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Chinese Physics, 2007, Vol. 16(7): 1889-1896    DOI: 10.1088/1009-1963/16/7/014
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Linear matrix inequality approach to exponential synchronization of a class of chaotic neural networks with time-varying delays

Wu Wei(吴炜) and Cui Bao-Tong (崔宝同)
Control Science and Engineering Research Center, Southern Yangtze University, Wuxi 214122, China
Abstract  In this paper, a synchronization scheme for a class of chaotic neural networks with time-varying delays is presented. This class of chaotic neural networks covers several well-known neural networks, such as Hopfield neural networks, cellular neural networks, and bidirectional associative memory networks. The obtained criteria are expressed in terms of linear matrix inequalities, thus they can be efficiently verified. A comparison between our results and the previous results shows that our results are less restrictive.
Keywords:  chaotic neural networks      exponential synchronization      linear matrix inequalities  
Received:  07 March 2006      Revised:  04 November 2006      Accepted manuscript online: 
PACS:  07.05.Mh (Neural networks, fuzzy logic, artificial intelligence)  
  05.45.-a (Nonlinear dynamics and chaos)  
Fund: Project supported by the National Natural Science Foundation of China (Grant No 60674026), the Science Foundation of Southern Yangtze University, China.

Cite this article: 

Wu Wei(吴炜) and Cui Bao-Tong (崔宝同) Linear matrix inequality approach to exponential synchronization of a class of chaotic neural networks with time-varying delays 2007 Chinese Physics 16 1889

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