Papers › ChestX-ray8: Hospital-scale Chest X-ray Database and Benchmarks on Weakly-Supervised...

ChestX-ray8: Hospital-scale Chest X-ray Database and Benchmarks on Weakly-Supervised Classification and Localization of Common Thorax Diseases

5 May 2017CVPR 2017 7arXiv:1705.02315archive 2025-07-28

Xiaosong Wang, Yifan Peng, Le Lu, Zhiyong Lu, Mohammadhadi Bagheri, Ronald M. Summers

The chest X-ray is one of the most commonly accessible radiological examinations for screening and diagnosis of many lung diseases. A tremendous number of X-ray imaging studies accompanied by radiological reports are accumulated and stored in many modern hospitals' Picture Archiving and Communication Systems (PACS). On the other side, it is still an open question how this type of hospital-size knowledge database containing invaluable imaging informatics (i.e., loosely labeled) can be used to facilitate the data-hungry deep learning paradigms in building truly large-scale high precision computer-aided diagnosis (CAD) systems. In this paper, we present a new chest X-ray database, namely "ChestX-ray8", which comprises 108,948 frontal-view X-ray images of 32,717 unique patients with the text-mined eight disease image labels (where each image can have multi-labels), from the associated radiological reports using natural language processing. Importantly, we demonstrate that these commonly occurring thoracic diseases can be detected and even spatially-located via a unified weakly-supervised multi-label image classification and disease localization framework, which is validated using our proposed dataset. Although the initial quantitative results are promising as reported, deep convolutional neural network based "reading chest X-rays" (i.e., recognizing and locating the common disease patterns trained with only image-level labels) remains a strenuous task for fully-automated high precision CAD systems. Data download link: https://nihcc.app.box.com/v/ChestXray-NIHCC

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26 repositories listed; official and paper-mentioned ones first.

Azure/AzureChestXRay mentioned on GitHubpytorchMIT report
CodingWitcher/Chexnet_NIH mentioned on GitHubtf report
TRKuan/cxr8 mentioned on GitHubpytorch report
TheInfamousWayne/CheXNet mentioned on GitHubpytorchGPL-3.0 report
alinstein/X_RAY mentioned on GitHubpytorch report
arnoweng/CheXNet mentioned on GitHubpytorch report
fatLime/Predict-Lung-Disease mentioned on GitHubtf report
gshashank84/CheXNet mentioned on GitHubpytorch report
icanswim/cxr mentioned on GitHub report
jfhealthcare/Chexpert mentioned on GitHubpytorch report
jm12138/Paddle-CheXNet mentioned on GitHubpaddle report
jrzech/reproduce-chexnet mentioned on GitHubpytorchBSD-3-Clause report
karandesaiii/CheXNet mentioned on GitHubpytorchGPL-3.0 report
liyu10000/pneumoconiosis mentioned on GitHubpytorch report
ncbi-nlp/NegBio mentioned on GitHub report
nsourlos/pneumonia_detection mentioned on GitHub report
rahulcoding/CheXNet mentioned on GitHubpytorch report
raidiance/bert-for-radiology mentioned on GitHubtf report
sunghyunjun/kaggle-hpa mentioned on GitHubpytorch report
thtang/CheXNet-with-localization mentioned on GitHubpytorchGPL-3.0 report
um2ii/openjphpy mentioned on GitHub report
yichigo/Chest-X-Ray mentioned on GitHubpytorch report

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Tasks

General ClassificationImage ClassificationLung Disease ClassificationMulti-Label Image ClassificationOpen-Ended Question AnsweringWeakly Supervised Classificationimage-classification

Datasets

Introduced by this paper, per the archive.

ChestX-ray14ChestX-ray8

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