2023
DOI: 10.3390/diagnostics13142389
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Supervised Contrastive Learning with Angular Margin for the Detection and Grading of Diabetic Retinopathy

Abstract: Many researchers have realized the intelligent medical diagnosis of diabetic retinopathy (DR) from fundus images by using deep learning methods, including supervised contrastive learning (SupCon). However, although SupCon brings label information into the calculation of contrastive learning, it does not distinguish between augmented positives and same-label positives. As a result, we propose the concept of Angular Margin and incorporate it into SupCon to address this issue. To demonstrate the effectiveness of … Show more

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