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绘制诊断成像中人工智能质量保证方法的护理提供者图谱。

Mapping the Landscape of Care Providers' Quality Assurance Approaches for AI in Diagnostic Imaging.

机构信息

Center for Medical Image Science and Visualization, Linköping University, Linköping, Sweden.

Sectra AB, Linköping, Sweden.

出版信息

J Digit Imaging. 2023 Apr;36(2):379-387. doi: 10.1007/s10278-022-00731-7. Epub 2022 Nov 9.

Abstract

The discussion on artificial intelligence (AI) solutions in diagnostic imaging has matured in recent years. The potential value of AI adoption is well established, as are the potential risks associated. Much focus has, rightfully, been on regulatory certification of AI products, with the strong incentive of being an enabling step for the commercial actors. It is, however, becoming evident that regulatory approval is not enough to ensure safe and effective AI usage in the local setting. In other words, care providers need to develop and implement quality assurance (QA) approaches for AI solutions in diagnostic imaging. The domain of AI-specific QA is still in an early development phase. We contribute to this development by describing the current landscape of QA-for-AI approaches in medical imaging, with focus on radiology and pathology. We map the potential quality threats and review the existing QA approaches in relation to those threats. We propose a practical categorization of QA approaches, based on key characteristics corresponding to means, situation, and purpose. The review highlights the heterogeneity of methods and practices relevant for this domain and points to targets for future research efforts.

摘要

近年来,关于诊断成像中人工智能(AI)解决方案的讨论已经成熟。AI 采用的潜在价值已得到充分证实,随之而来的潜在风险也是如此。人们非常关注 AI 产品的监管认证,因为这是商业参与者的一个重要推动因素。然而,很明显,监管批准不足以确保在当地环境中安全有效地使用 AI。换句话说,医疗保健提供者需要开发和实施诊断成像 AI 解决方案的质量保证(QA)方法。AI 特定 QA 领域仍处于早期发展阶段。我们通过描述医学成像中 AI 特定 QA 方法的现状,重点关注放射学和病理学,为这一领域的发展做出了贡献。我们绘制了潜在的质量威胁,并根据这些威胁审查了现有的 QA 方法。我们提出了一种基于对应于手段、情况和目的的关键特征的实用 QA 方法分类。该审查强调了与该领域相关的方法和实践的异质性,并指出了未来研究工作的目标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e29c/10039170/03ccf0ae3508/10278_2022_731_Fig1_HTML.jpg

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