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A new approach to fuzzy modeling and control for nonlinear dynamic systems: Neuro-fuzzy dynamic characteristic modeling and adaptive control mechanism

机译:非线性动态系统模糊建模与控制的新方法:神经模糊动态特性建模与自适应控制机制

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摘要

The study on nonlinear control system has received great interest from the international research field of automatic engineering. There are currently some alternative and complementary methods used to predict the behavior of nonlinear systems and design nonlinear control systems. Among them, characteristic modeling (CM) and fuzzy dynamic modeling are two effective methods. However, there are also some deficiencies in dealing with complex nonlinear system. In order to overcome the deficiencies, a novel intelligent modeling method is proposed by combining fuzzy dynamic modeling and characteristic modeling methods. Meanwhile, the proposed method also introduces the low-level learning power of neural network into the fuzzy logic system to implement parameters identification. This novel method is called neuro-fuzzy dynamic characteristic modeling (NFDCM). The neuro-fuzzy dynamic characteristic model based overall fuzzy control law is also discussed. Meanwhile the local adaptive controller is designed through the golden section adaptive control law and feedforward control law. In addition, the stability condition for the proposed closed-loop control system is briefly analyzed. The proposed approach has been shown to be effective via an example.
机译:非线性控制系统的研究引起了国际自动化工程领域的极大兴趣。当前,有一些替代方法和补充方法可用于预测非线性系统的行为并设计非线性控制系统。其中,特征建模(CM)和模糊动态建模是两种有效的方法。但是,在处理复杂的非线性系统方面也存在一些不足。为了克服这些不足,提出了一种将模糊动态建模与特征建模相结合的新型智能建模方法。同时,该方法还将神经网络的低层学习能力引入模糊逻辑系统中,以实现参数辨识。这种新方法称为神经模糊动态特征建模(NFDCM)。还讨论了基于神经模糊动态特征模型的整体模糊控制律。同时通过黄金分割自适应控制律和前馈控制律设计了局部自适应控制器。此外,简要分析了所提出的闭环控制系统的稳定性条件。通过一个例子已经证明了所提出的方法是有效的。

著录项

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  • 作者单位

    Department of Computer Science and Technology School of Information Engineering University of Science and Technology Beijing Beijing 100083 China;

    State Key Laboratory of Intelligent Technology and Systems Tsinghua National Laboratory for Information Science and Technology Department of Computer Science and Technology Tsinghua University Beijing 100084 China;

    State Key Laboratory of Intelligent Technology and Systems Tsinghua National Laboratory for Information Science and Technology Department of Computer Science and Technology Tsinghua University Beijing 100084 China;

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

    Adaptive control; fuzzy control; neuro-fuzzy dynamic characteristic modeling; nonlinear system;

    机译:自适应控制;模糊控制;神经模糊动态特性建模;非线性系统;

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