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Prospective evaluation of an artificial intelligence-enabled algorithm for automated diabetic retinopathy screening of 30 000 patients.

Peter HeydonCatherine EganLouis BolterRyan ChambersJohn AndersonSteve AldingtonIrene M StrattonPeter Henry ScanlonLaura WebsterSamantha MannAlain du CheminChristopher G OwenAdnan TufailAlicja Regina Rudnicka
Published in: The British journal of ophthalmology (2020)
The algorithm demonstrated safe levels of sensitivity for high-risk retinopathy in a real-world screening service, with specificity that could halve the workload for human graders. AI machine learning and deep learning algorithms such as this can provide clinically equivalent, rapid detection of retinopathy, particularly in settings where a trained workforce is unavailable or where large-scale and rapid results are needed.
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