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Fast QuadTree-Based Pose Estimation for Security Applications Using Face Biometrics

机译:使用人脸生物识别技术的安全应用中基于QuadTree的快速姿势估计

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Face represents a convenient contactless biometric descriptor, currently exploited in a wide range of security applications, though its performance may be considerably affected by subject's pose variations with respect to enrolment pose. This issue is particularly challenging whether the face image is acquired in uncontrolled conditions, or it is extracted from video sequence, the latter representing a more and more frequent case given the huge diffusion of audiovisual content on the internet. To this regard, in this paper, a pose estimation method aimed at rapidly evaluating face rotations is presented. The proposed approach exploits a novel adaptation of quad-tree data structure to achieve an approximate estimate of face's yaw/pitch angles, enabling to select the face image most compliant to the stored template. Preliminary results confirm the efficiency of the proposed method, that provides a more than halved computing time with respect to the state of the art with further improvement margins.
机译:人脸代表了一种方便的非接触式生物特征描述子,尽管其性能可能会受受试者相对于入学姿势的姿势变化的很大影响,但目前已广泛用于各种安全应用中。无论是在不受控制的条件下获取面部图像还是从视频序列中提取面部图像,这个问题都特别具有挑战性,考虑到视听内容在互联网上的广泛传播,后者代表了越来越频繁的情况。为此,在本文中,提出了一种旨在快速评估脸部旋转的姿势估计方法。所提出的方法利用四叉树数据结构的新颖适应性来实现对人脸的偏航角/俯仰角的近似估计,从而能够选择最符合所存储模板的人脸图像。初步结果证实了所提出方法的效率,相对于现有技术,该方法提供了一半以上的计算时间,并具有进一步的改进余量。

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