闭环模型的递归子空间辨识方法

Jia Wang, Hong Gu, Hongwei Wang
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引用次数: 0

摘要

提出了一种闭环实验条件下的子空间模型识别算法,可实现系统模型的递归识别和更新。提出了一种利用滑动窗口技术和线性方程递归获取投影数据矩阵的更新方案。基于阵列信号处理中的传播子类型方法,在不分解奇异值的情况下估计扩展可观测矩阵列向量所张成的子空间。对于有色噪声污染的闭环系统,该方法是可行的。算例表明了该算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recursive subspace identification approach of a closed-loop model
A subspace model identification algorithm under closed-loop experimental condition is presented in this paper that can be implemented to recursively identify and update system model. A new updating scheme is developed to obtain the projected data matrix recursively through sliding window technique and linear equation. Based on the propagator type method in array signal processing, the subspace spanned by the column vectors of the extended observability matrix is estimated without singular values decomposition. The proposed method is feasible for the closed-loop system contaminated with colored noises. The numerical example shows the effectiveness of the proposed algorithm.
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