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Autores:
Daniel Rivero, Julián Dorado, Juan Ramón Rabuñal, Marcos Gestal
Título: A Comparison Between ANN Generation and Training Methods and Their Development by Means of Graph Evolution: 2 Sample Problems
Revista: Lecture Notes in Computer Science. Computational and Ambient Intelligence
ISSN: 0302-9743
Volumen: LNCS 4507
Páginas: 94-101
Editorial: Springer-Verlag
Fecha Publicación: Junio 2007
Factor de Impacto: 0.402
doi: 10.1007/978-3-540-73007-1_12

Abstract:

This paper presents a study in which a new technique for automatically developing Artificial Neural Networks (ANNs) by means of Evolutionary Computation (EC) tools is compared with the traditional evolutionary techniques used for ANN development. The technique used here is based on network encoding on graphs and also their performance and evolution. For this comparison, 2 different real-world problems have been solved using various tools, and the results are presented here. According to them, the results obtained with this technique can beat those obtained with other ANN development tools.