Comparative study between ARX and ARMAX system identification
System Identification is used to build mathematical models of a dynamic system based on measured data. To design the best controllers for linear or nonlinear systems, mathematical modeling is the main challenge. To solve this challenge conventional and intelligent identification are recommend...
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Modern Education and Computer Science Publisher
2017
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Online Access: | http://psasir.upm.edu.my/id/eprint/61162/1/Comparative%20study%20between%20ARX%20and%20ARMAX%20system%20identification.pdf http://psasir.upm.edu.my/id/eprint/61162/ http://www.mecs-press.org/ijisa/ijisa-v9-n2/IJISA-V9-N2-4.pdf |
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my.upm.eprints.611622019-03-19T04:32:07Z http://psasir.upm.edu.my/id/eprint/61162/ Comparative study between ARX and ARMAX system identification Piltan, Farzin TayebiHaghighi, Shahnaz Sulaiman, Nasri System Identification is used to build mathematical models of a dynamic system based on measured data. To design the best controllers for linear or nonlinear systems, mathematical modeling is the main challenge. To solve this challenge conventional and intelligent identification are recommended. System identification is divided into different algorithms. In this research, two important types algorithm are compared to identifying the highly nonlinear systems, namely: Auto-Regressive with eXternal model input(ARX) and Auto Regressive moving Average with eXternal model input (Armax) Theory. These two methods are applied to the highly nonlinear industrial motor. Modern Education and Computer Science Publisher 2017 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/61162/1/Comparative%20study%20between%20ARX%20and%20ARMAX%20system%20identification.pdf Piltan, Farzin and TayebiHaghighi, Shahnaz and Sulaiman, Nasri (2017) Comparative study between ARX and ARMAX system identification. International Journal of Intelligent Systems and Applications (2). 25 - 34. ISSN 2074-904X; ESSN: 2074-9058 http://www.mecs-press.org/ijisa/ijisa-v9-n2/IJISA-V9-N2-4.pdf 10.5815/ijisa.2017.02.04 |
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System Identification is used to build mathematical models of a dynamic system based on measured data. To design the best controllers for linear or nonlinear systems, mathematical modeling is the main challenge. To solve this challenge conventional and intelligent identification are recommended. System identification is divided into different algorithms. In this research, two important types algorithm are compared to identifying the highly nonlinear systems, namely: Auto-Regressive with eXternal model input(ARX) and Auto Regressive moving Average with eXternal model input (Armax) Theory. These two methods are applied to the highly nonlinear industrial motor. |
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Article |
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Piltan, Farzin TayebiHaghighi, Shahnaz Sulaiman, Nasri |
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Piltan, Farzin TayebiHaghighi, Shahnaz Sulaiman, Nasri Comparative study between ARX and ARMAX system identification |
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Piltan, Farzin TayebiHaghighi, Shahnaz Sulaiman, Nasri |
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Piltan, Farzin |
title |
Comparative study between ARX and ARMAX system identification |
title_short |
Comparative study between ARX and ARMAX system identification |
title_full |
Comparative study between ARX and ARMAX system identification |
title_fullStr |
Comparative study between ARX and ARMAX system identification |
title_full_unstemmed |
Comparative study between ARX and ARMAX system identification |
title_sort |
comparative study between arx and armax system identification |
publisher |
Modern Education and Computer Science Publisher |
publishDate |
2017 |
url |
http://psasir.upm.edu.my/id/eprint/61162/1/Comparative%20study%20between%20ARX%20and%20ARMAX%20system%20identification.pdf http://psasir.upm.edu.my/id/eprint/61162/ http://www.mecs-press.org/ijisa/ijisa-v9-n2/IJISA-V9-N2-4.pdf |
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