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Robust and Efficient Multipose Face Detection Using Skin Color Segmentation

机译:使用肤色分割的鲁棒高效的多姿态人脸检测

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In this paper we describe an efficient technique for detecting faces in arbitrary images and video sequences. The approach is based on segmentation of images or video frames into skin-colored blobs using a pixel-based heuristic. Scale and translation invariant features are then computed from these segmented blobs which are used to perform statistical discrimination between face and non-face classes. We train and evaluate our method on a standard, publicly available database of face images and analyze its performance over a range of statistical pattern classifiers. The generalization of our approach is illustrated by testing on an independent sequence of frames containing many faces and non-faces. These experiments indicate that our proposed approach obtains false positive rates comparable to more complex, state-of-the-art techniques, and that it generalizes better to new data. Furthermore, the use of skin blobs and invariant features requires fewer training samples since significantly fewer non-face candidate regions must be considered when compared to AdaBoost-based approaches.
机译:在本文中,我们描述了一种用于检测任意图像和视频序列中人脸的有效技术。该方法基于使用基于像素的启发式方法将图像或视频帧分割为肤色的斑点。然后从这些分割的斑点中计算出尺度和平移不变特征,这些特征用于对人脸和非人脸类别进行统计区分。我们在标准的公开面部图像数据库上训练和评估我们的方法,并在一系列统计模式分类器上分析其性能。通过对包含许多人脸和非人脸的独立帧序列进行测试,说明了我们方法的一般性。这些实验表明,我们提出的方法获得的假阳性率可与更复杂的最新技术相提并论,并且可以更好地推广到新数据。此外,与基于AdaBoost的方法相比,使用皮肤斑点和不变特征所需的训练样本更少,因为必须考虑的非脸部候选区域明显更少。

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