Blind Face Video Restoration with Temporal Consistent Generative Prior and Degradation-Aware Prompt
Jingfan Tan, Hyunhee Park, Ying Zhang, Tao Wang, Kaihao Zhang, Xiangyu Kong, Pengwen Dai, Zikun Liu, Wenhan Luo
Abstract
Within the domain of blind face restoration (BFR), approaches lacking facial priors frequently result in excessively smoothed visual outputs. Exiting BFR methods predominantly utilize generative facial priors to achieve realistic and authentic details. However, these methods, primarily designed for images, encounter challenges in maintaining temporal consistency when applied to face video restoration. To tackle this issue, we introduce StableBFVR, an innovative Blind Face Video Restoration method based on Stable Diffusion that incorporates temporal information into the generative prior. This is achieved through the introduction of temporal layers in the diffusion process. These temporal layers consider both long-term and short-term information aggregation. Moreover, to improve generalizability, BFR methods employ complex, large-scale degradation during training, but it often sacrifices accuracy. Addressing this, StableBFVR features a novel mixed-degradation-aware prompt module, capable of encoding specific degradation information to dynamically steer the restoration process. Comprehensive experiments demonstrate that our proposed StableBFVR outperforms state-of-the-art methods.
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Cited by top-tier papers5
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- Efficient Video Face Enhancement with Enhanced Spatial-Temporal ConsistencyYutong Wang, Jiajie Teng, Jiajiong Cao, Yuming Li et al.CVPR 2025
- SVFR: A Unified Framework for Generalized Video Face RestorationZhiyao Wang, Xu Chen, Chengming Xu, Junwei Zhu et al.CVPR 2025
- Towards Multiple Character Image Animation Through Enhancing Implicit DecouplingJingyun Xue, Hongfa Wang, Qi Tian, Yue Ma et al.ICLR 2025
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