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Illumination and Rotation Invariant Texture Representation for Face Recognition

机译:用于面部识别的照明和旋转不变纹理表示

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This article presents a novel approach for illumination and rotation invariant texture representation for face recognition. A gradient transformation is used as illumination invariance property and a Galois Field for the rotation invariance property. The normalized cumulative histogram bin values of the Gradient Galois Field transformed image represent the illumination and rotation invariant texture features. These features are further used as face descriptors. Experimentations are performed on FERET and extended Cohn Kanade databases. The results show that the proposed method is better as compared to Rotation Invariant Local Binary Pattern, Log-polar transform and Sorted Local Gradient Pattern and is illumination and rotation invariant.
机译:本文提出了一种用于面部识别的照明和旋转不变纹理表示的新颖方法。梯度变换用作照明不变性,而伽罗瓦场用作旋转不变性。渐变Galois场变换图像的归一化累积直方图bin值表示照明和旋转不变纹理特征。这些功能还用作面部描述符。在FERET和扩展的Cohn Kanade数据库上进行实验。结果表明,与旋转不变局部二值模式,对数极坐标变换和排序局部梯度模式相比,该方法具有更好的照明和旋转不变性。

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