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Subspace-Based Holistic Registration for Low-Resolution Facial Images

机译:低分辨率人脸图像的基于子空间的整体配准

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Subspace-based holistic registration is introduced as an alternative to landmark-based face registration, which has a poor performance on low-resolution images, as obtained in camera surveillance applications. The proposed registration method finds the alignment by maximizing the similarity score between a probe and a gallery image. We use a novel probabilistic framework for both user-independent as well as user-specific face registration. The similarity is calculated using the probability that the face image is correctly aligned in a face subspace, but additionally we take the probability into account that the face is misaligned based on the residual error in the dimensions perpendicular to the face subspace. We perform extensive experiments on the FRGCv2 database to evaluate the impact that the face registration methods have on face recognition. Subspace-based holistic registration on low-resolution images can improve face recognition in comparison with landmark-based registration on high-resolution images. The performance of the tested face recognition methods after subspace-based holistic registration on a low-resolution version of the FRGC database is similar to that after manual registration.
机译:引入了基于子空间的整体配准,以替代基于界标的人脸配准,后者在低分辨率图像上的性能较差,如在摄像机监视应用程序中获得的那样。所提出的配准方法通过最大化探针和画廊图像之间的相似性得分来找到对准。我们使用一种新颖的概率框架来进行与用户无关以及针对特定用户的人脸注册。使用人脸图像在人脸子空间中正确对齐的概率来计算相似度,但是另外,我们还基于垂直于人脸子空间的维度中的残差,考虑了人脸未对齐的概率。我们在FRGCv2数据库上进行了广泛的实验,以评估人脸注册方法对人脸识别的影响。与高分辨率图像上基于地标的配准相比,低分辨率图像上基于子空间的整体配准可以改善人脸识别。在低分辨率版本的FRGC数据库上基于子空间的整体注册后,经过测试的面部识别方法的性能与手动注册后的性能相似。

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