Detecting Double-Identity Fingerprint Attacks

M. Ferrara;R. Cappelli;D. Maltoni
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Abstract

Double-identity biometrics, that is the combination of two subjects’ features into a single template, was demonstrated to be a serious threat against existing biometric systems. In fact, well-synthetized samples can fool state-of-the-art biometric verification systems, leading them to falsely accept both the contributing subjects. This work proposes one of the first techniques to defy existing double-identity fingerprint attacks. The proposed approach inspects the regions where the two aligned fingerprints overlap but minutiae cannot be consistently paired. If the quality of these regions is good enough to minimize the risk of false or miss minutiae detection, then the alarm score is increased. Experimental results carried out on two fingerprint databases, with two different techniques to generate double-identity fingerprints, validate the effectiveness of the proposed approach.
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检测双身份指纹攻击
双重身份生物识别技术,即将两个受试者的特征组合到一个模板中,被证明是对现有生物识别系统的严重威胁。事实上,合成良好的样品可以欺骗最先进的生物识别验证系统,导致它们错误地接受两个贡献主体。这项工作提出了对抗现有双重身份指纹攻击的首批技术之一。提出的方法检查区域,其中两个对齐指纹重叠,但细节不能一致配对。如果这些区域的质量足够好,可以将错误或遗漏细节检测的风险降到最低,那么报警分数就会增加。在两个指纹数据库上使用两种不同的技术生成双身份指纹,实验结果验证了该方法的有效性。
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2024 Index IEEE Transactions on Biometrics, Behavior, and Identity Science Vol. 6 Table of Contents IEEE T-BIOM Editorial Board Changes IEEE Transactions on Biometrics, Behavior, and Identity Science Cutting-Edge Biometrics Research: Selected Best Papers From IJCB 2023
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