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Context based face spoofing detection using active near-infrared images

机译:使用活动近红外图像的基于上下文的面部欺骗检测

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In this paper, with the help of controllable active near-infrared (NIR) lights, we construct near-infrared differential (NIRD) images. Based on reflection model, NIRD image is believed to contain the lighting difference between images with and without active NIR lights. Two main characteristics based on NIRD images are exploited to conduct spoofing detection. Firstly, there exist obviously spoofing media around the faces in most conditions, which reflect incident lights in almost the same way as the face areas do. We analyze the pixel consistency between face and non-face areas and employ context clues to distinguish the spoofing images. Then, lighting feature, extracted only from face areas, is utilized to detect spoofing attacks of deliberately cropped medium. Merging the two features, we present a face spoofing detection system. In several experiments on self collected datasets with different spoofing media, we demonstrate the excellent results and robustness of proposed method.
机译:在本文中,借助可控的主动近红外(NIR)光,我们构建了近红外微分(NIRD)图像。基于反射模型,NIRD图像被认为包含有和没有NIR主动光的图像之间的光照差异。利用基于NIRD图像的两个主要特征来进行欺骗检测。首先,在大多数情况下,脸部周围显然存在欺骗介质,它们以与脸部区域几乎相同的方式反射入射光。我们分析了面部和非面部区域之间的像素一致性,并使用上下文线索来区分欺骗图像。然后,仅从面部区域提取的照明特征被用于检测故意裁剪的介质的欺骗攻击。结合这两个功能,我们提出了一种面部欺骗检测系统。在对使用不同欺骗媒体的自收集数据集进行的几次实验中,我们证明了所提出方法的出色结果和鲁棒性。

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