Reporting guideline for the early-stage clinical evaluation of decision support systems driven by artificial intelligence: DECIDE-AI

指南 阶段(地层学) 决策支持系统 临床决策支持系统 计算机科学 人工智能 医学 病理 生物 古生物学
作者
Baptiste Vasey,Myura Nagendran,Bruce Campbell,David A. Clifton,Gary S. Collins,Spiros Denaxas,Alastair K. Denniston,Livia Faes,Bart Geerts,Mudathir Ibrahim,Xiaoxuan Liu,Bilal A. Mateen,Piyush Mathur,Melissa D. McCradden,Lauren Morgan,Johan Ordish,Campbell Rogers,Suchi Saria,Daniel Shu Wei Ting,Peter Watkinson,Wim Weber,Peter Wheatstone,Peter McCulloch,Aaron Lee,Alan G. Fraser,Ali Connell,Alykhan Vira,Andre Esteva,Andrew D. Althouse,Andrew L. Beam,Anne de Hond,Anne‐Laure Boulesteix,Anthony Bradlow,Ari Ercole,Arsenio Páez,Athanasios Tsanas,Barry Kirby,Ben Glocker,Carmelo Velardo,Chang Min Park,Charisma Hehakaya,Chris Baber,Chris Paton,Christian Johner,Christopher Kelly,Chris Vincent,Christopher Yau,Clare McGenity,Constantine Gatsonis,C. Faivre‐Finn,Crispin Simon,Danielle Sent,Danilo Bzdok,Darren Treanor,David Wong,David F. Steiner,David Higgins,Dawn Benson,Declan P. O’Regan,Dinesh V. Gunasekaran,Dominic Danks,Emanuele Neri,Evangelia Kyrimi,Falk Schwendicke,Farah Magrabi,Frances Ives,Frank Rademakers,G Fowler,Giuseppe Frau,Jeffry Hogg,Hani J. Marcus,Heang‐Ping Chan,Henry Xiang,Hugh McIntyre,Hugh Harvey,Hyungjin Kim,Ibrahim Habli,James C. Fackler,James Shaw,Janet Higham,Jared M. Wohlgemut,Jaron Chong,Jean‐Emmanuel Bibault,Jérémie F. Cohen,Jesper Kers,Jessica Morley,Joachim Krois,João Filipe G. Monteiro,Joel Horovitz,John Fletcher,Jonathan Taylor,Jung Hyun Yoon,Karandeep Singh,Karel G.M. Moons,Kassandra Karpathakis,Ken Catchpole,Kerenza Hood,Konstantinos Balaskas,Konstantinos Kamnitsas,Laura G. Militello,Laure Wynants,Lauren Oakden‐Rayner,Laurence Lovat,Luc Smits,Ludwig Christian Hinske,M. Khair ElZarrad,Maarten van Smeden,Mara Giavina‐Bianchi,Mark Daley,Mark Sendak,Mark Sujan,Maroeska M. Rovers,Matthew DeCamp,Matthew Woodward,Matthieu Komorowski,Max Marsden,Maxine Mackintosh,Michael D. Abràmoff,Miguel Ángel Armengol de la Hoz,Neale Hambidge,Neil Daly,Niels Peek,Oliver Redfern,Omer F. Ahmad,Patrick M. Bossuyt,Pearse A. Keane,Pedro Ferreira,Petra Schnell-Inderst,Pietro Mascagni,Prokar Dasgupta,Pujun Guan,Rachel Barnett,Rawen Kader,Reena Chopra,Ritse M. Mann,Rupa Sarkar,Saana M. Mäenpää,Samuel G. Finlayson,Sarah Vollam,Sebastian J. Vollmer,Seong Ho Park,Shakir Laher,Shalmali Joshi,Siri Lise van der Meijden,Susan C. Shelmerdine,Tien‐En Tan,Tom J. W. Stocker,Valentina Giannini,Vince I. Madai,Virginia Newcombe,Wei Yan Ng,Wendy Rogers,William Ogallo,Yoonyoung Park,Zane Perkins
出处
期刊:Nature Medicine [Nature Portfolio]
卷期号:28 (5): 924-933 被引量:209
标识
DOI:10.1038/s41591-022-01772-9
摘要

A growing number of artificial intelligence (AI)-based clinical decision support systems are showing promising performance in preclinical, in silico evaluation, but few have yet demonstrated real benefit to patient care. Early-stage clinical evaluation is important to assess an AI system's actual clinical performance at small scale, ensure its safety, evaluate the human factors surrounding its use and pave the way to further large-scale trials. However, the reporting of these early studies remains inadequate. The present statement provides a multi-stakeholder, consensus-based reporting guideline for the Developmental and Exploratory Clinical Investigations of DEcision support systems driven by Artificial Intelligence (DECIDE-AI). We conducted a two-round, modified Delphi process to collect and analyze expert opinion on the reporting of early clinical evaluation of AI systems. Experts were recruited from 20 pre-defined stakeholder categories. The final composition and wording of the guideline was determined at a virtual consensus meeting. The checklist and the Explanation & Elaboration (E&E) sections were refined based on feedback from a qualitative evaluation process. In total, 123 experts participated in the first round of Delphi, 138 in the second round, 16 in the consensus meeting and 16 in the qualitative evaluation. The DECIDE-AI reporting guideline comprises 17 AI-specific reporting items (made of 28 subitems) and ten generic reporting items, with an E&E paragraph provided for each. Through consultation and consensus with a range of stakeholders, we developed a guideline comprising key items that should be reported in early-stage clinical studies of AI-based decision support systems in healthcare. By providing an actionable checklist of minimal reporting items, the DECIDE-AI guideline will facilitate the appraisal of these studies and replicability of their findings. The DECIDE-AI checklist, resulting from a multi-stakeholder group of experts in a Delphi process and following the EQUATOR Network's recommendations, includes key items that should be reported in early-stage clinical studies of AI-based decision support systems, to ensure a responsible and transparent deployment of AI systems in healthcare.
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