Generalized function projective lag synchronization between two different neural networks

ISNN (1)(2013)

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摘要
The generalized function projective lag synchronization (GFPLS) is proposed in this paper. The scaling functions which we have investigated are not only depending on time, but also depending on the networks. Based on Lyapunov stability theory, a feedback controller and several sufficient conditions are designed such that the response networks can realize lag-synchronize with the drive networks. Finally, the corresponding numerical simulations are performed to demonstrate the validity of the presented synchronization method.
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关键词
sufficient condition,feedback controller,scaling function,generalized function projective lag,synchronization method,lyapunov stability theory,corresponding numerical simulation,response network,drive network,different neural network,neural networks,feedback control
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