An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]

This paper presents the performance of Artificial Neural Network (ANN) application towards the agarwood oil quality classification. The works involved the selected of agarwood oil compounds based on a feature selection technique. The compounds are selected based on using Stepwise Regression techniqu...

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Main Authors: Mahabob, Noratikah Zawani, Mohd Amidon, Aqib Fawwaz, Mohd Yusoff, Zakiah, Ismail, Nurlaila, Taib, Mohd Nasir
Format: Book Section
Language:English
Published: UiTM Cawangan Melaka Kampus Jasin 2021
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Online Access:https://ir.uitm.edu.my/id/eprint/50612/1/50612.pdf
https://ir.uitm.edu.my/id/eprint/50612/
https://jamcsiix.wixsite.com/2021
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Institution: Universiti Teknologi Mara
Language: English
id my.uitm.ir.50612
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spelling my.uitm.ir.506122021-10-25T04:23:23Z https://ir.uitm.edu.my/id/eprint/50612/ An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.] Mahabob, Noratikah Zawani Mohd Amidon, Aqib Fawwaz Mohd Yusoff, Zakiah Ismail, Nurlaila Taib, Mohd Nasir Back propagation (Artificial intelligence) Neural networks (Computer science) This paper presents the performance of Artificial Neural Network (ANN) application towards the agarwood oil quality classification. The works involved the selected of agarwood oil compounds based on a feature selection technique. The compounds are selected based on using Stepwise Regression technique. The compounds identified by stepwise regression are p-agarofuran, Y-Eudesmol, Longifolol, and Eudesmol. These compounds are fed into ANN as input feature and the output is the quality of the oil either high and low. Three classifier algorithms; Scaled Conjugate Gradient (SCG), Levenberg Marquardt (LM) and Resilient Backpropagation (RBP) and ten hidden neurons in the hidden layer are implemented. The performance of ANN is measured using confusion matrix, mean square error (mse) value and number of epoch. The finding showed that the ANN using four compounds of agarwood oil as input features obtained good performance with a good accuracy, lower mse value and lower number of epoch in one hidden neuron. UiTM Cawangan Melaka Kampus Jasin 2021 Book Section PeerReviewed text en https://ir.uitm.edu.my/id/eprint/50612/1/50612.pdf ID50612 Mahabob, Noratikah Zawani and Mohd Amidon, Aqib Fawwaz and Mohd Yusoff, Zakiah and Ismail, Nurlaila and Taib, Mohd Nasir (2021) An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]. In: International Jasin Multimedia & Computer Science Invention and Innovation Exhibition (i-JaMCSIIX 2021). UiTM Cawangan Melaka Kampus Jasin, pp. 76-79. https://jamcsiix.wixsite.com/2021
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic Back propagation (Artificial intelligence)
Neural networks (Computer science)
spellingShingle Back propagation (Artificial intelligence)
Neural networks (Computer science)
Mahabob, Noratikah Zawani
Mohd Amidon, Aqib Fawwaz
Mohd Yusoff, Zakiah
Ismail, Nurlaila
Taib, Mohd Nasir
An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]
description This paper presents the performance of Artificial Neural Network (ANN) application towards the agarwood oil quality classification. The works involved the selected of agarwood oil compounds based on a feature selection technique. The compounds are selected based on using Stepwise Regression technique. The compounds identified by stepwise regression are p-agarofuran, Y-Eudesmol, Longifolol, and Eudesmol. These compounds are fed into ANN as input feature and the output is the quality of the oil either high and low. Three classifier algorithms; Scaled Conjugate Gradient (SCG), Levenberg Marquardt (LM) and Resilient Backpropagation (RBP) and ten hidden neurons in the hidden layer are implemented. The performance of ANN is measured using confusion matrix, mean square error (mse) value and number of epoch. The finding showed that the ANN using four compounds of agarwood oil as input features obtained good performance with a good accuracy, lower mse value and lower number of epoch in one hidden neuron.
format Book Section
author Mahabob, Noratikah Zawani
Mohd Amidon, Aqib Fawwaz
Mohd Yusoff, Zakiah
Ismail, Nurlaila
Taib, Mohd Nasir
author_facet Mahabob, Noratikah Zawani
Mohd Amidon, Aqib Fawwaz
Mohd Yusoff, Zakiah
Ismail, Nurlaila
Taib, Mohd Nasir
author_sort Mahabob, Noratikah Zawani
title An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]
title_short An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]
title_full An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]
title_fullStr An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]
title_full_unstemmed An Intelligent of ANN towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / Noratikah Zawani Mahabob … [et al.]
title_sort intelligent of ann towards agarwood oil compounds pre-processing based on stepwise regression method to improve the oil quality / noratikah zawani mahabob … [et al.]
publisher UiTM Cawangan Melaka Kampus Jasin
publishDate 2021
url https://ir.uitm.edu.my/id/eprint/50612/1/50612.pdf
https://ir.uitm.edu.my/id/eprint/50612/
https://jamcsiix.wixsite.com/2021
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