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Xianghao Zang Ge Li Wei Gao Xiujun Shu

Abstract
Unsupervised video person re-identification (reID) methods usually depend on global-level features. And many supervised reID methods employed local-level features and achieved significant performance improvements. However, applying local-level features to unsupervised methods may introduce an unstable performance. To improve the performance stability for unsupervised video reID, this paper introduces a general scheme fusing part models and unsupervised learning. In this scheme, the global-level feature is divided into equal local-level feature. A local-aware module is employed to explore the poentials of local-level feature for unsupervised learning. A global-aware module is proposed to overcome the disadvantages of local-level features. Features from these two modules are fused to form a robust feature representation for each input image. This feature representation has the advantages of local-level feature without suffering from its disadvantages. Comprehensive experiments are conducted on three benchmarks, including PRID2011, iLIDS-VID, and DukeMTMC-VideoReID, and the results demonstrate that the proposed approach achieves state-of-the-art performance. Extensive ablation studies demonstrate the effectiveness and robustness of proposed scheme, local-aware module and global-aware module. The code and generated features are available at https://github.com/deropty/uPMnet.
Code Repositories
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| person-re-identification-on-ilids-vid | uPMnet | Rank-1: 63.1 Rank-20: 92.5 Rank-5: 81.9 |
| person-re-identification-on-prid2011 | uPMnet | Rank-1: 92.0 Rank-20: 100.0 Rank-5: 97.7 |
| unsupervised-person-re-identification-on-10 | uPMnet | Rank-1: 63.1 Rank-20: 92.5 Rank-5: 81.9 |
| unsupervised-person-re-identification-on-11 | uPMnet | Rank-1: 83.6 Rank-20: 97.2 Rank-5: 93.1 mAP: 76.9 |
| unsupervised-person-re-identification-on-9 | uPMnet | Rank-1: 92.00 Rank-20: 100.0 Rank-5: 97.7 |
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