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Published in: Soft Computing 10/2019

29-01-2018 | Methodologies and Application

Evolutionary multiobjective optimization with clustering-based self-adaptive mating restriction strategy

Authors: Xin Li, Shenmin Song, Hu Zhang

Published in: Soft Computing | Issue 10/2019

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Abstract

Mating restriction plays a key role in MOEAs, while clustering is an effective method to discover the similarities between individuals and therefore can assist the mating restriction. What is more, it is inappropriate to set the same mating restriction strategy for all individuals as solutions are very different between clusters. This paper proposes a multiobjective evolutionary algorithm with clustering-based self-adaptive mating restriction strategy (SRMMEA). In SRMMEA, k-means algorithm is used to cluster the population. With a certain probability, mating parents are selected from the clusters or the whole population for exploitation and exploration, respectively. To better balance the exploration and exploitation, different mating restriction probabilities are assigned to solutions in different clusters. Moreover, the mating restriction probability is updated at each generation according to the number of newly generated individuals in each cluster. SRMMEA is compared with some state-of-the-art multiobjective evolutionary methods on a number of test instances. Experimental results demonstrate SRMMEA’s superiority over other comparison algorithms.

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Metadata
Title
Evolutionary multiobjective optimization with clustering-based self-adaptive mating restriction strategy
Authors
Xin Li
Shenmin Song
Hu Zhang
Publication date
29-01-2018
Publisher
Springer Berlin Heidelberg
Published in
Soft Computing / Issue 10/2019
Print ISSN: 1432-7643
Electronic ISSN: 1433-7479
DOI
https://doi.org/10.1007/s00500-017-2990-z

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