Papers › Parameter-Efficient Person Re-identification in the 3D Space

Parameter-Efficient Person Re-identification in the 3D Space

8 Jun 2020arXiv:2006.04569archive 2025-07-28

Zhedong Zheng, Nenggan Zheng, Yi Yang

People live in a 3D world. However, existing works on person re-identification (re-id) mostly consider the semantic representation learning in a 2D space, intrinsically limiting the understanding of people. In this work, we address this limitation by exploring the prior knowledge of the 3D body structure. Specifically, we project 2D images to a 3D space and introduce a novel parameter-efficient Omni-scale Graph Network (OG-Net) to learn the pedestrian representation directly from 3D point clouds. OG-Net effectively exploits the local information provided by sparse 3D points and takes advantage of the structure and appearance information in a coherent manner. With the help of 3D geometry information, we can learn a new type of deep re-id feature free from noisy variants, such as scale and viewpoint. To our knowledge, we are among the first attempts to conduct person re-identification in the 3D space. We demonstrate through extensive experiments that the proposed method (1) eases the matching difficulty in the traditional 2D space, (2) exploits the complementary information of 2D appearance and 3D structure, (3) achieves competitive results with limited parameters on four large-scale person re-id datasets, and (4) has good scalability to unseen datasets. Our code, models and generated 3D human data are publicly available at https://github.com/layumi/person-reid-3d .

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layumi/person-reid-3d officialmentioned in papermentioned on GitHubpytorch report

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Tasks

3D Point Cloud Classification3D geometryPerson Re-IdentificationPoint Cloud ClassificationRepresentation LearningUnsupervised Domain AdaptationUnsupervised Person Re-Identification

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
3D Point Cloud Classification ModelNet40 OG-Net-Small Mean Accuracy 90.5 #66 of 111 Archive leaderboard report
3D Point Cloud Classification ModelNet40 OG-Net-Small Number of params 1.22M #66 of 111 Archive leaderboard report
3D Point Cloud Classification ModelNet40 OG-Net-Small Overall Accuracy 93.3 #66 of 111 Archive leaderboard report
Person Re-Identification DukeMTMC-reID OGNet Rank-1 76.66 #74 of 94 Archive leaderboard report
Person Re-Identification DukeMTMC-reID OGNet mAP 57.89 #74 of 94 Archive leaderboard report
Person Re-Identification DukeMTMC-reID->Market-1501 OGNet Rank-1 41.4 #1 of 1 Archive leaderboard report
Person Re-Identification DukeMTMC-reID->Market-1501 OGNet mAP 17.2 #1 of 1 Archive leaderboard report
Person Re-Identification MSMT17 OGNet Rank-1 47.71 #40 of 43 Archive leaderboard report
Person Re-Identification MSMT17 OGNet mAP 23.01 #40 of 43 Archive leaderboard report
Person Re-Identification Market-1501 OGNet Rank-1 87.74 #100 of 135 Archive leaderboard report
Person Re-Identification Market-1501 OGNet mAP 69.52 #100 of 135 Archive leaderboard report
Person Re-Identification Market-1501->DukeMTMC-reID OGNet Rank-1 31.3 #1 of 2 Archive leaderboard report
Person Re-Identification Market-1501->DukeMTMC-reID OGNet mAP 16.3 #1 of 2 Archive leaderboard report
Unsupervised Domain Adaptation Duke to MSMT OG-Net mAP 1.9 #13 of 13 Archive leaderboard report
Unsupervised Domain Adaptation Duke to MSMT OG-Net rank-1 6.8 #13 of 13 Archive leaderboard report
Unsupervised Domain Adaptation Duke to Market OGNet mAP 14.7 #26 of 26 Archive leaderboard report
Unsupervised Domain Adaptation Duke to Market OGNet rank-1 36.4 #26 of 26 Archive leaderboard report
Unsupervised Domain Adaptation Duke to Market OGNet rank-10 - #26 of 26 Archive leaderboard report
Unsupervised Domain Adaptation Duke to Market OGNet rank-5 - #26 of 26 Archive leaderboard report
Unsupervised Domain Adaptation Market to Duke OG-Net mAP 13.7 #25 of 25 Archive leaderboard report
Unsupervised Domain Adaptation Market to Duke OG-Net rank-1 26.4 #25 of 25 Archive leaderboard report
Unsupervised Domain Adaptation Market to Duke OG-Net rank-10 - #25 of 25 Archive leaderboard report
Unsupervised Domain Adaptation Market to Duke OG-Net rank-5 - #25 of 25 Archive leaderboard report
Unsupervised Domain Adaptation Market to MSMT OG-Net mAP 1.7 #17 of 17 Archive leaderboard report
Unsupervised Domain Adaptation Market to MSMT OG-Net rank-1 5.9 #17 of 17 Archive leaderboard report
Unsupervised Domain Adaptation Market to MSMT OG-Net rank-10 - #17 of 17 Archive leaderboard report
Unsupervised Domain Adaptation Market to MSMT OG-Net rank-5 - #17 of 17 Archive leaderboard report
Unsupervised Person Re-Identification DukeMTMC-reID->MSMT17 OGNet Rank-1 6.8 #7 of 7 Archive leaderboard report
Unsupervised Person Re-Identification DukeMTMC-reID->MSMT17 OGNet mAP 1.9 #7 of 7 Archive leaderboard report
Unsupervised Person Re-Identification DukeMTMC-reID->Market-1501 OGNet Rank-1 36.4 #7 of 8 Archive leaderboard report
Unsupervised Person Re-Identification DukeMTMC-reID->Market-1501 OGNet mAP 14.7 #7 of 8 Archive leaderboard report
Unsupervised Person Re-Identification MSMT17->DukeMTMC-reID OGNet Rank-1 35.3 #4 of 4 Archive leaderboard report
Unsupervised Person Re-Identification MSMT17->DukeMTMC-reID OGNet mAP 19.3 #4 of 4 Archive leaderboard report
Unsupervised Person Re-Identification MSMT17->Market-1501 OG-Net Rank-1 40.1 #3 of 3 Archive leaderboard report
Unsupervised Person Re-Identification MSMT17->Market-1501 OG-Net mAP 17.6 #3 of 3 Archive leaderboard report
Unsupervised Person Re-Identification Market-1501->DukeMTMC-reID OGNet Rank-1 26.4 #7 of 7 Archive leaderboard report
Unsupervised Person Re-Identification Market-1501->DukeMTMC-reID OGNet mAP 13.7 #7 of 7 Archive leaderboard report
Unsupervised Person Re-Identification Market-1501->MSMT17 OG-Net Rank-1 5.9 #7 of 7 Archive leaderboard report
Unsupervised Person Re-Identification Market-1501->MSMT17 OG-Net mAP 1.7 #7 of 7 Archive leaderboard report

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