Deep Learning in Multi-Class Lung Diseases’ Classification on Chest X-ray Images

Author:

Kim Sungyeup,Rim BeanbonykaORCID,Choi Seongjun,Lee AhyoungORCID,Min SedongORCID,Hong MinORCID

Abstract

Chest X-ray radiographic (CXR) imagery enables earlier and easier lung disease diagnosis. Therefore, in this paper, we propose a deep learning method using a transfer learning technique to classify lung diseases on CXR images to improve the efficiency and accuracy of computer-aided diagnostic systems’ (CADs’) diagnostic performance. Our proposed method is a one-step, end-to-end learning, which means that raw CXR images are directly inputted into a deep learning model (EfficientNet v2-M) to extract their meaningful features in identifying disease categories. We experimented using our proposed method on three classes of normal, pneumonia, and pneumothorax of the U.S. National Institutes of Health (NIH) data set, and achieved validation performances of loss = 0.6933, accuracy = 82.15%, sensitivity = 81.40%, and specificity = 91.65%. We also experimented on the Cheonan Soonchunhyang University Hospital (SCH) data set on four classes of normal, pneumonia, pneumothorax, and tuberculosis, and achieved validation performances of loss = 0.7658, accuracy = 82.20%, sensitivity = 81.40%, and specificity = 94.48%; testing accuracy of normal, pneumonia, pneumothorax, and tuberculosis classes was 63.60%, 82.30%, 82.80%, and 89.90%, respectively.

Publisher

MDPI AG

Subject

Clinical Biochemistry

Reference38 articles.

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2. Learn about Pneumonia https://www.lung.org/lung-health-diseases/lung-disease-lookup/pneumonia/learn-about-pneumonia

3. Learn about Pneumothorax https://www.lung.org/lung-health-diseases/lung-disease-lookup/pneumothorax/learn-about-pneumothorax

4. Learn about Tuberculosis https://www.lung.org/lung-health-diseases/lung-disease-lookup/tuberculosis/learn-about-tuberculosis

5. A Survey of Deep Learning for Lung Disease Detection on Medical Images: State-of-the-Art, Taxonomy, Issues and Future Directions

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