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生成式人工智能在高龄孕妇围产期保健中的研究进展及临床意义

Research Progress and Clinical Implications of Generative Artificial Intelligence in Perinatal Health Care for Advanced Maternal Age Pregnant Women.

作者信息

Tang Shasha, Zhao Shihong

机构信息

Department of Obstetrics and Gynecology, The Sixth Affiliated Hospital of Harbin Medical University, Harbin, Heilongjiang Province, 150023, People's Republic of China.

出版信息

Int J Womens Health. 2025 Sep 18;17:3077-3085. doi: 10.2147/IJWH.S542758. eCollection 2025.

Abstract

OBJECTIVE

To analyze the current application status, technical characteristics, and challenges of Generative Artificial Intelligence (Generative AI) in perinatal health care for advanced maternal age pregnant women and explore targeted optimization strategies.

METHODS

A systematic literature review was conducted by searching PubMed, Web of Science, CNKI, and Wanfang Data from January 2020 to April 2025. Studies were included if they focused on Generative AI applications in perinatal care for women aged ≥35 years; 78 eligible studies (42 Chinese, 36 international) were finally included, covering technical applications, clinical validation, and ethical governance. We summarized the applications of Generative AI in risk prediction, personalized management, and remote monitoring, and analyzed issues related to data governance, technical limitations, resource allocation, and ethical supervision.

RESULTS

Generative AI improves healthcare efficiency by integrating multiple data sources for model construction, planning dynamic interventions, and facilitating remote monitoring. Specifically, GANs-based models achieve an AUC of 0.80-0.85 in predicting Group B Streptococcus infection, while Transformer models enhance the accuracy of prenatal depression screening by 15-20% compared to traditional methods. However, it faces challenges including data privacy risks (eg, 32% of maternal health institutions lack encrypted data storage), the "black box" nature of models (42% of clinicians report low trust in AI decision-making), urban-rural technological gaps (only 18% of county-level hospitals use AI perinatal tools), and ambiguous liability definitions.

CONCLUSION

Generative AI demonstrates significant application potential in perinatal care for advanced maternal age pregnant women. Promoting its implementation through technological innovation (eg, explainable AI), interpretability optimization, resource deployment (eg, lightweight mobile tools), and ethical supervision is crucial to improving maternal and infant health outcomes in China and globally.

摘要

目的

分析生成式人工智能(生成式AI)在高龄孕产妇围产期保健中的应用现状、技术特点及面临的挑战,并探索针对性的优化策略。

方法

通过检索2020年1月至2025年4月的PubMed、Web of Science、中国知网和万方数据进行系统文献综述。纳入聚焦于生成式AI在35岁及以上女性围产期保健中应用的研究;最终纳入78项符合条件的研究(42项中文研究、36项国际研究),涵盖技术应用、临床验证和伦理治理。我们总结了生成式AI在风险预测、个性化管理和远程监测方面的应用,并分析了与数据治理、技术局限性、资源分配和伦理监管相关的问题。

结果

生成式AI通过整合多源数据进行模型构建、规划动态干预措施和促进远程监测来提高医疗效率。具体而言,基于生成对抗网络(GANs)的模型在预测B族链球菌感染时的曲线下面积(AUC)达到0.80 - 0.85,而与传统方法相比,Transformer模型将产前抑郁筛查的准确率提高了15% - 20%。然而,它面临诸多挑战,包括数据隐私风险(例如,32%的孕产妇保健机构缺乏加密数据存储)、模型的“黑箱”性质(42%的临床医生对AI决策的信任度较低)、城乡技术差距(仅18%的县级医院使用AI围产期工具)以及责任定义不明确。

结论

生成式AI在高龄孕产妇围产期保健中显示出巨大的应用潜力。通过技术创新(如可解释AI)、可解释性优化、资源部署(如轻量级移动工具)和伦理监管来推动其实施,对于改善中国乃至全球的母婴健康结局至关重要。

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