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Adaptive Neural Output-Feedback Control of Uncertain Nonlinear Systems Based on Tuning Functions Approach

机译:基于调谐功能方法的不确定非线性系统自适应神经输出反馈控制

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Achieving the computational reduction is an interesting problem in adaptive neural control design. In this work, a new output feedback adaptive neural control method is proposed for uncertain nonlinear systems based on tuning functions approach. Different from most exiting works on backstepping-based output feedback control using neural networks, we obviate the utilization of neural networks at each step of backstepping design, but only one neural network is required at the first step. With the proposed approach, all the closed-loop signals are bounded and the tracking error ultimately converges a tunable residual. Simulation results validate the theoretical findings.
机译:实现计算减少是自适应神经控制设计中的一个有趣问题。在这项工作中,提出了一种新的输出反馈自适应神经控制方法,用于基于调谐功能方法的不确定非线性系统。与基于BackStepping的输出反馈控制不同的基于主题网络的不同,我们使用神经网络来避免了在反向设计的每个步骤中利用神经网络,但是在第一步中只需要一个神经网络。利用所提出的方法,所有闭环信号都有界,并且跟踪误差最终会收敛可调谐残差。仿真结果验证了理论发现。

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