Deep Segmentation of the Mandibular Canal: A New 3D Annotated Dataset of CBCT Volumes

被引:40
作者
Cipriano, Marco [1 ]
Allegretti, Stefano [1 ]
Bolelli, Federico [1 ]
Di Bartolomeo, Mattia [2 ]
Pollastri, Federico [1 ]
Pellacani, Arrigo [2 ]
Minafra, Paolo [3 ]
Anesi, Alexandre [4 ]
Grana, Costantino [1 ]
机构
[1] Univ Modena & Reggio Emilia, Dept Engn Enzo Ferrari, I-41121 Modena, Italy
[2] Univ Verona, Unit Dent & Maxillofacial Surg, Surg Dent Matern & Infant Dept, I-37129 Verona, Italy
[3] Affidea Modena Med Srl, I-41100 Modena, Italy
[4] Univ Modena & Reggio Emilia, Dept Med & Surg Sci Children & Adults, Craniomaxillofacial Surg, I-41121 Modena, Italy
基金
欧盟地平线“2020”;
关键词
Three-dimensional displays; Irrigation; Annotations; Surgery; Dentistry; Medical diagnostic imaging; Deep learning; 3D imaging; CBCT; image dataset; medical imaging; inferior alveolar nerve; CONE-BEAM CT; COMPUTED-TOMOGRAPHY; LOCATION; NERVE; CLASSIFICATION; EXTRACTION; SHAPE; BONE;
D O I
10.1109/ACCESS.2022.3144840
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Inferior Alveolar Nerve (IAN) canal detection has been the focus of multiple recent works in dentistry and maxillofacial imaging. Deep learning-based techniques have reached interesting results in this research field, although the small size of 3D maxillofacial datasets has strongly limited the performance of these algorithms. Researchers have been forced to build their own private datasets, thus precluding any opportunity for reproducing results and fairly comparing proposals. This work describes a novel, large, and publicly available mandibular Cone Beam Computed Tomography (CBCT) dataset, with 2D and 3D manual annotations, provided by expert clinicians. Leveraging this dataset and employing deep learning techniques, we are able to improve the state of the art on the 3D mandibular canal segmentation. The source code which allows to exactly reproduce all the reported experiments is released as an open-source project, along with this article.
引用
收藏
页码:11500 / 11510
页数:11
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