Foundation models in ophthalmology

Author:

Chia Mark AORCID,Antaki FaresORCID,Zhou Yukun,Turner Angus W,Lee Aaron Y,Keane Pearse AORCID

Abstract

Foundation models represent a paradigm shift in artificial intelligence (AI), evolving from narrow models designed for specific tasks to versatile, generalisable models adaptable to a myriad of diverse applications. Ophthalmology as a specialty has the potential to act as an exemplar for other medical specialties, offering a blueprint for integrating foundation models broadly into clinical practice. This review hopes to serve as a roadmap for eyecare professionals seeking to better understand foundation models, while equipping readers with the tools to explore the use of foundation models in their own research and practice. We begin by outlining the key concepts and technological advances which have enabled the development of these models, providing an overview of novel training approaches and modern AI architectures. Next, we summarise existing literature on the topic of foundation models in ophthalmology, encompassing progress in vision foundation models, large language models and large multimodal models. Finally, we outline major challenges relating to privacy, bias and clinical validation, and propose key steps forward to maximise the benefit of this powerful technology.

Funder

Moorfields Eye Charity

Engineering and Physical Sciences Research Council

Research England

Latham Vision Science Award

General Sir John Monash Foundation

NIHR UCLH Biomedical Research Centre

UK Research and Innovation

National Institute on Aging

Fonds de Recherche du Québec - Santé

National Institutes of Health

Publisher

BMJ

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