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A Region Ensemble for 3-D Face Recognition

机译:用于3D人脸识别的区域合奏

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摘要

In this paper, we introduce a new system for 3-D face recognition based on the fusion of results from a committee of regions that have been independently matched. Experimental results demonstrate that using 28 small regions on the face allow for the highest level of 3-D face recognition. Score-based fusion is performed on the individual region match scores and experimental results show that the Borda count and consensus voting methods yield higher performance than the standard sum, product, and min fusion rules. In addition, results are reported that demonstrate the robustness of our algorithm by simulating large holes and artifacts in images. To our knowledge, no other work has been published that uses a large number of 3-D face regions for high-performance face matching. Rank one recognition rates of 97.2% and verification rates of 93.2% at a 0.1% false accept rate are reported and compared to other methods published on the face recognition grand challenge v2 data set.
机译:在本文中,我们基于融合了独立匹配区域的委员会的结果,介绍了一种用于3-D人脸识别的新系统。实验结果表明,在面部使用28个小区域可实现最高水平的3-D面部识别。对各个区域的匹配分数执行基于分数的融合,实验结果表明,Borda计数和共识投票方法比标准和,乘积和最小融合规则具有更高的性能。此外,据报道,通过模拟图像中的大孔和伪影,结果证明了我们算法的鲁棒性。据我们所知,尚未发表其他使用大量3-D人脸区域进行高性能人脸匹配的工作。报告了17.2%的第一识别率和0.1%的错误接受率的93.2%的验证率,并与在面部识别大挑战v2数据集上发布的其他方法进行了比较。

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