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Robust face recognition using 2D and 3D data: Pose and illumination compensation

机译:使用2D和3D数据进行可靠的人脸识别:姿势和照明补偿

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摘要

The paper addresses the problem of face recognition under varying pose and illumination. Robustness to appearance variations is achieved not only by using a combination of a 2D color and a 3D image of the face, but mainly by using face geometry information to cope with pose and illumination variations that inhibit the performance of 2D face recognition. A face normalization approach is proposed, which unlike state-of-the-art techniques is computationally efficient and does not require an extended training set. Experimental results on a large data set show that template-based face recognition performance is significantly benefited from the application of the proposed normalization algorithms prior to classification. (c) 2005 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:该论文解决了在不同姿势和光照下的人脸识别问题。不仅可以通过结合使用2D颜色和面部3D图像来实现外观变化的鲁棒性,而且还可以通过使用面部几何信息来应对抑制2D面部识别性能的姿势和照明变化来实现鲁棒性。提出了一种面部归一化方法,该方法与最新技术不同,其计算效率高,并且不需要扩展的训练集。在大数据集上的实验结果表明,基于模板的人脸识别性能显着受益于分类之前提出的归一化算法的应用。 (c)2005模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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