Classification of agarwood grades using ANN

M. S., Najib and Mohd Nasir, Taib and Nor Azah, Mohd Ali and Mohd Nasir, Mat Arip and Abd. Majid, Jalil (2011) Classification of agarwood grades using ANN. In: International Conference on Electrical, Control and Computer Engineering 2011 (InECCE 2011). , 21-22 June 2011 , Hyatt Regency, Kuantan, Pahang, Malaysia. pp. 367-372.. ISBN 978-1-61284-229-5

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Abstract

Agarwood is an important agricultural product widely used in fragrance industries. It can be found in various parts of ASEAN countries. The price of the Agarwood is determined according to its quality, which is generally decided based on certain grade. This paper proposes an intelligent grading technique for the wood using advanced signal processing of E-nose measurements. Agarwoods from Malaysia and Indonesia are classified into either high or low grade using artificial neural network. Thirty two sensor readings of the E-nose are used as the inputs of the artificial neural network. The experimental results show that the proposed technique, employing feed forward artificial neural network defined by 32-8-1 architecture and trained via Levenberg-Marquardt back propagation (LMBP) algorithm, successfully grade the Agarwood with a 100% classification rate.

Item Type: Conference or Workshop Item (Lecture)
Additional Information: Indexed by Scopus
Uncontrolled Keywords: Agarwood; Classifications; ANN; e-Nose
Subjects: T Technology > TK Electrical engineering. Electronics Nuclear engineering
Faculty/Division: Faculty of Electrical & Electronic Engineering
Depositing User: Mrs. Neng Sury Sulaiman
Date Deposited: 10 Feb 2020 02:46
Last Modified: 10 Feb 2020 02:46
URI: http://umpir.ump.edu.my/id/eprint/26212
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