Chat generative pre-trained transformer’s performance on dermatology-specific questions and its implications in medical education

James Behrmann, Ellen M. Hong, Shannon Meledathu, Aliza Leiter, Michael Povelaitis, Mariela Mitre
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Abstract

Background: Large language models (LLMs) like chat generative pre-trained transformer (ChatGPT) have gained popularity in healthcare by performing at or near the passing threshold for the United States Medical Licensing Exam (USMLE), but some limitations should be considered. Dermatology is a specialized medical field that relies heavily on visual recognition and images for diagnosis. This paper aimed to measure ChatGPT’s abilities to answer dermatology questions and compare this sub-specialty accuracy to its overall scores on USMLE Step exams.
聊天生成预训练变压器在皮肤科特定问题上的表现及其在医学教育中的意义
背景:像聊天生成预训练转换器(ChatGPT)这样的大型语言模型(llm)已经在医疗保健领域获得了普及,因为它们达到或接近美国医疗执照考试(USMLE)的通过门槛,但也应该考虑到一些限制。皮肤科是一个专业的医学领域,严重依赖于视觉识别和图像诊断。本文旨在测量ChatGPT回答皮肤病学问题的能力,并将这一子专业的准确性与其在USMLE步骤考试中的总分进行比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.30
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