A Multi-Population Multi-Objective Evolutionary Algorithm Based on the Contribution of Decision Variables to Objectives for Large-Scale Multi/Many-Objective Optimization

被引:18
|
作者
Xu, Ying [1 ]
Xu, Chong [1 ]
Zhang, Huan [1 ]
Huang, Lei [1 ]
Liu, Yiping [1 ]
Nojima, Yusuke [2 ]
Zeng, Xiangxiang [1 ]
机构
[1] Hunan Univ, Coll Comp Sci & Elect Engn, Changsha 410082, Peoples R China
[2] Osaka Prefecture Univ, Grad Sch Engn, Sakai, Osaka 5998531, Japan
关键词
Optimization; Evolutionary computation; Convergence; Statistics; Sociology; Diversity methods; Clustering algorithms; Decision variables analysis; large-scale many-objective optimization; large-scale multiobjective optimization; multiobjective evolutionary algorithm; multipopulation multiobjective evolutionary algorithm; STRATEGY;
D O I
10.1109/TCYB.2022.3180214
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Most existing multiobjective evolutionary algorithms treat all decision variables as a whole to perform genetic operations and optimize all objectives with one population at the same time. Considering different control attributes, different decision variables have different optimization effects on each objective, so decision variables can be divided into convergence-or diversity-related variables. In this article, we propose a new metric called the optimization degree of the convergence-related decision variable to each objective to calculate the contribution objective of each decision variable. All decision variables are grouped according to their contribution objectives. Then, a multiobjective evolutionary algorithm, namely, decision variable contributing to objectives evolutionary algorithm (DVCOEA), has been proposed. In order to balance the convergence and diversity of the population, the DVCOEA algorithm combines the multipopulation multiobjective framework, where two different optimization strategies are designed to optimize the subpopulation and individuals in the external archive, respectively. Finally, DVCOEA is compared with several state-of-the-art algorithms on a number of benchmark functions. Experimental results show that DVCOEA is a competitive approach for solving large-scale multi/many-objective problems.
引用
收藏
页码:6998 / 7007
页数:10
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