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Illumination Normalization Based on Weber's Law With Application to Face Recognition

机译:基于韦伯定律的照明归一化及其在人脸识别中的应用

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摘要

Weber''s law suggests that for a stimulus, the ratio between the smallest perceptual change and the background is a constant, which implies stimuli are perceived not in absolute terms but in relative terms. Inspired from this, we exploit and analyze a novel illumination insensitive representation of face images under varying illuminations via a ratio image, called “Weber-face,” where a ratio between local intensity variation and the background is computed. Experimental results on both CMU-PIE and Yale B face databases show that Weber-face performs better than the existing representative approaches.
机译:韦伯定律表明,对于刺激,最小的知觉变化和背景之间的比率是恒定的,这意味着刺激不是绝对的,而是相对的。从中得到启发,我们通过一种称为“韦伯脸”的比率图像来研究和分析变化光照条件下人脸图像的一种新型的光照不敏感表示形式,该比率图像用于计算局部强度变化与背景之间的比率。在CMU-PIE和Yale B人脸数据库上的实验结果表明,Weber-face的性能优于现有的代表性方法。

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