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Gender recognition with Gabor filters

机译:Gabor过滤器可识别性别

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摘要

The problem of gender identification was approached in this paper starting from images with faces. In order to extract features, Gabor filters were applied using various orientation angles in order to capture significant gender information. Different classifiers were tested (Support Vector Machines, k-NN, discriminant analysis, neural network) on images from the FERET and AR databases. We obtain very good identification results comparable with those obtained by state-of-the-art algorithms.
机译:本文从带脸的图像开始接近性别识别问题。为了提取特征,使用各种方向角度施加Gabor滤波器,以捕获显着的性别信息。在来自Feret和AR数据库的图像上测试(支持向量机,K-NN,判别分析,神经网络)的不同分类器。我们获得了与最先进的算法获得的识别结果相当的良好识别结果。

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