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Age Grouping with Central Local Binary Pattern based Structure Co-occurrence Features

机译:基于中心局部二进制模式的结构共现特征的年龄分组

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摘要

In this paper, we introduced new Age Classification method with Contrast, Correlation, Energy, and Local homogeneity features on Central Local Binary Pattern based Structure. Local Binary Pattern is computed on the image and then Central Local Binary Pattern based Structure is formed, and on this matrix Cooccurrence features Contrast, correlation, energy and homogeneity are evaluated in four directions 0°, 45°, 90° and 135. The proposed Age Classification algorithm is trained and tested with FG-Net aging database and scanned facial images has shown considerable improvement in the grouping of adult and child groups.
机译:在本文中,我们在基于中心局部二元模式的结构上引入了具有对比度,相关性,能量和局部同质性特征的新年龄分类方法。在图像上计算局部二值模式,然后形成基于中央局部二值模式的结构,并在此矩阵上同时出现特征的对比度,相关性,能量和同质性在四个方向0°,45°,90°和135上进行评估。使用FG-Net衰老数据库对“年龄分类”算法进行了训练和测试,扫描的面部图像在成人和儿童组的分组中显示出了很大的进步。

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