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Robust Point Set Matching for Partial Face Recognition

机译:鲁棒点集匹配用于部分人脸识别

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Over the past three decades, a number of face recognition methods have been proposed in computer vision, and most of them use holistic face images for person identification. In many real-world scenarios especially some unconstrained environments, human faces might be occluded by other objects, and it is difficult to obtain fully holistic face images for recognition. To address this, we propose a new partial face recognition approach to recognize persons of interest from their partial faces. Given a pair of gallery image and probe face patch, we first detect keypoints and extract their local textural features. Then, we propose a robust point set matching method to discriminatively match these two extracted local feature sets, where both the textural information and geometrical information of local features are explicitly used for matching simultaneously. Finally, the similarity of two faces is converted as the distance between these two aligned feature sets. Experimental results on four public face data sets show the effectiveness of the proposed approach.
机译:在过去的三十年中,在计算机视觉中已经提出了许多面部识别方法,并且它们中的大多数使用整体面部图像来进行人识别。在许多实际场景中,尤其是在一些不受限制的环境中,人脸可能会被其他物体遮挡,因此很难获得完整的人脸图像进行识别。为了解决这个问题,我们提出了一种新的局部人脸识别方法,以从他们的局部人脸识别感兴趣的人。给定一对画廊图像和探头面部补丁,我们首先检测关键点并提取其局部纹理特征。然后,我们提出了一种鲁棒的点集匹配方法来区别地匹配这两个提取的局部特征集,其中局部特征的纹理信息和几何信息都明确地用于同时匹配。最后,将两个面的相似度转换为这两个对齐的特征集之间的距离。在四个公开面孔数据集上的实验结果表明了该方法的有效性。

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