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4 months ago

Joint Discriminative and Generative Learning for Person Re-identification

Zhedong Zheng; Xiaodong Yang; Zhiding Yu; Liang Zheng; Yi Yang; Jan Kautz

Joint Discriminative and Generative Learning for Person Re-identification

Abstract

Person re-identification (re-id) remains challenging due to significant intra-class variations across different cameras. Recently, there has been a growing interest in using generative models to augment training data and enhance the invariance to input changes. The generative pipelines in existing methods, however, stay relatively separate from the discriminative re-id learning stages. Accordingly, re-id models are often trained in a straightforward manner on the generated data. In this paper, we seek to improve learned re-id embeddings by better leveraging the generated data. To this end, we propose a joint learning framework that couples re-id learning and data generation end-to-end. Our model involves a generative module that separately encodes each person into an appearance code and a structure code, and a discriminative module that shares the appearance encoder with the generative module. By switching the appearance or structure codes, the generative module is able to generate high-quality cross-id composed images, which are online fed back to the appearance encoder and used to improve the discriminative module. The proposed joint learning framework renders significant improvement over the baseline without using generated data, leading to the state-of-the-art performance on several benchmark datasets.

Code Repositories

NVlabs/DG-Net
pytorch
Mentioned in GitHub
Demonhesusheng/Reid
pytorch
Mentioned in GitHub
jiangsikai/Person_reID_baseline_pytorch
pytorch
Mentioned in GitHub
taroogura/Person_reID_baseline_pytorch
pytorch
Mentioned in GitHub
layumi/DG-Net
pytorch
Mentioned in GitHub
WuRui-Ella/Myfirststore
pytorch
Mentioned in GitHub
youwenjing/reid_mgn-dgnet
pytorch
Mentioned in GitHub
lsh110600/person_re_id
pytorch
Mentioned in GitHub
ivychill/reid
pytorch
Mentioned in GitHub
layumi/Person_reID_baseline_pytorch
pytorch
Mentioned in GitHub
Proxim123/person-reID-No1-
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
person-re-identification-on-cuhk03DG-Net
MAP: 61.1
Rank-1: 65.6
person-re-identification-on-dukemtmc-reidDG-Net(RK)
Rank-1: 90.26
mAP: 88.31
person-re-identification-on-dukemtmc-reidDG-Net
Rank-1: 86.6
mAP: 74.8
person-re-identification-on-market-1501DG-Net
Rank-1: 94.8
mAP: 86.0
person-re-identification-on-market-1501DG-Net(RK)
Rank-1: 95.4
mAP: 92.49
person-re-identification-on-market-1501-cDG-Net
Rank-1: 31.75
mAP: 9.96
mINP: 0.35
person-re-identification-on-msmt17DG-Net
Rank-1: 77.2
Rank-10: 90.5
Rank-5: 87.4
mAP: 52.3
person-re-identification-on-uav-humanDG-Net
Rank-1: 65.81
Rank-5: 85.71
mAP: 61.97
unsupervised-domain-adaptation-on-duke-toDG-Net
mAP: 26.83
rank-1: 56.12
rank-10: 78.12
rank-5: 72.18
unsupervised-domain-adaptation-on-duke-to-1DG-Net
mAP: 6.35
rank-1: 20.59
rank-10: 37.04
rank-5: 31.67
unsupervised-domain-adaptation-on-market-toDG-Net
mAP: 24.25
rank-1: 42.62
rank-10: 64.63
rank-5: 58.57
unsupervised-domain-adaptation-on-market-to-1DG-Net
mAP: 5.41
rank-1: 17.11
rank-10: 31.62
rank-5: 26.66
unsupervised-person-re-identification-onDGNet
Rank-1: 42.62
Rank-10: 64.63
Rank-5: 58.57
mAP: 24.25
unsupervised-person-re-identification-on-1DGNet
Rank-1: 56.12
Rank-10: 72.18
Rank-5: 78.12
mAP: 26.83
unsupervised-person-re-identification-on-2DG-Net
Rank-1: 17.11
Rank-10: 26.66
Rank-5: 31.62
mAP: 5.41
unsupervised-person-re-identification-on-3DGNet
Rank-1: 20.59
Rank-10: 31.67
Rank-5: 37.04
mAP: 6.35
unsupervised-person-re-identification-on-6DGNet
Rank-1: 61.89
Rank-10: 75.81
Rank-5: 80.34
mAP: 40.69
unsupervised-person-re-identification-on-7DG-Net
Rank-1: 61.76
Rank-10: 83.25
Rank-5: 77.67
mAP: 33.62

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Joint Discriminative and Generative Learning for Person Re-identification | Papers | HyperAI