In this paper, we depict a new hybrid of CG method which relates to the famous Polak-Ribière-Polyak (PRP) formula. It reveals a solution for the PRP case which is not globally convergent with the strong Wolfe-Powell (SWP) line search. The new formula possesses the sufficient descent condition and the global convergent properties. In addition, we further explained about the cases where PRP method failed with SWP line search. Furthermore, we provide numerical computations for the new hybrid CG method which is almost better than other related PRP formulas in both the number of iterations and the CPU time under some standard test functions.

Funder

Ministry of Education Malaysia

Publisher

Hindawi Limited

Subject

General Engineering,General Mathematics

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