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The need to separate the wheat from the chaff in medical informatics Introducing a comprehensive checklist for the (self)-assessment of medical AI studies

机译:需要将小麦从医学信息学中分离出来,为(自我)的医疗AI研究进行了全面的清单

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摘要

This editorial aims to contribute to the current debate about the quality of studies that apply machine learning (ML) methodologies to medical data to extract value from them and provide clinicians with viable and useful tools supporting everyday care practices. We propose a practical checklist to help authors to self assess the quality of their contribution and to help reviewers to recognize and appreciate high-quality medical ML studies by distinguishing them from the mere application of ML techniques to medical data.
机译:这一编辑旨在为当前关于应用机器学习(ML)方法的研究质量的争论,从而提取他们的医疗数据,并提供具有支持日常护理实践的可行性和有用的工具的临床医生。 我们提出了一个实用的清单,帮助作者自我评估其贡献的质量,并帮助审阅者通过将ML技术的仅仅将ML技术应用于医疗数据来帮助审阅和欣赏高质量的医疗ML研究。

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