Recover and Identify: A Generative Dual Model for Cross-Resolution Person Re-Identification
Yu-Jhe Li, Yun-Chun Chen, Yen-Yu Lin, Xiaofei Du, Yu-Chiang Frank Wang
摘要
Person re-identification (re-ID) aims at matching images of the same identity across camera views. Due to varying distances between cameras and persons of interest, resolution mismatch can be expected, which would degrade person re-ID performance in real-world scenarios. To overcome this problem, we propose a novel generative adversarial network to address cross-resolution person re-ID, allowing query images with varying resolutions. By advancing adversarial learning techniques, our proposed model learns resolution-invariant image representations while being able to recover the missing details in low-resolution input images. The resulting features can be jointly applied for improving person re-ID performance due to preserving resolution invariance and recovering re-ID oriented discriminative details. Our experiments on five benchmark datasets confirm the effectiveness of our approach and its superiority over the state-of-the-art methods, especially when the input resolutions are unseen during training.
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引用它的顶会 Paper11
- Cross-Dataset Person Re-Identification via Unsupervised Pose Disentanglement and AdaptationYu-Jhe Li, Ci-Siang Lin, Yan-Bo Lin, Yu-Chiang Frank WangICCV 2019 · 被引用 204 次
- Learning Modal-Invariant and Temporal-Memory for Video-based Visible-Infrared Person Re-IdentificationXinyu Lin, Jinxing Li, Zeyu Ma, Huafeng Li 等CVPR 2022 · 被引用 81 次
- Look Through Masks: Towards Masked Face Recognition with De-Occlusion DistillationChenyu Li, Shiming Ge, Daichi Zhang, Jia LiACM MM 2020 · 被引用 79 次
- Large-Scale Pre-training for Person Re-identification with Noisy LabelsDengpan Fu, Dongdong Chen, Hao Yang, Jianmin Bao 等CVPR 2022 · 被引用 69 次
- Cross Vision-RF Gait Re-identification with Low-cost RGB-D Cameras and mmWave RadarsDongjiang Cao, Ruofeng Liu, Hao Li, Shuai Wang 等UbiComp 2022 · 被引用 47 次
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