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Automatic Analysis of Lateral Cephalograms Based on Multiresolution Decision Tree Regression Voting

机译:基于多分辨率决策树回归投票的横向头颅图自动分析

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摘要

Cephalometric analysis is a standard tool for assessment and prediction of craniofacial growth, orthodontic diagnosis, and oral-maxillofacial treatment planning. The aim of this study is to develop a fully automatic system of cephalometric analysis, including cephalometric landmark detection and cephalometric measurement in lateral cephalograms for malformation classification and assessment of dental growth and soft tissue profile. First, a novel method of multiscale decision tree regression voting using SIFT-based patch features is proposed for automatic landmark detection in lateral cephalometric radiographs. Then, some clinical measurements are calculated by using the detected landmark positions. Finally, two databases are tested in this study: one is the benchmark database of 300 lateral cephalograms from 2015 ISBI Challenge, and the other is our own database of 165 lateral cephalograms. Experimental results show that the performance of our proposed method is satisfactory for landmark detection and measurement analysis in lateral cephalograms.
机译:颅骨测量分析是评估和预测颅面生长,正畸诊断和口腔颌面治疗计划的标准工具。这项研究的目的是开发一种全自动的头颅测量分析系统,包括头颅测量界标检测和侧位头颅造影中的头颅测量,以对畸形分类和评估牙齿生长和软组织轮廓。首先,提出了一种新的基于SIFT补丁特征的多尺度决策树回归投票方法,用于侧向头影X线照片中的自动地标检测。然后,通过使用检测到的界标位置来计算一些临床测量值。最后,在本研究中测试了两个数据库:一个是2015年ISBI Challenge的300例侧脑波的基准数据库,另一个是我们自己的165例侧脑波的数据库。实验结果表明,我们提出的方法的性能令人满意,可用于横向头颅图的界标检测和测量分析。

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