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Local Gabor Binary Patterns Based on Kullback–Leibler Divergence for Partially Occluded Face Recognition

机译:基于Kullback-Leibler发散的局部Gabor二元模式用于部分遮挡的人脸识别

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摘要

The partial occlusion is one of the key issues in the face recognition community. To resolve the problem of partial occlusion, based on our previous work of local Gabor binary patterns (LGBP) for face recognition, we further propose Kullback–Leibler divergence (KLD)-based LGBP for partial occluded face recognition. The local property of LGBP face recognition is thoroughly used in the method, by introducing KLD between the LGBP feature of the local region and that of the non-occluded local region to estimate the probability of occlusion. The probability is used as the weight of the local region for the final feature matching. The experimental results on the AR face database demonstrate the effectiveness of the KLD-based LGBP face recognition method for partially occluded face images.
机译:部分遮挡是面部识别社区中的关键问题之一。为了解决部分遮挡的问题,基于我们先前用于面部识别的局部Gabor二进制模式(LGBP)的工作,我们进一步提出了基于Kullback-Leibler散度(KLD)的LGBP用于部分遮挡的面部识别。通过在局部区域的LGBP特征和非遮挡局部区域的LGBP特征之间引入KLD来估计遮挡的可能性,该方法充分利用了LGBP人脸识别的局部属性。该概率用作最终特征匹配的局部区域的权重。 AR人脸数据库上的实验结果证明了基于KLD的LGBP人脸识别方法对于部分遮挡的人脸图像的有效性。

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