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Retinex method based on adaptive smoothing for illumination invariant face recognition

机译:基于自适应平滑的Retinex方法用于光照不变的人脸识别

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摘要

In this paper, we propose the Retinex method for illumination invariant face recognition developed on the basis of adaptive smoothing technology. By the well-known Retinex theory, illumination is generally estimated and normalized by smoothing the input image first and then dividing the estimate into the original input image. Therefore, performance mainly depends on how good the estimated illumination is. The proposed method estimates illumination by iteratively convolving the input image with a 3 × 3 smoothing mask weighted by a coefficient via combining two measures of the illumination discontinuity at each pixel. We address a couple of additional concepts, which are designed to be suitable especially for face images. One is the new conduction function for adaptive smoothing, and the other is the smoothing constraint for more accurate description of real environments. In this way, we can achieve an efficient illumination normalization in which face images with even strong shadows are normalized efficiently. The proposed method is evaluated based on Yale face database B, CMU PIE database and AR face database by applying PCA. The comparative results indicate that the proposed method present consistent and promising results even when images under harsh illumination conditions are used as a training set.
机译:在本文中,我们提出了基于自适应平滑技术开发的用于照明不变脸部识别的Retinex方法。根据众所周知的Retinex理论,通常先对输入图像进行平滑处理,然后将其分为原始输入图像,然后对照明进行估计和归一化。因此,性能主要取决于估计的照明度。所提出的方法通过将每个像素的照明不连续性的两种度量结合起来,通过将输入图像与加权系数的3×3平滑蒙版进行迭代卷积来估计照明。我们提出了另外两个概念,这些概念特别适合于人脸图像。一种是用于自适应平滑的新传导函数,另一种是用于更精确地描述实际环境的平滑约束。通过这种方式,我们可以实现有效的照明归一化,其中即使阴影很浓的人脸图像也可以得到有效归一化。应用PCA对Yale人脸数据库B,CMU PIE数据库和AR人脸数据库进行了评估。比较结果表明,即使将恶劣照明条件下的图像用作训练集,所提出的方法也呈现出一致且有希望的结果。

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