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Continuous-time System Identification with Nuclear Norm Minimization and GPMF-based Subspace Method
被引量:
5
1
作者
Mingxiang Dai
Ying He
Xinmin Yang
《IEEE/CAA Journal of Automatica Sinica》
SCIE
EI
2016年第2期184-191,共8页
To improve the accuracy and effectiveness of continuous-time (CT) system identification, this paper introduces a novel method that incorporates the nuclear norm minimization (NNM) with the generalized Poisson moment f...
To improve the accuracy and effectiveness of continuous-time (CT) system identification, this paper introduces a novel method that incorporates the nuclear norm minimization (NNM) with the generalized Poisson moment functional (GPMF) based subspace method. The GPMF algorithm provides a simple linear mapping for subspace identification without the timederivatives of the input and output measurements to avoid amplification of measurement noise, and the NNM is a heuristic convex relaxation of the rank minimization. The Hankel matrix with minimized nuclear norm is used to determine the model order and to avoid the over-parameterization in subspace identification method (SIM). Furthermore, the algorithm to solve the NNM problem in CT case is also deduced with alternating direction methods of multipliers (ADMM). Lastly, two numerical examples are presented to evaluate the performance of the proposed method and to show the advantages of the proposed method over the existing methods. © 2014 Chinese Association of Automation.
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关键词
Identification
(control
systems)
Matrix
algebra
Numerical
methods
Relaxation
processes
Religious
buildings
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题名
Continuous-time System Identification with Nuclear Norm Minimization and GPMF-based Subspace Method
被引量:
5
1
作者
Mingxiang Dai
Ying He
Xinmin Yang
机构
the National Key Laboratory of Transient Physics
出处
《IEEE/CAA Journal of Automatica Sinica》
SCIE
EI
2016年第2期184-191,共8页
文摘
To improve the accuracy and effectiveness of continuous-time (CT) system identification, this paper introduces a novel method that incorporates the nuclear norm minimization (NNM) with the generalized Poisson moment functional (GPMF) based subspace method. The GPMF algorithm provides a simple linear mapping for subspace identification without the timederivatives of the input and output measurements to avoid amplification of measurement noise, and the NNM is a heuristic convex relaxation of the rank minimization. The Hankel matrix with minimized nuclear norm is used to determine the model order and to avoid the over-parameterization in subspace identification method (SIM). Furthermore, the algorithm to solve the NNM problem in CT case is also deduced with alternating direction methods of multipliers (ADMM). Lastly, two numerical examples are presented to evaluate the performance of the proposed method and to show the advantages of the proposed method over the existing methods. © 2014 Chinese Association of Automation.
关键词
Identification
(control
systems)
Matrix
algebra
Numerical
methods
Relaxation
processes
Religious
buildings
Keywords
Nuclear norm minimization(NNM)
generalized
poisson
moment
functonal
(
gpmf
)
continuous-time
system identification
alternating direction methods of multipliers(ADMM)
分类号
N945.14 [自然科学总论—系统科学]
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Continuous-time System Identification with Nuclear Norm Minimization and GPMF-based Subspace Method
Mingxiang Dai
Ying He
Xinmin Yang
《IEEE/CAA Journal of Automatica Sinica》
SCIE
EI
2016
5
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