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New Stability Criteria for High-Order Neural Networks with Proportional Delays 被引量:1

New Stability Criteria for High-Order Neural Networks with Proportional Delays
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摘要 This paper is concerned with high-order neural networks with proportional delays. The proportional delay is a time-varying unbounded delay which is different from the constant delay, bounded time-varying delay and distributed delay. By the nonlinear transformation yi(t) = ui( et)(i = 1, 2,..., n), we transform a class of high-order neural networks with proportional delays into a class of high-order neural networks with constant delays and timevarying coefficients. With the aid of Brouwer fixed point theorem and constructing the delay differential inequality, we obtain some delay-independent and delay-dependent sufficient conditions to ensure the existence, uniqueness and global exponential stability of equilibrium of the network. Two examples with their simulations are given to illustrate the theoretical findings. Our results are new and complement previously known results. This paper is concerned with high-order neural networks with proportional delays. The proportional delay is a time-varying unbounded delay which is different from the constant delay, bounded time-varying delay and distributed delay. By the nonlinear transformation yi(t) = ui( et)(i = 1, 2,..., n), we transform a class of high-order neural networks with proportional delays into a class of high-order neural networks with constant delays and timevarying coefficients. With the aid of Brouwer fixed point theorem and constructing the delay differential inequality, we obtain some delay-independent and delay-dependent sufficient conditions to ensure the existence, uniqueness and global exponential stability of equilibrium of the network. Two examples with their simulations are given to illustrate the theoretical findings. Our results are new and complement previously known results.
出处 《Communications in Theoretical Physics》 SCIE CAS CSCD 2017年第3期235-240,共6页 理论物理通讯(英文版)
基金 Supported by National Natural Science Foundation of China under Grant Nos.61673008 and 11261010 Project of High-level Innovative Talents of Guizhou Province([2016]5651)
关键词 高阶神经网络 无界时滞 稳定性判据 比例 BROUWER不动点定理 全局指数稳定性 非线性变换 微分不等式 high-order neural networks, exponential stability, proportional delays, delay differential inequality, Brouwer fixed point theorem
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