首页> 外文会议>International conference on quality control by artificial vision >JOINT DETECTION OF ANATOMICAL POINTS ON SURFACE MESHES AND COLOR IMAGES FOR VISUAL REGISTRATION OF 3D DENTAL MODELS
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JOINT DETECTION OF ANATOMICAL POINTS ON SURFACE MESHES AND COLOR IMAGES FOR VISUAL REGISTRATION OF 3D DENTAL MODELS

机译:3D牙科模型视觉登记表面网格和彩色图像上的解剖点的联合检测

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Computer aided planning for orthodontic treatment requires knowing occlusion of separately scanned dental casts. A visual guided registration is conducted starting by extracting corresponding features in both photographs and 3D scans. To achieve this, dental neck and occlusion surface are firstly extracted by image segmentation and 3D curvature analysis. Then, an iterative registration process is conducted during which feature positions are refined, guided by previously found anatomic edges. The occlusal edge image detection is improved by an original algorithm which follows Canny's poorly detected edges using a priori knowledge of tooth shapes. Finally, the influence of feature extraction and position optimization is evaluated in terms of the quality of the induced registration. Best combination of feature detection and optimization leads to a positioning average error of 1.10 mm and 2.03°.
机译:计算机辅助规划正畸治疗需要了解单独扫描牙科铸造的遮挡。通过在照片和3D扫描中提取相应的特征来开始视觉引导注册。为了实现这一点,首先通过图像分割和3D曲率分析提取牙科颈部和闭塞表面。然后,进行迭代登记过程,在此期间通过先前发现的解剖边缘引导特征位置。通过先前的牙齿形状的先验知识,通过追随罐头检测到的边缘的原始算法改善了封闭边缘图像检测。最后,根据诱导的注册的质量评估特征提取和位置优化的影响。特征检测和优化的最佳组合导致定位平均误差为1.10 mm和2.03°。

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