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Face recognition using binary image metrics

机译:使用二进制图像度量的人脸识别

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摘要

We introduce a novel methodology applicable to face matching and fast screening of large facial databases. The proposed shape comparison method operates on edge maps and derives holistic similarity measures without the explicit need for point-to-point correspondence. While the use of edge images is important to introduce robustness to changes in illumination, the lack of point-to-point matching delivers speed and tolerance to local non-rigid distortions. In particular, we propose a face similarity measure derived as a variant of the Hausdorff distance by introducing the notion of a neighborhood function and associated penalties. Experimental results on a large set of face images demonstrate that our approach produces excellent recognition results even when less than 1% of the original grey scale face image information is stored in the face database (gallery). These results implicate that the process of face recognition may start at a much earlier stage of visual processing than it was earlier suggested.
机译:我们介绍了一种适用于面部匹配和快速筛选大型面部数据库的新型方法。所提出的形状比较方法在边缘地图上运行,并导出整体相似度措施,而不明确需要点对点对应。虽然边缘图像的使用对于引入照明的变化很重要,但缺乏点对点匹配为局部非刚性扭曲提供速度和容差。特别地,我们提出了通过引入邻域函数的概念和相关惩罚的概念来提出作为Hausdorff距离的变体的面部相似度测量。在大量的面部图像上的实验结果表明,即使当少于1%的原始灰度面部图像信息存储在面部数据库(画廊)中,我们的方法也能产生出色的识别结果。这些结果涉及面部识别的过程可以从早期的视觉处理阶段开始,而不是早期建议。

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