Data Uncertainty Learning in Face Recognition
Jie Chang, Zhonghao Lan, Changmao Cheng, Yichen Wei
摘要
Modeling data uncertainty is important for noisy images, but seldom explored for face recognition. The pioneer work [35] considers uncertainty by modeling each face image embedding as a Gaussian distribution. It is quite effective. However, it uses fixed feature (mean of the Gaussian) from an existing model. It only estimates the variance and relies on an ad-hoc and costly metric. Thus, it is not easy to use. It is unclear how uncertainty affects feature learning. This work applies data uncertainty learning to face recognition, such that the feature (mean) and uncertainty (variance) are learnt simultaneously, for the first time. Two learning methods are proposed. They are easy to use and outperform existing deterministic methods as well as [35] on challenging unconstrained scenarios. We also provide insightful analysis on how incorporating uncertainty estimation helps reducing the adverse effects of noisy samples and affects the feature learning.
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引用它的顶会 Paper80
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它引用的顶会 Paper4
- Gaussian YOLOv3: An Accurate and Fast Object Detector Using Localization Uncertainty for Autonomous DrivingJiwoong Choi, Dayoung Chun, Hyun Kim, Hyuk-Jae LeeICCV 2019 · 被引用 445 次
- Probabilistic Face EmbeddingsYichun Shi, Anil K. JainICCV 2019 · 被引用 362 次
- Robust Person Re-Identification by Modelling Feature UncertaintyTianyuan Yu, Da Li, Yongxin Yang, Timothy M. Hospedales 等ICCV 2019 · 被引用 148 次
- Towards Interpretable Face RecognitionBangjie Yin, Luan Tran, Haoxiang Li, Xiaohui Shen 等ICCV 2019 · 被引用 92 次
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