针对存在欺骗攻击的网络 T-S 模糊风力涡轮机系统的基于事件触发的动态总和 H∞ 滤波技术

IF 3.2 1区 数学 Q2 COMPUTER SCIENCE, THEORY & METHODS
Shen Yan , Xinyi Yang , Zhou Gu , Xiangpeng Xie , Fan Yang
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引用次数: 0

摘要

本文关注的是受欺骗攻击和通信延迟影响的网络风力涡轮机系统中基于事件触发的动态和的 H∞ 滤波问题。通过考虑时变风力情况而不是现有的最大功率情况,为非线性风力涡轮机系统建立了一个具有两个前提变量的更通用的 T-S 模糊系统模型。为了节省通信成本,提出了一种新颖的基于事件触发的动态总和方案,该方案有以下三个优点。首先,利用过去的一些采样测量来减少冗余传输。第二,在触发条件中引入基于过去采样测量的辅助动态变量,进一步扩大触发间隔。第三,设计了一个动态触发阈值,该阈值可随系统演化进行自适应调节。在 Lyapunov 方法和线性矩阵不等式技术的帮助下,得出了具有欺骗攻击和通信延迟的 T-S 模糊滤波误差系统的 H∞ 滤波器和触发矩阵的一些充分协同设计条件。最后,通过一些仿真来说明所提策略的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic sum-based event-triggered H∞ filtering for networked T-S fuzzy wind turbine systems with deception attacks

This article is concerned with the dynamic sum-based event-triggered H filtering issue for networked wind turbine systems subject to deception attacks and communication delays. By considering the time-varying wind power case rather than the existing maximum power case, a more general T-S fuzzy system with two premise variables is modeled for nonlinear wind turbine system. In order to save the communication cost, a novel dynamic sum-based event-triggered scheme is proposed, which has the following three merits. First, some past sampled measurements are utilized to reduce redundant transmissions. Second, an auxiliary dynamic variable based on the past sampled measurements is introduced in the triggering condition to further enlarge the triggering intervals. Third, a dynamic triggering threshold is designed, which can be regulated adaptively along with the system evolution. With the help of Lyapunov method and linear matrix inequality technique, some sufficient co-design conditions of H filter and triggering matrices are derived for the T-S fuzzy filtering error system with deception attacks and communication delays. Lastly, some simulations are carried out to illustrate the advantages of the proposed strategy.

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来源期刊
Fuzzy Sets and Systems
Fuzzy Sets and Systems 数学-计算机:理论方法
CiteScore
6.50
自引率
17.90%
发文量
321
审稿时长
6.1 months
期刊介绍: Since its launching in 1978, the journal Fuzzy Sets and Systems has been devoted to the international advancement of the theory and application of fuzzy sets and systems. The theory of fuzzy sets now encompasses a well organized corpus of basic notions including (and not restricted to) aggregation operations, a generalized theory of relations, specific measures of information content, a calculus of fuzzy numbers. Fuzzy sets are also the cornerstone of a non-additive uncertainty theory, namely possibility theory, and of a versatile tool for both linguistic and numerical modeling: fuzzy rule-based systems. Numerous works now combine fuzzy concepts with other scientific disciplines as well as modern technologies. In mathematics fuzzy sets have triggered new research topics in connection with category theory, topology, algebra, analysis. Fuzzy sets are also part of a recent trend in the study of generalized measures and integrals, and are combined with statistical methods. Furthermore, fuzzy sets have strong logical underpinnings in the tradition of many-valued logics.
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