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New aspects on extraction of fuzzy rules using neural networks

  • Autores: José M. Benítez, Antonio Blanco Ferro Árbol académico, Miguel Delgado Calvo-Flores Árbol académico, Ignacio Requena Ramos Árbol académico
  • Localización: Mathware & soft computing: The Magazine of the European Society for Fuzzy Logic and Technology, ISSN-e 1134-5632, Vol. 5, Nº. 2-3, 1998, págs. 333-343
  • Idioma: inglés
  • Títulos paralelos:
    • Nuevos aspectos de la extracción de reglas difusas utilizando redes neuronales
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  • Resumen
    • In previous works, we have presented two methodologies to obtain fuzzy rules in order to describe the behaviour of a system. We have used Artificial Neural Netorks (ANN) with the Backpropagation algorithm, and a set of examples of the system. In this work, some modifications which allow to improve the results, by means of an adaptation or refinement of the variable labels in each rule, or the extraction of local rules using distributed ANN, are showed. An interesting application on the assignement of semantic to the classes obtained in a classification without previous classes process is also included.


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