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November 30, 2025Bioengineering2 citationsOpen Access

AI-Augmented Fundus Disease Screening by Non-Ophthalmologist Physicians: A Paired Before–After Study

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EKEun-Ah KimSSSu Jeong SongEKEun-Ah Kim

Key Points

  • AI assistance increased diagnostic accuracy to 91.1%, enhancing clinical decision-making for non-ophthalmologists.
  • Clinicians reviewing 500 fundus images with AI support experienced a significant accuracy improvement from 82.8%.
  • Assessment of screening effectiveness utilized paired before-after study design with non-ophthalmologist physicians.
  • Results suggest meaningful enhancement in retinal disease screening and a favorable safety profile for AI integration.

Abstract

Screening for retinal disease is increasingly performed by general practitioners and other non-ophthalmologist clinicians in primary care, especially where access to ophthalmology is limited and diagnostic accuracy may be suboptimal. To investigate the role of an automated fundus-interpretation support solution in improving general physicians’ screening accuracy and referral decisions, we conducted a paired before–after study evaluating an AI-based decision support tool. Four non-ophthalmologists who have been involved in screen fundus images in clinical practice reviewed 500 de-identified color fundus photographs twice—first unaided and, after a washout period, with AI assistance. With AI support, diagnostic accuracy improved significantly from 82.8% to 91.1% (p < 0.0001), with the greatest benefit observed in glaucoma-suspect and multi-pathology cases. Clinicians retained final diagnostic authority, and a favorable safety profile was observed. These results demonstrate that AI-assisted diagnosis aid can meaningfully augment non-ophthalmologist screening and referral decision-making in real-world primary care, while underscoring the need for broader validation and implementation studies.

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Cite This Study

Kim et al. (2025) studied this question.

synapsesocial.com/papers/692b9d8d1d383f2b2a379acchttps://doi.org/10.3390/bioengineering12121304
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