基于动态模糊神经网络的智能跟踪控制器设计

Chun-Fei Hsu, Tsu-Tian Lee, Ping-Zong Lin
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引用次数: 4

摘要

提出了一种基于动态模糊神经网络的智能跟踪控制方法。智能跟踪控制系统由计算控制器和鲁棒控制器组成。以包含DFNN辨识符的计算控制器为主控制器,设计鲁棒控制器以实现l2跟踪性能。DFNN辨识器利用结构阶段和参数学习阶段在线估计未知控制动力学方程。最后,将所提出的智能跟踪控制系统应用于二阶混沌电路系统的控制。仿真结果表明,该智能跟踪控制系统结合DFNN辨识、滑模控制和鲁棒控制技术,能够获得良好的跟踪性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intelligent Tracking Controller Design Using Dynamic Fuzzy Neural Networks
An intelligent tracking control using a dynamic fuzzy neural network (DFNN) is proposed in this paper. The intelligent tracking control system is comprised of a computation controller and a robust controller. The computation controller containing a DFNN identifier is the principal controller, and the robust controller is designed to achieve L 2 tracking performance. The DFNN identifier uses the structure and parameter learning phases to online estimate the unknown control dynamics equation. Finally, the proposed intelligent tracking control system is applied to control a second-order chaotic circuit system. The simulation results show that the proposed intelligent tracking control system can achieve favorable tracking performance by incorporating of DFNN identification, sliding-mode control and robust control techniques.
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