Papers › Learning Diverse Features with Part-Level Resolution for Person Re-Identification

Learning Diverse Features with Part-Level Resolution for Person Re-Identification

21 Jan 2020arXiv:2001.07442archive 2025-07-28

Ben Xie, Xiaofu Wu, Suofei Zhang, Shiliang Zhao, Ming Li

Learning diverse features is key to the success of person re-identification. Various part-based methods have been extensively proposed for learning local representations, which, however, are still inferior to the best-performing methods for person re-identification. This paper proposes to construct a strong lightweight network architecture, termed PLR-OSNet, based on the idea of Part-Level feature Resolution over the Omni-Scale Network (OSNet) for achieving feature diversity. The proposed PLR-OSNet has two branches, one branch for global feature representation and the other branch for local feature representation. The local branch employs a uniform partition strategy for part-level feature resolution but produces only a single identity-prediction loss, which is in sharp contrast to the existing part-based methods. Empirical evidence demonstrates that the proposed PLR-OSNet achieves state-of-the-art performance on popular person Re-ID datasets, including Market1501, DukeMTMC-reID and CUHK03, despite its small model size.

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Tasks

DiversityPerson Re-Identification

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Person Re-Identification CUHK03 detected PLR-OSNet MAP 77.2 #6 of 19 Archive leaderboard report
Person Re-Identification CUHK03 detected PLR-OSNet Rank-1 80.4 #6 of 19 Archive leaderboard report
Person Re-Identification CUHK03 labeled PLR-OSNet MAP 80.5 #8 of 21 Archive leaderboard report
Person Re-Identification CUHK03 labeled PLR-OSNet Rank-1 84.6 #8 of 21 Archive leaderboard report
Person Re-Identification CUHK03-C MGN Rank-1 5.44 #7 of 8 Archive leaderboard report
Person Re-Identification CUHK03-C MGN mAP 4.20 #7 of 8 Archive leaderboard report
Person Re-Identification CUHK03-C MGN mINP 0.46 #7 of 8 Archive leaderboard report
Person Re-Identification DukeMTMC-reID PLR-OSNet Rank-1 91.6 #39 of 94 Archive leaderboard report
Person Re-Identification DukeMTMC-reID PLR-OSNet mAP 81.2 #39 of 94 Archive leaderboard report
Person Re-Identification Market-1501 PLR-OSNet Rank-1 95.6 #49 of 135 Archive leaderboard report
Person Re-Identification Market-1501 PLR-OSNet mAP 88.9 #49 of 135 Archive leaderboard report
Person Re-Identification Market-1501-C PLR-OS Rank-1 37.56 #3 of 22 Archive leaderboard report
Person Re-Identification Market-1501-C PLR-OS mAP 14.23 #3 of 22 Archive leaderboard report
Person Re-Identification Market-1501-C PLR-OS mINP 0.48 #3 of 22 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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