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首页> 外文期刊>Advance journal of food science and technology >Simple Adaptive Neural Network Controller Design for Modern Agricultural Mechanical Systems
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Simple Adaptive Neural Network Controller Design for Modern Agricultural Mechanical Systems

机译:现代农业机械系统的简单自适应神经网络控制器设计

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摘要

The study proposes a new simple output feedback adaptive tracking control scheme using neural network for a class of complicated modern agricultural mechanical systems that only the system output variables can be measured. The scheme avoids design state observer and Lipschiz assumption, SPR conditions are not required and few parameters in control laws and weights update laws need to be tuned. Only one RBF neural network is employed to approximate the lumped uncertain nonlinear function. The stability analysis of the closed-loop system is performing using a Lyapunov approach which shows that the output tracking error and all states in the closed-loop system are boundedness. The effectiveness of the proposed adaptive control scheme is demonstrated through the simulations.
机译:该研究针对一类复杂的现代农业机械系统提出了一种新的基于神经网络的简单输出反馈自适应跟踪控制方案,该系统只能测量系统输出变量。该方案避免了设计状态观察者和Lipschiz的假设,不需要SPR条件,控制定律和权重更新定律中的参数很少需要调整。仅采用一个RBF神经网络来逼近集总的不确定非线性函数。闭环系统的稳定性分析使用Lyapunov方法进行,该方法表明输出跟踪误差和闭环系统中的所有状态都是有界的。仿真结果表明了所提出的自适应控制方案的有效性。

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