利用少量特征点从未知姿态和光照的单幅图像中进行基于模型的三维形状恢复

H. Rara, A. Farag, Todd Davis
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引用次数: 17

摘要

本文提出了一种基于模型的三维面部形状恢复方法,该方法使用来自未知姿态和光照的输入图像的一小组特征点进行三维面部形状恢复。以前基于模型的方法通常需要从输入图像中获取纹理(阴影)和形状信息,以便进行3D面部形状恢复。然而,这里讨论的方法只需要从单个输入图像中提取二维特征点来重建三维形状。实验结果表明,与地面真实值和以前的方法相比,重建的形状是可以接受的。这项工作在远距离人脸识别(FRAD)等应用中具有潜在价值,其中经典的x形状(例如,立体,运动和阴影)算法由于输入图像质量而不可行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model-based 3D shape recovery from single images of unknown pose and illumination using a small number of feature points
This paper proposes a model-based approach for 3D facial shape recovery using a small set of feature points from an input image of unknown pose and illumination. Previous model-based approaches usually require both texture (shading) and shape information from the input image in order to perform 3D facial shape recovery. However, the methods discussed here need only the 2D feature points from a single input image to reconstruct the 3D shape. Experimental results show acceptable reconstructed shapes when compared to the ground truth and previous approaches. This work has potential value in applications such face recognition at-a-distance (FRAD), where the classical shape-from-X (e.g., stereo, motion and shading) algorithms are not feasible due to input image quality.
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