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Robustness of Multi Biometric Authentication Systems against Spoofing

机译:多生物特征认证系统对欺骗的鲁棒性

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Nowadays biometric authentication systems have been more developed, especially in secure and financial systems; so cracking a biometric authentication system is now a growing concern. But their security has not received enough attention. Imitating a biometric trait of a genuine user to deceive a system, spoofing, is the most important attacking method. Multi biometric systems have been developed to overcome some weaknesses of single biometric systems because the forger needs to imitate more than one trait. No research has further investigated the vulnerability of multimodal systems against spoof attack. We empirically examine the robustness of five fixed rules combining similarity scores of face and fingerprint traits in a bimodal system. By producing different spoof scores, the robustness of fixed combination rules is examined against various possibilities of spoofing. Robustness of a multi biometric system depends on the combination rule, the spoof trait and the intensity of spoofing. Min rule shows the most robustness when face is spoofed especially in very secure systems but when the fingerprint is faked the max rule shows the least vulnerability against possibilities of spoofing.
机译:如今,生物特征认证系统得到了进一步发展,特别是在安全和金融系统中。因此,破解生物特征认证系统现在已成为越来越多的关注。但是他们的安全性没有得到足够的重视。模仿真实用户的生物特征以欺骗系统是一种最重要的攻击方法。已经开发了多生物特征识别系统来克服单个生物特征识别系统的一些缺点,因为伪造者需要模仿多个特征。没有研究进一步调查多模式系统针对欺骗攻击的脆弱性。我们以经验的方式研究了在双峰系统中结合面部和指纹特征相似度得分的五个固定规则的鲁棒性。通过产生不同的欺骗评分,可以针对各种欺骗可能性检查固定组合规则的鲁棒性。多生物特征识别系统的鲁棒性取决于组合规则,欺骗性状和欺骗强度。最小规则在欺骗人脸时尤其是在非常安全的系统中显示出最强的鲁棒性,但是在伪造指纹时,最大规则则显示出对欺骗可能性的抵抗力最小。

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