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Neural Network Adaptive Control for a Class of Matched SISO Nonlinear Uncertain Systems with Zero Dynamics

机译:零动态的一类匹配的SISO非线性不确定系统的神经网络自适应控制

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—The paper presents a direct adaptive tracking control scheme for a class of matched SISO affine nonlinear uncertain systems with zero dynamic using neural network. Through neural network approximation, neural network is used as the emulator of the unknown ideal controller. A quadratic cost function of the error between the unknown ideal controller and the used neural network controller is minimized using a gradient descent method to adjust parameters in neural network. The convergence of parameters and the uniformly ultimately boundedness of tracking error and all states of the closed-loop system are guaranteed based on Lyapunov stability theorem. The effectiveness of the proposed controller is illustrated through the simulation results.
机译:- 本文为一类匹配的Siso仿射非线性不确定系统提供了一种直接的自适应跟踪控制方案,使用神经网络具有零动态。通过神经网络近似,神经网络用作未知理想控制器的仿真器。使用梯度下降方法最小化未知理想控制器和使用的神经网络控制器之间的误差的二次成本函数,以调整神经网络中的参数。基于Lyapunov稳定性定理,可以保证参数的参数和均匀最终界限和闭环系统的所有状态。通过仿真结果说明了所提出的控制器的有效性。

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