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Reflectance analysis based countermeasure technique to detect face mask attacks

机译:基于反射分析的对策技术,用于检测口罩攻击

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Face photographs, videos or masks can be used to spoof face recognition systems. Recent studies show that face recognition systems are vulnerable to these attacks. In this paper, a countermeasure technique, which analyzes the reflectance characteristics of masks and real faces, is proposed to detect mask attacks. There are limited studies on countermeasures against mask attacks. The reason for this delay is mainly due to the unavailability of public mask attack databases. In this study, a 2D+3D face mask attack database is used which is prepared for a research project in which the authors are all involved. The performance of the countermeasure is evaluated using the texture images which were captured during the acquisition of 3D scans. The results of the proposed countermeasure outperform the results of existing techniques, achieving a classification accuracy of 94.47%. In this paper, it is also proved that reflectance analysis may provide more information for the purpose of mask spoofing detection compared to texture analysis.
机译:人脸照片,视频或面具可用于欺骗人脸识别系统。最近的研究表明,人脸识别系统很容易受到这些攻击。本文提出了一种对策,通过分析面具和真实面孔的反射特性,来检测面具攻击。关于针对面具攻击的对策的研究有限。延迟的原因主要是由于公共掩码攻击数据库不可用。在这项研究中,使用了一个2D + 3D面罩攻击数据库,该数据库是为所有参与作者的研究项目准备的。使用获取3D扫描期间捕获的纹理图像评估对策的性能。提出的对策的结果优于现有技术的结果,达到了94.47%的分类精度。在本文中,还证明了与纹理分析相比,反射率分析可以为蒙版欺骗检测提供更多的信息。

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