首页> 外文会议>Asian Conference on Computer Vision(ACCV 2007) pt.2; 20071118-22; Tokyo(JP) >Discriminating 3D Faces by Statistics of Depth Differences
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Discriminating 3D Faces by Statistics of Depth Differences

机译:通过深度差异统计来区分3D人脸

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摘要

In this paper, we propose an efficient 3D face recognition method based on statistics of range image differences. Each pixel value of range image represents normalized depth value of corresponding point on facial surface, and so depth differences between two range images' pixels of the same position on face can straightforwardly describe the differences between two faces' structures. Here, we propose to use histogram proportion of depth differences to discriminate intra and inter personal differences for 3D face recognition. Depth differences are computed from a neighbor district instead of direct subtraction to avoid the impact of non-precise registration. Furthermore, three schemes are proposed to combine the local rigid region(nose) and holistic face to overcome expression variation for robust recognition. Promising experimental results are achieved on the 3D dataset of FRGC2.0, which is the most challenging 3D database so far.
机译:在本文中,我们提出了一种基于距离图像差异统计的有效3D人脸识别方法。距离图像的每个像素值表示面部表面上对应点的归一化深度值,因此,面部在相同位置的两个距离图像的像素之间的深度差可以直接描述两个面部结构之间的差。在此,我们建议使用深度差异的直方图比例来区分内部差异和内部差异,以进行3D人脸识别。深度差是从邻近地区计算的,而不是直接减法,以避免非精确配准的影响。此外,提出了三种方案来结合局部刚性区域(鼻子)和整体面部,以克服表情变化,以实现鲁棒识别。在FRGC2.0的3D数据集上取得了可喜的实验结果,这是迄今为止最具挑战性的3D数据库。

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