参数和非参数系统识别中的采样:差分、输入条件和一致性

IF 2.4 Q2 AUTOMATION & CONTROL SYSTEMS
Rodrigo A. González;Max van Haren;Tom Oomen;Cristian R. Rojas
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引用次数: 0

摘要

众所周知,输入和输出信号的采样率在动力系统的识别和控制中起着至关重要的作用。对于不满足完全信号可重构性的奈奎斯特-香农(Nyquist-Shannon)采样条件的慢采样连续时间系统,在识别参数和非参数模型时需要仔细考虑。在这封信中,我们对慢速采样下的估计器进行了全面的统计分析。研究获得了对奈奎斯特频率以外的频率响应函数进行无偏估计的必要条件和充分条件,并证明即使输入频率在混叠后重叠,参数估计器也能实现一致性。蒙特卡罗模拟证实了理论特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sampling in Parametric and Nonparametric System Identification: Aliasing, Input Conditions, and Consistency
The sampling rate of input and output signals is known to play a critical role in the identification and control of dynamical systems. For slow-sampled continuous-time systems that do not satisfy the Nyquist-Shannon sampling condition for perfect signal reconstructability, careful consideration is required when identifying parametric and nonparametric models. In this letter, a comprehensive statistical analysis of estimators under slow sampling is performed. Necessary and sufficient conditions are obtained for unbiased estimates of the frequency response function beyond the Nyquist frequency, and it is shown that consistency of parametric estimators can be achieved even if input frequencies overlap after aliasing. Monte Carlo simulations confirm the theoretical properties.
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来源期刊
IEEE Control Systems Letters
IEEE Control Systems Letters Mathematics-Control and Optimization
CiteScore
4.40
自引率
13.30%
发文量
471
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