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Face anti-spoofing by identity masking using random walk patterns and outlier detection

机译:使用随机步道模式和异常值检测,通过身份掩蔽面对反欺骗

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Existing architectures used in face anti-spoofing tend to deploy registered spatial measurements to generate feature vectors for spoof detection. This means that the ordering or sequence in which specific statistics are computed cannot be changed, as one moves from one facial profile to another. While this arrangement works in a person-specific setting, it becomes a major drawback when single-sided training is done based on the natural face class alone. To mitigate subject identity linked content interference within the anti-spoofing frame, we propose a identity-independent architecture based on random correlated scans of natural face images. The same natural face image can be scanned multiple times through independent correlated random walks before deriving simple differential features on the 1D scanned vectors. This proposed frame tends to capture the pixel correlation statistics with minimal content interference and shows great promise, particularly when trained on natural face sets, using a one-class support vector machine and cross-validated on other databases.
机译:面部防欺骗中使用的现有架构倾向于部署注册的空间测量以产生用于欺骗检测的特征向量。这意味着不能改变计算特定统计数据的排序或序列,因为从一个面部简档移动到另一个面部轮廓。虽然这种安排在一个特定于人格的设置中,但当单面培训基于单独的自然面类完成单面培训时,它成为一个主要缺点。为了减轻对象身份的链接内容干扰,我们基于自然面部图像的随机相关扫描提出了独立于独立的架构。在推导在1D扫描向量上的简单差分特征之前,可以通过独立相关随机漫步扫描相同的自然面图像。该提出的帧倾向于以最小的内容干扰捕获像素相关统计,并且展示了很大的希望,特别是当在自然面部训练时,使用单级支持向量机并在其他数据库上交叉验证。

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