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首页> 外文期刊>IEEE transactions on systems, man, and cybernetics. Part B, Cybernetics >Intelligent Robust Tracking Control for a Class of Uncertain Strict-Feedback Nonlinear Systems
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Intelligent Robust Tracking Control for a Class of Uncertain Strict-Feedback Nonlinear Systems

机译:一类不确定严格反馈非线性系统的智能鲁棒跟踪控制

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摘要

This paper addresses the problem of designing robust tracking controls for a large class of strict-feedback nonlinear systems involving plant uncertainties and external disturbances. The input and virtual input weighting matrices are perturbed by bounded time-varying uncertainties. An adaptive fuzzy-based (or neural-network-based) dynamic feedback tracking controller will be developed such that all the states and signals of the closed-loop system are bounded and the trajectory tracking error should be as small as possible. First, the adaptive approximators with linearly parameterized models are designed, and a partitioned procedure with respect to the developed adaptive approximators is proposed such that the implementation of the fuzzy (or neural network) basis functions depends only on the state variables but does not depend on the tuning approximation parameters. Furthermore, we extend to design the nonlinearly parameterized adaptive approximators. Consequently, the intelligent robust tracking control schemes developed in this paper possess the properties of computational simplicity and easy implementation. Finally, simulation examples are presented to demonstrate the effectiveness of the proposed control algorithms.
机译:本文解决了为一类严格的反馈非线性系统设计鲁棒跟踪控制的问题,该系统涉及工厂不确定性和外部干扰。输入和虚拟输入加权矩阵会受到时变不确定性的限制。将开发基于自适应模糊(或基于神经网络)的动态反馈跟踪控制器,以使闭环系统的所有状态和信号都受到限制,并且轨迹跟踪误差应尽可能小。首先,设计具有线性参数化模型的自适应逼近器,并针对已开发的自适应逼近器提出分区过程,以使模糊(或神经网络)基函数的实现仅取决于状态变量,而与依赖项无关调整近似参数。此外,我们扩展到设计非线性参数化的自适应逼近器。因此,本文开发的智能鲁棒跟踪控制方案具有计算简单,易于实现的特点。最后,通过仿真实例证明了所提控制算法的有效性。

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