医疗大模型发展现状与展望
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作者单位:

1.南京航空航天大学人工智能学院,南京211106;2.南京航空航天大学脑机智能技术教育部重点实验室,南京211106

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基金项目:

国家自然科学基金(62136004); 江苏省重点研发计划(BE2022842)。


A Review of Development and Future Directions of Medical Foundation Models
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Affiliation:

1.School of Artificial Intelligence, Nanjing University of Aeronautics and Astronautics,Nanjing 211106, China;2.Key Laboratory of Brain-Machine Intelligence Technology, Ministry of Education, Nanjing University of Aeronautics and Astronautics,Nanjing 211106, China

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    摘要:

    医疗大模型是大规模预训练模型技术在医疗领域的重要应用成果,已成为智能辅助医疗的重要研究方向。通过在海量医学数据上进行预训练,这类模型展现出跨任务迁移、多模态理解和复杂推理等关键能力,突破了传统神经网络在医学应用中的多项限制。借助这些能力,医疗大模型正在重塑辅助诊断、病例报告生成和医学影像分析等核心任务的实现路径,对实现医疗“通用智能”具有深远意义。基于此,本文对医疗大模型的发展现状与未来趋势进行综述。首先,回顾了医疗人工智能模型在人工智能快速演进背景下的发展历程;其次,重点介绍了大模型在病理学、眼科和脑疾病等医学子领域的研究进展;最后探讨了当前医疗大模型面临的挑战,并展望其未来的发展方向。

    Abstract:

    Medical foundation models represent a significant application of large-scale pre-trained model technology in the healthcare domain and have become a key research focus in intelligent medical assistance. By leveraging pretraining on vast amounts of medical data, these models exhibit critical capabilities such as cross-task transfer, multimodal understanding, and complex reasoning, overcoming several limitations of traditional neural networks in medical applications. With these capabilities, medical foundation models are reshaping the implementation of core tasks such as assisted diagnosis, clinical report generation, and medical image analysis. They hold profound implications for achieving general intelligence in healthcare. Based on this, this paper provides a comprehensive review of the current state and future trends of medical foundation models. First, it reviews the development of medical AI models in the context of rapid advancements in artificial intelligence. Then, it highlights research progress of large models in medical subfields such as pathology, ophthalmology, and neurological disorders. Finally, it discusses the challenges currently faced by medical foundation models and explores their future development directions.

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钱波,李富江,郑常乐,张道强.医疗大模型发展现状与展望[J].数据采集与处理,2025,40(3):562-584

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  • 收稿日期:2025-03-30
  • 最后修改日期:2025-05-11
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  • 在线发布日期: 2025-06-13