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A fully automatic AI system for tooth and alveolar bone segmentation from cone-beam CT images
by
Liu, Jiameng
, Zhang, Bojun
, Zhu, Min
, Fang, Yu
, Lian, Chunfeng
, Ma, Lei
, Cui, Zhiming
, Liu, Yang
, Mei, Lanzhuju
, Zhao, Yue
, Sun, Yuhang
, Jiang, Caiwen
, Yu, Bo
, Shen, Dinggang
, Huang, Jiawei
, Ding, Zhongxiang
in
59
/ 692/700/1421/2025
/ 692/700/3032/3093/3094
/ 692/700/3032/3145
/ Abnormalities
/ Alveolar bone
/ Artificial Intelligence
/ Bones
/ Computed tomography
/ Cone-Beam Computed Tomography - methods
/ Datasets
/ Deep learning
/ Delineation
/ Dentistry
/ Digital imaging
/ Health care
/ Humanities and Social Sciences
/ Humans
/ Image processing
/ Image Processing, Computer-Assisted - methods
/ Image segmentation
/ Medical imaging
/ multidisciplinary
/ Patients
/ Science
/ Science (multidisciplinary)
/ Teeth
/ Tooth - diagnostic imaging
/ Workflow
2022
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A fully automatic AI system for tooth and alveolar bone segmentation from cone-beam CT images
by
Liu, Jiameng
, Zhang, Bojun
, Zhu, Min
, Fang, Yu
, Lian, Chunfeng
, Ma, Lei
, Cui, Zhiming
, Liu, Yang
, Mei, Lanzhuju
, Zhao, Yue
, Sun, Yuhang
, Jiang, Caiwen
, Yu, Bo
, Shen, Dinggang
, Huang, Jiawei
, Ding, Zhongxiang
in
59
/ 692/700/1421/2025
/ 692/700/3032/3093/3094
/ 692/700/3032/3145
/ Abnormalities
/ Alveolar bone
/ Artificial Intelligence
/ Bones
/ Computed tomography
/ Cone-Beam Computed Tomography - methods
/ Datasets
/ Deep learning
/ Delineation
/ Dentistry
/ Digital imaging
/ Health care
/ Humanities and Social Sciences
/ Humans
/ Image processing
/ Image Processing, Computer-Assisted - methods
/ Image segmentation
/ Medical imaging
/ multidisciplinary
/ Patients
/ Science
/ Science (multidisciplinary)
/ Teeth
/ Tooth - diagnostic imaging
/ Workflow
2022
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A fully automatic AI system for tooth and alveolar bone segmentation from cone-beam CT images
by
Liu, Jiameng
, Zhang, Bojun
, Zhu, Min
, Fang, Yu
, Lian, Chunfeng
, Ma, Lei
, Cui, Zhiming
, Liu, Yang
, Mei, Lanzhuju
, Zhao, Yue
, Sun, Yuhang
, Jiang, Caiwen
, Yu, Bo
, Shen, Dinggang
, Huang, Jiawei
, Ding, Zhongxiang
in
59
/ 692/700/1421/2025
/ 692/700/3032/3093/3094
/ 692/700/3032/3145
/ Abnormalities
/ Alveolar bone
/ Artificial Intelligence
/ Bones
/ Computed tomography
/ Cone-Beam Computed Tomography - methods
/ Datasets
/ Deep learning
/ Delineation
/ Dentistry
/ Digital imaging
/ Health care
/ Humanities and Social Sciences
/ Humans
/ Image processing
/ Image Processing, Computer-Assisted - methods
/ Image segmentation
/ Medical imaging
/ multidisciplinary
/ Patients
/ Science
/ Science (multidisciplinary)
/ Teeth
/ Tooth - diagnostic imaging
/ Workflow
2022
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A fully automatic AI system for tooth and alveolar bone segmentation from cone-beam CT images
Journal Article
A fully automatic AI system for tooth and alveolar bone segmentation from cone-beam CT images
2022
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Overview
Accurate delineation of individual teeth and alveolar bones from dental cone-beam CT (CBCT) images is an essential step in digital dentistry for precision dental healthcare. In this paper, we present an AI system for efficient, precise, and fully automatic segmentation of real-patient CBCT images. Our AI system is evaluated on the largest dataset so far, i.e., using a dataset of 4,215 patients (with 4,938 CBCT scans) from 15 different centers. This fully automatic AI system achieves a segmentation accuracy comparable to experienced radiologists (e.g., 0.5% improvement in terms of average Dice similarity coefficient), while significant improvement in efficiency (i.e., 500 times faster). In addition, it consistently obtains accurate results on the challenging cases with variable dental abnormalities, with the average Dice scores of 91.5% and 93.0% for tooth and alveolar bone segmentation. These results demonstrate its potential as a powerful system to boost clinical workflows of digital dentistry.
Accurate delineation of individual teeth and alveolar bones from dental cone-beam CT images is an essential step in digital dentistry for precision dental healthcare. Here, the authors present a deep learning system for efficient, precise, and fully automatic segmentation of real-patient CBCT images presenting highly variable appearances.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
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