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利用面部对称性处理真实世界 3D 人脸识别中的姿态变化。

Using Facial Symmetry to Handle Pose Variations in Real-World 3D Face Recognition.

出版信息

IEEE Trans Pattern Anal Mach Intell. 2011 Oct;33(10):1938-51. doi: 10.1109/TPAMI.2011.49. Epub 2011 Mar 10.

Abstract

The uncontrolled conditions of real-world biometric applications pose a great challenge to any face recognition approach. The unconstrained acquisition of data from uncooperative subjects may result in facial scans with significant pose variations along the yaw axis. Such pose variations can cause extensive occlusions, resulting in missing data. In this paper, a novel 3D face recognition method is proposed that uses facial symmetry to handle pose variations. It employs an automatic landmark detector that estimates pose and detects occluded areas for each facial scan. Subsequently, an Annotated Face Model is registered and fitted to the scan. During fitting, facial symmetry is used to overcome the challenges of missing data. The result is a pose invariant geometry image. Unlike existing methods that require frontal scans, the proposed method performs comparisons among interpose scans using a wavelet-based biometric signature. It is suitable for real-world applications as it only requires half of the face to be visible to the sensor. The proposed method was evaluated using databases from the University of Notre Dame and the University of Houston that, to the best of our knowledge, include the most challenging pose variations publicly available. The average rank-one recognition rate of the proposed method in these databases was 83.7 percent.

摘要

真实世界生物识别应用的不受控制的条件对任何人脸识别方法都构成了巨大的挑战。从不合作的对象不受约束地获取数据可能会导致沿偏航轴的面部扫描具有显著的姿势变化。这种姿势变化会导致广泛的遮挡,从而导致数据丢失。在本文中,提出了一种新颖的 3D 人脸识别方法,该方法使用面部对称性来处理姿势变化。它采用自动地标检测器来估计姿势并检测每个面部扫描的遮挡区域。随后,注册和拟合Annotated Face Model 到扫描中。在拟合过程中,使用面部对称性来克服数据丢失的挑战。结果是一个不变的几何图像。与需要正面扫描的现有方法不同,所提出的方法使用基于小波的生物特征签名在中间扫描之间进行比较。它适用于真实世界的应用,因为它只需要传感器能够看到半张脸。所提出的方法使用来自圣母大学和休斯顿大学的数据库进行了评估,据我们所知,这些数据库包含了最具挑战性的公开姿势变化。在所评估的数据库中,该方法的平均排名第一识别率为 83.7%。

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