Title :
Time-Varying FOPDT system identification with unknown disturbance input
Author :
Zhen Sun ; Zhenyu Yang
Author_Institution :
Dept. of Energy Technol., Aalborg Univ., Esbjerg, Denmark
Abstract :
The Time-Varying First Order Plus Dead Time (TV-FOPDT) model is an extension of the conventional FOPDT by allowing the system parameters, which are primarily defined on the transfer function description, i.e., the DC-gain, time constant and time delay, to be time dependent. The TV-FOPDT identification problem turns to estimate these time-varying parameters based on measured control input and system output. This work considers a TV-FOPDT identification problem in the presence of an unknown disturbance input. By regarding the unknown input as one extra system parameter, the considered identification problem is formulated as a Stochastic Mixed Integral Programming (SMIP) problem after discretizing the original problem. The sliding window technique with forgetting factor is employed to cope with time resolution issue, and the Least Mean Square (LMS) method is used to obtain the optimal solution of each individual optimization problem based on different time delay assumptions. The proposed method is firstly tested through a number of numerical examples, and then it is applied to estimate a TV-FOPDT model of the superheat dynamic of a supermarket refrigeration system.
Keywords :
delays; integer programming; least mean squares methods; optimal control; parameter estimation; refrigeration; stability; stochastic programming; time-varying systems; transfer functions; DC-gain; LMS method; SMIP problem; TV-FOPDT identification problem; control input; forgetting factor; least mean square method; optimal solution; optimization problem; sliding window technique; stochastic mixed integral programming; superheat dynamic; supermarket refrigeration system; system output; time constant; time delay assumption; time resolution issue; time-varying FOPDT system identification; time-varying first order plus dead time model; time-varying parameter estimation; transfer function description; unknown disturbance input; Data models; Delay effects; Estimation; Least squares approximation; Mathematical model; Numerical models; Time varying systems;
Conference_Titel :
Control Applications (CCA), 2012 IEEE International Conference on
Conference_Location :
Dubrovnik
Print_ISBN :
978-1-4673-4503-3
Electronic_ISBN :
1085-1992
DOI :
10.1109/CCA.2012.6402686