Gender and racial diversity Assumed by text-to-image generators in microsurgery and plastic surgery-related subspecialities.

IF 0.3 Q4 SURGERY Journal of Hand and Microsurgery Pub Date : 2024-11-30 eCollection Date: 2025-01-01 DOI:10.1016/j.jham.2024.100196
Makoto Shiraishi, Chihena Hansini Banda, Mayuri Nakajima, Mildred Nakazwe, Zi Yi Wong, Yoko Tomioka, Yuta Moriwaki, Hakuba Takeishi, Haesu Lee, Daichi Kurita, Kiichi Furuse, Jun Ohba, Kou Fujisawa, Shimpei Miyamoto, Mutsumi Okazaki
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Abstract

Background: Since the release of ChatGPT by OpenAI in November 2022, generative artificial intelligence (AI) models have attracted significant attention in various fields, including surgery. These advancements have been particularly notable for creating highly detailed and contextually accurate images from textual prompts. A notable area of clinical application is the representation of surgeon demographics in various specialties, particularly in the context of microsurgery and plastic surgery-related subspecialties.

Methods: This cross-sectional study, conducted in June 2024, utilized the latest version of the Copilot Creative Mode powered by DALL-E 3 to generate images of surgeons across various plastic surgery subspecialties. Real-world demographic data from the US, Japan, and Zambia were compared with AI-generated images for an accurate representation analysis.

Results: Five hundred images (350 from various subspecialties and 150 from geographical sources) were analyzed. The AI model predominantly generated images of male and female surgeons with a statistical underrepresentation of female and Black microsurgeons. Geographical prompts influenced the representation, with an overrepresentation of female (64.0 %; p < 0.001) and Black (16.0 %; p < 0.001) plastic surgeons in the US and exclusively Asian surgeons in Japan. Discrepancies were also observed in the depiction of surgical equipment, with the majority of AI-generated microsurgeons inaccurately portrayed using either surgical loupes (46.0 %) or optical microscopes (32.0 %), not with surgical microscopes (4.0 %).

Conclusions: This study revealed significant disparities between AI-generated images and actual demographics in the fields of microsurgery and plastic surgery-related subspecialties, highlighting the need for more diverse and accurate training datasets for AI models.

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由显微外科和整形外科相关亚专科的文本到图像生成器假设的性别和种族多样性。
背景:自2022年11月OpenAI发布ChatGPT以来,生成式人工智能(AI)模型在包括外科在内的各个领域受到了极大的关注。这些进步在从文本提示创建高度详细和上下文准确的图像方面尤其引人注目。一个值得注意的临床应用领域是不同专业的外科医生人口统计学的代表,特别是在显微外科和整形外科相关亚专业的背景下。方法:这项横断面研究于2024年6月进行,利用DALL-E 3驱动的最新版本的Copilot Creative Mode来生成不同整形外科专科的外科医生图像。来自美国、日本和赞比亚的真实人口数据与人工智能生成的图像进行了比较,以进行准确的代表性分析。结果:分析了500张图像(各专科350张,地理来源150张)。人工智能模型主要生成男性和女性外科医生的图像,女性和黑人显微外科医生的统计代表性不足。地域因素影响了代表性,女性的代表性过高(64.0%;结论:本研究揭示了在显微外科和整形外科相关亚专科领域,人工智能生成的图像与实际人口统计数据之间存在显著差异,强调了人工智能模型需要更多样化和更准确的训练数据集。
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CiteScore
1.00
自引率
25.00%
发文量
39
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