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Face anti-spoofing based on projective invariants

机译:基于射影不变量的人脸反欺骗

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The most common security authentication systems rely on automatic face recognition, which is particularly vulnerable to various spoofing attacks. Often these attacks include attempts to deceive a system by using a photo or video recording of a legitimate user. Recent approaches to this problem are based on pure machine learning techniques that require large training datasets and generalize or scale, poorly.By contrast, we present a geometric approach for detecting spoofing attacks in face recognition based authentication systems. By locating planar regions around racial landmarks, our method distinguishes between genuine user recordings and recordings of spoofed images such as printed photos and video replays.The proposed algorithm is based on projective invariant relationships that are independent of the camera parameters and lighting conditions. Unlike previous geometric approaches, the input to our system is a stream of two RGB cameras. Comparing with methods implemented by a single RGB camera, our approach is significantly more accurate and is completely automatic, since we do not require head movements and other user interactions. While, on the other hand, our method does not employ expensive devices, such as depth or thermal cameras, and it operates both in indoor and outdoor settings.
机译:最常见的安全身份验证系统依赖于自动面部识别,这特别容易受到各种欺骗攻击的攻击。通常,这些攻击包括尝试使用合法用户的照片或视频记录欺骗系统。针对这一问题的最新方法是基于纯机器学习技术的,该技术需要大量的训练数据集,并且难以推广或扩展。相比之下,我们提出了一种用于在基于面部识别的身份验证系统中检测欺骗攻击的几何方法。通过在种族地标周围定位平面区域,我们的方法可以区分真实的用户录制内容和伪造的图像录制内容,例如打印的照片和视频重播。所提出的算法基于与相机参数和照明条件无关的投影不变关系。与以前的几何方法不同,我们系统的输入是两个RGB摄像机的流。与由单个RGB相机实现的方法相比,我们的方法要精确得多,并且是完全自动的,因为我们不需要头部移动和其他用户交互。另一方面,我们的方法不使用昂贵的设备,例如深度或热像仪,并且可以在室内和室外环境下运行。

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