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临床流式细胞术人工智能应用建议。

Recommendations for using artificial intelligence in clinical flow cytometry.

机构信息

Department of Pathology, University of Utah, Salt Lake City, Utah, USA.

Department of Pathology and Laboratory Medicine, Weill Cornell Medicine, New York, New York, USA.

出版信息

Cytometry B Clin Cytom. 2024 Jul;106(4):228-238. doi: 10.1002/cyto.b.22166. Epub 2024 Feb 26.

Abstract

Flow cytometry is a key clinical tool in the diagnosis of many hematologic malignancies and traditionally requires close inspection of digital data by hematopathologists with expert domain knowledge. Advances in artificial intelligence (AI) are transferable to flow cytometry and have the potential to improve efficiency and prioritization of cases, reduce errors, and highlight fundamental, previously unrecognized associations with underlying biological processes. As a multidisciplinary group of stakeholders, we review a range of critical considerations for appropriately applying AI to clinical flow cytometry, including use case identification, low and high risk use cases, validation, revalidation, computational considerations, and the present regulatory frameworks surrounding AI in clinical medicine. In particular, we provide practical guidance for the development, implementation, and suggestions for potential regulation of AI-based methods in the clinical flow cytometry laboratory. We expect these recommendations to be a helpful initial framework of reference, which will also require additional updates as the field matures.

摘要

流式细胞术是诊断许多血液恶性肿瘤的关键临床工具,传统上需要血液病理学家凭借专业领域知识仔细检查数字数据。人工智能 (AI) 的进步可应用于流式细胞术,并有潜力提高效率和优先处理病例,减少错误,并突出与潜在生物学过程的基本、以前未被认识的关联。作为一个多学科利益相关者团体,我们审查了将 AI 适当应用于临床流式细胞术的一系列关键考虑因素,包括用例识别、低风险和高风险用例、验证、重新验证、计算考虑因素以及围绕 AI 在临床医学中的现有监管框架。特别是,我们为临床流式细胞术实验室中基于 AI 的方法的开发、实施和潜在监管提供了实用指南。我们希望这些建议成为一个有用的初步参考框架,随着该领域的成熟,还需要进行更多的更新。

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