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Face Detection based on Statistical Color Model and Haar Classifier

机译:基于统计色彩模型和Haar分类器的人脸检测

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The paper realizes the face detection algorithm based on the combination of the skin model and the Haar algorithm. Firstly, a platform for sample labeling was constructed, which combines the contour extraction algorithm with manual labeling. By labeling more than 10000 images obtained randomly from the Internet, a large training dataset is available. Then, a skin histogram, a non-skin histogram and a statistical skin model are constructed by analyzing the distribution of the skin and the non-skin color on the basis of a large training dataset. Based on this statistical color model, the skin area is detected and split from video files frame by frame. With the Haar Object Detection algorithm and the morphology algorithm such as erosion and dilation, the background noise and nonface areas are removed from the detected skin area and facial area is detected, which provides the basis for face recognition and the video-based visual speech synthesis. Compared with the Haar-based face detection method, our algorithm greatly improves the rate of correct detection and reduces the rate of the false positives.
机译:本文结合皮肤模型和Haar算法实现了人脸检测算法。首先,构建了一个用于样品标记的平台,该平台将轮廓提取算法与手动标记相结合。通过标记从Internet随机获得的10000多个图像,可以使用大量的训练数据集。然后,通过在大型训练数据集的基础上分析皮肤和非皮肤颜色的分布,构建皮肤直方图,非皮肤直方图和统计皮肤模型。基于此统计颜色模型,将检测皮肤区域,并逐帧从视频文件中分割出皮肤区域。借助Haar Object Detection算法和腐蚀和膨胀等形态学算法,从检测到的皮肤区域中去除了背景噪声和非面部区域,并检测了面部区域,这为面部识别和基于视频的视觉语音合成提供了基础。与基于Haar的人脸检测方法相比,我们的算法大大提高了正确检测率,并减少了误报率。

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