具有先验稳态信息的子空间辨识

A. Alenany, H. Shang, Mohamed I Soliman, I. Ziedan
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引用次数: 15

摘要

在系统识别中,数据的质量对于获得良好的模型非常重要,但在某些情况下,可用的数据会受到噪声的严重破坏。然而,一些关于待识别系统的先验信息,如直流增益和稳定时间,可以在数据噪声的情况下获得改进的模型识别。本文研究了一种包含已知直流增益的子空间辨识方案。在脉冲响应参数和等于直流增益的等式约束下,利用最小二乘法将先验过程信息纳入系统辨识中。与现有辨识方法相比,该辨识策略提供无偏参数估计,适用于多输入多输出(MIMO)系统,且计算效率高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Subspace identification with prior steady-state information
In system identification, the quality of data is important for obtaining good models, but there are situations where the available data are highly corrupted with noise. However, some prior information about the system to be identified, such as dc gain and settling time, may be available to obtain improved model identification despite data noise. In this paper, a subspace identification scheme incorporating known dc gain is investigated. The prior process information is incorporated into system identification through using the least square with the equality constraint that the sum of impulse response parameters is equal to the dc gain. In comparison with the existing approaches, the proposed identification strategy provides unbiased parameter estimations, is applicable to Multi-Input Multi-Output (MIMO) systems, and is computationally efficient.
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