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A Deep Learning-Based Approach Towards Simultaneous Localization of Optic Disc and Fovea from Retinal Fundus Images
Resource type
Authors/contributors
- Islam, Mohammad Tariqul (Author)
- Ahmed, Ferdaus (Author)
- Househ, Mowafa (Author)
- Alam, Tanvir (Author)
Title
A Deep Learning-Based Approach Towards Simultaneous Localization of Optic Disc and Fovea from Retinal Fundus Images
Abstract
In this work, we propose a multi-task learning-based approach towards the localization of optic disc and fovea from human retinal fundus images using a deep learning-based approach. Formulating the task as an image-based regression problem, we propose a Densenet121-based architecture through an extensive set of experiments with a variety of CNN architectures. Our proposed approach achieved an average mean absolute error of only 13pixels (0.04%), mean squared error of 11 pixels (0.005%), and a root mean square error of only 0.02 (13%) on the IDRiD dataset.
Publication
Studies in health technology and informatics
Date
2023
Volume
305
Pages
624-627
Citation Key
islamDeepLearningBasedApproach2023
ISSN
1879-8365
Archive
Scopus
Language
English
Library Catalog
Scopus
Extra
0 citations (Crossref) [2023-10-31]
Citation
Islam, M. T., Ahmed, F., Househ, M., & Alam, T. (2023). A Deep Learning-Based Approach Towards Simultaneous Localization of Optic Disc and Fovea from Retinal Fundus Images. Studies in Health Technology and Informatics, 305, 624–627. Scopus. https://doi.org/10.3233/SHTI230575
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