Please use this identifier to cite or link to this item: http://hdl.handle.net/123456789/13020
Title: Composite Nonlinear Feedback Control with Multi-objective Particle Swarm Optimization for Active Front Steering System
Authors: Liyana Ramli
Yahaya Md. Sam
Zaharuddin Mohamed
M. Khairi Aripin
M. Fahezal Ismail
Keywords: MOPSO
particle swarm optimization
multiple objective
composite nonlinear feedback
active front steering system
optimization
optimal controller
Issue Date: 2015
Publisher: Penerbit Universiti Teknologi Malaysia
Citation: Ramli, Liyana, Yahaya Sam, Zaharuddin Mohamed, M Khairi Aripin, and M Fahezal Ismail. 2015. “Composite Nonlinear Feedback Control with Multi-Objective Particle Swarm Optimization for Active Front Steering System.” Jurnal Teknologi 2: 13–20.
Abstract: The purpose of controlling the vehicle handling is to ensure that the vehicle is in a safe condition and following its desire path. Vehicle yaw rate is controlled in order to achieve a good vehicle handling. In this paper, the optimal Composite Nonlinear Feedback (CNF) control technique is proposed for an Active Front Steering (AFS) system for improving the vehicle yaw rate response. The model used in order to validate the performance of controller is nonlinear vehicle model with 7 degree-of-freedom (DOF) and a bicycle model is implemented for the purpose of designing the controller. In designing an optimal CNF controller, the parameter estimation of linear and nonlinear gain becomes very important to produce the best output response. An intelligent algorithm is designed to minimize the time consumed to get the best parameter. To design an optimal method, Multi Objective Particle Swarm Optimization (MOPSO) is utilized to optimize the CNF controller performance. As a result, transient performance of the yaw rate has improved with the increased speed of in tracking and searching of the best optimized parameter estimation for the linear and the nonlinear gain of CNF controller
Description: This article index by Scopus. M. Fahezal Ismail (UniKL MFI)
URI: http://www.jurnalteknologi.utm.my/index.php/jurnalteknologi/article/view/3877/2835
http://ir.unikl.edu.my/jspui/handle/123456789/13020
ISSN: 0127-9696
Appears in Collections:Journal Articles



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