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Multi-label dental disorder diagnosis based on MobileNetV2 and swin transformer using bagging ensemble classifier

202423 citationsOpen accessMansoura University

In plain language

Dental disorders are widespread conditions that cause pain, lead to infections, and diminish quality of life. Manual diagnosis from X-rays is time-consuming and relies heavily on specialist examination. To address this, a novel diagnostic framework automates multi-label dental disease detection from dental panoramic X-ray images. The pipeline begins with image normalisation and adaptive histogram equalisation to enhance radiographic quality. Feature extraction combines MobileNetV2 for local visual details with a Swin Transformer to capture broader contextual dependencies. These combined representations are subsequently classified using a bagging ensemble model. When tested on a benchmark dental radiography dataset, the system achieved 95.6 percent overall accuracy, 95.7 percent precision, and 95.4 percent sensitivity, outperforming state-of-the-art methods and establishing a robust basis for automated dental disease classification.

Key takeaways

  • A hybrid deep learning framework combines MobileNetV2 and Swin Transformer models to extract local and global features from dental X-rays.
  • Pre-processing uses image normalisation and adaptive histogram equalisation to standardise image quality and reduce variation.
  • A bagging ensemble classifier accurately identifies multiple dental disorders from the combined feature sets.
  • Evaluations on a benchmark dental radiography dataset demonstrated 95.6 percent accuracy and 95.7 percent precision.

Why it matters

Manual assessment of dental radiographs requires significant time and specialised clinical expertise. Automating the detection and classification of oral conditions using artificial intelligence helps support early diagnosis. This capability can assist dentists in identifying dental problems more reliably, reducing diagnostic delays, and improving clinical workflow efficiency for better patient care and treatment planning.

Commercialisation angle

The framework is designed for integration into dental diagnostic software used by dental practitioners and clinics to support treatment planning. Having been applied and tested on a benchmark radiography dataset with high accuracy, the technology represents an applied research stage that requires clinical validation before deployment in commercial dental healthcare environments.

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Abstract

Dental disorders are common worldwide, causing pain or infections and limiting mouth opening, so dental conditions impact productivity, work capability, and quality of life. Manual detection and classification of oral diseases is time-consuming and requires dentists' evaluation and examination. The dental disease detection and classification system based on machine learning and deep learning will aid in early dental disease diagnosis. Hence, this paper proposes a new diagnosis system for dental diseases using X-ray imaging. The framework includes a robust pre-processing phase that uses image normalization and adaptive histogram equalization to improve image quality and reduce variation. A dual-stream approach is used for feature extraction, utilizing the advantages of Swin Transformer for capturing long-range dependencies and global context and MobileNetV2 for effective local feature extraction. A thorough representation of dental anomalies is produced by fusing the extracted features. To obtain reliable and broadly applicable classification results, a bagging ensemble classifier is utilized in the end. We evaluate our model on a benchmark dental radiography dataset. The experimental results and comparisons show the superiority of the proposed system with 95.7% for precision, 95.4% for sensitivity, 95.7% for specificity, 95.5% for Dice similarity coefficient, and 95.6% for accuracy. The results demonstrate the effectiveness of our hybrid model integrating MoileNetv2 and Swin Transformer architectures, outperforming state-of-the-art techniques in classifying dental diseases using dental panoramic X-ray imaging. This framework presents a promising method for robustly and accurately diagnosing dental diseases automatically, which may help dentists plan treatments and identify dental diseases early on.

Research topics

  • Dental Radiography and Imaging
  • Dental Research and COVID-19
  • COVID-19 diagnosis using AI

Sustainable Development Goals

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DOI: 10.1038/s41598-024-73297-9

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