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医疗系统中大规模人工智能部署的实施框架。

Implementation framework for AI deployment at scale in healthcare systems.

作者信息

Adnan Hassan Sami, Shidani Amitis, Clifton Lei, Bankhead Clare R, Perera-Salazar Rafael

机构信息

Nuffield Department of Primary Care Health Sciences, University of Oxford, Oxford, UK.

Department of Statistics, University of Oxford, Oxford, UK.

出版信息

iScience. 2025 Apr 11;28(5):112406. doi: 10.1016/j.isci.2025.112406. eCollection 2025 May 16.

Abstract

Artificial intelligence (AI) and digital health technologies are increasingly used in the medical field. Despite promises of leading the future of personalized medicine and better clinical outcomes, implementation of AI faces barriers for deployment at scale. We introduce a novel implementation framework that can facilitate digital health designers, developers, patient groups, policymakers, and other stakeholders, to co-create and solve issues throughout the life cycle of designing, developing, deploying, monitoring, and maintaining algorithmic models. This framework targets health systems that integrate multiple machine learning (ML) models with various modalities. This design thinking approach promotes clinical utility beyond model prediction, combining privacy preservation with clinical parameters to establish a reward function for reinforcement learning, ranking competing models. This allows leveraging explainable AI (xAI) methods for clinical interpretability. Governance mechanisms and orchestration platforms can be integrated to monitor and manage models. The proposed framework guides users toward human-centered AI design and developing AI-enhanced health system solutions.

摘要

人工智能(AI)和数字健康技术在医学领域的应用越来越广泛。尽管有望引领个性化医疗的未来并带来更好的临床结果,但人工智能的大规模部署面临障碍。我们引入了一个新颖的实施框架,该框架可以促进数字健康设计师、开发者、患者群体、政策制定者和其他利益相关者,在设计、开发、部署、监测和维护算法模型的整个生命周期中共同创造并解决问题。该框架针对的是将多个机器学习(ML)模型与各种模式集成的卫生系统。这种设计思维方法促进了超越模型预测的临床实用性,将隐私保护与临床参数相结合,为强化学习建立奖励函数,对竞争模型进行排名。这允许利用可解释人工智能(xAI)方法实现临床可解释性。治理机制和编排平台可以集成起来以监测和管理模型。所提出的框架引导用户走向以人为本的人工智能设计,并开发人工智能增强的卫生系统解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/83e8/12083986/88b50fe6bc24/fx1.jpg

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