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通过将CBCT衍生的牙根与相应的IOS衍生的牙冠融合来验证一种新型自动牙齿建模工具。

Validation of a novel tool for automated tooth modelling by fusion of CBCT-derived roots with the respective IOS-derived crowns.

作者信息

Baldini Benedetta, Papasratorn Dhanaporn, Fagundes Fernanda Bulhões, Fontenele Rocharles Cavalcante, Jacobs Reinhilde

机构信息

OMFS-IMPATH Research Group, Department of Imaging and Pathology, Faculty of Medicine, KU Leuven, Leuven, Belgium; Department of Oral and Maxillofacial Surgery, University Hospitals Leuven, Leuven, Belgium; Department of Electronics, Information and Bioengineering, Politecnico Di Milano, Italy; UOC Maxillo-Facial Surgery and Dentistry Fondazione IRCCS Cà Granda, Ospedale Maggiore Policlinico, Milan, Italy.

OMFS-IMPATH Research Group, Department of Imaging and Pathology, Faculty of Medicine, KU Leuven, Leuven, Belgium; Department of Oral and Maxillofacial Surgery, University Hospitals Leuven, Leuven, Belgium; Department of Oral and Maxillofacial Radiology, Faculty of Dentistry, Mahidol University, Bangkok, Thailand.

出版信息

J Dent. 2025 Feb;153:105546. doi: 10.1016/j.jdent.2024.105546. Epub 2024 Dec 30.

Abstract

OBJECTIVES

To validate a novel artificial intelligence (AI)-based tool for automated tooth modelling by fusing cone beam computed tomography (CBCT)-derived roots with corresponding intraoral scanner (IOS)-derived crowns.

METHODS

A retrospective dataset of 30 patients, comprising 30 CBCT scans and 55 IOS dental arches, was used to evaluate the fusion model at full arch and single tooth levels. AI-fused models were compared with CBCT tooth segmentation using point-to-point surface distances-reported as median surface distance (MSD), root mean square distance (RMSD), and Hausdorff distance (HD)- alongside visual assessments. Qualitative assessment included visual inspection of CBCT multiplanar views. The automated fused model was also compared to expert-manual fusions for single tooth analysis in terms of accuracy, time efficiency, and consistency.

RESULTS

AI-based fusion evaluation showed mean values of MSD, RMSD, and HD of 4 μm, 114 μm, and 940 μm for full arch; 5 μm, 104 μm, and 503 μm for single tooth analysis. Qualitative assessment showed discrepancies between fused tooth outline and CBCT tooth margin lower than 1 voxel for 59% of cases. AI-based fusion showed high similarity with expert-manual fusions with median MSD, RMSD, and HD values of 28 μm, 104 μm, and 576 μm, respectively. However, AI-based fusion was 32 times faster than manual fusion. Considering the time required for manual fusion, intra-observer agreement was high (ICC 0.93), while inter-observer agreement was moderate (ICC 0.48).

CONCLUSION

The AI-based CBCT/IOS fusion demonstrated clinically acceptable accuracy, efficiency, and consistency, offering substantial time savings and robust performance across different patients and imaging devices.

CLINICAL SIGNIFICANCE

Manual CBCT/IOS fusion performed by experts is effective but labor-intensive and time-consuming. AI algorithms show a remarkable ability to minimize human variability, resulting in more reliable and efficient fusion. This capability demonstrates the potential to provide a more personalized, precise and standardized approach for treatment planning and dental procedures.

摘要

目的

通过将锥形束计算机断层扫描(CBCT)衍生的牙根与相应的口内扫描仪(IOS)衍生的牙冠融合,验证一种基于人工智能(AI)的新型自动牙齿建模工具。

方法

使用包含30例CBCT扫描和55个IOS牙弓的30例患者的回顾性数据集,在全牙弓和单颗牙齿水平上评估融合模型。将AI融合模型与CBCT牙齿分割进行比较,使用点对点表面距离(报告为中值表面距离(MSD)、均方根距离(RMSD)和豪斯多夫距离(HD))以及视觉评估。定性评估包括对CBCT多平面视图的视觉检查。在准确性、时间效率和一致性方面,还将自动融合模型与专家手动融合进行单颗牙齿分析比较。

结果

基于AI的融合评估显示,全牙弓的MSD、RMSD和HD平均值分别为4μm、114μm和940μm;单颗牙齿分析的平均值分别为5μm、104μm和503μm。定性评估显示,59%的病例中融合牙齿轮廓与CBCT牙齿边缘之间的差异低于1个体素。基于AI的融合与专家手动融合具有高度相似性,MSD、RMSD和HD中值分别为28μm、104μm和576μm。然而,基于AI的融合比手动融合快32倍。考虑到手动融合所需的时间,观察者内一致性较高(ICC 0.93),而观察者间一致性中等(ICC 0.48)。

结论

基于AI的CBCT/IOS融合在临床上显示出可接受的准确性、效率和一致性,在不同患者和成像设备上节省了大量时间并具有强大的性能。

临床意义

专家进行的手动CBCT/IOS融合有效,但劳动强度大且耗时。AI算法显示出显著的能力,可将人为差异降至最低,从而实现更可靠、高效的融合。这种能力展示了为治疗计划和牙科手术提供更个性化、精确和标准化方法的潜力。

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