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Gabor filter based optical image recognition using Fractional Power Polynomial model based common discriminant locality preserving projection with kernels

机译:基于分数次幂多项式模型的基于Gabor滤波器的光学图像识别(基于带有核的共同判别局部性保留投影)

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摘要

This paper presents Gabor filter based optical image recognition using Fractional Power Polynomial model based Common Kernel Discriminant Locality Preserving Projection. This method tends to solve the nonlinear classification problem endured by optical image recognition owing to the complex illumination condition in practical applications, such as face recognition. The first step is to apply Gabor filter to extract desirable textural features characterized by spatial frequency, spatial locality and orientation selectivity to cope with the variations in illumination. In the second step we propose Class-wise Locality Preserving Projection through creating the nearest neighbor graph guided by the class labels for the textural features reduction. Finally we present Common Kernel Discriminant Vector with Fractional Power Polynomial model to reduce the dimensions of the textural features for recognition. For the performance evaluation on optical image recognition, we test the proposed method on a challenging optical image recognition problem, face recognition.
机译:本文提出了基于分数阶多项式模型的基于公共核判别局部性保留投影的基于Gabor滤波器的光学图像识别。由于在诸如脸部识别的实际应用中复杂的照明条件,该方法趋于解决光学图像识别所忍受的非线性分类问题。第一步是应用Gabor滤波器提取所需的纹理特征,以空间频率,空间局部性和方向选择性为特征,以应对照明的变化。在第二步中,我们通过创建由类别标签引导的最近邻图来减少纹理特征,从而提出了基于类别的局部性保留投影。最后,我们提出了具有分数幂多项式模型的公共核判别向量,以减少用于识别的纹理特征的维数。为了评估光学图像识别的性能,我们在具有挑战性的光学图像识别问题上对人脸识别进行了测试。

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