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A unified approach to controlling chaos via an LMI-based fuzzy control system design

机译:通过基于LMI的模糊控制系统设计来统一控制混乱

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This paper presents a unified approach to controlling chaos via a fuzzy control system design based on linear matrix inequalities (LMI's). First, Takagi-Sugeno fuzzy models and some stability results are recalled. To design fuzzy controllers, chaotic systems are represented by Takagi-Sugeno fuzzy models. The concept of parallel distributed compensation is employed to determine structures of fuzzy controllers from the Takagi-Sugeno fuzzy models, LMI-based design problems are defined and employed to find feedback gains of fuzzy controllers satisfying stability, decay rate, and constraints on control input and output of fuzzy control systems. Stabilization, synchronization, and chaotic model following control for chaotic systems are realized via the unified approach based on LMIs. An exact linearization (EL) technique is presented as a main result in the stabilization. The EL technique also plays an important role in the synchronization and the chaotic model following control. Two cases are considered in the synchronization. One is the feasible case of the EL problem. The other is the infeasible case of the EL problem. Furthermore, the chaotic model following control problem, which is more difficult than the synchronization problem, is discussed using the EL technique. Simulation results show the utility of the unified design approach based on LMIs proposed in this paper.
机译:本文提出了一种基于线性矩阵不等式(LMI)的通过模糊控制系统设计来控制混沌的统一方法。首先,回想起Takagi-Sugeno模糊模型和一些稳定性结果。为了设计模糊控制器,以Takagi-Sugeno模糊模型表示混沌系统。采用并行分布补偿的概念,从Takagi-Sugeno模糊模型确定模糊控制器的结构,定义基于LMI的设计问题,并找到满足稳定性,衰减率以及控制输入和输入约束的模糊控制器的反馈增益。模糊控制系统的输出。通过基于LMI的统一方法,实现了混沌系统的稳定,同步和混沌模型跟随控制。精确线性化(EL)技术是稳定的主要结果。 EL技术在同步和控制中的混沌模型中也起着重要作用。在同步中考虑两种情况。一种是EL问题的可行案例。另一个是不可行的EL问题。此外,使用EL技术讨论了比同步问题更困难的跟随控制问题的混沌模型。仿真结果表明本文提出的基于LMI的统一设计方法的实用性。

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