Reliable face anti-spoofing using multispectral SWIR imaging

Holger Steiner, A. Kolb, Norbert Jung
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引用次数: 73

Abstract

Recent studies point out that spoofing attacks using facial masks still are a severe problem for current biometric face recognition (FR) systems. As such systems are becoming more frequently used, for example, for automated border crossing or access control to critical infrastructure, advanced anti-spoofing techniques are necessary to counter these attacks. This work presents a novel, cross-modal approach that enhances existing solutions for face verification and uses multispectral short wave infrared (SWIR) imaging to ensure the authenticity of a face even in the presence of partial disguises and masks. It is evaluated on a dataset containing 137 subjects and a variety of spoofing attacks. Using a commercial FR system, it successfully rejects all attempts to counterfeit a foreign face with a false acceptance rate FARcf = 0% and most attempts to disguise the own identity with FARdg = 1% at a false rejection rate of FRR <; 5% using SWIR images for verification.
使用多光谱SWIR成像可靠的面部抗欺骗
最近的研究指出,利用面具进行欺骗攻击仍然是当前生物特征人脸识别(FR)系统面临的一个严重问题。由于此类系统的使用越来越频繁,例如,用于自动过境或关键基础设施的访问控制,因此需要先进的反欺骗技术来对抗这些攻击。这项工作提出了一种新的、跨模态的方法,增强了现有的面部验证解决方案,并使用多光谱短波红外(SWIR)成像来确保面部的真实性,即使在部分伪装和面具存在的情况下。它在包含137个主题和各种欺骗攻击的数据集上进行评估。使用商业FR系统,它成功地拒绝了所有伪造外国面孔的企图,错误接受率为FARcf = 0%,大多数企图伪装自己身份的企图,FARdg = 1%,错误拒绝率为FRR <;5%使用SWIR图像进行验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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