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Motion-based countermeasure against photo and video spoofing attacks in face recognition

机译:基于运动的人脸识别中针对照片和视频欺骗攻击的对策

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摘要

Facial biometric systems are vulnerable to fraudulent access attempts by presenting photographs or videos of a valid user in front of the sensor also known as "spoofing attacks". Multiple protection measures have been proposed but limited attention has been dedicated to exclusive motion-based countermeasures since the arrival of video and mask attacks. A novel motion-based countermeasure which exploits natural and unnatural motion cues is presented. The proposed method takes advantage of the Conditional Local Neural Fields (CLNF) face tracking algorithm to extract rigid and non-rigid face motions. Similarly to the bag-of-words feature encoding, a vocabulary of motion sequences is constructed to derive discriminant mid-level motion features using the Fisher vector framework. Extensive experiments are conducted on ReplayAttack-DB, CASIA-FASD and MSU-MFSD databases. Complementary experiments on rigid mask attacks from the 3DMAD public database are also conducted and generalization issues are investigated via cross-database evaluation in particular.
机译:通过将有效用户的照片或视频呈现在传感器前面(也称为“欺骗攻击”),面部生物识别系统很容易遭受欺诈性访问尝试。已经提出了多种保护措施,但是自从视频和掩码攻击到来以来,对基于运动的专有对抗措施的关注有限。提出了一种新颖的基于运动的对策,该对策利用了自然和非自然的运动线索。所提出的方法利用条件局部神经场(CLNF)人脸跟踪算法来提取刚性和非刚性人脸运动。类似于词袋特征编码,使用Fisher向量框架构造运动序列的词汇表,以导出判别性的中级运动特征。在ReplayAttack-DB,CASIA-FASD和MSU-MFSD数据库上进行了广泛的实验。还进行了来自3DMAD公共数据库的刚性掩码攻击的补充实验,并特别通过跨数据库评估研究了泛化问题。

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