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Remarks on Feedforward-Feedback Controller Using Simple Recurrent Quaternion Neural Network

机译:简单四元数神经网络在前馈-反馈控制器上的说明

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In this study, a simple recurrent neural network is designed for controlling nonlinear systems. All signals and parameters of the network are quaternion numbers, and the network is trained with a real-time recurrent learning algorithm. The control system is composed of a feedforward-feedback controller based on a recurrent quaternion neural network and a feedback controller to reconcile the plant output with the desired output. A feedback error learning method is used for the online training of the feedforward-feedback controller. The numerical simulations of controlling discrete-time nonlinear plants are conducted to evaluate the characteristics of the recurrent quaternion neural network-based controller. Simulation results show the feasibility and the effectiveness of the proposed controller.
机译:在这项研究中,设计了一个简单的递归神经网络来控制非线性系统。网络的所有信号和参数均为四元数,并且使用实时递归学习算法训练网络。该控制系统由基于递归四元数神经网络的前馈-反馈控制器和将工厂输出与所需输出调和的反馈控制器组成。反馈错误学习方法用于前馈-反馈控制器的在线培训。进行了控制离散时间非线性设备的数值模拟,以评估基于递归四元数神经网络的控制器的特性。仿真结果表明了该控制器的可行性和有效性。

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