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Multibiometric human recognition using 3D ear and face features

机译:使用3D耳朵和面部特征进行多生物识别

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摘要

We present automatic extraction of local 3D features (L3DF) from ear and face biometrics and their combination at the feature and score levels for robust identification. To the best of our knowledge, this paper is the first to present feature level fusion of 3D features extracted from ear and frontal face data. Scores from L3DF based matching are also fused with iterative closest point algorithm based matching using a weighted sum rule. We achieve identification and verification (at 0.001 FAR) rates of 99.0% and 99.4%, respectively, with neutral and 96.8% and 97.1% with non-neutral facial expressions on the largest public databases of 3D ear and face.
机译:我们提出了从耳朵和面部生物特征中自动提取局部3D特征(L3DF)及其在特征和分数级别的组合,以进行可靠的识别。据我们所知,本文是第一篇介绍从耳朵和额头面部数据中提取的3D特征的特征级融合的文章。来自基于L3DF的匹配的分数也与使用加权和规则的基于迭代最近点算法的匹配融合在一起。在3D耳朵和面部最大的公共数据库上,我们的识别和验证(以0.001 FAR的比率)分别达到99.0%和99.4%的中性,96.8%和97.1%的非中性面部表情。

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