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Please use this identifier to cite or link to this item: http://hdl.handle.net/10016/4003

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Title: Evolutionary cellular configurations for designing feed-forward neural networks architectures
Author(s): Gutiérrez, Germán
Isasi, Pedro
Molina, José M.
Sanchis, Araceli
Galván, Inés M.
Publisher: Springer
Issued date: 2001
Citation: Connectionist models of neurons, learning processes, and Artificial Intelligence. Berlin: Springer, 2001. p. 514-521 (Lecture Notes in Computer Science; 2084)
URI: http://hdl.handle.net/10016/4003
ISBN: 978-3-540-42235-8
ISSN: 1611-3349 (Online)
DOI: http://dx.doi.org/10.1007/3-540-45720-8_61
Description: Proceeding of: 6th International Work-Conference on Artificial and Natural Neural Networks, IWANN 2001 Granada, Spain, June 13–15, 2001
Abstract: In the recent years, the interest to develop automatic methods to determine appropriate architectures of feed-forward neural networks has increased. Most of the methods are based on evolutionary computation paradigms. Some of the designed methods are based on direct representations of the parameters of the network. These representations do not allow scalability, so to represent large architectures, very large structures are required. An alternative more interesting are the indirect schemes. They codify a compact representation of the neural network. In this work, an indirect constructive encoding scheme is presented. This scheme is based on cellular automata representations in order to increase the scalability of the method.
Serie / Nº.: Lecture Notes in Computer Science
Volume 2084/2001
Publisher version: http://dx.doi.org/10.1007/3-540-45720-8_61
Rights: © Springer
Appears in Collections:DI - GCERN - Capítulos de Monografías
DI - GCERN - Comunicaciones en Congresos y otros eventos

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