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Papers/Lightweight Multi-Branch Network for Person Re-Identificat...

Lightweight Multi-Branch Network for Person Re-Identification

Fabian Herzog, Xunbo Ji, Torben Teepe, Stefan Hörmann, Johannes Gilg, Gerhard Rigoll

2021-01-26Person Re-Identification
PaperPDFCodeCode(official)

Abstract

Person Re-Identification aims to retrieve person identities from images captured by multiple cameras or the same cameras in different time instances and locations. Because of its importance in many vision applications from surveillance to human-machine interaction, person re-identification methods need to be reliable and fast. While more and more deep architectures are proposed for increasing performance, those methods also increase overall model complexity. This paper proposes a lightweight network that combines global, part-based, and channel features in a unified multi-branch architecture that builds on the resource-efficient OSNet backbone. Using a well-founded combination of training techniques and design choices, our final model achieves state-of-the-art results on CUHK03 labeled, CUHK03 detected, and Market-1501 with 85.1% mAP / 87.2% rank1, 82.4% mAP / 84.9% rank1, and 91.5% mAP / 96.3% rank1, respectively.

Results

TaskDatasetMetricValueModel
Person Re-IdentificationCUHK03 detectedMAP82.4LightMBN (w/o ReRank)
Person Re-IdentificationCUHK03 detectedRank-184.9LightMBN (w/o ReRank)
Person Re-IdentificationCUHK03 labeledMAP85.1LightMBN (w/o ReRank)
Person Re-IdentificationCUHK03 labeledRank-187.2LightMBN (w/o ReRank)
Person Re-IdentificationMarket-1501Rank-196.8LightMBN (RR)
Person Re-IdentificationMarket-1501mAP95.3LightMBN (RR)
Person Re-IdentificationMarket-1501Rank-196.3LightMBN (w/o ReRank)
Person Re-IdentificationMarket-1501mAP91.5LightMBN (w/o ReRank)
Person Re-IdentificationMarket-1501mINP0.5LightMBN

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