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Polynomial discrete time Cellular Neural Networks to solve the XOR problem

  • Eduardo Gomez-Ramirez*
  • , Giovanni Egidio Pazienza
  • , Xavier Vilasis-Cardona
  • *Autor/a de correspondencia de este trabajo

Producción científica: Capítulo del libroContribución a congreso/conferenciarevisión exhaustiva

6 Citas (Scopus)

Resumen

Some papers discuss different option to improve the capabilities of Cellular Neural Networks (CNN), The principal point is that a single layer CNN can not solve problems with linearly nonsepurable data. In this paper a new model called Polynomial Discrete Time Cellular Neural networks is presented. This model has a very simple nonlinear term that can improve the performance of the network. The results show how it is possible to solve the XOR problem. The templates of the entire network are computed using genetic algorithm,

Idioma originalInglés
Título de la publicación alojadaProceedings of the 2006 10th IEEE International Workshop on Cellular Neural Networks and their Applications, CNNA 2006
DOI
EstadoPublicada - 2006
Evento2006 10th IEEE International Workshop on Cellular Neural Networks and their Applications, CNNA 2006 - Istanbul, Turquía
Duración: 28 ago 200630 ago 2006

Serie de la publicación

NombreProceedings of the IEEE International Workshop on Cellular Neural Networks and their Applications

Conferencia

Conferencia2006 10th IEEE International Workshop on Cellular Neural Networks and their Applications, CNNA 2006
País/TerritorioTurquía
CiudadIstanbul
Período28/08/0630/08/06

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