Papers › Dual Associated Encoder for Face Restoration

Dual Associated Encoder for Face Restoration

14 Aug 2023arXiv:2308.07314archive 2025-07-28

Yu-Ju Tsai, Yu-Lun Liu, Lu Qi, Kelvin C. K. Chan, Ming-Hsuan Yang

Restoring facial details from low-quality (LQ) images has remained a challenging problem due to its ill-posedness induced by various degradations in the wild. The existing codebook prior mitigates the ill-posedness by leveraging an autoencoder and learned codebook of high-quality (HQ) features, achieving remarkable quality. However, existing approaches in this paradigm frequently depend on a single encoder pre-trained on HQ data for restoring HQ images, disregarding the domain gap between LQ and HQ images. As a result, the encoding of LQ inputs may be insufficient, resulting in suboptimal performance. To tackle this problem, we propose a novel dual-branch framework named DAEFR. Our method introduces an auxiliary LQ branch that extracts crucial information from the LQ inputs. Additionally, we incorporate association training to promote effective synergy between the two branches, enhancing code prediction and output quality. We evaluate the effectiveness of DAEFR on both synthetic and real-world datasets, demonstrating its superior performance in restoring facial details. Project page: https://liagm.github.io/DAEFR/

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TransformerSALayer LIAGM/DAEFR/DAEFR/models/daefr.py official repository ran no licence file found · pointer only · 273c41298048e4fc · report
get_obj_from_str LIAGM/DAEFR/main_DAEFR.py official repository ran · our draft was wrong no licence file found · pointer only · 4e4f3bef7e8672e8 · report
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MultiHeadAttnBlock LIAGM/DAEFR/DAEFR/models/daefr.py official repository unverified no licence file found · pointer only · 1005f8eafda41876 · report

Tasks

Blind Face Restoration

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Blind Face Restoration LFW DAEFR FID 47.532 #2 of 9 Archive leaderboard report
Blind Face Restoration WIDER DAEFR FID 36.72 #2 of 9 Archive leaderboard report

Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.

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