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Face Recognition Based on Eigen-illumination Scheme and Uncorrelated Discriminant Analysis

机译:基于特征照明方案和不相关判别分析的人脸识别

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The illumination changes on face images make face recognition a very difficult task. In this paper, a human face representation scheme that is insensitive to illumination variation is proposed in order to deal with the problem. The variations in lighting over human faces are modeled by means of Principal Component Analysis (PCA) on a number of blurred faces under different lighting conditions. Then the 'difference image', which is the difference between the original image and the reconstructed image, is used for face recognition. We also propose an uncorrelated Linear Discriminant Analysis technique for face recognition based on the eigen-illumination representation scheme. This method can obtain the uncorrelated optimal discriminant vectors (UODVs) so that the extracted features are uncorrelated. Experimental results show that the proposed method is effective to deal with varying illimunation problem for face recognition.
机译:面部图像上的照度变化使面部识别成为一项非常困难的任务。为了解决这个问题,本文提出了一种对光照变化不敏感的人脸表示方案。通过主成分分析(PCA)对在不同光照条件下的许多模糊面孔进行建模,以模拟人脸的光照变化。然后,将原始图像和重建图像之间的差异即“差异图像”用于人脸识别。我们还提出了一种基于特征照明表示方案的不相关线性判别分析技术用于人脸识别。该方法可以获得不相关的最佳判别向量(UODV),从而使提取的特征不相关。实验结果表明,该方法能够有效地解决各种人脸识别问题。

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