非线性网络物理直流微电网系统抗多重恶意攻击的齐次多项式参数相关模糊切换控制

Fuyi Yang;Xiangpeng Xie;Yuanzheng Li
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引用次数: 0

摘要

针对多种恶意攻击下的非线性网络物理直流微电网系统,设计了齐次多项式参数相关(HPPD)模糊切换安全控制器。首先,针对同时存在拒绝服务攻击(DoS)和虚假数据注入(FDI)的多种网络攻击场景,设计了一种既能应对DoS攻击又具有FDI攻击信号补偿的HPPD模糊切换控制器,并建立了相应的直流微电网增广误差系统模型;该模型除了观察未测系统状态和未知FDI攻击信号外,还引入齐次多项式方法和多模模糊切换机制(MMFSM)来实现精确估计和松弛控制。所谓的MMFSM旨在通过引入权系数,将模糊隶属函数所张成的空间重新划分为一组不重叠的子空间,这些子空间也可以称为不同模式。然后,通过对每个模式设计一对独占增益矩阵,提出了hppd型多模式模糊切换安全控制器和状态观测器的协同设计方法。更重要的是,通过引入一对权系数,提出了一种改进的多模式模糊切换机制(IMMFSM)。与先前提出的协同设计方法相比,IMMFSM具有较低的保守性。最后,在非线性网络物理直流微电网系统中验证和分析了所提理论结果的有效性和优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Homogeneous Polynomially Parameter-Dependent Fuzzy Switching Control of Nonlinear Cyber-Physical DC Microgrid System Against Multiple Malicious Attacks
This paper focuses on the design of homogeneous polynomial parameter-dependent (HPPD) fuzzy switching security controller for nonlinear cyber-physical DC microgrid systems under multiple malicious attacks. Firstly, for the multiple cyber attack scenario with both denial of service (DoS) and false data injection (FDI), an HPPD fuzzy switching controller is designed, which can cope with DoS attack and has FDI attack signal compensation, and the corresponding augmented error system model of the DC microgrid is established. In addition to observing unmeasured system states and unknown FDI attack signals, this model also introduces homogeneous polynomial method and multi-mode fuzzy switching mechanism (MMFSM) to achieve accurate estimation and relaxation control. The so-called MMFSM aims to re-divide the space spanned by the fuzzy membership function into a set of non-overlapping subspaces, which can also be called different modes, by introducing a weight coefficient. Then, by designing a pair of exclusive gain matrices for each mode, a co-design method of HPPD-type multi-mode fuzzy switching security controller and state observer is proposed. More importantly, an improved multi-mode fuzzy switching mechanism (IMMFSM) is proposed by introducing a pair of weight coefficients. Compared with the previously proposed co-design method, IMMFSM can achieve lower conservatism. Finally, the effectiveness and advantages of the proposed theoretical results are verified and analyzed in a nonlinear cyber-physical DC microgrid system.
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