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Face recognition with Local Zernike Moments features around landmarks

机译:地标周围的局部Zernike Moments功能实现人脸识别

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In this paper, a new method that extracts the features from the complex Local Zernike Moments (LZM) images around facial landmarks is proposed. In this method, multiple grids which are in different sizes are located on landmarks and Phase-Magnitude (PM) histograms are calculated in each cells of these grids. The PM histograms are calculated for every component of LZM and the feature vectors are created by concatenating these histograms. By reducing the dimensionality of these vectors using Whitened Principle Component Analysis, more robust descriptors are constructed. It is shown that the state-of-the-art results are obtained in the experiments performed on FERET database using the proposed method.
机译:本文提出了一种从面部地标周围的复杂局部Zernike矩(LZM)图像中提取特征的新方法。在这种方法中,具有不同大小的多个网格位于地标上,并且在这些网格的每个单元中计算相量(PM)直方图。为LZM的每个分量计算PM直方图,并通过串联这些直方图来创建特征向量。通过使用“变白的主成分分析”减少这些向量的维数,可以构建更强大的描述符。结果表明,使用提出的方法在FERET数据库上进行的实验中获得了最新的结果。

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