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Adaptive PID Control and Its Application Based on a Double-Layer BP Neural Network

Mingli Zhang, Yijie Zhang, Xiaolong He, Zhengjie Gao

发表年份
2021
引用次数
16
访问权限
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摘要

In this paper, focusing on the inconvenience of variable value PID based on manual parameter adjustment for the hydraulic drive unit (HDU) of a legged robot, a method employing double-layer back propagation (BP) neural networks for learning the law of PID control parameters is proposed. The first layer is used to learn the relationship between different control parameters and the control performance of the system under various working conditions. The second layer is used to study the relationship between the parameters of the working conditions and the optimizing control parameters under various working conditions. The effectiveness of the proposed control method was verified by simulation and experiment. The results showed that the proposed method can provide a theoretical and experimental basis for the selection of control parameters, and can be extended to similar controllers, therefore possessing engineering application value.

关键词

PID controllerControl theory (sociology)Artificial neural networkComputer scienceControl (management)Layer (electronics)Control engineeringBackpropagationValue (mathematics)Artificial intelligence

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