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Robust adaptive n3;ȡE;-gain neural filtering for non-linear systems in the presence of bounded disturbances

机译:有限扰动下非线性系统的鲁棒自适应n3;ȡE;增益神经滤波

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摘要

This study deals with the problem of robust adaptive n3;/spl infin>-gain neural filter design for a class of uncertain systems with unknown non-linearities and persistently bounded disturbances. A neural filter is constructed for the signal estimation of the system, where two radial basis function neural networks (NNs) are employed to approximate the estimates of the unknown non-linearities in the state dynamics and measurement equation of the system, respectively. The addressed problem is to design such a filter such that the state estimation error is uniformly ultimately bounded and the signal estimation error satisfies an n3;/spl infin>-gain performance. The linear matrix inequality (LMI)-based condition for the existence of a robust adaptive n3;/spl infin>-gain neural filter is provided. In the proposed filtering scheme, by using the orthogonal projection of the state estimation error onto the null space of the linear measurement distribution matrix, the weight update laws of NNs are represented in terms of the available measurement residual. Furthermore, using the existing LMI optimisation technique, a suboptimal neural filter can be obtained in the sense of minimising an upper bound of the n3;/spl infin>-gains. Finally, a simulation example is given to illustrate the effectiveness of the proposed design method.
机译:该研究针对一类具有未知非线性和持续界扰动的不确定系统,解决了鲁棒的自适应n3; / spl infin> 增益神经滤波器设计问题。构造了用于系统信号估计的神经滤波器,其中使用两个径向基函数神经网络(NN)分别估计系统状态动力学和测量方程中未知非线性的估计。解决的问题是设计这样的滤波器,以使状态估计误差最终最终均匀地受限,并且信号估计误差满足n3; / spl infin>增益性能。为存在鲁棒自适应n3; / spl infin> 增益神经滤波器的存在提供了基于线性矩阵不等式的条件。在提出的滤波方案中,通过将状态估计误差正交投影到线性测量分布矩阵的零空间上,以可用的测量残差来表示NN的权重更新定律。此外,使用现有的LMI优化技术,在使n3; / spl infin> 增益的上限最小化的意义上,可以获得次优的神经过滤器。最后,给出了一个仿真实例来说明所提设计方法的有效性。

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  • 来源
    《Control Theory & Applications, IET》 |2011年第4期|p.630-639|共10页
  • 作者

    Wu H.-N.; Li H.-X.;

  • 作者单位

    Science and Technology on Aircraft Control Laboratory, School of Automation Science and Electrical Engineering, Beihang University (Beijing University of Aeronautics and Astronautics);

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  • 正文语种 eng
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  • 入库时间 2022-08-17 14:17:49

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