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2010 Brazilain Symposium on Neural Networks

IEEE Xplore (IEEE/IET Electronic Library - IEL) Available online

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Format:
Book
Author/Creator:
Brazilian Symposium on Neural Networks, author.
Contributor:
ieee, Contributor.
Language:
English
Subjects (All):
Computational intelligence--Congresses.
Computational intelligence.
Physical Description:
1 online resource
Place of Publication:
[Place of publication not identified] IEEE 2010
Language Note:
English
Summary:
The purpose of this paper is to show a local search algorithm mixing features of Hill-Climbing, Clonal Selection and Genetic Algorithms. Hill climbing is considered because only the best solution is used. Clonal Selection because the best solution is cloned. Afterwards, individuals are muted using random mutation or non-uniform mutation of genetic algorithms. Four different ways of producing neighborhood solutions have been used in the mutation operator. In the first one (HR), the number of elements are randomly chosen based on the current generation number and muted using random mutation in a certain domain. In the second one (HNU), the number of elements are randomly chosen and muted using non-uniform mutation. In the third one (HRNU), the number of elements are chosen in the same previous way, however the random mutation is used in the initial generations and non-uniform mutation is applied in the last generations. Finally (HNURT), a random number of the elements are muted based on the current generation number, using non-uniform mutation. The performance of the hybrid algorithms is evaluated by means of six multimodal benchmark functions. The results show that HNU and HNURT have better performance. A comparison between the hybrid algorithms and traditional ones, such as, evolutionary strategies, genetic algorithms, particle swarm optimization and differential evolution is presented, as well.
Notes:
Bibliographic Level Mode of Issuance: Monograph
ISBN:
9780769542102
0769542107

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