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首页> 外文期刊>IEEE Transactions on Systems, Man, and Cybernetics >Adaptive Fuzzy Control of Nonlinear Systems With Unmodeled Dynamics and Input Saturation Using Small-Gain Approach
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Adaptive Fuzzy Control of Nonlinear Systems With Unmodeled Dynamics and Input Saturation Using Small-Gain Approach

机译:具有小增益方法的具有未建模动力学和输入饱和的非线性系统的自适应模糊控制

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摘要

This paper investigates the problem of adaptive fuzzy state-feedback control for a category of single-input and single-output nonlinear systems in nonstrict-feedback form. Unmodeled dynamics and input constraint are considered in the system. Fuzzy logic systems are employed to identify unknown nonlinear characteristics existing in systems. An appropriate Lyapunov function is chosen to ensure unmodeled dynamics to be input-to-state practically stable. A smooth function is introduced to tackle input saturation. In order to overcome the difficulty of controller design for nonstrict-feedback system in backstepping design process, a variables separation method is introduced. Moreover, based on small-gain technique, an adaptive fuzzy controller is designed to guarantee all the signals of the resulting closed-loop system to be bounded. Finally, two illustrative examples are given to validate the effectiveness of the new design techniques.
机译:本文研究了非严格反馈形式的一类单输入单输出非线性系统的自适应模糊状态反馈控制问题。系统中考虑了未建模的动力学和输入约束。模糊逻辑系统用于识别系统中存在的未知非线性特征。选择适当的Lyapunov函数以确保将未建模的动力学输入到状态实际上是稳定的。引入了平滑函数来解决输入饱和问题。为了克服非严格反馈系统在反推设计过程中控制器设计的困难,提出了一种变量分离方法。此外,基于小增益技术,设计了一种自适应模糊控制器,以保证所产生的闭环系统的所有信号都受到限制。最后,给出两个说明性示例,以验证新设计技术的有效性。

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