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Global exponential stability of cellular neural networks with multi-proportional delays 被引量:10
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作者 liqun zhou yanyan zhang 《International Journal of Biomathematics》 2015年第6期1-17,共17页
In this paper, a class of cellular neural networks (CNNs) with multi-proportional delays is studied. The nonlinear transformation yi(t) = xi(et) transforms a class of CNNs with multi-proportional delays into a c... In this paper, a class of cellular neural networks (CNNs) with multi-proportional delays is studied. The nonlinear transformation yi(t) = xi(et) transforms a class of CNNs with multi-proportional delays into a class of CNNs with multi-constant delays and time- varying coefficients. By applying Brouwer fixed point theorem and constructing the delay differential inequality, several delay-independent and delay-dependent sufficient conditions are derived for ensuring the existence, uniqueness and global exponential stability of equilibrium of the system and the exponentially convergent rate is estimated. And several examples and their simulations are given to illustrate the effectiveness of obtained results. 展开更多
关键词 Cellular neural networks proportional delay global exponential stability Brouwer fixed point theorem delay differential inequality.
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