首页> 外文会议>2011 IEEE International Carnahan Conference on Security Technology >Robustness analysis of likelihood ratio score fusion rule for multimodal biometric systems under spoof attacks
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Robustness analysis of likelihood ratio score fusion rule for multimodal biometric systems under spoof attacks

机译:欺骗攻击下多模式生物特征系统似然比评分融合规则的鲁棒性分析

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Recent works have shown that, contrary to a common belief, multi-modal biometric systems may be “forced” by an impostor by submitting a spoofed biometric replica of a genuine user to only one of the matchers. Although those results were obtained under a worst-case scenario when the attacker is able to replicate the exact appearance of the true biometric, this raises the issue of investigating more thoroughly the robustness of multi-modal systems against spoof attacks and devising new methods to design robust systems against them. To this aim, in this paper we propose a robustness evaluation method which takes into account also scenarios more realistic than the worst-case one. Our method is based on an analytical model of the score distribution of fake traits, which is assumed to lie between the one of genuine and impostor scores, and is parametrised by a measure of the relative distance to the distribution of impostor scores, we name “fake strength”. Varying the value of such parameter allows one to simulate the different factors which can affect the distribution of fake scores, like the ability of the attacker to replicate a certain biometric. Preliminary experimental results on real bi-modal biometric data sets made up of faces and fingerprints show that the widely used LLR rule can be highly vulnerable to spoof attacks against one only matcher, even when the attack has a low fake strength.
机译:最近的作品表明,与普通信念相反,通过将真正用户的欺骗生物识别副本提交到仅其中一个匹配者,可以通过识别者“强制”。虽然当攻击者能够复制真实生物识别的精确外观时,这些结果是在最坏的情况下获得的,但这提出了更彻底地调查多模态系统的稳健性以及设计设计新方法的问题对他们的鲁棒系统。为此目的,在本文中,我们提出了一种稳健性评估方法,也考虑了比最坏情况更现实的情景。我们的方法基于假特征的分数分布的分析模型,假设在真实和冒名顶替商分数之间躺在那里,并且通过对Impostor分数分布的相对距离的衡量标准进行参数化“假力“。改变此类参数的价值允许人们模拟可能影响虚假分数的分布的不同因素,就像攻击者复制一定的生物识别的能力一样。由面部和指纹组成的真正双模生物识别数据集的初步实验结果表明,即使当攻击具有低假实力时,广泛使用的LLR规则也可能对抗一个唯一匹配的抗击攻击。

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