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Papers/Intra-Inter Camera Similarity for Unsupervised Person Re-I...

Intra-Inter Camera Similarity for Unsupervised Person Re-Identification

Shiyu Xuan, Shiliang Zhang

2021-03-22CVPR 2021 1Transfer LearningPerson Re-IdentificationUnsupervised Person Re-Identification
PaperPDFCode(official)

Abstract

Most of unsupervised person Re-Identification (Re-ID) works produce pseudo-labels by measuring the feature similarity without considering the distribution discrepancy among cameras, leading to degraded accuracy in label computation across cameras. This paper targets to address this challenge by studying a novel intra-inter camera similarity for pseudo-label generation. We decompose the sample similarity computation into two stage, i.e., the intra-camera and inter-camera computations, respectively. The intra-camera computation directly leverages the CNN features for similarity computation within each camera. Pseudo-labels generated on different cameras train the re-id model in a multi-branch network. The second stage considers the classification scores of each sample on different cameras as a new feature vector. This new feature effectively alleviates the distribution discrepancy among cameras and generates more reliable pseudo-labels. We hence train our re-id model in two stages with intra-camera and inter-camera pseudo-labels, respectively. This simple intra-inter camera similarity produces surprisingly good performance on multiple datasets, e.g., achieves rank-1 accuracy of 89.5% on the Market1501 dataset, outperforming the recent unsupervised works by 9+%, and is comparable with the latest transfer learning works that leverage extra annotations.

Results

TaskDatasetMetricValueModel
Person Re-IdentificationSYSU-30k Rank-136IICS (generalization)
Person Re-IdentificationDukeMTMCreID Rank-180IICS
Person Re-IdentificationMarket-1501MAP72.9IICS
Person Re-IdentificationMarket-1501Rank-189.5IICS
Person Re-IdentificationMarket-1501Rank-1097IICS
Person Re-IdentificationMarket-1501Rank-595.2IICS

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