Please use this identifier to cite or link to this item: http://dspace.unimap.edu.my:80/xmlui/handle/123456789/7293
Title: Design of neural PID controller for reduced order model
Authors: Gomathi, P.
Manigandan, T.
Devarajan, N.
manigandan_t@yahoo.com
Keywords: Model Reduction
LTICS
Stability
PID controllers
Tuning of controller
PID controllers -- Design and construction
Motion control
Neural networks (Computer science)
Issue Date: 11-Oct-2009
Publisher: Universiti Malaysia Perlis
Citation: p.5B10 1 - 5B10 4
Series/Report no.: Proceedings of the International Conference on Man-Machine Systems (ICoMMS 2009)
Abstract: The aim of this paper is to design a PID controller for higher order systems using the proposed model reduction method with neural networks. In a linear time invariant continuous system (LTICS) the coefficient matrix cannot be stored explicitly in a computer memory. The matrix vector products can be computed relatively in a less expensive manner by using an approximation technique. A novel method is proposed to obtain a reduced model from a higher order linear time invariant continuous system. The proposed scheme is simple, computationally straight forward and does not involve any complex algebra. The reduced order model will always be stable if the higher order system is stable. Using the proposed method, PID controller is designed for the higher order linear time invariant continuous system to meet the performance specifications. The PID controller parameters are tuned by using Back propagation Network.
Description: Organized by School of Mechatronic Engineering (UniMAP) & co-organized by The Institution of Engineering Malaysia (IEM), 11th - 13th October 2009 at Batu Feringhi, Penang, Malaysia.
URI: http://dspace.unimap.edu.my/123456789/7293
Appears in Collections:Conference Papers

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