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UHDB11 Database for 3D-2D Face Recognition

机译:UHDB11数据库3D-2D面部识别

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摘要

Performance boosts in face recognition have been facilitated by the formation of facial databases, with collection protocols customized to address challenges such as light variability, expressions, pose, sensor/modality differences, and, more recently, uncontrolled acquisition conditions. In this paper, we present database UHDB11, to facilitate 3D-2D face recognition evaluations, where the gallery has been acquired using 3D sensors (3D mesh and texture) and the probes using 2D sensors (images). The database consists of samples from 23 individuals, in the form of 2D high-resolution images spanning six illumination conditions and 12 head-pose variations, and 3D facial mesh and texture. It addresses limitations regarding resolution, variability and type of 3D/2D data and has demonstrated to be statistically more challenging, diverse and information rich than existing cohorts of 10 times larger number of subjects. We propose a set of 3D-2D experimental configurations, with frontal 3D galleries and poseillumination varying probes and provide baseline performance for identification and verification (available at http://cbl.uh.edu/URxD/datasets).
机译:通过形成面部数据库,采用集合协议促进了面部识别的性能提升,以满足光可变性,表达,姿势,传感器/模态差异等挑战,以及最近,不受控制的采集条件。在本文中,我们呈现数据库UHDB11,以促进3D-2D面部识别评估,其中使用3D传感器(3D网状和纹理)和使用2D传感器(图像)的探针获取图库。该数据库由来自23个个人的示例组成,以跨越六个照明条件和12个头部姿态变化和3D面部网和纹理的2D高分辨率图像的形式组成。它解决了关于三维/ 2D数据的分辨率,变异性和类型的限制,并且已经表明具有比现有群体的统计数据更具挑战性,多样化和信息。我们提出了一系列3D-2D实验配置,具有正面3D画廊和姿势变化探针,并为识别和验证提供基线性能(可在http://cbl.uh.edu/urxd/datasets提供)。

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