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A face detection method based on kernel probability map

机译:基于核概率图的人脸检测方法

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Face detection is one of the most important parts of biometrics and face analysis science. In this paper, a novel multi-stage face detection method is proposed which can remarkably detect faces in different images with different illumination conditions, variety of poses and disparate sizes. The idea is to utilize a preprocessing step to filter many non-face windows by means of a skin segmentation procedure in order to boost the speed of the detection and also utilize the color information as much as possible. Subsequently, candidate windows are fed to a Local Hierarchical Pattern (LHP) generator unit where a new texture pattern is produced. Based on this pattern, a kernel probability map is calculated for each window, and by summing probabilities of all kernels and comparing it with a predefined threshold, decision is made about content of the window. Not only does this algorithm effectively eliminate many non-face regions, but it is also capable of detecting faces with relatively acceptable rate in different conditions. (C) 2015 Elsevier Ltd. All rights reserved.
机译:人脸检测是生物识别和人脸分析科学最重要的部分之一。本文提出了一种新颖的多阶段人脸检测方法,该方法可以显着地检测具有不同照明条件,不同姿势和不同尺寸的不同图像中的人脸。想法是利用预处理步骤通过皮肤分割程序来过滤许多非面部窗口,以便提高检测速度并且还尽可能多地利用颜色信息。随后,候选窗口被馈送到本地分层图案(LHP)生成器单元,在该单元中生成新的纹理图案。基于此模式,为每个窗口计算内核概率图,并通过将所有内核的概率求和并将其与预定义的阈值进行比较,来确定窗口的内容。该算法不仅有效消除了许多非面部区域,而且还能够在不同条件下以相对可接受的速率检测面部。 (C)2015 Elsevier Ltd.保留所有权利。

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