High-precision teeth reconstruction based on automatic multimodal fusion with CBCT and IOS

IF 1.3 4区 计算机科学 Q3 COMPUTER SCIENCE, SOFTWARE ENGINEERING Computer Aided Geometric Design Pub Date : 2024-04-23 DOI:10.1016/j.cagd.2024.102299
Zhiyuan Ren , Long Ma , Minfeng Xu , Guangshun Wei , Shaojie Zhuang , Yuanfeng Zhou
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Abstract

In digital orthodontic treatment, the high-precision reconstruction of complete teeth, encompassing both the crown and the actual root, plays a pivotal role. Current mainstream techniques, prioritizing the high resolution of intraoral scanned models (IOS), are confined to using IOS data for orthodontic treatments. However, the lack of root information in the IOS data may lead to complications such as dehiscence. In contrast, Cone Beam Computed Tomography (CBCT) data encompasses comprehensive dental information with roots. Nonetheless, the radiative character of CBCT scans renders patients unsuitable for repeated examinations in a short time. In addition, lower scanning precision of CBCT leads to suboptimal teeth segmentation outcomes, hindering the accurate representation of dental occlusal relationships. Therefore, in order to fully utilize the complementarity between dental multimodal data, we propose a method for high-precision 3D teeth model reconstruction based on IOS and CBCT, which mainly consists of global rigid registration and local nonrigid registration. Specifically, we extract the priori information of dental arch curves for coarse alignment to provide a good initial position for the Iterative Closest Point (ICP) algorithm, and design a conformal parameterization method for a single tooth to effectively obtain the point correspondence between IOS and CBCT crowns. The rough crown of the CBCT will gradually fit towards the IOS through iterative optimization of nonrigid registration. The experimental results show that our method robustly fuses the advantageous features of IOS and CBCT. The 3D teeth model reconstructed by our method contains the high-precision crown of IOS and the real root of CBCT, which can be effectively used in clinical orthodontic treatment.

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基于 CBCT 和 IOS 自动多模态融合的高精度牙齿重建技术
在数字化正畸治疗中,包括牙冠和实际牙根在内的整颗牙齿的高精度重建起着至关重要的作用。目前的主流技术优先考虑口内扫描模型(IOS)的高分辨率,因此仅限于将 IOS 数据用于正畸治疗。然而,IOS 数据中缺乏牙根信息可能会导致开裂等并发症。相比之下,锥形束计算机断层扫描(CBCT)数据包含了全面的牙根信息。然而,CBCT 扫描的辐射特性使患者不适合在短时间内重复检查。此外,CBCT 扫描精度较低,导致牙齿分割效果不理想,阻碍了牙齿咬合关系的准确呈现。因此,为了充分利用牙科多模态数据之间的互补性,我们提出了一种基于 IOS 和 CBCT 的高精度三维牙齿模型重建方法,主要包括全局刚性配准和局部非刚性配准。具体来说,我们提取牙弓曲线的先验信息进行粗配准,为迭代最邻近点(ICP)算法提供良好的初始位置,并设计单颗牙齿的保形参数化方法,以有效获得 IOS 和 CBCT 牙冠之间的点对应关系。通过非刚性配准的迭代优化,CBCT 的粗糙牙冠将逐渐向 IOS 靠拢。实验结果表明,我们的方法稳健地融合了 IOS 和 CBCT 的优势特征。用我们的方法重建的三维牙齿模型包含了 IOS 的高精度牙冠和 CBCT 的真实牙根,可有效用于临床正畸治疗。
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来源期刊
Computer Aided Geometric Design
Computer Aided Geometric Design 工程技术-计算机:软件工程
CiteScore
3.50
自引率
13.30%
发文量
57
审稿时长
60 days
期刊介绍: The journal Computer Aided Geometric Design is for researchers, scholars, and software developers dealing with mathematical and computational methods for the description of geometric objects as they arise in areas ranging from CAD/CAM to robotics and scientific visualization. The journal publishes original research papers, survey papers and with quick editorial decisions short communications of at most 3 pages. The primary objects of interest are curves, surfaces, and volumes such as splines (NURBS), meshes, subdivision surfaces as well as algorithms to generate, analyze, and manipulate them. This journal will report on new developments in CAGD and its applications, including but not restricted to the following: -Mathematical and Geometric Foundations- Curve, Surface, and Volume generation- CAGD applications in Numerical Analysis, Computational Geometry, Computer Graphics, or Computer Vision- Industrial, medical, and scientific applications. The aim is to collect and disseminate information on computer aided design in one journal. To provide the user community with methods and algorithms for representing curves and surfaces. To illustrate computer aided geometric design by means of interesting applications. To combine curve and surface methods with computer graphics. To explain scientific phenomena by means of computer graphics. To concentrate on the interaction between theory and application. To expose unsolved problems of the practice. To develop new methods in computer aided geometry.
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