混合网络攻击和输入限制下基于记忆的自适应事件触发滤波器

IF 3.2 3区 计算机科学 Q2 AUTOMATION & CONTROL SYSTEMS
Ya-Li Zhi, Bing Liu, Suyin Liao, Shuping He
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引用次数: 0

摘要

本文重点介绍了一种基于安全内存的自适应事件触发过滤器的设计,该过滤器适用于受混合网络攻击和输入限制影响的网络系统。首先,建立了一个包含拒绝服务攻击、欺骗攻击和重放攻击的混合攻击模型,用于滤波器设计。其次,在滤波器设计中引入一种新的基于记忆的自适应事件触发策略,对网络攻击敏感,以节省网络资源,优化网络通道利用率,防止网络拥塞。随后,在混合网络攻击和输入限制条件下,建立了一种新的事件触发滤波误差模型。利用Lyapunov-Krasovskii泛函和线性矩阵不等式(LMI)技术,得出了在给定H∞$$ H\infty $$性能指标下滤波误差模型的指数均方稳定性的充分条件。最后,通过数值模拟和隧道二极管电路验证了所得结论的有效性和实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Memory-Based Adaptive Event-Triggered Filter Subject to Hybrid Cyber Attacks and Input Limitation

This article focuses on the design of a secure memory-based adaptive event-triggered filter for networked systems subject to hybrid cyber attacks and input limitations. First, a hybrid attack model incorporating denial-of-service (DoS) attacks, deception attacks, and replay attacks is established for filter design. Second, a novel memory-based adaptive event-triggered strategy sensitive to cyber attacks is introduced into the filter design to save network resources, optimize network channel utilization, and prevent network congestion. Subsequently, a novel event-triggered filtering error model is established under hybrid cyber attacks and input limitations. Utilizing Lyapunov–Krasovskii functionals and linear matrix inequality (LMI) techniques, sufficient conditions can be concluded to prove the exponential mean-square stability of the filtering error model with a given H $$ H\infty $$ performance index. Finally, the effectiveness and the practicality of the obtained conclusions are demonstrated by a numerical simulation and tunnel diode circuit.

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来源期刊
International Journal of Robust and Nonlinear Control
International Journal of Robust and Nonlinear Control 工程技术-工程:电子与电气
CiteScore
6.70
自引率
20.50%
发文量
505
审稿时长
2.7 months
期刊介绍: Papers that do not include an element of robust or nonlinear control and estimation theory will not be considered by the journal, and all papers will be expected to include significant novel content. The focus of the journal is on model based control design approaches rather than heuristic or rule based methods. Papers on neural networks will have to be of exceptional novelty to be considered for the journal.
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