Adaptive hierarchical fuzzy CMAC controller with stable learning algorithm for unknown nonlinear systems

Floriberto Ortiz, Wen Yu, Marco Moreno-Armendariz

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

Resumen

In this paper, adaptive hierarchical fuzzy CMAC neural network controller (HFCMAC), for a certain class of nonlinear dynamical system is presented. The main advantages of adaptive HFCMAC control are: Better performance of the controller because adaptive HFCMAC can adjust itself to the changing enviroment and can be implemented in real time applications. The proposed method provides a simple control architecture that merges hierarchical structure, CMAC neural network and fuzzy logic. The input space dimension in CMAC is a time-consuming task especially when the number of inputs is huge this would be overload the memory and make the neuro-fuzzy system very hard to implement. This is can be simplified using a number of low-dimensional fuzzy CMAC in a hierarchical form. A new adaptation law is obtained for the method proposed, the overall adaptive scheme guarantees the global stability of the resulting closed-loop system in the sense that all signals involved are uniformly bounded. Simulation results for its applications to one example is presented to demonstrate the performance of the proposed methodology.

Idioma originalInglés
Título de la publicación alojadaProceedings - 2007 6th Mexican International Conference on Artificial Intelligence, Special Session, MICAI 2007
EditorialIEEE Computer Society
Páginas294-304
Número de páginas11
ISBN (versión impresa)9780769531243
DOI
EstadoPublicada - 2007
Evento2007 6th Mexican International Conference on Artificial Intelligence, Special Session, MICAI 2007 - Aguascalientes, México
Duración: 4 nov. 200710 nov. 2007

Serie de la publicación

NombreProceedings - 2007 6th Mexican International Conference on Artificial Intelligence, Special Session, MICAI 2007

Conferencia

Conferencia2007 6th Mexican International Conference on Artificial Intelligence, Special Session, MICAI 2007
País/TerritorioMéxico
CiudadAguascalientes
Período4/11/0710/11/07

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