Unity Style Transfer for Person Re-Identification
Chong Liu, Xiaojun Chang, Yi-Dong Shen
Abstract
Style variation has been a major challenge for person re-identification, which aims to match the same pedestrians across different cameras. Existing works attempted to address this problem with camera-invariant descriptor subspace learning. However, there will be more image artifacts when the difference between the images taken by different cameras is larger. To solve this problem, we propose a Uni-tyStyle adaption method, which can smooth the style disparities within the same camera and across different cameras. Specifically, we firstly create UnityGAN to learn the style changes between cameras, producing shape-stable styleunity images for each camera, which is called UnityStyle images. Meanwhile, we use UnityStyle images to eliminate style differences between different images, which makes a better match between query and gallery. Then, we apply the proposed method to Re-ID models, expecting to obtain more style-robust depth features for querying. We conduct extensive experiments on widely used benchmark datasets to evaluate the performance of the proposed framework, the results of which confirm the superiority of the proposed model.
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Install the CLIlune papers fulltext 07ffe7e9-7993-4e73-af6c-dbdc1c830564Cited by top-tier papers6
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- Domain-Aware Suppression and Aggregation for Federated DG ReIDZhixi Yu, Wei Liu, Wenke Huang, Bin Yang et al.AAAI 2026
- Meta Batch-Instance Normalization for Generalizable Person Re-IdentificationSeokeon Choi, Taekyung Kim, Minki Jeong, Hyoungseob Park et al.CVPR 2021
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