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Recognition of Colored Face, Based on an Improved Color Local Binary Pattern

机译:基于改进的彩色局部二值模式的彩色人脸识别

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In this paper, a novel feature extraction method based on an improved color local binary pattern (LBP) is proposed for color face recognition. Firstly, in a given neighborhood of every pixel, we choose some sampling points from three color channels simultaneously and the numbers of the sampling points from every channel may be different. Secondly, we use a new rule to select the threshold which does not always locate in the geometrical center of the given neighborhood. Thirdly, in order to excavate the potential of the proposed sampling method, we use the k-uniform LBP to obtain the binary code of each pixel. In addition, we embed the Hamming distance into our method for improving the recognition rate of the proposed method. For evaluating the performance of our method, we implement the proposed method and several related methods on five public face databases: FERET, CMU-PIE, Georgia, FEI and Asian databases. Experimental results show that our method possesses higher recognition rates and lower computational cost than other related color face recognition methods.
机译:本文提出了一种基于改进的彩色局部二值模式(LBP)的特征提取方法用于彩色人脸识别。首先,在每个像素的给定邻域中,我们同时从三个颜色通道中选择一些采样点,并且每个通道的采样点数可能不同。其次,我们使用新规则来选择阈值,该阈值并不总是位于给定邻域的几何中心。第三,为了挖掘所提出的采样方法的潜力,我们使用k均匀LBP来获得每个像素的二进制代码。另外,我们将汉明距离嵌入到我们的方法中,以提高所提出方法的识别率。为了评估我们方法的性能,我们在五个公众数据库中实施了建议的方法和几种相关方法:FERET,CMU-PIE,乔治亚州,FEI和亚洲数据库。实验结果表明,与其他相关彩色人脸识别方法相比,该方法具有较高的识别率和较低的计算成本。

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