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Hierarchical gradient based iterative parameter estimation algorithm for multivariable output error moving average systems

机译:多变量输出误差移动平均系统的基于层次梯度的迭代参数估计算法

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摘要

According to the hierarchical identification principle, a hierarchical gradient based iterative estimation algorithm is derived for multivariable output error moving average systems (i.e., multivariable OEMA-like models) which is different from multivariable CARMA-like models. As there exist unmeasurable noise-free outputs and unknown noise terms in the information vector/matrix of the corresponding identification model, this paper is, by means of the auxiliary model identification idea, to replace the unmeasurable variables in the information vector/matrix with the estimated residuals and the outputs of the auxiliary model. A numerical example is provided.
机译:根据分层识别原理,为与多变量CARMA模型不同的多变量输出误差移动平均系统(即,类似于OEMA的多变量模型)导出了基于梯度的迭代估计算法。由于相应识别模型的信息向量/矩阵中存在不可测量的无噪声输出和未知噪声项,因此,本文将借助辅助模型识别思想,将信息向量/矩阵中的不可测量变量替换为估计残差和辅助模型的输出。提供了一个数值示例。

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