Contact lens classification by using segmented lens boundary features

Recent studies have shown that the wearing of soft lens may lead to performance degradation with the increase of false reject rate. However, detecting the presence of soft lens is a non-trivial task as its texture that almost indiscernible. In this work, we proposed a classification method to identi...

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Main Authors: Mohd. Zin, Nur Ariffin, Asmuni, Hishammuddin, Abdul Hamed, Haza Nuzly, M. Othman, Razib, Kasim, Shahreen, Hassan, Rohayanti, Zakaria, Zalmiyah, Roslan, Rosfuzah
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Language:English
Published: Institute of Advanced Engineering and Science 2018
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Online Access:http://eprints.utm.my/id/eprint/84567/1/HishammuddinAsmuni2018_ContactLensClassificationbyUsingSegmentedLens.pdf
http://eprints.utm.my/id/eprint/84567/
http://ijeecs.iaescore.com/index.php/IJEECS/article/view/13470
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Institution: Universiti Teknologi Malaysia
Language: English
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spelling my.utm.845672020-02-27T03:05:31Z http://eprints.utm.my/id/eprint/84567/ Contact lens classification by using segmented lens boundary features Mohd. Zin, Nur Ariffin Asmuni, Hishammuddin Abdul Hamed, Haza Nuzly M. Othman, Razib Kasim, Shahreen Hassan, Rohayanti Zakaria, Zalmiyah Roslan, Rosfuzah QA75 Electronic computers. Computer science Recent studies have shown that the wearing of soft lens may lead to performance degradation with the increase of false reject rate. However, detecting the presence of soft lens is a non-trivial task as its texture that almost indiscernible. In this work, we proposed a classification method to identify the existence of soft lens in iris image. Our proposed method starts with segmenting the lens boundary on top of the sclera region. Then, the segmented boundary is used as features and extracted by local descriptors. These features are then trained and classified using Support Vector Machines. This method was tested on Notre Dame Cosmetic Contact Lens 2013 database. Experiment showed that the proposed method performed better than state of the art methods. Institute of Advanced Engineering and Science 2018-09 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/84567/1/HishammuddinAsmuni2018_ContactLensClassificationbyUsingSegmentedLens.pdf Mohd. Zin, Nur Ariffin and Asmuni, Hishammuddin and Abdul Hamed, Haza Nuzly and M. Othman, Razib and Kasim, Shahreen and Hassan, Rohayanti and Zakaria, Zalmiyah and Roslan, Rosfuzah (2018) Contact lens classification by using segmented lens boundary features. Indonesian Journal of Electrical Engineering and Computer Science, 11 (3). pp. 1129-1135. ISSN 2502-4752 http://ijeecs.iaescore.com/index.php/IJEECS/article/view/13470
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic QA75 Electronic computers. Computer science
spellingShingle QA75 Electronic computers. Computer science
Mohd. Zin, Nur Ariffin
Asmuni, Hishammuddin
Abdul Hamed, Haza Nuzly
M. Othman, Razib
Kasim, Shahreen
Hassan, Rohayanti
Zakaria, Zalmiyah
Roslan, Rosfuzah
Contact lens classification by using segmented lens boundary features
description Recent studies have shown that the wearing of soft lens may lead to performance degradation with the increase of false reject rate. However, detecting the presence of soft lens is a non-trivial task as its texture that almost indiscernible. In this work, we proposed a classification method to identify the existence of soft lens in iris image. Our proposed method starts with segmenting the lens boundary on top of the sclera region. Then, the segmented boundary is used as features and extracted by local descriptors. These features are then trained and classified using Support Vector Machines. This method was tested on Notre Dame Cosmetic Contact Lens 2013 database. Experiment showed that the proposed method performed better than state of the art methods.
format Article
author Mohd. Zin, Nur Ariffin
Asmuni, Hishammuddin
Abdul Hamed, Haza Nuzly
M. Othman, Razib
Kasim, Shahreen
Hassan, Rohayanti
Zakaria, Zalmiyah
Roslan, Rosfuzah
author_facet Mohd. Zin, Nur Ariffin
Asmuni, Hishammuddin
Abdul Hamed, Haza Nuzly
M. Othman, Razib
Kasim, Shahreen
Hassan, Rohayanti
Zakaria, Zalmiyah
Roslan, Rosfuzah
author_sort Mohd. Zin, Nur Ariffin
title Contact lens classification by using segmented lens boundary features
title_short Contact lens classification by using segmented lens boundary features
title_full Contact lens classification by using segmented lens boundary features
title_fullStr Contact lens classification by using segmented lens boundary features
title_full_unstemmed Contact lens classification by using segmented lens boundary features
title_sort contact lens classification by using segmented lens boundary features
publisher Institute of Advanced Engineering and Science
publishDate 2018
url http://eprints.utm.my/id/eprint/84567/1/HishammuddinAsmuni2018_ContactLensClassificationbyUsingSegmentedLens.pdf
http://eprints.utm.my/id/eprint/84567/
http://ijeecs.iaescore.com/index.php/IJEECS/article/view/13470
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