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Deep-learning-assisted diagnosis for knee magnetic resonance imaging: Development and retrospective validation of MRNet.

Nicholas BienPranav RajpurkarRobyn L BallJeremy A IrvinAllison ParkErik JonesMichael BereketBhavik N PatelKristen W YeomKatie ShpanskayaSafwan S HalabiEvan ZuckerGary FantonDerek F AmanatullahChristopher F BeaulieuGeoffrey M RileyRussell J StewartFrancis G BlankenbergDavid B LarsonRicky H JonesCurtis P LanglotzAndrew Y NgMatthew P Lungren
Published in: PLoS medicine (2018)
Our deep learning model can rapidly generate accurate clinical pathology classifications of knee MRI exams from both internal and external datasets. Moreover, our results support the assertion that deep learning models can improve the performance of clinical experts during medical imaging interpretation. Further research is needed to validate the model prospectively and to determine its utility in the clinical setting.
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