基于低成本迭代学习的塔机模糊控制系统性能改进

R. Precup, Raul-Cristian Roman, Elena-Lorena Hedrea, C. Dragos, Miruna-Maria Damian, Monica-Lavinia Nedelcea
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引用次数: 8

摘要

谨以此文纪念本刊创始人之一、创刊总编辑Ioan Dzitac教授。本文研究了三种单输入-单输出(SISO)模糊控制系统的性能改进,分别控制塔机系统的感兴趣位置,即小车位置、臂角位置和有效载荷位置。采用Takagi-Sugeno-Kang比例导数(PD)模糊项的一阶离散智能比例积分(PI)控制器,采用三个独立的低成本SISO模糊控制器。具有PD学习函数的迭代学习控制(ILC)系统结构涉及到当前迭代的SISO ILC结构。为了调整学习函数的参数,定义了优化问题。将目标函数定义为控制误差的平方和,并使用最近的元启发式黏菌算法(SMA)在迭代域中求解目标函数。实验结果表明,经过10次SMA迭代后,SISO控制系统的性能得到了改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Improvement of Low-Cost Iterative Learning-Based Fuzzy Control Systems for Tower Crane Systems
This paper is dedicated to the memory of Prof. Ioan Dzitac, one of the fathers of this journal and its founding Editor-in-Chief till 2021. The paper addresses the performance improvement of three Single Input-Single Output (SISO) fuzzy control systems that control separately the positions of interest of tower crane systems, namely the cart position, the arm angular position and the payload position. Three separate low-cost SISO fuzzy controllers are employed in terms of first order discrete-time intelligent Proportional-Integral (PI) controllers with Takagi-Sugeno-Kang Proportional-Derivative (PD) fuzzy terms. Iterative Learning Control (ILC) system structures with PD learning functions are involved in the current iteration SISO ILC structures. Optimization problems are defined in order to tune the parameters of the learning functions. The objective functions are defined as the sums of squared control errors, and they are solved in the iteration domain using the recent metaheuristic Slime Mould Algorithm (SMA). The experimental results prove the performance improvement of the SISO control systems after ten iterations of SMA.
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