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Automatic quantification framework to detect cracks in teeth

机译:自动定量框架可检测牙齿上的裂缝

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摘要

Studies show that cracked teeth are the third most common cause for tooth loss in industrialized countries. If detected early and accurately, patients can retain their teeth for a longer time. Most cracks are not detected early because of the discontinuous symptoms and lack of good diagnostic tools. Currently used imaging modalities like Cone Beam Computed Tomography (CBCT) and intraoral radiography often have low sensitivity and do not show cracks clearly. This paper introduces a novel method that can detect, quantify, and localize cracks automatically in high resolution CBCT (hr-CBCT) scans of teeth using steerable wavelets and learning methods. These initial results were created using hr-CBCT scans of a set of healthy teeth and of teeth with simulated longitudinal cracks. The cracks were simulated using multiple orientations. The crack detection was trained on the most significant wavelet coefficients at each scale using a bagged classifier of Support Vector Machines. Our results show high discriminative specificity and sensitivity of this method. The framework aims to be automatic, reproducible, and open-source. Future work will focus on the clinical validation of the proposed techniques on different types of cracks ex-vivo. We believe that this work will ultimately lead to improved tracking and detection of cracks allowing for longer lasting healthy teeth.
机译:研究表明,在工业化国家中,牙齿破裂是造成牙齿脱落的第三大最常见原因。如果及早和准确地发现,患者可以保留更长的时间。由于症状不连续且缺乏良好的诊断工具,因此无法及早发现大多数裂缝。当前使用的成像模式(例如,锥形束计算机断层扫描(CBCT)和口腔内射线照相)通常具有较低的灵敏度,并且不能清楚地显示出裂纹。本文介绍了一种新颖的方法,该方法可以使用可控小波和学习方法在高分辨率的CBCT(hr-CBCT)牙齿扫描中自动检测,量化和定位裂缝。这些初始结果是使用hr-CBCT扫描一组健康的牙齿和具有模拟纵向裂缝的牙齿创建的。使用多个方向模拟了裂纹。使用支持向量机的袋装分类器,在每个尺度上以最高有效的小波系数训练裂纹检测。我们的结果表明该方法具有很高的判别特异性和敏感性。该框架旨在实现自动化,可复制和开源。未来的工作将集中于对不同类型的活体外裂缝技术的临床验证。我们相信,这项工作最终将改善对裂缝的跟踪和检测,从而使牙齿健康持久。

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