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Adaptive output feedback control of a class of non-linear systems using neural networks

机译:基于神经网络的一类非线性系统的自适应输出反馈控制

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This paper presents tools for the design of a neural network based adaptive output feedback controller for a class of partially or completely unknown non-linear multi-input multi-output systems without zero dynamics. Each of the outputs is assumed to have relative degree less or equal to 2. A neural network based adaptive observer is designed to estimate the derivatives of the outputs. Subsequently, the adaptive observer is integrated into a neural network based adaptive controller architecture. Conditions are derived which guarantee the ultimate boundedness of all the errors in the closed loop system. Stability analysis reveals simultaneous learning rules for both the adaptive neural network observer and adaptive neural network controller. The design approach is illustrated using a fourth order two-input two-output example, in which each output has relative degree two.
机译:本文提出了用于设计基于神经网络的自适应输出反馈控制器的工具,该控制器用于一类具有零动力学的部分或完全未知的非线性多输入多输出系统。假定每个输出的相对度小于或等于2。设计了基于神经网络的自适应观察器来估计输出的导数。随后,将自适应观察器集成到基于神经网络的自适应控制器体系结构中。导出条件,以保证闭环系统中所有错误的最终边界。稳定性分析揭示了自适应神经网络观察者和自适应神经网络控制器的同时学习规则。使用四阶二输入二输出示例说明了该设计方法,其中每个输出的相对度为二。

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