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Constrained Multiobjective Biogeography Optimization Algorithm

机译:约束多目标生物地理优化算法

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摘要

Multiobjective optimization involves minimizing or maximizing multiple objective functions subject to a set of constraints. In this study, a novel constrained multiobjective biogeography optimization algorithm (CMBOA) is proposed. It is the first biogeography optimization algorithm for constrained multiobjective optimization. In CMBOA, a disturbance migration operator is designed to generate diverse feasible individuals in order to promote the diversity of individuals on Pareto front. Infeasible individuals nearby feasible region are evolved to feasibility by recombining with their nearest nondominated feasible individuals. The convergence of CMBOA is proved by using probability theory. The performance of CMBOA is evaluated on a set of 6 benchmark problems and experimental results show that the CMBOA performs better than or similar to the classical NSGA-II and IS-MOEA.
机译:多目标优化涉及根据一组约束最小化或最大化多个目标函数。在这项研究中,提出了一种新颖的约束多目标生物地理优化算法(CMBOA)。它是第一个用于约束多目标优化的生物地理优化算法。在CMBOA中,设计了一个干扰迁移算子来生成各种可行的个体,以促进Pareto前沿个体的多样性。通过与他们附近的非支配的可行个体重组,将可行区域附近的不可行个体进化为可行的个体。利用概率论证明了CMBOA的收敛性。在一组6个基准问题上评估了CMBOA的性能,实验结果表明CMBOA的性能优于或类似于经典NSGA-II和IS-MOEA。

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