Render-to-Adapt: Unsupervised Personal Adaptation for Gaze Estimation
Yangshi Ge, Zheng Liu, Feng Lu
摘要
Deep learning-based gaze estimation methods tend to suffer from substantial performance drop in real-world scenarios with varying users and environments. To tackle this issue, most recent approaches employ Unsupervised Domain Adaptation (UDA) to bridge the gap between source and target domains. However, this paradigm is misaligned with real-world scenarios, where the system typically needs to adapt to only a single new user. Therefore, this paper advocates a more practical paradigm: Unsupervised Personal Adaptation (UPA), which calibrates a pre-trained model using a few unlabeled images from a single new user. Conventional UDA methods do not guarantee improvements for every user and often yield lower average performance in this setting. To address this problem, we propose Render-to-Adapt (R2A), a self-supervised framework specifically designed for the UPA task. Given a pretrained gaze model, R2A utilizes a gaze-conditioned renderer to synthesize new images based on the model's gaze predictions, and enforces eye-region consistency as a label-free signal to enhance personalized gaze estimation. We evaluate R2A on a re-designed cross-dataset personal adaptation benchmark. Experimental results show that R2A consistently improves performance across all individuals and significantly outperforms existing SOTA methods.
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它引用的顶会 Paper14
- Gaze360: Physically Unconstrained Gaze Estimation in the WildPetr Kellnhofer, Adrià Recasens, Simon Stent, Wojciech Matusik 等ICCV 2019 · 被引用 469 次
- Few-Shot Adaptive Gaze EstimationSeonwook Park, Shalini De Mello, Pavlo Molchanov, Umar Iqbal 等ICCV 2019 · 被引用 238 次
- Contrastive Test-Time AdaptationDian Chen, Dequan Wang, Trevor Darrell, Sayna EbrahimiCVPR 2022 · 被引用 219 次
- A Coarse-to-Fine Adaptive Network for Appearance-Based Gaze EstimationYihua Cheng, Shiyao Huang, Fei Wang, Chen Qian 等AAAI 2020 · 被引用 204 次
- The Role of Eye Gaze in Security and Privacy Applications: Survey and Future HCI Research DirectionsChristina P. Katsini, Yasmeen Abdrabou, George E. Raptis, Mohamed Khamis 等CHI 2020 · 被引用 167 次
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