An implementation of brain emotional learning based intelligent Controller for AVR system
In this paper, an intelligent controller based on brain emotional learning called BELBIC is applied and optimized by Particle Swarm optimization algorithm. PSO algorithm is used to tuned twelve BELBIC controller parameters in order to improve the time domain parameters such as overshoot percentage (...
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Online Access: | http://umpir.ump.edu.my/id/eprint/38715/1/An%20implementation%20of%20brain%20emotional%20learning%20based%20intelligent.pdf http://umpir.ump.edu.my/id/eprint/38715/2/An%20implementation%20of%20brain%20emotional%20learning%20based%20intelligent%20Controller%20for%20AVR%20system_ABS.pdf http://umpir.ump.edu.my/id/eprint/38715/ https://doi.org/10.1109/I2CACIS57635.2023.10193647 |
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my.ump.umpir.387152023-10-17T06:58:11Z http://umpir.ump.edu.my/id/eprint/38715/ An implementation of brain emotional learning based intelligent Controller for AVR system Shahrizal, Saat Mohd Riduwan, Ghazali Mohd Ashraf, Ahmad Nik Mohd Zaitul Akmal, Mustapha Mohd Zaidi, Mohd Tumari T Technology (General) TA Engineering (General). Civil engineering (General) TK Electrical engineering. Electronics Nuclear engineering In this paper, an intelligent controller based on brain emotional learning called BELBIC is applied and optimized by Particle Swarm optimization algorithm. PSO algorithm is used to tuned twelve BELBIC controller parameters in order to improve the time domain parameters such as overshoot percentage (OS%), rise time (tr), settling time (ts) and steady state error (Ess) of the step response for an AVR system in order to minimize value of objective function based on ZLG method. This proposed PSO-BELBIC controller time domain parameters performance is compared with the PSO-PID, IKA-PID and SCA-PID controller. From the simulation, the proposed model free PSO-BELBIC controller was confirm able to provide the best objective function minimization value. This proposed PSO-BELBIC controller also able to provide superior performance to reduce overshoot percentage, steady state error and settling time compared to others controller. However, this proposed controller still have a space to improve its rising time parameter by investigate new formulation of Si and ES for BELBIC controller. IEEE 2023 Conference or Workshop Item PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/38715/1/An%20implementation%20of%20brain%20emotional%20learning%20based%20intelligent.pdf pdf en http://umpir.ump.edu.my/id/eprint/38715/2/An%20implementation%20of%20brain%20emotional%20learning%20based%20intelligent%20Controller%20for%20AVR%20system_ABS.pdf Shahrizal, Saat and Mohd Riduwan, Ghazali and Mohd Ashraf, Ahmad and Nik Mohd Zaitul Akmal, Mustapha and Mohd Zaidi, Mohd Tumari (2023) An implementation of brain emotional learning based intelligent Controller for AVR system. In: 2023 IEEE International Conference on Automatic Control and Intelligent Systems, I2CACIS 2023 - Proceedings, 17 June 2023 , Shah Alam, Malaysia. pp. 60-64.. ISSN 979-835032130-2 https://doi.org/10.1109/I2CACIS57635.2023.10193647 |
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T Technology (General) TA Engineering (General). Civil engineering (General) TK Electrical engineering. Electronics Nuclear engineering Shahrizal, Saat Mohd Riduwan, Ghazali Mohd Ashraf, Ahmad Nik Mohd Zaitul Akmal, Mustapha Mohd Zaidi, Mohd Tumari An implementation of brain emotional learning based intelligent Controller for AVR system |
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In this paper, an intelligent controller based on brain emotional learning called BELBIC is applied and optimized by Particle Swarm optimization algorithm. PSO algorithm is used to tuned twelve BELBIC controller parameters in order to improve the time domain parameters such as overshoot percentage (OS%), rise time (tr), settling time (ts) and steady state error (Ess) of the step response for an AVR system in order to minimize value of objective function based on ZLG method. This proposed PSO-BELBIC controller time domain parameters performance is compared with the PSO-PID, IKA-PID and SCA-PID controller. From the simulation, the proposed model free PSO-BELBIC controller was confirm able to provide the best objective function minimization value. This proposed PSO-BELBIC controller also able to provide superior performance to reduce overshoot percentage, steady state error and settling time compared to others controller. However, this proposed controller still have a space to improve its rising time parameter by investigate new formulation of Si and ES for BELBIC controller. |
format |
Conference or Workshop Item |
author |
Shahrizal, Saat Mohd Riduwan, Ghazali Mohd Ashraf, Ahmad Nik Mohd Zaitul Akmal, Mustapha Mohd Zaidi, Mohd Tumari |
author_facet |
Shahrizal, Saat Mohd Riduwan, Ghazali Mohd Ashraf, Ahmad Nik Mohd Zaitul Akmal, Mustapha Mohd Zaidi, Mohd Tumari |
author_sort |
Shahrizal, Saat |
title |
An implementation of brain emotional learning based intelligent Controller for AVR system |
title_short |
An implementation of brain emotional learning based intelligent Controller for AVR system |
title_full |
An implementation of brain emotional learning based intelligent Controller for AVR system |
title_fullStr |
An implementation of brain emotional learning based intelligent Controller for AVR system |
title_full_unstemmed |
An implementation of brain emotional learning based intelligent Controller for AVR system |
title_sort |
implementation of brain emotional learning based intelligent controller for avr system |
publisher |
IEEE |
publishDate |
2023 |
url |
http://umpir.ump.edu.my/id/eprint/38715/1/An%20implementation%20of%20brain%20emotional%20learning%20based%20intelligent.pdf http://umpir.ump.edu.my/id/eprint/38715/2/An%20implementation%20of%20brain%20emotional%20learning%20based%20intelligent%20Controller%20for%20AVR%20system_ABS.pdf http://umpir.ump.edu.my/id/eprint/38715/ https://doi.org/10.1109/I2CACIS57635.2023.10193647 |
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1822923730577260544 |
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13.23648 |