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Identification of dual-rate sampled output-error systems with unknown time-delays and orders

[时滞和阶次未知的双率采样输出误差系统辨识]

作     者:Jiao F. Cao Y.-Q. Xie L. 

作者机构:School of Internet of Things Engineering Jiangnan University Wuxi 214122 China Wuxi Advance Technologies Inc. Wuxi 214161 China 

出 版 物:《Kongzhi yu Juece/Control and Decision》 (Control and Decision)

年 卷 期:2024年第39卷第9期

页      面:3006-3012页

核心收录:

学科分类:0711[理学-系统科学] 07[理学] 08[工学] 0802[工学-机械工程] 0835[工学-软件工程] 080201[工学-机械制造及其自动化] 071102[理学-系统分析与集成] 

基  金:国家重点研发计划项目(2022YFC3401302) 中国博士后科学基金(2021M691276) 

主  题:auxiliary model dual-rate sampled system order estimation orthogonal matching pursuit parameter identification time-delay estimation 

摘      要:An orthogonal matching pursuit iterative identification algorithm is proposed for dual-rate sampled output-error systems with unknown time-delays and orders based on finite number of sampled data. Firstly, the identification model of the target system is established based on the dual-rate sampled data. Secondly, considering the input time-delay and the system order are both unknown, by means of the overparameterization method and taking the regression items of the noise-free output data and that of the input data as sufficient length, a sparse system is derived and its sparsity is the number of parameters to be identified. Furthermore, the idea of auxiliary model and the sparse recovery method in compressed sensing are combined for interactive estimation of the parameter vector and the noise-free outputs, where the parameter vector is estimated by using the orthogonal matching pursuit algorithm, the auxiliary model is constructed based on which and then the noise-free outputs are calculated accordingly and applied in turn for updating the parameter vector. Finally, the system order and the input time-delay are calculated according to the structure of the obtained parameter vector. The simulation experiments verify that the proposed algorithm can provide accurate joint estimation of system parameters, time-delay and order based on small amounts of sampled data. © 2024 Northeast University. All rights reserved.

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