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Fusion of Holistic and Part Based Features for Gender Classification in the Wild

机译:野外性别分类的整体和基于零件的特征融合

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摘要

Gender classification (GC) in the wild is an active area of current research. In this paper, we focus on the combination of a holistic state of the art approach based on features extracted from the facial pattern, with patch based approaches that focus on inner facial areas. Those regions are selected for being relevant to the human system according to the psychophysics literature: the ocular and the mouth areas. The resulting proposed GC system outperforms previous approaches, reducing the classification error of the holistic approach roughly a 30%.
机译:野外性别分类(GC)是当前研究的活跃领域。在本文中,我们将重点放在基于从面部图案中提取特征的整体先进方法与针对内部面部区域的基于补丁的方法的结合上。根据心理物理学文献选择那些与人类系统相关的区域:眼和口区域。最终提出的气相色谱系统优于以前的方法,将整体方法的分类误差降低了约30%。

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