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dc.date.accessioned 2008-05-22T20:56:00Z
dc.date.available 2008-05-22T03:00:00Z
dc.date.issued 2007-10
dc.identifier.uri http://sedici.unlp.edu.ar/handle/10915/9562
dc.description.abstract The exponential periodicity and stability of continuous nonlinear neural networks with variable coefficients and distributed delays are investigated via employing Young inequality technique and Lyapunov method. Some new sufficient conditions ensuring existence and uniqueness of periodic solution for a general class of neural systems are obtained. Without assuming the activation functions are to be bounded, differentiable or strictly increasing. Moreover, the symmetry of the connection matrix is not also necessary. Thus, we generalize and improve some previous works, and they are easy to check and apply in practice. en
dc.format.extent 235-242 es
dc.language en es
dc.subject Neural nets es
dc.subject exponential periodicity en
dc.title On Exponential Periodicity And Stability of Nonlinear Neural Networks With Variable Coefficients And Distributed Delays en
dc.type Articulo es
sedici.identifier.uri http://journal.info.unlp.edu.ar/wp-content/uploads/JCST-Oct07-7.pdf es
sedici.identifier.issn 1666-6038 es
sedici.creator.person Lou, Xuyang es
sedici.creator.person Cui, Baotong es
sedici.subject.materias Ciencias Informáticas es
sedici.description.fulltext true es
mods.originInfo.place Facultad de Informática es
sedici.subtype Articulo es
sedici.rights.license Creative Commons Attribution-NonCommercial 3.0 Unported (CC BY-NC 3.0)
sedici.rights.uri http://creativecommons.org/licenses/by-nc/3.0/
sedici.description.peerReview peer-review es
sedici2003.identifier ARG-UNLP-ART-0000000605 es
sedici.relation.journalTitle Journal of Computer Science & Technology es
sedici.relation.journalVolumeAndIssue vol. 7, no. 3 es


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Creative Commons Attribution-NonCommercial 3.0 Unported (CC BY-NC 3.0) Excepto donde se diga explícitamente, este item se publica bajo la siguiente licencia Creative Commons Attribution-NonCommercial 3.0 Unported (CC BY-NC 3.0)