Is automatic cephalometric software using artificial intelligence better than orthodontist experts in landmark identification?

Author:

Ye Huayu,Cheng Zixuan,Ungvijanpunya Nicha,Chen Wenjing,Cao Li,Gou Yongchao

Abstract

Abstract Background To evaluate the techniques used for the automatic digitization of cephalograms using artificial intelligence algorithms, highlighting the strengths and weaknesses of each one and reviewing the percentage of success in localizing each cephalometric point. Methods Lateral cephalograms were digitized and traced by three calibrated senior orthodontic residents with or without artificial intelligence (AI) assistance. The same radiographs of 43 patients were uploaded to AI-based machine learning programs MyOrthoX, Angelalign, and Digident. Image J was used to extract x- and y-coordinates for 32 cephalometric points: 11 soft tissue landmarks and 21 hard tissue landmarks. The mean radical errors (MRE) were assessed radical to the threshold of 1.0 mm,1.5 mm, and 2 mm to compare the successful detection rate (SDR). One-way ANOVA analysis at a significance level of P < .05 was used to compare MRE and SDR. The SPSS (IBM-vs. 27.0) and PRISM (GraphPad-vs.8.0.2) software were used for the data analysis. Results Experimental results showed that three methods were able to achieve detection rates greater than 85% using the 2 mm precision threshold, which is the acceptable range in clinical practice. The Angelalign group even achieved a detection rate greater than 78.08% using the 1.0 mm threshold. A marked difference in time was found between the AI-assisted group and the manual group due to heterogeneity in the performance of techniques to detect the same landmark. Conclusions AI assistance may increase efficiency without compromising accuracy with cephalometric tracings in routine clinical practice and research settings.

Funder

National Natural Science Foundation of China

Publisher

Springer Science and Business Media LLC

Subject

General Dentistry

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Acta Plane—A New Reference for Virtual Orientation of Cone Beam Computed Tomography Scans: A Pilot Study;Applied Sciences;2023-12-29

2. CONTEMPORARY APPLICATIONS OF COMPUTER TECHNOLOGIES IN ORTHODONTICS;Актуальні проблеми сучасної медицини: Вісник Української медичної стоматологічної академії;2023-12-20

3. Application of Artificial Intelligence in Orthodontics: Current State and Future Perspectives;Healthcare;2023-10-18

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