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4 months ago

Person Transfer GAN to Bridge Domain Gap for Person Re-Identification

Longhui Wei; Shiliang Zhang; Wen Gao; Qi Tian

Person Transfer GAN to Bridge Domain Gap for Person Re-Identification

Abstract

Although the performance of person Re-Identification (ReID) has been significantly boosted, many challenging issues in real scenarios have not been fully investigated, e.g., the complex scenes and lighting variations, viewpoint and pose changes, and the large number of identities in a camera network. To facilitate the research towards conquering those issues, this paper contributes a new dataset called MSMT17 with many important features, e.g., 1) the raw videos are taken by an 15-camera network deployed in both indoor and outdoor scenes, 2) the videos cover a long period of time and present complex lighting variations, and 3) it contains currently the largest number of annotated identities, i.e., 4,101 identities and 126,441 bounding boxes. We also observe that, domain gap commonly exists between datasets, which essentially causes severe performance drop when training and testing on different datasets. This results in that available training data cannot be effectively leveraged for new testing domains. To relieve the expensive costs of annotating new training samples, we propose a Person Transfer Generative Adversarial Network (PTGAN) to bridge the domain gap. Comprehensive experiments show that the domain gap could be substantially narrowed-down by the PTGAN.

Code Repositories

ucas-vg/groupsampling
pytorch
Mentioned in GitHub
yxgeee/MMT
pytorch
Mentioned in GitHub
michuanhaohao/transreid-ssl
pytorch
Mentioned in GitHub
template-aware/TAT
pytorch
Mentioned in GitHub
yoonkicho/bau
pytorch
Mentioned in GitHub
casia-iva-lab/pass-reid
pytorch
Mentioned in GitHub
theziqi/dccc
pytorch
Mentioned in GitHub
WangWenhao0716/DomainMix
pytorch
Mentioned in GitHub
wavinflaghxm/GroupSampling
pytorch
Mentioned in GitHub
zkcys001/UDAStrongBaseline
pytorch
Mentioned in GitHub
RikoLi/PCL-CLIP
pytorch
Mentioned in GitHub
JeyesHan/P2LR
pytorch
Mentioned in GitHub
hbchen121/dgreid
pytorch
Mentioned in GitHub
WangWenhao0716/Attentive-WaveBlock
pytorch
Mentioned in GitHub
ChristmasStory/TransReID-main
pytorch
Mentioned in GitHub
yoonkicho/pplr
pytorch
Mentioned in GitHub
chenhao2345/GCL
pytorch
Mentioned in GitHub
chenhao2345/ICE
pytorch
Mentioned in GitHub
yxgeee/SpCL
pytorch
Mentioned in GitHub
chenhao2345/gcl-extended
pytorch
Mentioned in GitHub
Terminator8758/CAP-master
pytorch
Mentioned in GitHub
wangyuan249/Mymmt767
pytorch
Mentioned in GitHub
wang-pengfei/ucf
pytorch
Mentioned in GitHub
damo-cv/TransReID-SSL
pytorch
Mentioned in GitHub
syliz517/clip-reid
pytorch
Mentioned in GitHub
isee-laboratory/pixelfade
pytorch
Mentioned in GitHub
stone5265/3c-reid
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
unsupervised-domain-adaptation-on-duke-to-1PTGAN
mAP: 3.3
rank-1: 11.8
rank-10: 27.4
rank-5: -
unsupervised-domain-adaptation-on-market-to-1PTGAN
mAP: 2.9
rank-1: 10.2
rank-10: 24.4
rank-5: -
unsupervised-person-re-identification-on-5PTGAN
Rank-1: 27.4
Rank-10: 50.7

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Person Transfer GAN to Bridge Domain Gap for Person Re-Identification | Papers | HyperAI