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CTooth+: A Large-scale Dental Cone Beam Computed Tomography Dataset and Benchmark for Tooth Volume Segmentation

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conference contribution
posted on 2022-08-05, 09:15 authored by W Cui, Y Wang, Y Zhang, Huiyu Zhou, B Chong, L Zeng, Q Zhang

Accurate tooth volume segmentation is a prerequisite for computer-aided dental analysis. Deep learning-based tooth segmentation methods have achieved satisfying performances but require a large quantity of tooth data with ground truth. The dental data publicly available is limited meaning the existing methods can not be reproduced, evaluated and applied in clinical practice. In this paper, we establish a 3D dental CBCT dataset CTooth+, with 22 fully annotated volumes and 146 unlabeled volumes. We further evaluate several state-of-the-art tooth volume segmentation strategies based on fully-supervised learning, semi-supervised learning and active learning, and define the performance principles. This work provides a new benchmark for the tooth volume segmentation task, and the experiment can serve as the baseline for future AI-based dental imaging research and clinical application development. The codebase and dataset are released here. 

History

Author affiliation

School of Computing and Mathematical Sciences, University of Leicester

Source

DALI: The 2nd MICCAI Workshop on Data Augmentation, Labeling, and Imperfections, 2022

Version

  • AM (Accepted Manuscript)

Published in

DALI 2022: Data Augmentation, Labelling, and Imperfections

Pagination

64-73

Publisher

Springer, Cham

issn

0302-9743

isbn

978-3-031-17026-3

Acceptance date

2022-07-24

Copyright date

2022

Available date

2022-09-16

Book series

Lecture Notes in Computer Science vol 13567

Temporal coverage: start date

2022-09-22

Temporal coverage: end date

2022-09-22

Language

en

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