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The Impact of Specular Highlights on 3D-2D Face Recognition

机译:镜面亮点对3D-2D面部识别的影响

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摘要

One of the most popular form of biometrics is face recognition. Face recognition techniques typically assume that a face exhibits Lambertian reflectance. However, a face often exhibits prominent specularities, especially in outdoor environments. These specular highlights can compromise an identity authentication. In this work, we analyze the impact of such highlights on a 3D-2D face recognition system. First, we investigate three different specularity removal methods as preprocessing steps for face recognition. Then, we explicitly model facial specularities within the face detection system with the Cook-Torrance reflectance model. In our experiments, specularity removal increases the recognition rate on an outdoor face database by about 5% at a false alarm rate of 10~(-3). The integration of the Cook-Torrance model further improves these results, increasing the verification rate by 19% at a FAR of 10~(-3).
机译:最受欢迎的生物识别形式之一是人脸识别。面部识别技术通常假设面部展示兰伯特的反射率。然而,脸部通常呈现出突出的镜面,特别是在室外环境中。这些镜面亮点可能会损害身份认证。在这项工作中,我们分析了这种亮点对3D-2D面部识别系统的影响。首先,我们研究了三种不同的镜面清除方法作为面部识别的预处理步骤。然后,我们用烹饪托管反射率模型明确地模拟面部检测系统内的面部镜面。在我们的实验中,镜面去除将户外面部数据库的识别率提高约5%的误报率为10〜(-3)。烹饪托管模型的集成进一步提高了这些结果,在远远超过10〜(3)时将验证率提高了19%。

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