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A Novel Inertial Viscosity Algorithm for Bilevel Optimization Problems Applied to Classification Problemsopen access

Authors
Janngam, KobkoonSuantai, SuthepCho, Yeol JeKaewkhao, AttapolWattanataweekul, Rattanakorn
Issue Date
Jul-2023
Publisher
MDPI
Keywords
classification problems; convex bilevel optimization; forward-backward algorithm
Citation
MATHEMATICS, v.11, no.14
Indexed
SCIE
SCOPUS
Journal Title
MATHEMATICS
Volume
11
Number
14
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/68758
DOI
10.3390/math11143241
ISSN
2227-7390
2227-7390
Abstract
Fixed-point theory plays many important roles in real-world problems, such as image processing, classification problem, etc. This paper introduces and analyzes a new, accelerated common-fixed-point algorithm using the viscosity approximation method and then employs it to solve convex bilevel optimization problems. The proposed method was applied to data classification with the Diabetes, Heart Disease UCI and Iris datasets. According to the data classification experiment results, the proposed algorithm outperformed the others in the literature.
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