A Multi-Task Deep Learning Model for Quality Control of Periapical Radiographs: Simultaneous Technical Error Classification and Quality Grading
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ID: 313387
2026
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Abstract
OBJECTIVES: To develop a multi-task deep learning model for the automated quality control of periapical radiographs, integrating identification of technical errors with standardized quality grading. METHODS: A dataset of 3510 periapical radiographs was curated from two centers for model development and external validation. We developed a multi-task deep learning model to simultaneously perform: (1) multi-label classification of six common technical errors (positioning, processing, exposure, and angulation issues); and (2) hierarchical quality grading according to two established standards: the National Radiological Protection Board (NRPB: Grades 1-3) and the College of General Dentistry (CGDent: Ranks A-B). Model performance was evaluated using ROC-AUC, sensitivity, specificity, precision, accuracy, and F1-score on both internal and external test sets. Furthermore, the model's efficiency gain in daily quality control workflows was quantified. RESULTS: Among five widely-adopted Convolutional Neural Networks (CNNs) and transformer architectures evaluated, EfficientNet was selected as the optimal backbone. The final model identified technical errors with high performance on the external test set (sensitivity: 0.690-0.905; specificity: 0.965-0.995; AUC: 0.842-0.978). For quality grading, it achieved strong results for both trichotomous NRPB grading (sensitivity: 0.835-0.920; specificity: 0.881-0.989; AUC: 0.940-0.960) and binary ranking (sensitivity: 0.835-0.989; specificity: 0.835-0.989; AUC: 0.959).The system demonstrated superior computational efficiency, reducing the cumulative assessment time for a typical daily workload from over 32 minutes (manual review) to approximately 1.1 seconds. Grad-CAM visualizations confirmed the model's focus was aligned with technical errors, supporting clinical interpretability. CONCLUSIONS: This multi-task model efficiently automates radiographic quality control by identifying technical errors and assigning quality grades. It offers significant potential to standardize quality assurance and streamline dental workflows.
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| Authors | Wen Fang, Leqi Liu, Xiaokan Wang, Yì Wáng, Yuqing Meng, Keying Wu, Tie Liu, Bin Feng |
| Journal | dentomaxillofacial radiology |
| Year | 2026 |
| DOI |
10.1093/dmfr/twag021
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| URL | |
| Keywords | Keywords not found |
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