Explainable Deep Learning Framework for Automated Classi-fication of Enamel Caries: Bridging Artificial Intelligence and Dental Public Health
收藏Mendeley Data2026-04-09 收录
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This study proposes an explainable and interpretable deep learning framework for automated enamel caries classification, emphasizing diagnostic transparency and reliability for clinical use. The dual-model framework demonstrated high diagnostic precision and transparency, highlighting its potential for integration into clinical and community-level dental screening. Although dataset diversity remains a limitation, future research will focus on multi-modal and federated learning approaches to ensure broader generalization and population-level applicability.



