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Fast Hierarchical Knowledge-based Approach for Human Face Detection in Color Images

机译:基于彩色图像中的人脸检测的快速分层知识方法

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This paper presents a fast hierarchical knowledge-based approach for automatically detecting multi-scale upright faces in still color images. The approach consists of three levels. At the highest level, skin-like regions are determinated by skin model, which is based on the color attributes hue and saturation in HSV color space, as well color attributes red and green in normalized color space. In level 2, a new eye model is devised to select human face candidates in segmented skin-like regions. An important feature of the eye model is that it is independent of the scale of human face. So it is possible for finding human faces in different scale with scanning image only once, and it leads to reduction the computation time of face detection greatly. In level 3, a human face mosaic image model, which is consistent with physical structure features of human face well, is applied to judge whether there are face detects in human face candidate regions. This model includes edge and gray rules. Experiment results show that the approach has high robustness and fast speed. It has wide application perspective at human-computer interactions and visual telephone etc..
机译:本文提出了一种快速的基于知识的方法,用于自动检测静态图像中的多尺度直立面。该方法由三个层面组成。在最高级别,皮肤状区域由皮肤模型确定,它基于HSV颜色空间中的颜色属性和饱和度,以及归一化颜色空间中的红色和绿色。在2级,设计了一种新的眼睛模型,以在分段的皮肤状地区中选择人脸候选人。眼睛模型的一个重要特征是它与人脸的规模无关。因此,只有一次使用扫描图像,可以在不同尺度上找到人面,并且它导致大大降低面部检测的计算时间。在图3中,应用了与人脸的物理结构特征一致的人脸部马赛克图像模型,用于判断人类候选地区是否存在面部。该模型包括边缘和灰色规则。实验结果表明,该方法具有高稳健性和快速速度。它在人机互动和视觉电话等方面具有广泛的应用视角。

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