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Automated 3D Face Authentication Recognition

机译:自动3D面部身份验证和识别

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摘要

This paper presents a fully automated 3D face authentication (verification) and recognition (identification) method and recent results from our work in this area. The major contributions of our paper are: (a) the method can handle data with different facial expressions including hair, upper body, clothing, etc. and (b) development of weighted features for discrimination. The input to our system is a triangular mesh and it outputs a matching % against a gallery. Our method includes both surface and curve based features that are automatically extracted from a given face data. The test set for authentication consisted of 117 different people with 421 scans including different facial expressions. Our study shows Equal Error Rate (EER) at 0.065% for normal faces and 1.13% in faces with expressions. We report verification rates of 100% in normal faces and 93.12% in faces with expressions at 0.1% FAR. For identification, our experiment shows 100% rate in normal faces and 95.6% in faces with expressions. From our experiment we conclude that combining feature points, profile curve, and partial face surface matching gives better authentication and recognition rate than any single matching method.
机译:本文介绍了全自动3D面部认证(验证)和识别(识别)方法,以及我们在该领域的工作的最新结果。本文的主要贡献是:(a)该方法可以处理具有不同面部表情的数据,包括头发,上身,服装等和(b)加权特征的歧视。对我们系统的输入是三角网格,它输出匹配的百分比对库。我们的方法包括从给定的面部数据自动提取的表面和基于曲线的特征。用于认证的测试集由117个不同的人组成,421个扫描包括不同的面部表情。我们的研究表明,对于正常的面孔,在0.065%的射击率(EER),表达式的脸部为1.13%。我们报告正常面积为100%的验证率,面对脸部的93.12%,表达率远远为0.1%。有关识别,我们的实验显示普通面上的100%率和表达式的面孔95.6%。从我们的实验开始,我们得出结论,组合特征点,轮廓曲线和部分面部匹配,提供比任何单一匹配方法更好的认证和识别率。

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