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AI Matches Radiologists in Detecting TB From Photographed Chest X-Rays: Study Shows

Ethiopia: Researchers from Ethiopia have demonstrated that computer-aided analysis of photographed chest X-ray films can perform on par with trained radiologists in detecting tuberculosis (TB), offering a promising diagnostic solution for low-resource, high-burden settings. The pilot study, published in Mayo Clinic Proceedings: Digital Health, was led by Zerubabel Desita from the University of Gondar, Ethiopia, and colleagues.
- One radiologist identified 50 chest X-ray films as indicative of tuberculosis, while the second radiologist identified 99 cases.
- The AI-based computer-aided detection model flagged 81 cases as suggestive of tuberculosis.
- When compared with laboratory-confirmed diagnoses, the AI system achieved an area under the receiver operating characteristic curve of 0.84, reflecting good overall diagnostic performance.
- At the predefined cutoff, the AI model demonstrated a sensitivity of 76.5% and a specificity of 85.9%.
- Radiologist A showed lower sensitivity (64.7%) but higher specificity (91.9%) compared with the AI model.
- Radiologist B demonstrated the same sensitivity as the AI model (76.5%) with slightly lower specificity (82.3%).
- Agreement between the two radiologists was moderate.
- The agreement between each radiologist and the AI software was also moderate.
Dr Kamal Kant Kohli-MBBS, DTCD- a chest specialist with more than 30 years of practice and a flair for writing clinical articles, Dr Kamal Kant Kohli joined Medical Dialogues as a Chief Editor of Medical News. Besides writing articles, as an editor, he proofreads and verifies all the medical content published on Medical Dialogues including those coming from journals, studies,medical conferences,guidelines etc. Email: drkohli@medicaldialogues.in. Contact no. 011-43720751

