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GLAD: Global-Local-Alignment Descriptor for Pedestrian Retrieval

About

The huge variance of human pose and the misalignment of detected human images significantly increase the difficulty of person Re-Identification (Re-ID). Moreover, efficient Re-ID systems are required to cope with the massive visual data being produced by video surveillance systems. Targeting to solve these problems, this work proposes a Global-Local-Alignment Descriptor (GLAD) and an efficient indexing and retrieval framework, respectively. GLAD explicitly leverages the local and global cues in human body to generate a discriminative and robust representation. It consists of part extraction and descriptor learning modules, where several part regions are first detected and then deep neural networks are designed for representation learning on both the local and global regions. A hierarchical indexing and retrieval framework is designed to eliminate the huge redundancy in the gallery set, and accelerate the online Re-ID procedure. Extensive experimental results show GLAD achieves competitive accuracy compared to the state-of-the-art methods. Our retrieval framework significantly accelerates the online Re-ID procedure without loss of accuracy. Therefore, this work has potential to work better on person Re-ID tasks in real scenarios.

Longhui Wei, Shiliang Zhang, Hantao Yao, Wen Gao, Qi Tian• 2017

Related benchmarks

TaskDatasetResultRank
Person Re-IdentificationMarket1501 (test)
Rank-1 Accuracy89.9
1264
Person Re-IdentificationMarket 1501
mAP73.9
999
Person Re-IdentificationMSMT17 (test)
Rank-1 Acc61.4
499
Person Re-IdentificationMSMT17
mAP0.34
404
Person Re-IdentificationCUHK03 (Detected)
Rank-1 Accuracy82.2
219
Person Re-IdentificationVIPeR
Rank-154.8
182
Person Re-IdentificationCUHK03 (Labeled)
Rank-1 Rate85
180
Person Re-IdentificationMarket-1501 1.0 (test)
Rank-189.9
131
Person Re-IdentificationMarket-1501 single query
Rank-1 Acc89.9
114
Person Re-IdentificationMarket-1501 Single Query 1.0
Rank-1 Acc89.9
33
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