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Consistency of the robust recursive Hammerstein model identification algorithm

机译:鲁棒递归Hammerstein模型辨识算法的一致性

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In this paper, it is proposed a robust recursive algorithm for identification of a Hammerstein model with a static nonlinear block in polynomial form and a linear block described by ARMAX model. It is assumed that there is a priori information about a distribution class to which a disturbance belongs. Such assumption introduces a nonlinear transformation of the prediction error in the recursive algorithm. The obtained algorithm is robust in relation to the uncertainty of the disturbance distribution. By using the stochastic Lyapunov function and the martingale theory a strong consistency of estimated parameters is proved under generalized strict real positivity conditions, based on the theory of passive operators and the weakest possible excitation. The practical behavior of the robust algorithm is illustrated by simulations. (C) 2015 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种鲁棒的递归算法,用于识别具有多项式形式的静态非线性块和ARMAX模型描述的线性块的Hammerstein模型。假设存在关于干扰所属的分配类别的先验信息。这样的假设在递归算法中引入了预测误差的非线性变换。相对于扰动分布的不确定性,所获得的算法是鲁棒的。基于无源算子和最弱可能的激励理论,通过使用随机Lyapunov函数和the理论,证明了在广义严格的真实正值条件下估计参数的强一致性。通过仿真说明了鲁棒算法的实际行为。 (C)2015富兰克林研究所。由Elsevier Ltd.出版。保留所有权利。

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  • 来源
    《Journal of the Franklin Institute》 |2015年第5期|1932-1945|共14页
  • 作者

    Filipovic Vojislav Z.;

  • 作者单位

    Univ Kragujevac, Fac Mech & Civil Engn, Dept Energet & Automat Contol, Dositejeva 19, Kraljevo 36000, Serbia;

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