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A Hybrid Multiobjective Evolutionary Algorithm for Multiobjective Optimization Problems

Published: 01 February 2013 Publication History

Abstract

Recently, the hybridization between evolutionary algorithms and other metaheuristics has shown very good performances in many kinds of multiobjective optimization problems (MOPs), and thus has attracted considerable attentions from both academic and industrial communities. In this paper, we propose a novel hybrid multiobjective evolutionary algorithm (HMOEA) for real-valued MOPs by incorporating the concepts of personal best and global best in particle swarm optimization and multiple crossover operators to update the population. One major feature of the HMOEA is that each solution in the population maintains a nondominated archive of personal best and the update of each solution is in fact the exploration of the region between a selected personal best and a selected global best from the external archive. Before the exploration, a selfadaptive selection mechanism is developed to determine an appropriate crossover operator from several candidates so as to improve the robustness of the HMOEA for different instances of MOPs. Besides the selection of global best from the external archive, the quality of the external archive is also considered in the HMOEA through a propagating mechanism. Computational study on the biobjective and three-objective benchmark problems shows that the HMOEA is competitive or superior to previous multiobjective algorithms in the literature.

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cover image IEEE Transactions on Evolutionary Computation
IEEE Transactions on Evolutionary Computation  Volume 17, Issue 1
February 2013
152 pages

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IEEE Press

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Published: 01 February 2013

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  • (2024)A multi-objective Grey Wolf–Cuckoo Search algorithm applied to spatial truss design optimizationApplied Soft Computing10.1016/j.asoc.2024.111435155:COnline publication date: 1-Apr-2024
  • (2023)Solving the Single-Row Facility Layout Problem by K-Medoids Memetic Permutation GroupIEEE Transactions on Evolutionary Computation10.1109/TEVC.2022.316598727:2(251-265)Online publication date: 1-Apr-2023
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