A generalized deep learning model for multi-disease Chest X-Ray diagnostics

October 17, 2020 ยท Declared Dead ยท ๐Ÿ› International Work-Conference on Artificial and Natural Neural Networks

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Authors Nabit Bajwa, Kedar Bajwa, Atif Rana, M. Faique Shakeel, Kashif Haqqi, Suleiman Ali Khan arXiv ID 2010.12065 Category q-bio.QM Cross-listed cs.CV, cs.LG, eess.IV Citations 1 Venue International Work-Conference on Artificial and Natural Neural Networks Repository https://github.com/link-to-code Last Checked 2 months ago
Abstract
We investigate the generalizability of deep convolutional neural network (CNN) on the task of disease classification from chest x-rays collected over multiple sites. We systematically train the model using datasets from three independent sites with different patient populations: National Institute of Health (NIH), Stanford University Medical Centre (CheXpert), and Shifa International Hospital (SIH). We formulate a sequential training approach and demonstrate that the model produces generalized prediction performance using held out test sets from the three sites. Our model generalizes better when trained on multiple datasets, with the CheXpert-Shifa-NET model performing significantly better (p-values < 0.05) than the models trained on individual datasets for 3 out of the 4 distinct disease classes. The code for training the model will be made available open source at: www.github.com/link-to-code at the time of publication.
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