Stereo-assisted landmark detection for the analysis of changes in 3-D facial shape.

A J Naftel, M J Trenouth
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引用次数: 8

Abstract

In this paper, a semi-automated approach to 3-D landmark digitization of the face is described which uses a combination of active shape model-driven feature detection and stereophotogrammetric analysis. The study aims to assess whether the proposed method is capable of detecting statistically significant changes in facial soft tissue shape due to mandibular repositioning in a cross-sectional patient sample. A hybrid stereophotogrammetric and structured-light imaging system is used for acquiring 3-D face models in the first instance. A landmark-based statistical analysis of facial shape change is then carried out using procrustes registration, principal component analysis and thin plate spline warping on the 2-D facial midline profiles and automatically digitized 3-D landmarks. The proposed method is validated both statistically and visually by characterizing shape changes induced by mandibular repositioning in a heterogeneous cross-sample of 20 orthodontic patients. It is shown that the method is capable of distinguishing between changes in facial morphology due to simulated surgical correction and changes due to other factors such as growth and normal variation within the patient sample. The study shows that the proposed method may be useful for auditing outcomes of clinical treatment or surgical intervention which result in changes to facial soft tissue morphology.

用于分析三维面部形状变化的立体辅助地标检测。
本文描述了一种结合主动形状模型驱动特征检测和立体摄影测量分析的半自动人脸三维地标数字化方法。该研究旨在评估所提出的方法是否能够在横断面患者样本中检测由于下颌重新定位导致的面部软组织形状的统计学显著变化。首先,采用混合立体摄影测量和结构光成像系统获取三维人脸模型。然后,利用二维面部中线轮廓的凸突配准、主成分分析和薄板样条翘曲,以及自动数字化的三维地标,对面部形状变化进行了基于地标的统计分析。通过对20名正畸患者的异质性交叉样本中下颌重新定位引起的形状变化进行统计和视觉验证。研究表明,该方法能够区分由于模拟手术矫正引起的面部形态学变化和由于患者样本内生长和正常变化等其他因素引起的变化。研究表明,所提出的方法可用于审计临床治疗或手术干预的结果,导致面部软组织形态的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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