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Expertise-inspired artificial intelligence pipeline for clinically applicable reconstruction of tooth-centric radial planes:Development and multicenter validation
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作者 Zhuohong Gong Gengbin Cai +12 位作者 Jiayang Zeng Beichen Wen Hengyi Liu Jiahong Lin Xiaofei Meng Peisheng Zeng Jiamin Shi Rui Xie Yang Yu Yin Xiao Mengru Shi Ruixuan Wang Zetao Chen 《BMEMat(BioMedical Engineering Materials)》 2025年第3期192-206,共15页
Owing to the tooth-centered nature of most oral diseases,the tooth-centric radial plane of cone-beam computed tomography(CBCT)depicts the anatomical and pathological features along the long axis of the tooth,serving a... Owing to the tooth-centered nature of most oral diseases,the tooth-centric radial plane of cone-beam computed tomography(CBCT)depicts the anatomical and pathological features along the long axis of the tooth,serving as a crucial imaging modality in the diagnosis,treatment planning,and prognosis of multiple oral diseases.However,reconstructing these standard planes from CBCT is labor-intensive,time-consuming,and error-prone due to anatomical variances and multi-center discrepancies.This study proposes an expertise-inspired artificial intelligence(AI)pipeline for the reconstruction of the tooth-centric radial plane.By emulating expert's workflow,this AI pipeline acquires the optimized maxillary and mandibular cross sections,segments the teeth for dental arch curve depiction,and reconstructs dental arch-defined tooth-centric radial planes.A total of 420 CBCT scans from two independent centers,comprising both healthy and diseased subjects,were collected for model development and validation.Teeth on the optimized cross sections were explicitly segmented even in the presence of various complex diseases,resulting in precise dental arch curve depictions.The AI-reconstructed tooth-centric radial planes for all teeth exhibited low angular and distance errors compared with the ground truth planes.In terms of clinical utility,the AI-reconstructed planes demonstrated high image quality,accurately represented anatomical and pathological features,and facilitated precise dental biometrics measurement by both clinicians and downstream AI diagnostic tools.The expertise-inspired AI pipeline showcases outstanding performance in reconstructing tooth-centric radial planes and offers significant clinical utility for intelligent oral health management with high interpretability,robustness and generalization capabilities. 展开更多
关键词 cone-beam CT deep learning oral and maxillofacial imaging oral disease tooth-centric radial plane
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无牙颌患者全口义齿修复人工牙选择的研究 被引量:12
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作者 王旭 钟丽芳 +1 位作者 温竹 艾红军 《中国实用口腔科杂志》 CAS 2010年第9期562-563,共2页
目的评价不同人工牙制作全口义齿修复无牙颌患者的临床疗效。方法选取2008—2010年中国医科大学附属口腔医院修复科诊治的无牙颌患者50例,按无牙颌分类法以及人工牙种类,将患者分为以下6组。A1组(9例),为第1类无牙颌患者,使用解剖型... 目的评价不同人工牙制作全口义齿修复无牙颌患者的临床疗效。方法选取2008—2010年中国医科大学附属口腔医院修复科诊治的无牙颌患者50例,按无牙颌分类法以及人工牙种类,将患者分为以下6组。A1组(9例),为第1类无牙颌患者,使用解剖型树脂牙;A2组(6例),为第1类无牙颌患者,使用长正中合成树脂牙;B1组(17例),为第2类无牙颌患者,应用解剖型树脂牙制作义齿;B2组(6例),为第2类无牙颌患者,使用长正中合成树脂牙;C1组(5例),为第3类无牙颌患者,使用解剖型树脂牙;C2组(7例),为第3类无牙颌患者,使用长正中合成树脂牙。常规全口义齿修复治疗3个月后,采用问卷调查的方法评价患者使用全口义齿的满意度。结果治疗3个月后,C2组无牙颌患者固位、咀嚼、语音3方面的满意度好于C1组,且差异均有统计学意义(P<0.05)。C1组磨改解剖型人工牙面后,仅咀嚼方面满意度与C2组差异具有统计学意义(P<0.05)。结论对于牙槽嵴吸收较严重的无牙颌患者,长正中型全口义齿是一种有效的修复方法。 展开更多
关键词 全口义齿 无牙颌 解剖型树脂牙 长正中合成树脂牙
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