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首页> 外文期刊>Neural Networks: The Official Journal of the International Neural Network Society >Resilient fault-tolerant anti-synchronization for stochastic delayed reaction-diffusion neural networks with semi-Markov jump parameters
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Resilient fault-tolerant anti-synchronization for stochastic delayed reaction-diffusion neural networks with semi-Markov jump parameters

机译:具有半马尔可夫跳跃参数的随机延迟反应扩散神经网络的弹性容错反相

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摘要

This paper deals with the anti-synchronization issue for stochastic delayed reaction-diffusion neural networks subject to semi-Markov jump parameters. A resilient fault-tolerant controller is utilized to ensure the anti-synchronization in the presence of actuator failures as well as gain perturbations, simultaneously. Firstly, by means of the Lyapunov functional and stochastic analysis methods, a mean-square exponential stability criterion is derived for the resulting error system. It is shown the obtained criterion improves a previously reported result. Then, based on the present analysis result and using several decoupling techniques, a strategy for designing the desired resilient fault-tolerant controller is proposed. At last, two numerical examples are given to illustrate the superiority of the present stability analysis method and the applicability of the proposed resilient fault-tolerant anti-synchronization control strategy, respectively. (c) 2020 Elsevier Ltd. All rights reserved.
机译:本文涉及随机延迟反应扩散神经网络的反同步问题,受半马尔可夫跳跃参数。弹性容错控制器用于确保在致动器故障的情况下的反同步以及同时增益扰动。首先,通过Lyapunov功能和随机分析方法,导出用于所产生的误差系统的平均方形指数稳定性标准。显示所获得的标准改善了先前报道的结果。然后,基于本分析结果和使用几种去耦技术,提出了一种设计所需弹性容错控制器的策略。最后,给出了两个数值例子来说明本稳定性分析方法的优越性以及所提出的弹性容错反同步控制策略的适用性。 (c)2020 elestvier有限公司保留所有权利。

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