使用韦伯局部描述符的人脸识别

Dayi Gong, Shutao Li, Yin Xiang
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引用次数: 20

摘要

提出了一种基于韦伯局部描述子(WLD)特征的人脸识别方法。WLD由差分激励分量和方向分量组成,其中包含丰富的局部纹理信息。在我们的方法中,我们首先将人脸图像分成一组子区域,并分别提取它们的WLD特征。我们引入Sobel描述符来获得方向分量。然后用最近邻法对探测图像的各个子区域进行识别,并在决策层通过投票将结果融合,得到最终的识别结果。在ORL和耶鲁人脸数据库上的实验结果验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Face recognition using the Weber Local Descriptor
This paper presents a face recognition method using the Weber Local Descriptor (WLD) feature. The WLD consists of differential excitation component and orientation component, which contains abundant local texture information. In our method, we firstly divide face images into a set of sub-regions and extract their WLD features respectively. We introduce the Sobel descriptor to obtain the orientation component. Then each of sub-regions of probe image is recognized by nearest neighborhood method and the results are fused in decision level through voting to yield the final recognition result. The experimental results over ORL and Yale face database verify the effectiveness of our method.
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