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T he advent of deep neural networks as a new artifi- cial intelligence (AI) technique has engendered a large number of medical applications, particularly in medical imaging. Such applications of AI must remain grounded in the fundamental tenets of science and scientific publication (1). Scientific results must be reproducible, and a scientific publication must describe the authors' work in sufficient detail to enable readers to determine the rigor, quality, and generalizability of the work, and potentially to reproduce the work's results. A number of valuable manuscript checklists have come into widespread use, including the Standards for Reporting of Diagnostic Accuracy Studies (STARD) (2-5), Strengthening the Reporting of Observational studies in Epidemiology (STROBE) (6), and Consolidated Standards of Reporting Trials (CONSORT) (7,8). A radiomics quality score has been proposed to assess the quality of radiomics studies (9).
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John Mongan
Linda Moy
Charles E. Kahn
Radiology Artificial Intelligence
University of Pennsylvania
University of California, San Francisco
New York University
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Mongan et al. (Sun,) studied this question.
www.synapsesocial.com/papers/69d8471a5c3030ff03d19a4e — DOI: https://doi.org/10.1148/ryai.2020200029