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Polarization Imaging for Face Spoofing Detection: Identification of Black Ethnical Group

机译:面对欺骗检测的极化成像:黑人族的识别

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Recently, several studies have shown the ability of polarized light as one of the face spoofing countermeasures. In this paper, polarized light is used to identify genuine human user from black ethnical skin color. Printed photos are used as spoofing attacks. Then, the Stokes parameters are applied to generate ISDOLPimage for each genuine face and printed photo. Visually, the ISDOLPof genuine black users seem brighter than the other skin colors. The mean intensity has erroneously classified all the ISDOLPimages of black skins as photo faces. Coarsely comparing ISDOLPhistograms of black skin and printed photos shows that data distributions between the black skin and printed photo are relatively similar. The bimodality coefficient (BC) algorithm is then applied to study the distributions modality. Surprisingly, the BC has been able to identify these genuine black skin group well, but fails to other ethnical groups. A newly proposed fusion formula which is named as the Mean_BC (MBC) has achieved higher detection accuracy rate and can be a robust face spoofing detection measure for polarized database consists of various ethnical groups.
机译:最近,几项研究表明了偏振光作为脸部欺骗对策之一的能力。在本文中,偏振光用于识别来自黑色民族肤色的真正人类用户。打印的照片用作欺骗攻击。然后,应用Stokes参数来生成i sdolp 每个真正的脸部和印刷照片的图像。在视觉上,我 sdolp 真正的黑用户看起来比其他肤色更亮。平均强度错误地分类了所有我 sdolp 黑皮肤的图像作为照片面孔。粗略地比较I. sdolp 黑色皮肤和印刷照片的直方图表明,黑色皮肤和印刷照片之间的数据分布相对相似。然后应用BimoDality系数(BC)算法来研究分布模态。令人惊讶的是,BC能够识别这些真正的黑色皮肤群,但不能对其他种族群体进行。一种新的融合公式被命名为平均值(MBC)的检测精度率达到了更高的检测精度率,并且可以是偏振数据库的稳健脸部欺骗检测度量,包括各种各样的种族组。

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