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Sparse Matching of Salient Facial Curves for Recognition of 3-D Faces With Missing Parts

机译:突出面部曲线的稀疏匹配以识别3D面部缺失零件

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摘要

In this work, we propose and experiment a 3-D face recognition approach capable of performing accurate face matching also in the case where just parts of probe scans are available. This is obtained through an original face representation and matching solution that first extracts keypoints of the 3-D depth image of the face and then measures how the face depth changes along facial curves connecting pairs of keypoints. Face similarity is evaluated by sparse comparison of facial curves defined across inlier pairs of matching keypoints between probe and gallery scans. In doing so, a statistical model is also proposed to associate facial curves of the gallery scans with a saliency measure so that curves that model characterizing traits of some subjects are distinguished from curves that are frequently observed in the face of many different subjects. Following recent related work, the recognition accuracy of the approach is experimented using two datasets, both comprising scans with missing parts: the Face Recognition Grand Challenge v2.0 dataset combined with the University of Notre Dame probes; the Gavab dataset.
机译:在这项工作中,我们提出并尝试了一种3D人脸识别方法,该方法即使在只有部分探头扫描可用的情况下也能够执行精确的人脸匹配。这是通过原始面部表示和匹配解决方案获得的,该解决方案首先提取面部3-D深度图像的关键点,然后测量面部深度如何沿着连接关键点对的面部曲线变化。通过稀疏比较在探针扫描和画廊扫描之间的匹配关键点的对之间定义的面部曲线,可以评估面部相似度。在此过程中,还提出了一种统计模型,以将图库扫描的面部曲线与显着性度量相关联,从而将表征某些对象特征的模型的曲线与经常在许多不同对象的脸上观察到的曲线区分开。在进行了最近的相关工作之后,使用两个数据集对方法的识别准确性进行了实验,这两个数据集均包含缺少部分的扫描:人脸识别Grand Challenge v2.0数据集与Notre Dame大学的探针相结合; Gavab数据集。

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