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Fuzzy Modeling for Uncertainty Nonlinear Systems with Fuzzy Equations

机译:具有模糊方程的不确定非线性系统的模糊建模

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摘要

The uncertain nonlinear systems can be modeled with fuzzy equations by incorporating the fuzzy set theory. In this paper, the fuzzy equations are applied as the models for the uncertain nonlinear systems. The nonlinear modeling process is to find the coefficients of the fuzzy equations. We use the neural networks to approximate the coefficients of the fuzzy equations. The approximation theory for crisp models is extended into the fuzzy equation model. The upper bounds of the modeling errors are estimated. Numerical experiments along with comparisons demonstrate the excellent behavior of the proposed method.
机译:通过结合模糊集理论,可以用模糊方程对不确定的非线性系统进行建模。本文将模糊方程作为不确定非线性系统的模型。非线性建模过程是寻找模糊方程的系数。我们使用神经网络来近似模糊方程的系数。清晰模型的逼近理论被扩展到模糊方程模型中。估计建模误差的上限。数值实验和比较证明了该方法的优良性能。

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  • 来源
    《Mathematical Problems in Engineering》 |2017年第2017期|8594738.1-8594738.10|共10页
  • 作者

    Jafari Raheleh; Yu Wen;

  • 作者单位

    IPN Natl Polytech Inst, CINVESTAV, Dept Automat Control, Mexico City, DF, Mexico;

    IPN Natl Polytech Inst, CINVESTAV, Dept Automat Control, Mexico City, DF, Mexico;

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