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Fake face detection based on radiometric distortions

机译:基于辐射畸变的假人脸检测

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Securing face recognition systems against replay attacks has been recognized as a real challenge. In this work, the problem of fake face detection is addressed by modelling radiometric distortions involved in the recapturing process. The originality of our approach is that the fake face detection process occurs after the face identification process. Having access to enrolment data of each client, it becomes possible to estimate the exposure transformation between a test sample and its enrolment counterpart. A compact parametric representation is proposed to model those radiometric transforms and is used as features for classification. We evaluate the proposed method on Replay-Attack, CASIA and MSU public databases and prove that our method is competitive with state of the art countermeasures.
机译:保护人脸识别系统免受重放攻击已被视为一项真正的挑战。在这项工作中,通过对重新捕获过程中涉及的辐射变形进行建模,解决了伪造人脸检测的问题。我们方法的独创性在于,假人脸检测过程是在人脸识别过程之后发生的。可以访问每个客户的注册数据,从而可以估计测试样本与其注册对象之间的暴露转化。提出了一种紧凑的参数表示法来对那些辐射转换进行建模,并将其用作分类的特征。我们在Replay-Attack,CASIA和MSU公共数据库上评估了提出的方法,并证明了我们的方法与最新的对策具有竞争力。

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