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Estimating parameters of dynamic errors-in-variables systems with polynomial nonlinearities

机译:多项式非线性估算动态误差系统的参数

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An approach for identifying single-input single-output discrete-time dynamic nonlinear errors-invariables systems is presented where the system model can be linearized such that it is expressed as a linear combination of polynomials of input and output observations. We assume white Gaussian noise on both input and output, characterized by a noise magnitude and a normalized noise covariance structure matrix, and employ a nonlinear extension of the generalized Koopmans-Levin method to estimate model parameters with an assumed noise structure and a subsequent covariance matching objective function minimization to estimate all noise parameters The feasibility of the approach is demonstrated by Monte-Carlo simulations.
机译:呈现了一种用于识别单输入单输出离散时间动态非线性误差的方法,其中系统模型可以线性化,使得其表示为输入和输出观察的多项式的线性组合。我们假设输入和输出上的白色高斯噪声,其特征在于噪声幅度和归一化噪声协方差结构矩阵,并采用广义KOOPMAN-Levin方法的非线性扩展,以估计具有假定噪声结构和后续协方差匹配的模型参数目的函数最小化以估计所有噪声参数的方法是由Monte-Carlo仿真证明了方法的可行性。

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