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An improved approach for face detection using superpixels, moment-based matching, and isosceles triangle matching

机译:使用超像素,基于矩的匹配和等腰三角形匹配进行面部检测的改进方法

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Face detection serves as a crucial step for a wide range of applications in computer vision. In this paper, we delve into the task of face detection. An algorithm is proposed for colour images to be robust to varied illumination, background setting, head pose and skin colour. Taking advantage of the superpixel segmentation followed by our trained SVM classifier, we are able to identify different skin-tone faces and generate face candidates. The moment-based elliptic shape matching is performed to remove invalid facial regions. Based on chroma and luma components, our scheme establishes the Eyemap and the Mouthmap to yield a pool of candidates for facial features. A delicate examination procedure considering the texture, colour and spatial relations with respect to the eyes-mouth pair is employed to verify each face candidate. Experimental results demonstrate better detection on the Caltech database in terms of F-measure. Results also show that our proposed algorithm more effectively rules out non-human faces than state-of-the-art algorithms.
机译:人脸检测是计算机视觉广泛应用中的关键步骤。在本文中,我们深入研究了面部检测的任务。提出了一种使彩色图像对各种照明,背景设置,头部姿势和肤色具有鲁棒性的算法。利用我们训练有素的SVM分类器进行的超像素分割,我们能够识别出不同的肤色面孔并生成面孔候选者。执行基于矩的椭圆形状匹配以去除无效的面部区域。基于色度和亮度分量,我们的方案建立了“眼图”和“口图”,以生成一组候选的面部特征。考虑到眼睛-嘴对的质地,颜色和空间关系的精细检查程序被用来验证每个面部候选者。实验结果表明,根据F度量,可以更好地在Caltech数据库上进行检测。结果还表明,与最新算法相比,我们提出的算法更有效地排除了非人脸。

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