Preprocessing of fundus images for detection of diabetic retinopathy

In recent years, the lesions detection in fundus image become popular area of research in machine learning. The detection of symptoms in fundus image is typically used in diseases that related to eyes such as diabetic retinopathy where the main symptom is exudates. Symptom detection in fundus image...

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Main Authors: Abd Aziz, Nurhakimah, Sulaiman, Mohd Azman Hanif, Mohd Yassin, Ahmad Ihsan, Megat Ali, Megat Syahirul Amin, Abu Hassan, Hasliza, M.Shafie, Suraiya, Zabidi, Azlee, Eskandari, Farzad
Format: Article
Language:English
Published: Penerbit UiTM 2021
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Online Access:http://umpir.ump.edu.my/id/eprint/32687/1/Preprocessing%20of%20fundus%20images%20for%20detection%20of%20diabetic%20retinopathy.pdf
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spelling my.ump.umpir.326872021-12-29T02:15:49Z http://umpir.ump.edu.my/id/eprint/32687/ Preprocessing of fundus images for detection of diabetic retinopathy Abd Aziz, Nurhakimah Sulaiman, Mohd Azman Hanif Mohd Yassin, Ahmad Ihsan Megat Ali, Megat Syahirul Amin Abu Hassan, Hasliza M.Shafie, Suraiya Zabidi, Azlee Eskandari, Farzad TK Electrical engineering. Electronics Nuclear engineering In recent years, the lesions detection in fundus image become popular area of research in machine learning. The detection of symptoms in fundus image is typically used in diseases that related to eyes such as diabetic retinopathy where the main symptom is exudates. Symptom detection in fundus image depends on many factor. The common factors are varying contrast condition and the large size of the fundus image that will affect the training process for object detection. Furthermore, color similarity of the features in fundus image and the symptoms also one of the factor, for example the similarity between optics disc and exudates. In this paper, we discuss the different preprocessing stage in order to improve the quality of fundus image to mark the optic disc location for detection of optic disc in future work. We have used several datasets namely Kaggle, DIARETDB1 and DRIMDB datasets in this study. The results that we have achieved in SSIM value, clearly shows that the preprocessing was able to increase the image quality. Penerbit UiTM 2021-10 Article PeerReviewed pdf en cc_by_4 http://umpir.ump.edu.my/id/eprint/32687/1/Preprocessing%20of%20fundus%20images%20for%20detection%20of%20diabetic%20retinopathy.pdf Abd Aziz, Nurhakimah and Sulaiman, Mohd Azman Hanif and Mohd Yassin, Ahmad Ihsan and Megat Ali, Megat Syahirul Amin and Abu Hassan, Hasliza and M.Shafie, Suraiya and Zabidi, Azlee and Eskandari, Farzad (2021) Preprocessing of fundus images for detection of diabetic retinopathy. Journal of Electrical and Electronic Systems Research (JEESR), 19 (8). pp. 149-156. ISSN 1985-5389 https://jeesr.uitm.edu.my/
institution Universiti Malaysia Pahang
building UMP Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Pahang
content_source UMP Institutional Repository
url_provider http://umpir.ump.edu.my/
language English
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Abd Aziz, Nurhakimah
Sulaiman, Mohd Azman Hanif
Mohd Yassin, Ahmad Ihsan
Megat Ali, Megat Syahirul Amin
Abu Hassan, Hasliza
M.Shafie, Suraiya
Zabidi, Azlee
Eskandari, Farzad
Preprocessing of fundus images for detection of diabetic retinopathy
description In recent years, the lesions detection in fundus image become popular area of research in machine learning. The detection of symptoms in fundus image is typically used in diseases that related to eyes such as diabetic retinopathy where the main symptom is exudates. Symptom detection in fundus image depends on many factor. The common factors are varying contrast condition and the large size of the fundus image that will affect the training process for object detection. Furthermore, color similarity of the features in fundus image and the symptoms also one of the factor, for example the similarity between optics disc and exudates. In this paper, we discuss the different preprocessing stage in order to improve the quality of fundus image to mark the optic disc location for detection of optic disc in future work. We have used several datasets namely Kaggle, DIARETDB1 and DRIMDB datasets in this study. The results that we have achieved in SSIM value, clearly shows that the preprocessing was able to increase the image quality.
format Article
author Abd Aziz, Nurhakimah
Sulaiman, Mohd Azman Hanif
Mohd Yassin, Ahmad Ihsan
Megat Ali, Megat Syahirul Amin
Abu Hassan, Hasliza
M.Shafie, Suraiya
Zabidi, Azlee
Eskandari, Farzad
author_facet Abd Aziz, Nurhakimah
Sulaiman, Mohd Azman Hanif
Mohd Yassin, Ahmad Ihsan
Megat Ali, Megat Syahirul Amin
Abu Hassan, Hasliza
M.Shafie, Suraiya
Zabidi, Azlee
Eskandari, Farzad
author_sort Abd Aziz, Nurhakimah
title Preprocessing of fundus images for detection of diabetic retinopathy
title_short Preprocessing of fundus images for detection of diabetic retinopathy
title_full Preprocessing of fundus images for detection of diabetic retinopathy
title_fullStr Preprocessing of fundus images for detection of diabetic retinopathy
title_full_unstemmed Preprocessing of fundus images for detection of diabetic retinopathy
title_sort preprocessing of fundus images for detection of diabetic retinopathy
publisher Penerbit UiTM
publishDate 2021
url http://umpir.ump.edu.my/id/eprint/32687/1/Preprocessing%20of%20fundus%20images%20for%20detection%20of%20diabetic%20retinopathy.pdf
http://umpir.ump.edu.my/id/eprint/32687/
https://jeesr.uitm.edu.my/
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score 13.160551