Harnessing advanced large language models in otolaryngology board examinations: an investigation using python and application programming interfaces

Purpose This study aimed to explore the capabilities of advanced large language models (LLMs), including OpenAI’s GPT-4 variants, Google’s Gemini series, and Anthropic’s Claude series, in addressing highly specialized otolaryngology board examination questions. Additionally, the study included a lon...

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Bibliographic Details
Published in:European archives of oto-rhino-laryngology Vol. 282; no. 6; pp. 3317 - 3328
Main Authors: Hoch, Cosima C., Funk, Paul F., Guntinas-Lichius, Orlando, Volk, Gerd Fabian, Lüers, Jan-Christoffer, Hussain, Timon, Wirth, Markus, Schmidl, Benedikt, Wollenberg, Barbara, Alfertshofer, Michael
Format: Journal Article
Language:English
Published: Berlin/Heidelberg Springer Berlin Heidelberg 01.06.2025
Springer Nature B.V
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ISSN:0937-4477, 1434-4726, 1434-4726
Online Access:Get full text
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