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Fast gender recognition by using a shared-integral-image approach

机译:通过使用共享积分图像方法快速识别性别

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We develop a new approach for gender recognition. In this paper, our approach uses the rectangle feature vector (RFV) as a representation to identify humans' gender from their faces. The RFV is computationally fast and effective to encode intensity variations of local regions of human face. By only using few rectangle features learned by AdaBoost, we present a gender identifier. We then use nonlinear support vector machines for classification, and obtain more accurate identification results.
机译:我们开发了一种新的性别识别方法。在本文中,我们的方法使用矩形特征向量(RFV)作为表示,以从面部识别人类性别。 RFV在计算上快速有效,可以编码人脸局部区域的强度变化。通过仅使用AdaBoost掌握的几个矩形特征,我们提供了性别标识符。然后,我们使用非线性支持向量机进行分类,并获得更准确的识别结果。

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