科研成果详情

题名Dental pulp segmentation from cone-beam computed tomography images
作者
发表日期2020
会议名称ISICDM 2020: The Fourth International Symposium on Image Computing and Digital Medicine
会议录名称The Fourth International Symposium on Image Computing and Digital Medicine (ISICDM 2020)
ISBN9781450389686
页码80-85
会议日期December 5–7, 2020
会议地点Shenyang, China
摘要

When dental pulp needs to be removed in individuals who require root canal therapy, dental pulp segmentation from cone-beam computed tomography (CBCT) images plays a vital role in assisting clinical decisions by making through simulation of dental pulp removal. Dental pulp has complex topological shapes and inhomogeneous intensity distribution, so we propose a level set method to incorporate the piecewise area energy with the local edge energy into semiautomatically segment dental pulps in the three-dimensional domain. The minimization of the piecewise area energy approximates a separation between the target and the intricate background region. In the local edge energy, our edge indicator function highlights the dental pulp boundaries with weak ramps. We compared our approach with the start-of-the-art method of dental pulp segmentation, the well-known DRLSE model for image segmentation, and the manual delineation by the trained operator. The DRLSE model was not successful in segmenting dental pulps of some teeth, and our method outperformed the start-of-the-art method. Four quantitative metrics were applied between our method and the manual delineation, and our results on 29 dental pulps showed that our approach has a root-mean-square surface distance of 1.22 ± 0.31 mm, 3.13 ± 1.35 mm, 2.63 ± 1.92 mm, 2.03 ± 0.82 mm, and 2.06 ± 1.48 mm in dental pulps of wisdom teeth, molars, premolars, canines, and incisors, respectively.

关键词computed tomography images dental implant image segmentation level set method root canal therapy tooth
DOI10.1145/3451421.3451439
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语种英语English
Scopus入藏号2-s2.0-85114281571
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被引频次[WOS]:0   [WOS记录]     [WOS相关记录]
文献类型会议论文
条目标识符https://repository.uic.edu.cn/handle/39GCC9TT/6758
专题理工科技学院
作者单位
1.University of Electronic Science and Technology of China Chengdu,Sichuan,China
2.The University of Hong Kong,Hong Kong,China
3.Beijing Normal University-Hong Kong Baptist University United International College, Zhuhai,Guangdong,China
4.Southern University of Science and Technology, Shenzhen, Guangdong, China
推荐引用方式
GB/T 7714
Jiang, Benxiang,Hu, Jinjing,Li, Jiet al. Dental pulp segmentation from cone-beam computed tomography images[C], 2020: 80-85.
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