Work place: University of Niš, Faculty of Electronic Engineering, Department of Control Systems, Aleksandra Medvedeva 14, 18000 Niš, Republic of Serbia
E-mail: marko.milojkovic@elfak.ni.ac.rs
Website:
Research Interests: Computational Engineering, Computational Physics, Engineering, Physics & Mathematics
Biography
Marko T. Milojković received the BSc degree from the Faculty of Electronic Engineering, Niš, in 2003, and MSc degree from the University of Niš, in 2008. He received the PhD degree from the University of Niš, in 2012. He is currently working as Assistant Professor in Department of Control Systems at Faculty of Electronic Engineering. He is author and co-author more than 60 scientific papers of refereed journals and international/national conferences. His current research interests include the modelling and simulation of dynamic systems, sliding mode control, fuzzy control, and orthogonal systems.
By Dragan Antic Miroslav Milovanovic Sasa Nikolic Marko Milojkovic Stanisa Peric
DOI: https://doi.org/10.5815/ijisa.2013.05.04, Pub. Date: 8 Apr. 2013
In this paper, we present analysis of different training types for nonlinear autoregressive neural network, used for simulation of magnetic levitation system. First, the model of this highly nonlinear system is described and after that the Nonlinear Auto Regressive eXogenous (NARX) of neural network model is given. Also, numerical optimization techniques for improved network training are described. It is verified that NARX neural network can be successfully used to simulate real magnetic levitation system if suitable training procedure is chosen, and the best two training types, obtained from experimental results, are described in details.
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