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3 months ago

Transformer Based Multi-Grained Features for Unsupervised Person Re-Identification

Jiachen Li Menglin Wang Xiaojin Gong

Transformer Based Multi-Grained Features for Unsupervised Person Re-Identification

Abstract

Multi-grained features extracted from convolutional neural networks (CNNs) have demonstrated their strong discrimination ability in supervised person re-identification (Re-ID) tasks. Inspired by them, this work investigates the way of extracting multi-grained features from a pure transformer network to address the unsupervised Re-ID problem that is label-free but much more challenging. To this end, we build a dual-branch network architecture based upon a modified Vision Transformer (ViT). The local tokens output in each branch are reshaped and then uniformly partitioned into multiple stripes to generate part-level features, while the global tokens of two branches are averaged to produce a global feature. Further, based upon offline-online associated camera-aware proxies (O2CAP) that is a top-performing unsupervised Re-ID method, we define offline and online contrastive learning losses with respect to both global and part-level features to conduct unsupervised learning. Extensive experiments on three person Re-ID datasets show that the proposed method outperforms state-of-the-art unsupervised methods by a considerable margin, greatly mitigating the gap to supervised counterparts. Code will be available soon at https://github.com/RikoLi/WACV23-workshop-TMGF.

Code Repositories

Benchmarks

BenchmarkMethodologyMetrics
unsupervised-person-re-identification-on-12TMGF
Rank-1: 83.3
Rank-10: 92.1
Rank-5: 90.2
mAP: 58.2
unsupervised-person-re-identification-on-4TMGF
MAP: 89.5
Rank-1: 95.5
Rank-10: 98.7
Rank-5: 98.0
unsupervised-person-re-identification-on-5TMGF
MAP: 76.8
Rank-1: 86.7
Rank-10: 94.1
Rank-5: 92.9

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Transformer Based Multi-Grained Features for Unsupervised Person Re-Identification | Papers | HyperAI