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Rethinking scale in ophthalmic artificial intelligence: from bigger models to smarter clinical reasoning
Kai Jin1,2, Kaikai Zhao3,4,5, Rupesh Agrawal6,7,8,9,10
1Eye Center of Second Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou, China. jinkai@zju.edu.cn.
Abstract:
Recent advances in ophthalmic AI have improved benchmark performance, yet clinical trust remains limited. We argue that progress should move beyond data and model scaling toward trustworthy, skill-efficient systems that integrate multimodal evidence, external knowledge, and uncertainty-aware reasoning. Ophthalmology provides a strong testbed for agentic AI, but safe clinical translation will require rigorous validation, workflow integration, and evaluation frameworks aligned with real-world decision making.