Performance Validation of ORTHOSEG, a Novel Artificial Intelligence Tool for the Segmentation of Orthopantomographs and Intra-Oral X-Rays
Giuseppe Cota, Gaetano Scaramozzino, Marco Chiesa, Lelio Gennaro, Maurizio Pascadopoli, Andrea Scribante, Marco Colombo

TL;DR
ORTHOSEG is a new AI tool that automates the analysis of dental X-rays, improving speed and accuracy in identifying key features.
Contribution
ORTHOSEG is a novel deep learning system for segmenting diverse dental radiographs with high accuracy and efficiency.
Findings
ORTHOSEG achieved mDSC of 0.756 and mIoU of 0.684 for orthopantomograms, outperforming existing benchmarks.
The system processes dental radiographs in under 20 seconds on standard clinical hardware.
ORTHOSEG can segment approximately 70 distinct anatomical and pathological elements in dental images.
Abstract
Background: Dental radiographs are essential for diagnosis and treatment planning in modern dentistry. However, their manual interpretation is time-consuming and subject to variability, highlighting the need for automated tools to improve efficiency and consistency. This study aims to validate ORTHOSEG, a deep learning-based system designed to automate the segmentation of anatomical, pathological, and non-pathological elements in radiographs, including orthopantomograms, bitewings, and periapical images. Methods: ORTHOSEG’s performance was evaluated using a rigorously curated dataset of 150 dental radiographs, including 50 orthopantomograms, 50 bitewings, and 50 periapical images, with manual annotations by expert clinicians serving as the ground truth. The system’s segmentation performance was assessed using standard evaluation metrics, including mean Dice Similarity Coefficient (mDSC)…
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Taxonomy
TopicsDental Radiography and Imaging · Dental Research and COVID-19 · COVID-19 diagnosis using AI
