Abstract
Diabetic retinopathy (DR) is a disease resulting from diabetes complications, causing non-reversible damage to retina blood vessels. DR is a leading cause of blindness if not detected early. The currently available DR treatments are limited to stopping or delaying the deterioration of sight, highlighting the importance of regular scanning using high-efficiency computer-based systems to diagnose cases early. The current work presented fully automatic diagnosis systems that exceed manual techniques to avoid misdiagnosis, reducing time, effort and cost. The proposed system classifies DR images into five stages—no-DR, mild, moderate, severe and proliferative DR—as well as localizing the affected lesions on retain surface. The system comprises two deep learning-based models. The first model (CNN512) used the whole image as an input to the CNN model to classify it into one of the five DR stages. It achieved an accuracy of 88.6% and 84.1% on the DDR and the APTOS Kaggle 2019 public datasets, respectively, compared to the state-of-the-art results. Simultaneously, the second model used an adopted YOLOv3 model to detect and localize the DR lesions, achieving a 0.216 mAP in lesion localization on the DDR dataset, which improves the current state-of-the-art results. Finally, both of the proposed structures, CNN512 and YOLOv3, were fused to classify DR images and localize DR lesions, obtaining an accuracy of 89% with 89% sensitivity, 97.3 specificity and that exceeds the current state-of-the-art results.
Highlights
Diabetic retinopathy (DR) is a common diabetes complication that occurs when the retina’s blood vessels are damaged due to high blood sugar levels, resulting in swelling and leaking of the vessels [1]
We propose a fully automated screening system using Convolutional Neural Network (CNN) to detect the DR five stages and localize all DR lesion types simultaneously
The hyperparameter configuration of the used CNN models and YOLOv3 are shown in Tables 8 and 9, respectively
Summary
Diabetic retinopathy (DR) is a common diabetes complication that occurs when the retina’s blood vessels are damaged due to high blood sugar levels, resulting in swelling and leaking of the vessels [1]. Diabetes patients need regular screening of the retina to detect DR early, manage its progression and avoid the risk of blindness. The leaking blood and fluids appear as spots, called lesions, in the fundus retina image. Lesions can be recognised as either red lesions or bright lesions. Hard EX appears as bright yellow spots, while soft EX, called cotton wool, appears as yellowish-white and fluffy spots caused by nerve fiber damage [3]
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