Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems
This paper proposes a nonlinear system identification using parallel linear-plus-neural network models that provide more accurate predictions on the process behavior even on extrapolated regions. For this purpose, a residuals-based identification algorithm using parallel integration of linear orthon...
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Online Access: | http://eprints.utp.edu.my/10745/1/jjpchz2013.pdf http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B6V4N-4JD0H11-1&_user=1196560&_coverDate=08%2F31%2F2006&_rdoc=1&_fmt=high&_orig=search&_origin=search&_sort=d&_docanchor=&view=c&_searchStrId=1590310395&_rerunOrigin=google&_acct=C000048039&_version http://eprints.utp.edu.my/10745/ |
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my.utp.eprints.107452013-12-16T23:47:58Z Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems H., Zabiri M., Ramasamy T. D. , Lemma Maulud, Abdulhalim Q Science (General) TP Chemical technology This paper proposes a nonlinear system identification using parallel linear-plus-neural network models that provide more accurate predictions on the process behavior even on extrapolated regions. For this purpose, a residuals-based identification algorithm using parallel integration of linear orthonormal basis filters (OBF) and neural networks model is developed and analyzed under range extrapolations. Results on the van de Vusse reactor case study show enhanced extrapolation capability when compared to the conventional neural network (NN) and the series Wiener-NN models. 2013-11 Citation Index Journal PeerReviewed application/pdf http://eprints.utp.edu.my/10745/1/jjpchz2013.pdf http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B6V4N-4JD0H11-1&_user=1196560&_coverDate=08%2F31%2F2006&_rdoc=1&_fmt=high&_orig=search&_origin=search&_sort=d&_docanchor=&view=c&_searchStrId=1590310395&_rerunOrigin=google&_acct=C000048039&_version H., Zabiri and M., Ramasamy and T. D. , Lemma and Maulud, Abdulhalim (2013) Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems. [Citation Index Journal] http://eprints.utp.edu.my/10745/ |
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Q Science (General) TP Chemical technology H., Zabiri M., Ramasamy T. D. , Lemma Maulud, Abdulhalim Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems |
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This paper proposes a nonlinear system identification using parallel linear-plus-neural network models that provide more accurate predictions on the process behavior even on extrapolated regions. For this purpose, a residuals-based identification algorithm using parallel integration of linear orthonormal basis filters (OBF) and neural networks model is developed and analyzed under range extrapolations. Results on the van de Vusse reactor case study show enhanced extrapolation capability when compared to the conventional neural network (NN) and the series Wiener-NN models. |
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Citation Index Journal |
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H., Zabiri M., Ramasamy T. D. , Lemma Maulud, Abdulhalim |
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H., Zabiri M., Ramasamy T. D. , Lemma Maulud, Abdulhalim |
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H., Zabiri |
title |
Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems |
title_short |
Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems |
title_full |
Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems |
title_fullStr |
Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems |
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Integrated OBF-NN models with enhanced extrapolation capability for nonlinear systems |
title_sort |
integrated obf-nn models with enhanced extrapolation capability for nonlinear systems |
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2013 |
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http://eprints.utp.edu.my/10745/1/jjpchz2013.pdf http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B6V4N-4JD0H11-1&_user=1196560&_coverDate=08%2F31%2F2006&_rdoc=1&_fmt=high&_orig=search&_origin=search&_sort=d&_docanchor=&view=c&_searchStrId=1590310395&_rerunOrigin=google&_acct=C000048039&_version http://eprints.utp.edu.my/10745/ |
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