DocumentCode :
2222118
Title :
On neighborhood exploration and subproblem exploitation in decomposition based multiobjective evolutionary algorithms
Author :
Zhou, Aimin ; Zhang, Yuting ; Zhang, Guixu ; Gong, Wenyin
Author_Institution :
Shanghai Key Laboratory of Multidimensional Information Processing, East China Normal University, 500 Dongchuan Road, Shanghai, China
fYear :
2015
fDate :
25-28 May 2015
Firstpage :
1704
Lastpage :
1711
Abstract :
The decomposition based multiobjective evolutionary algorithm, denoted as MOEA/D, is an open framework for multiobjective optimization. This paper addresses the reproduction operation in MOEA/D. Generally, the solutions from a neighborhood of a subproblem are chosen as the mating pool for offspring reproduction. Since the Pareto set of an MOP shows some kind of structure in the decision space, the newly generated solutions based on the mating pool are arguable more likely to distribute along the population structure, which is called neighborhood exploration, and less likely to push a solution forward along the subproblem, which is called subproblem exploitation. To balance neighborhood exploration and subproblem exploitation, we propose to utilize both history and neighbor solutions for offspring reproduction. This idea is implemented through two operators based on the multivariate Gaussian distribution model, one is based on neighbor solutions and the other is based on previously visited solutions. When generating a new trial solution for a subproblem, one of the two operators is chosen with a probability. The proposed reproduction strategy is embedded in the MOEA/D framework and applied to a test suite. The comparison study has demonstrated that the new reproduction strategy is promising.
Keywords :
Covariance matrices; Evolutionary computation; History; Measurement; Optimization; Sociology; Multiobjective evolutionary algorithm; decomposition; history information; probabilistic model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Evolutionary Computation (CEC), 2015 IEEE Congress on
Conference_Location :
Sendai, Japan
Type :
conf
DOI :
10.1109/CEC.2015.7257092
Filename :
7257092
Link To Document :
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