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Presentation Attack Detection in Face Biometric Systems Using Raw Sensor Data from Smartphones

机译:使用来自智能手机的原始传感器数据在人脸生物识别系统中进行演示攻击检测

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Applicability of the face recognition for smartphone-based authentication applications is increasing for different domains such as banking and e-commerce. The unsupervised data capture of face characteristics in biometric applications on smartphones presents the vulnerability to attack the systems using artefact samples. The threat of presentation attacks (a.k.a spoofing attacks) need to be handled to enhance the security of the biometric system. In this work, we present a new approach of using the raw sensor data. We first obtain the residual image corresponding to noise by subtracting the median filtered version of raw data and then computing simple energy value to detect the artefact based presentations. The presented approach uses simple threshold and thereby overcomes the need for learning complex classifiers which are challenging to work on unseen attacks. The proposed method is evaluated using a newly collected database of 390 live presentation attempts of face characteristics and 1530 attack presentations consisting of electronic screen attacks and printed attacks on the iPhone 6S smartphone. Significantly lower average classification error (收起
机译:人脸识别在基于智能手机的身份验证应用程序中的适用性在银行和电子商务等不同领域正在不断增长。智能手机上生物特征识别应用程序中人脸特征的无监督数据捕获呈现了使用伪影样本攻击系统的漏洞。需要处理表示攻击(也称为欺骗攻击)的威胁,以增强生物识别系统的安全性。在这项工作中,我们提出了一种使用原始传感器数据的新方法。我们首先通过减去原始数据的中值滤波后的版本,然后计算简单的能量值来检测基于伪像的表示,从而获得与噪声相对应的残差图像。提出的方法使用简单的阈值,从而克服了学习复杂分类器的需求,这对于处理看不见的攻击具有挑战性。使用新收集的数据库进行评估,该数据库包含390个面部特征的实时演示尝试和1530个攻击演示,包括iPhone 6S智能手机上的电子屏幕攻击和印刷攻击。平均分类错误(收起)明显降低

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