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A robust self-learning PID control system design for nonlinear systems using a particle swarm optimization algorithm

机译:基于粒子群算法的非线性系统鲁棒自学习PID控制系统设计

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摘要

This study presents a robust self-learning proportional-integral-derivative (RSPID) control system design for nonlinear systems. This RSPID control system comprises a self-learning PID (SPID) controller and a robust controller. The gradient descent method is utilized to derive the on-line tuning laws of SPID controller; and the H_∞ control technique is applied for the robust controller design so as to achieve robust tracking performance. Moreover, in order to achieve fast learning of PID controller, a particle swarm optimization (PSO) algorithm is adopted to search the optimal learning-rates of PID adaptive gains. Finally, two nonlinear systems, a two-link manipulator and a chaotic system are examined to illustrate the effectiveness of the proposed control algorithm. Simulation results show that the proposed control system can achieve favorable control performance for these nonlinear systems.
机译:这项研究提出了一种鲁棒的自学习比例积分微分(RSPID)控制系统,用于非线性系统。该RSPID控制系统包括一个自学习PID(SPID)控制器和一个鲁棒控制器。利用梯度下降法推导了SPID控制器的在线调节规律。 H_∞控制技术被应用于鲁棒控制器的设计,以实现鲁棒的跟踪性能。此外,为了实现对PID控制器的快速学习,采用粒子群算法(PSO)搜索PID自适应增益的最优学习率。最后,研究了两个非线性系统,一个双连杆机械手和一个混沌系统,以说明所提出的控制算法的有效性。仿真结果表明,所提出的控制系统可以对这些非线性系统实现良好的控制性能。

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  • 作者单位

    Department of Electrical Engineering, Yuan Ze University, No. 135, Yuan-Tung Road, Chung-Li, Tao-Yuan 320, Taiwan, ROC;

    Department of Electrical Engineering, Yuan Ze University, No. 135, Yuan-Tung Road, Chung-Li, Tao-Yuan 320, Taiwan, ROC;

    Department of Electrical Engineering, Yuan Ze University, No. 135, Yuan-Tung Road, Chung-Li, Tao-Yuan 320, Taiwan, ROC;

    Department of Electrical Engineering, Yuan Ze University, No. 135, Yuan-Tung Road, Chung-Li, Tao-Yuan 320, Taiwan, ROC;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    PID control; particle swarm optimization (PSO); H_∞ control;

    机译:PID控制粒子群优化(PSO);H_∞控制;
  • 入库时间 2022-08-17 13:52:36

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