DocumentCode :
3774479
Title :
Modeling a MIMO system with an ARX model and input-output data with noise
Author :
V. Sumalatha;K. Sandhya Rani;M. Hari Krishna;K. Raja Shekar Reddy
Author_Institution :
EIE dept., VNR VJIET, Hyderabad, India
fYear :
2015
Firstpage :
620
Lastpage :
624
Abstract :
Although conventional controllers based on PID, Fuzzy logic and Neural networks are able to meet the working requirements, the ever increasing thirst to achieve perfection by reducing overshoots, undershoots, transient and steady state errors have led to Model Predictive Controllers (MPC). These controllers depend on the error between the actual output from the plant and the computed output generated / predicted by a model of the plant. The proper operation of the MPC is therefore dependent on the accuracy of the plant model. An easy, practical and implementable method used is generation of a plant model using the input-output data generated while the plant is in operation. The chief requirement thus is to have a model as close as possible to the physical system being controlled. The dynamic behavior of any system can be estimated and controlled accurately using Model Predictive Controller. To design an MPC controller initially the system identification is done using ARX model. In this paper, the Model is computed both with and without noise in the inputs and the outputs.
Keywords :
"Mathematical model","Computational modeling","MIMO","Data models","Predictive models","System identification","Simulation"
Publisher :
ieee
Conference_Titel :
Control, Instrumentation, Communication and Computational Technologies (ICCICCT), 2015 International Conference on
Type :
conf
DOI :
10.1109/ICCICCT.2015.7475352
Filename :
7475352
Link To Document :
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