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The Real-World Impact of Artificial Intelligence on Diabetic Retinopathy Screening in Primary Care

Jorge Cuadros

2020Journal of Diabetes Science and Technology19 citationsDOIOpen Access PDF

Abstract

validates the IDx autonomous diabetic retinopathy (DR) screening program in a real-world setting. The study found high sensitivity (100%) but low specificity (82%) for referable DR. The resulting positive predictive value of 19% means that four out of five patients without referable DR would be referred to ophthalmology causing a significant burden to ophthalmologists, primary care clinics, and patients. Artificial intelligence programs that provide better specificity, multiple levels of DR, and annotations of where lesions are located in the retina may function better than a simple referral/no referral output. This will allow for better engagement of patients through the difficult process of adhering to treatment recommendations and control their diabetes.

Topics & Concepts

ReferralMedicineDiabetic retinopathyPrimary careOptometryDiabetes mellitusRetinopathyEye examinationPredictive valueFamily medicinePediatricsOphthalmologyInternal medicineVisual acuityEndocrinologyRetinal Imaging and AnalysisRetinal Diseases and TreatmentsRetinal and Optic Conditions
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