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首页> 外文期刊>Automatic Control, IEEE Transactions on >Non-Parametric Nonlinear System Identification: An Asymptotic Minimum Mean Squared Error Estimator
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Non-Parametric Nonlinear System Identification: An Asymptotic Minimum Mean Squared Error Estimator

机译:非参数非线性系统识别:渐近最小均方误差估计器

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This paper studies the problem of the minimum mean squared error estimator for non-parametric nonlinear system identification. It is shown that for a wide class of nonlinear systems, the local linear estimator is a linear (in outputs) asymptotic minimum mean squared error estimator. The class of the systems allowed is characterized by a stability condition that is related to many well studied stability notions in the literature. Numerical simulations support the analytical analysis.
机译:本文研究了用于非参数非线性系统辨识的最小均方误差估计器的问题。结果表明,对于一大类非线性系统,局部线性估计量是线性(在输出中)渐近最小均方误差估计量。所允许的系统类别的特征在于稳定性条件,该条件与文献中许多经过充分研究的稳定性概念有关。数值模拟支持分析。

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