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RADAI: A Deep Learning-Based Classification of Lung Abnormalities in Chest X-Rays.
Hanan Aljuaid1,2, Hessa Albalahad2, Walaa Alshuaibi2
1Computer Science Department, College of Computer and Information Science, Princess Nourah Bint Abdulrahman University, Riyadh 11671, Saudi Arabia.
This study introduces RadAI, an artificial intelligence tool that accurately detects lung abnormalities in chest X-rays. RadAI assists radiologists, improving diagnostic accuracy and efficiency for lung conditions.
Area of Science:
- Medical Imaging
- Artificial Intelligence in Healthcare
- Radiology
Background:
- Chest X-rays are increasingly vital for diagnosing lung conditions, as noted by the WHO.
- Interpreting chest X-rays is challenging, often leading to diagnostic delays and errors.
- Automated analysis of medical images, including chest X-rays, shows significant promise.
Purpose of the Study:
- To develop RadAI, an artificial intelligence model for detecting lung abnormalities in chest X-rays.
- To enable RadAI to generate detailed reports for identified abnormalities.
- To enhance the accuracy and efficiency of chest X-ray interpretation.
Main Methods:
- Fine-tuning three deep learning models: Feature-selective and Spatial Receptive Fields Network (FSRFNet50), ResNext50, and ResNet50.
- Utilizing convolutional neural networks (CNNs) for automated medical image analysis.
- Comparing model performance using metrics such as accuracy, precision, recall, and F1-score.
Main Results:
- The developed RadAI model demonstrated high performance in detecting lung abnormalities.
- RadAI accurately identifies four distinct types of lung abnormalities from chest X-rays.
- The model's performance indicates its potential to aid radiologists in accurate interpretation.
Conclusions:
- RadAI significantly enhances the accuracy and efficiency of chest X-ray interpretation.
- The tool supports timely and reliable diagnosis of lung abnormalities.
- RadAI serves as a valuable assistant for radiologists in clinical practice.
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