一种新的多光谱人脸活力检测方法

Yueyang Wang, X. Hao, Yali Hou, Changqing Guo
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引用次数: 28

摘要

人脸识别系统可以被照片、模拟面具、人体模型等欺骗。随着3D打印技术的进步,需要一种更加鲁棒的人脸活体检测方法。本文提出了一种基于梯度的多光谱人脸活体检测方法。基于两个光谱波段,对该方法进行了真实人脸和常见伪装人脸的分类试验。真阳性率为96.7%,真阴性率为97%。当人脸发生旋转时,测试了该方法的性能。本文的主要贡献有:首先,提出了一种基于梯度的多光谱方法。该方法除了考虑皮肤区域的反射率外,还考虑了面部其他特征区域的反射率。其次,基于平面照片和三维人体模型和面具的数据集对该方法进行了测试。讨论了在不同面向下的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A New Multispectral Method for Face Liveness Detection
A face recognition system can be deceived by photos, mimic masks, mannequins and etc. And with the advances in the 3D printing technology, a more robust face liveness detection method is needed. In this paper, a gradient-based multispectral method has been proposed for face liveness detection. Based on two spectral bands, the developed method is tested for the classification of genuine faces and common disguised faces. A true positive rate of 96.7% and a true negative rate of 97% have been achieved. The performance of the method is also tested when face rotation occurs. The contributions of this paper are: First, a gradient-based multispectral method has been proposed. Except for the reflectance of the skin regions, the reflectance of other distinctive regions in a face are also considered in the developed method. Second, the method is tested based on a dataset with both planar photos and 3D mannequins and masks. The performance on different face orientations is also discussed.
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