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Identification and control of nonlinear processes using neural network

机译:使用神经网络识别和控制非线性过程

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In this paper, a dynamic model of the magnet levitation nonlinear process is identified as a neural network. The accuracy of the model is tested and verified even if the observed input/output data contains noisy components. Three layers neural network controller is proposed and developed in order to track the set point and regulate against disturbance. The response of the proposed neural controller is tested and verified. Simulation results show the power of neural network to model and control nonlinear processes.
机译:本文鉴定了磁铁悬浮非线性过程的动态模型作为神经网络。即使观察到的输入/输出数据包含嘈杂的组件,也会测试模型的准确性并验证。提出并开发了三层神经网络控制器,以跟踪设定点并调节干扰。测试并验证了所提出的神经控制器的响应。仿真结果显示神经网络模型和控制非线性过程的力量。

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