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Illumination normalization for edge-based face recognition using the fusion of RGB normalization and gamma correction

机译:利用RGB归一化融合和伽马校正的边缘面部识别照明归一化

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In this paper, an illumination normalization technique for edge-based face recognition on face images with non-uniform illumination conditions, is proposed. The proposed illumination normalization technique fuses the merits of color (Red, Green and Blue) normalization (Nrgb) and gamma correction (GC) for color images. By the fusion of these methods the image becomes independent of the change in face images due to illumination direction. In that way, the presence of false edges in gradient faces is reduced. Experimental results on Georgia Tech Face database with illumination problem shows that the proposed technique improved significantly recognition accuracy in comparison to histogram equalization (HE), logarithm transform (LT) and gamma correction (GC).
机译:在本文中,提出了一种具有非均匀照明条件的面部图像的边缘面部识别的照明归一化技术。所提出的照明归一化技术融合了颜色(红色,绿色和蓝色)归一化(NRGB)和伽马校正(GC)的彩色图像的优点。通过这些方法的融合,图像变得独立于由于照明方向而变化。以这种方式,减少了梯度面中的假边缘的存在。 Georgia Tech Face数据库与照明问题的实验结果表明,该技术与直方图均衡(HE),对数变换(LT)和伽马校正(GC)相比,提出了显着的识别准确性。

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