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Multi-Objective Search Group Algorithm for engineering design problems

Truong Hoang Bao Huy, Perumal Nallagownden, Khoa Hoang Truong, Ramani Kannan, Dieu Ngoc Vo, Nguyen Ho

2022Applied Soft Computing24 citationsDOIOpen Access PDF

Abstract

This study proposes a new multi-objective version of the Search Group Algorithm (SGA) called the Multi-Objective Search Group Algorithm (MOSGA). The MOSGA is the combination of the conventional SGA integrated with an elitist non-dominated sorting technique, enabling it to define Pareto optimal solutions via mutation, offspring generation, and selection. The Pareto archive with a selection mechanism is used to preserve and enhance the convergence and diversity of solutions. The MOSGA is validated on twenty-five prominent case studies , including nineteen unconstrained multi-objective benchmark problems, six constrained multi-objective benchmark problems, and five multi-objective engineering design problems to validate its capability and effectiveness. The statistical results are compared to the outcomes of other well-regarded algorithms using the same performance metrics. The comparative results show that MOGSA is robust and superior in handling a wide variety of multi-objective problems.

Topics & Concepts

Computer scienceGroup (periodic table)AlgorithmMathematical optimizationMathematicsChemistryOrganic chemistryAdvanced Multi-Objective Optimization AlgorithmsMetaheuristic Optimization Algorithms ResearchEvolutionary Algorithms and Applications
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