一种对姿态和光照变化具有鲁棒性的2D+3D人脸认证系统

F. Tsalakanidou, S. Malassiotis, M. Strintzis
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引用次数: 5

摘要

介绍了一种完整的集二维彩色图像和三维深度图像于一体的人脸认证系统。基于结构光方法的新型低成本三维和颜色传感器获取深度信息,用于鲁棒人脸检测、定位和三维姿态估计。为了应对光照和姿态变化,使用3D信息对输入图像进行归一化。照度补偿利用景深数据来恢复景物的照度,并在正面光照下重新照亮图像。该系统的性能在一个包含3000多张图像的人脸数据库中进行了测试,测试条件与现实应用中遇到的情况类似。实验结果表明,采用正前方光照和竖直方向的归一化图像进行身份验证,错误率明显降低。此外,与单独使用每种模式相比,颜色和深度数据的组合可以提高身份验证的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A 2D+3D face authentication system robust under pose and illumination variations
A complete face authentication system integrating 2D color and 3D depth images is described in this paper. Depth information, acquired by a novel low-cost 3D and color sensor based on the structured light approach, is used for robust face detection, localization and 3D pose estimation. To cope with illumination and pose variations, 3D information is used for the normalization of the input images. Illumination compensation exploits depth data to recover the illumination of the scene and relight the image under frontal lighting. The performance of the proposed system is tested on a face database of more than 3,000 images, in conditions similar to those encountered in real-world applications. Experimental results show that when normalized images, depicting upright orientation and frontal lighting, are used for authentication, significantly lower error rates are achieved. Moreover, the combination of color and depth data results in increased authentication accuracy, compared to the use of each modality alone.
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