Event-Triggered State Estimation for T–S Fuzzy Neural Networks with Stochastic Cyber-Attacks

被引:0
|
作者
Jinliang Liu
Tingting Yin
Xiangpeng Xie
Engang Tian
Shumin Fei
机构
[1] Nanjing University of Finance and Economics,College of Information Engineering
[2] Henan University of Technology,Key Laboratory of Grain Information Processing and Control
[3] Ministry of Education,Institute of Advanced Technology
[4] Nanjing University of Posts and Telecommunications,School of Optical
[5] University of Shanghai for Science and Technology,Electrical and Computer Engineering
[6] Southeast University,School of Automation
来源
关键词
Event-triggered scheme; T–S fuzzy neural networks; Stochastic cyber-attacks; State estimation;
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学科分类号
摘要
This paper is mainly concerned with event-triggered state estimation for Takagi–Sugeno (T–S) fuzzy neural networks subjected to stochastic cyber-attacks. An event-triggered scheme is utilized to decide whether the sampled data should be delivered or not. By taking the influence of the cyber-attacks into consideration, a T–S fuzzy model for the state estimation of neural networks is established with the event-triggered scheme. Through the utilization of Lyapunov stability theory and linear matrix inequality (LMI) techniques, the sufficient conditions are derived which can ensure the stability of estimator error systems. In addition, the gains of the estimator are acquired in the form of LMIs. Finally, a simulated example is presented to illustrate the effectiveness of the proposed method.
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页码:532 / 544
页数:12
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