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A novel improved teaching-learning based optimization for functional optimization

  • Beihang University
  • CAS - Academy of Mathematics and System Sciences

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Despite the global fast coarse search capability of Teaching-Learning Based Optimization (TLBO), analysis in literature on the performance of TLBO reveals it often risks getting prematurely stuck in local optima for numerical optimization problems. In this study, Broyden-Fletcher-Goldfarb-Shanno (BFGS) quasi-Newton method is incorporated into the conventional TLBO to enhance its local searching performance through local search operators. The proposed TLBO-BFGS would enrich the searching modes and behaviors, and balance the global exploration and local exploitation as well. Simulation results on six well-known benchmark problems and comparisons with Genetic Algorithm (GA), Particle Swarm Optimization (PSO), and standard TLBO show that our proposed TLBO-BFGS can effectively enhance the searching efficiency and greatly improve the searching quality.

Original languageEnglish
Title of host publication12th IEEE International Conference on Control and Automation, ICCA 2016
PublisherIEEE Computer Society
Pages939-943
Number of pages5
ISBN (Electronic)9781509017386
DOIs
StatePublished - 7 Jul 2016
Event12th IEEE International Conference on Control and Automation, ICCA 2016 - Kathmandu, Nepal
Duration: 1 Jun 20163 Jun 2016

Publication series

NameIEEE International Conference on Control and Automation, ICCA
Volume2016-July
ISSN (Print)1948-3449
ISSN (Electronic)1948-3457

Conference

Conference12th IEEE International Conference on Control and Automation, ICCA 2016
Country/TerritoryNepal
CityKathmandu
Period1/06/163/06/16

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