Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network
In this paper, a study on development of prediction model based on an intelligent systems is discussed for gas metering system in order to validate the instrument reliability. In providing reliable measurement of gas metering system, an accurate prediction model is required for model validation and...
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my.utp.eprints.202612018-04-22T14:48:03Z Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network Rosli, N.S. Ibrahim, R. Ismail, I. In this paper, a study on development of prediction model based on an intelligent systems is discussed for gas metering system in order to validate the instrument reliability. In providing reliable measurement of gas metering system, an accurate prediction model is required for model validation and parameter estimation. The intelligent prediction system has been developed for gas measurement validation. Then the project focused on the application of particle swarm optimization (PSO) and Genetic Algorithm (GA) in training neural network prediction model in enhancing the performance of Intelligent Prediction System (IPS). In this study, the three experiment has been conducted to improve the accuracy of the neural network prediction model. The comparison of the performance of PSONN and GANN with pure ANN is presented in this paper. The results shows that the proposed PSONN model give promising results in the prediction accuracy of gas measurement. © 2017 The Authors. Elsevier B.V. 2017 Article PeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-85016089305&doi=10.1016%2fj.procs.2017.01.197&partnerID=40&md5=e3dafb2210ecea949a7fa9ffb65701c1 Rosli, N.S. and Ibrahim, R. and Ismail, I. (2017) Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network. Procedia Computer Science, 105 . pp. 165-169. http://eprints.utp.edu.my/20261/ |
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In this paper, a study on development of prediction model based on an intelligent systems is discussed for gas metering system in order to validate the instrument reliability. In providing reliable measurement of gas metering system, an accurate prediction model is required for model validation and parameter estimation. The intelligent prediction system has been developed for gas measurement validation. Then the project focused on the application of particle swarm optimization (PSO) and Genetic Algorithm (GA) in training neural network prediction model in enhancing the performance of Intelligent Prediction System (IPS). In this study, the three experiment has been conducted to improve the accuracy of the neural network prediction model. The comparison of the performance of PSONN and GANN with pure ANN is presented in this paper. The results shows that the proposed PSONN model give promising results in the prediction accuracy of gas measurement. © 2017 The Authors. |
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Article |
author |
Rosli, N.S. Ibrahim, R. Ismail, I. |
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Rosli, N.S. Ibrahim, R. Ismail, I. Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network |
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Rosli, N.S. Ibrahim, R. Ismail, I. |
author_sort |
Rosli, N.S. |
title |
Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network |
title_short |
Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network |
title_full |
Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network |
title_fullStr |
Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network |
title_full_unstemmed |
Intelligent Prediction System for Gas Metering System using Particle Swarm Optimization in Training Neural Network |
title_sort |
intelligent prediction system for gas metering system using particle swarm optimization in training neural network |
publisher |
Elsevier B.V. |
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2017 |
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https://www.scopus.com/inward/record.uri?eid=2-s2.0-85016089305&doi=10.1016%2fj.procs.2017.01.197&partnerID=40&md5=e3dafb2210ecea949a7fa9ffb65701c1 http://eprints.utp.edu.my/20261/ |
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