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Proposed optimization for AdaBoost-based face detection

机译:针对基于AdaBoost的人脸检测的拟议优化

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In this paper, a novel approach is proposed for face detection in still image based on the AdaBoost algorithm. First, face candidates are detected by AdaBoost Algorithm. Since a lot of influence might exist, such as size of the image, illumination and noise, some non-faces windows might also be detected as face candidates, or some faces might be missed. In order to solve these problems and get better performances, we take use of skin color information in the YCbCr color space together with the edge information of the color image. In this way, we are able to remove some non-faces that have been wrongly detected as faces and add some possible missed faces as well. Experimental results show that the hit rate could be improved and false alarm could also be reduced by this method.
机译:本文提出了一种基于AdaBoost算法的静止图像人脸检测新方法。首先,通过AdaBoost算法检测人脸候选对象。由于可能存在很多影响,例如图像大小,照明和噪声,因此某些非人脸窗口也可能会被检测为人脸候选,或者可能会遗漏一些人脸。为了解决这些问题并获得更好的性能,我们将YCbCr颜色空间中的肤色信息与彩色图像的边缘信息一起使用。通过这种方式,我们能够删除一些错误地检测为面部的非面部,并添加一些可能的遗漏面部。实验结果表明,该方法可以提高命中率,减少误报。

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