Systematic feature analysis on timber defect images
Feature extraction is unquestionably an important process in a pattern recognition system. A defined set of features makes the identification task more efficiently. This paper addresses the extraction and analysis of features based on statistical texture to characterize images of timber defects. A s...
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Universitas Ahmad Dahlan
2017-07-01
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doaj-b08e9edd0a9943e98f5162c3d9fb739d2020-11-25T01:05:21ZengUniversitas Ahmad DahlanIJAIN (International Journal of Advances in Intelligent Informatics)2442-65712548-31612017-07-0132566710.26555/ijain.v3i2.9469Systematic feature analysis on timber defect imagesUmmi Rabaah Hashim0Siti Zaiton Mohd Hashim1Azah Kamilah Muda2Kasturi Kanchymalay3Intan Ermahani Abd Jalil4Muhammad Hakim Othman5Faculty of Information and Communications Technology, Universiti Teknikal Malaysia MelakaSoft Computing Research Group, Faculty of Computing, Universiti Teknologi Malaysia (UTM), JohorComputational Intelligence and Technologies Lab, Faculty of Information and Communication Technology, Universiti Teknikal Malaysia Melaka (UTeM), MelakaComputational Intelligence and Technologies Lab, Faculty of Information and Communication Technology, Universiti Teknikal Malaysia Melaka (UTeM), MelakaComputational Intelligence and Technologies Lab, Faculty of Information and Communication Technology, Universiti Teknikal Malaysia Melaka (UTeM), MelakaFaculty of Electronic and Computer Engineering, Universiti Teknikal Malaysia Melaka (UTeM), MelakaFeature extraction is unquestionably an important process in a pattern recognition system. A defined set of features makes the identification task more efficiently. This paper addresses the extraction and analysis of features based on statistical texture to characterize images of timber defects. A series of procedures including feature extraction and feature analysis was executed to construct an appropriate feature set that could significantly separate amongst defects and clear wood classes. The feature set aimed for later use in a timber defect detection system. For Accessing the discrimination capability of the features extracted, visual exploratory analysis and confirmatory statistical analysis were performed on defect and clear wood images of Meranti (Shorea spp.) timber species. Results from the analysis demonstrated that there was a significant distinction between defect classes and clear wood utilizing the proposed set of texture features.http://ijain.org/index.php/IJAIN/article/view/94texturefeature extractiontimber surfaceautomated vision inspectionfeature selection |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ummi Rabaah Hashim Siti Zaiton Mohd Hashim Azah Kamilah Muda Kasturi Kanchymalay Intan Ermahani Abd Jalil Muhammad Hakim Othman |
spellingShingle |
Ummi Rabaah Hashim Siti Zaiton Mohd Hashim Azah Kamilah Muda Kasturi Kanchymalay Intan Ermahani Abd Jalil Muhammad Hakim Othman Systematic feature analysis on timber defect images IJAIN (International Journal of Advances in Intelligent Informatics) texture feature extraction timber surface automated vision inspection feature selection |
author_facet |
Ummi Rabaah Hashim Siti Zaiton Mohd Hashim Azah Kamilah Muda Kasturi Kanchymalay Intan Ermahani Abd Jalil Muhammad Hakim Othman |
author_sort |
Ummi Rabaah Hashim |
title |
Systematic feature analysis on timber defect images |
title_short |
Systematic feature analysis on timber defect images |
title_full |
Systematic feature analysis on timber defect images |
title_fullStr |
Systematic feature analysis on timber defect images |
title_full_unstemmed |
Systematic feature analysis on timber defect images |
title_sort |
systematic feature analysis on timber defect images |
publisher |
Universitas Ahmad Dahlan |
series |
IJAIN (International Journal of Advances in Intelligent Informatics) |
issn |
2442-6571 2548-3161 |
publishDate |
2017-07-01 |
description |
Feature extraction is unquestionably an important process in a pattern recognition system. A defined set of features makes the identification task more efficiently. This paper addresses the extraction and analysis of features based on statistical texture to characterize images of timber defects. A series of procedures including feature extraction and feature analysis was executed to construct an appropriate feature set that could significantly separate amongst defects and clear wood classes. The feature set aimed for later use in a timber defect detection system. For Accessing the discrimination capability of the features extracted, visual exploratory analysis and confirmatory statistical analysis were performed on defect and clear wood images of Meranti (Shorea spp.) timber species. Results from the analysis demonstrated that there was a significant distinction between defect classes and clear wood utilizing the proposed set of texture features. |
topic |
texture feature extraction timber surface automated vision inspection feature selection |
url |
http://ijain.org/index.php/IJAIN/article/view/94 |
work_keys_str_mv |
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_version_ |
1725194909864951808 |