在黎曼背景下,鼻尖在三维面部的姿态、表情和咬合变化定位

Samia Bentaieb, A. Ouamri, M. Keche
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引用次数: 3

摘要

鼻尖定位是三维人脸数据配准、预处理和识别的重要步骤。在本文中,我们提出了一种新的鼻尖检测方法,该方法对姿势和表情变化以及存在遮挡具有鲁棒性。从旋转的三维人脸中提取与轮廓曲线模型匹配的面部曲线。在弹性形状分析的基础上,利用黎曼几何进行最优匹配,得到精确的鼻尖。该方法不需要训练,可以在不到6秒的时间内定位鼻尖。实验在博斯普鲁斯数据库上进行。并与地面真值位置进行了定量分析和比较。结果表明,该方法在误差不大于12 mm的范围内达到97.68%,误差在20 mm以内达到98.19%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nose tip localization on a three dimensional face across pose, expressions and occlusions variations in a Riemannian context
Nose tip localization is an important step for registration, preprocessing and recognition of 3D face data. In this paper, we propose a new approach for the nose tip detection that is robust to pose and expression variations and in presence of occlusions. From a rotated 3D face, we extract facial curves that are matched to a profile curve model. An optimal matching using the Riemannian geometry, based on the Elastic Shape Analysis is performed to obtain the accurate nose tip. The proposed method requires no training and can locate the nose tip in less than 6 seconds. Experiments are performed on the Bosphorus database. Quantitative analysis and comparison with the ground truth locations are provided. The results confirm that our approach achieves 97.68% with error no larger than 12 mm and 98.19% within 20 mm.
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