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Frequency-domain weighted non-linear least-squares estimation of continuous-time, time-varying systems

机译:连续时间时变系统的频域加权非线性最小二乘估计

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摘要

A frequency-domain least-squares estimator is presented for identifying linear, continuous-time, time-varying dynamical systems. The model considered is a linear, ordinary differential equation whose coefficients vary as polynomials in time. A frequency-domain approach is used, thus allowing the user to determine easily the frequency band(s) of interest. It is shown that the bias errors because of windowing and sampling the continuous-time signals can be modelled by a polynomial function of the frequency. The regression matrices of the estimators are shown to be very efficiently computed using the fast Fourier transform algorithm and its inverse. The total least-squares, generalised total least-squares and weighted, non-linear least-squares estimators are constructed. The latter two are shown to be consistent. The estimators are illustrated on simulation and measurement data.
机译:提出了一种频域最小二乘估计器,用于识别线性,连续时间,时变动力学系统。所考虑的模型是线性常微分方程,其系数随时间随多项式而变化。使用了频域方法,因此允许用户轻松确定感兴趣的频带。结果表明,由于开窗和采样连续时间信号而引起的偏差误差可以通过频率的多项式函数来建模。使用快速傅立叶变换算法及其逆运算,可以非常有效地计算出估计量的回归矩阵。构造总最小二乘,广义总最小二乘和加权非线性最小二乘估计器。后两者显示是一致的。在仿真和测量数据上说明了估算器。

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  • 来源
    《Control Theory & Applications, IET》 |2011年第7期|p.923-933|共11页
  • 作者

    Lataire J.; Pintelon R.;

  • 作者单位

    Vrije Universiteit Brussel, Dept. ELEC, Fundamental Electricity and Instrumentation, Pleinlaan 2, 1050 Brussels, Belgium;

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  • 正文语种 eng
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