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Test accuracy of artificial intelligence-based grading of fundus images in diabetic retinopathy screening: A systematic review.

Zhivko ZhelevJaime PetersMorwenna RogersMichael AllenGoda KijauskaiteFarah SeedatElizabeth WilkinsonChristopher J Hyde
Published in: Journal of medical screening (2023)
AI-based systems are more sensitive than human graders and could be safe to use in clinical practice but have variable specificity. However, for many systems evidence is limited, at high risk of bias and may not generalise across settings. Therefore, pre-implementation assessment in the target clinical pathway is essential to obtain reliable and applicable accuracy estimates.
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