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Face Recognition Using Multiscale and Spatially Enhanced Weber Law Descriptor

机译:使用多尺度和空间增强的韦伯法描述符的人脸识别

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The paper introduces multiscale spatial Weber local descriptor (MSWLD) for robust face recognition system. In the proposed method, WLD is calculated in different neighborhood (multiscale) and WLD histograms are obtained from blocks of an image to preserve spatial information. WLD histograms from different blocks are then concatenated to produce the final feature set of a face image. Fisher ratio is applied to extract the dominant bins from the final WLD histogram. The MSWLD is evaluated on FERET and AT&T databases. In the experiments, the proposed method outperformed two state of the art techniques, namely, principal component analysis and local binary pattern.
机译:本文介绍了用于强大的面部识别系统的MultiScale Spatial Weber本地描述符(MSWLD)。在所提出的方法中,在不同的邻域(MultiScale)中计算WLD,并且从图像的块获得以保留空间信息的WLD直方图。然后连接来自不同块的WLD直方图以产生面部图像的最终特征集。渔业比率应用于从最终的WLD直方图中提取显性箱。 MSWLD在Feret和AT&T数据库上进行评估。在实验中,所提出的方法表现出两种技术的技术,即主成分分析和局部二进制图案。

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