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Finite-time decentralized event-triggering non-fragile control for fuzzy neural networks with cyber-attack and energy constraints

机译:有限时间分散事件触发对具有网络攻击和能量限制的模糊神经网络的非脆弱控制

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摘要

In this study, we concerned with non-fragile control problem for T-S fuzzy neural networks (TSFNNs) within finite-time domain under decentralized event-triggered scheme, limited network-bandwidth and cyber-attack. Precisely, the event-triggered mechanism and energy constraints are introduced to mitigate the network traffic and to protect the network resources. To be specific, an event-triggered mechanism relieves the network transmission burden and the sensors which decide the measurement transmissions in accordance with event-triggered scheme. The main intention of this work is to design a decentralized event-triggered scheme and non-fragile controller for ensuring the stochastic finite-time boundedness for the desired TSFNNs with optimal mixed H. and passivity performance index within the prescribed time interval. In accordance with Lyapunov-Krasovskii stability theory, an adequate condition in the frame of linear matrix inequalities is established to signify the stochastic stability of the resulting closed-loop TSFNNs. Moreover, the projected gain matrix is characterized by the obtained linear matrix inequalities. At long last, a numerical example is framed to substantiate the effectiveness and superiority of the proposed control strategy. (C) 2020 European Control Association. Published by Elsevier Ltd. All rights reserved.
机译:在这项研究中,在分散的事件触发方案下,有限的网络带宽和网络攻击下,我们关注有限时域内的T-S模糊神经网络(TSFNNS)的非脆弱控制问题。精确地,引入了事件触发的机制和能量约束来减轻网络流量并保护网络资源。具体而言,事件触发机制可缓解根据事件触发方案确定测量传输的网络传输负担和传感器。这项工作的主要目的是设计分散的事件触发方案和非易碎控制器,用于确保具有最佳混合H的所需TSFNN的随机有限时间限制,并且在规定的时间间隔内具有相同的性能指标。根据Lyapunov-Krasovskii稳定性理论,建立了线性矩阵不等式帧中的足够条件,以表示所得闭环Tsfnns的随机稳定性。此外,投影增益矩阵的特征在于获得的线性矩阵不等式。最后,框架数值示例以证实提出的控制策略的有效性和优势。 (c)2020欧洲控制协会。 elsevier有限公司出版。保留所有权利。

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