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◆ Frontiers in artificial intelligence2026-01-01

On AI's role in training professionals in assisted reproductive technology.

Yingming Zheng, Qijing Wang, Xijing Chen, Li Xu, Xiangrong Xu

原始摘要(英文原文)· Original abstract
The rapid advancement of Assisted Reproductive Technology (ART) demands equally innovative approaches to professional training. Traditional educational models in reproductive medicine are often limited by inconsistent quality, variable clinical exposure, and prolonged learning curves. This paper proposes a comprehensive, AI-enhanced training framework designed to standardize and accelerate the education of clinicians, surgeons, and embryologists. The framework integrates six core domains: adaptive learning for theoretical knowledge, AI-driven simulations for clinical decision-making, virtual reality for surgical and embryology skills, large language model-based interactions for patient communication training, and automated tools for objective competency assessment. By leveraging technologies such as computer vision, machine learning, and immersive simulation, this platform is intended to deliberate practice in a safe, repeatable environment while potentially reducing training costs and ensuring uniform competency standards. It should be emphasized that this framework remains conceptual at this stage; it has not yet been implemented or empirically validated, and the described benefits are prospective rather than demonstrated. Future directions include the integration of digital twin technology and the development of ethical guidelines to support widespread implementation in reproductive medicine education.
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On AI's role in training professionals in assisted reproductive technology. — 科研速览 Science Skim