SVFR: A Unified Framework for Generalized Video Face Restoration
Zhiyao Wang, Xu Chen, Chengming Xu, Junwei Zhu, Xiaobin Hu, Jiangning, Zhang, Chengjie Wang, Yuqi Liu, Yiyi Zhou, Rongrong Ji

TL;DR
This paper introduces SVFR, a unified framework that advances generalized video face restoration by integrating multiple tasks and leveraging generative and motion priors for improved quality and temporal consistency.
Contribution
It proposes a novel unified framework for generalized video face restoration that combines face inpainting, colorization, and resolution enhancement using a learnable task embedding and shared feature learning.
Findings
Outperforms existing methods in restoration quality
Enhances temporal stability and coherence
Effectively integrates multiple face restoration tasks
Abstract
Face Restoration (FR) is a crucial area within image and video processing, focusing on reconstructing high-quality portraits from degraded inputs. Despite advancements in image FR, video FR remains relatively under-explored, primarily due to challenges related to temporal consistency, motion artifacts, and the limited availability of high-quality video data. Moreover, traditional face restoration typically prioritizes enhancing resolution and may not give as much consideration to related tasks such as facial colorization and inpainting. In this paper, we propose a novel approach for the Generalized Video Face Restoration (GVFR) task, which integrates video BFR, inpainting, and colorization tasks that we empirically show to benefit each other. We present a unified framework, termed as stable video face restoration (SVFR), which leverages the generative and motion priors of Stable Video…
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Taxonomy
TopicsFace recognition and analysis · Advanced Image Processing Techniques · Facial Nerve Paralysis Treatment and Research
MethodsDiffusion · Colorization
