首页> 外文会议>International symposium on multispectral image processing and pattern recognition;MIPPR 2009 >Fast and Robust Face Detection with Skin Color Mixture Models and Asymmetric Ada Boost
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Fast and Robust Face Detection with Skin Color Mixture Models and Asymmetric Ada Boost

机译:使用肤色混合模型和非对称Ada Boost进行快速而强大的人脸检测

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We present a new approach to face detection with skin color mixture models and asymmetric AdaBoost. First, non-skin color pixels of the input image are rapidly removed based on skin color mixture models in RGB and YCbCr chrominance spaces, from which we extract candidate face regions. Then, face detection with fast asymmetric AdaBoost is carried out in candidate face regions where ratios of pixels of skin color to non-skin color are beyond certain thresholds. To further reduce the computational cost, the integral image technique is employed to calculate ratios of pixels of skin color to non-skin color in candidate face regions. Finally, false alarms are gradually merged and removed by relative geometric relation and the rate of skin color pixels on the intersection line of candidate face regions. Experimental results show that our proposed method reduces significantly false alarms and the processing time while achieves detection rates of more than 99%.
机译:我们提出了一种使用肤色混合模型和非对称AdaBoost进行面部检测的新方法。首先,基于RGB和YCbCr色度空间中的肤色混合模型,快速删除输入图像的非肤色像素,从中提取候选面部区域。然后,在肤色与非肤色像素之比超出某些阈值的候选面部区域中,使用快速不对称AdaBoost进行面部检测。为了进一步降低计算成本,采用积分图像技术来计算候选脸部区域中肤色像素与非肤色像素的比率。最后,通过相对几何关系和候选脸部区域相交线上的肤色像素的比率,逐渐合并并消除了虚假警报。实验结果表明,该方法可显着减少误报和处理时间,达到99%以上的检测率。

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