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Color Constancy in 3D-2D Face Recognition

机译:3D-2D人脸识别中的色彩恒定

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摘要

Face is one of the most popular biometric modalities. However, up to now, color is rarely actively used in face recognition. Yet, it is well-known that when a person recognizes a face, color cues can become as important as shape, especially when combined with the ability of people to identify the color of objects independent of illuminant color variations. In this paper, we examine the feasibility and effect of explicitly embedding illuminant color information in face recognition systems. We empirically examine the theoretical maximum gain of including known illuminant color to a 3D-2D face recognition system. We also investigate the impact of using computational color constancy methods for estimating the illuminant color, which is then incorporated into the face recognition framework. Our experiments show that under close-to-ideal illumination estimates, one can improve face recognition rates by 16%. When the illuminant color is algorithmically estimated, the improvement is approximately 5%. These results suggest that color constancy has a positive impact on face recognition, but the accuracy of the illuminant color estimate has a considerable effect on its benefits.
机译:脸部是最流行的生物特征识别方式之一。但是,到目前为止,在面部识别中很少积极使用色彩。然而,众所周知的是,当人识别出面部时,色彩提示与形状一样重要,特别是当与人识别与照明颜色变化无关的物体颜色的能力相结合时。在本文中,我们研究了在面部识别系统中明确嵌入光源颜色信息的可行性和效果。我们凭经验检查将3D-2D人脸识别系统包含已知光源颜色的理论最大增益。我们还研究了使用计算颜色恒定性方法估算光源颜色的影响,然后将其合并到面部识别框架中。我们的实验表明,在接近理想照明估计的情况下,可以将面部识别率提高16%。当通过算法估算光源颜色时,改进约为5%。这些结果表明颜色恒定性对人脸识别有积极影响,但是光源颜色估计的准确性对其好处有很大影响。

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