A recent proximal gradient algorithm for convex minimization problem using double inertial extrapolations

Author:

Kesornprom Suparat12,Inkrong Papatsara3,Witthayarat Uamporn3,Cholamjiak Prasit3

Affiliation:

1. Research Center in Optimization and Computational Intelligence for Big Data Prediction, Department of Mathematics, Faculty of Science, Chiang Mai University, Chiang Mai 50200, Thailand

2. Office of Research Administration, Chiang Mai University, Chiang Mai 50200, Thailand

3. School of Science, University of Phayao, Phayao 56000, Thailand

Abstract

<abstract><p>In this study, we suggest a new class of forward-backward (FB) algorithms designed to solve convex minimization problems. Our method incorporates a linesearch technique, eliminating the need to choose Lipschitz assumptions explicitly. Additionally, we apply double inertial extrapolations to enhance the algorithm's convergence rate. We establish a weak convergence theorem under some mild conditions. Furthermore, we perform numerical tests, and apply the algorithm to image restoration and data classification as a practical application. The experimental results show our approach's superior performance and effectiveness, surpassing some existing methods in the literature.</p></abstract>

Publisher

American Institute of Mathematical Sciences (AIMS)

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