Beyond the gender data gap: co-creating equitable digital patient twins.

IF 3.2 Q1 HEALTH CARE SCIENCES & SERVICES
Frontiers in digital health Pub Date : 2025-04-30 eCollection Date: 2025-01-01 DOI:10.3389/fdgth.2025.1584415
Nora Weinberger, Daniela Hery, Dana Mahr, Stephan O Adler, Jean Stadlbauer, Theresa D Ahrens
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引用次数: 0

Abstract

Digital patient twins constitute a transformative innovation in personalized medicine, integrating patient-specific data into predictive models that leverage artificial intelligence (AI) to optimize diagnostics and treatments. However, existing digital patient twins often fail to incorporate gender-sensitive and socio-economic factors, reinforcing biases and diminishing their clinical effectiveness. This (gender) data gap, long recognized as a fundamental problem in digital health, translates into significant disparities in healthcare outcomes. This mini-review explores the interdisciplinary connections of technical foundations, medical relevance, as well as social and ethical challenges of digital patient twins, emphasizing the necessity of gender-sensitive design and co-creation approaches. We argue that without intersectional and inclusive frameworks, digital patient twins risk perpetuating existing inequalities rather than mitigating them. By addressing the interplay between gender, AI-driven decision-making and health equity, this mini-review highlights strategies for designing more inclusive and ethically responsible digital patient twins to further interdisciplinary approaches.

超越性别数据差距:共同创造公平的数字双胞胎患者。
数字孪生患者是个性化医疗的革命性创新,它将患者特定数据整合到利用人工智能(AI)优化诊断和治疗的预测模型中。然而,现有的数字孪生患者往往未能纳入性别敏感和社会经济因素,从而加强了偏见并降低了其临床效果。这种(性别)数据差距长期以来被认为是数字健康的一个根本问题,它转化为医疗保健结果的巨大差异。这篇小型综述探讨了技术基础、医学相关性以及数字双胞胎患者的社会和伦理挑战之间的跨学科联系,强调了对性别敏感的设计和共同创造方法的必要性。我们认为,如果没有交叉和包容的框架,数字患者双胞胎可能会使现有的不平等现象永久化,而不是缓解它们。通过解决性别、人工智能驱动的决策和卫生公平之间的相互作用,本迷你综述强调了设计更具包容性和道德责任感的数字患者双胞胎以进一步跨学科方法的策略。
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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来源期刊
CiteScore
4.20
自引率
0.00%
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审稿时长
13 weeks
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