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Person Re-identification by Local Maximal Occurrence Representation and Metric Learning

About

Person re-identification is an important technique towards automatic search of a person's presence in a surveillance video. Two fundamental problems are critical for person re-identification, feature representation and metric learning. An effective feature representation should be robust to illumination and viewpoint changes, and a discriminant metric should be learned to match various person images. In this paper, we propose an effective feature representation called Local Maximal Occurrence (LOMO), and a subspace and metric learning method called Cross-view Quadratic Discriminant Analysis (XQDA). The LOMO feature analyzes the horizontal occurrence of local features, and maximizes the occurrence to make a stable representation against viewpoint changes. Besides, to handle illumination variations, we apply the Retinex transform and a scale invariant texture operator. To learn a discriminant metric, we propose to learn a discriminant low dimensional subspace by cross-view quadratic discriminant analysis, and simultaneously, a QDA metric is learned on the derived subspace. We also present a practical computation method for XQDA, as well as its regularization. Experiments on four challenging person re-identification databases, VIPeR, QMUL GRID, CUHK Campus, and CUHK03, show that the proposed method improves the state-of-the-art rank-1 identification rates by 2.2%, 4.88%, 28.91%, and 31.55% on the four databases, respectively.

Shengcai Liao, Yang Hu, Xiangyu Zhu, Stan Z. Li• 2014

Related benchmarks

TaskDatasetResultRank
Person Re-IdentificationMarket1501 (test)
Rank-1 Accuracy54.13
1264
Person Re-IdentificationDuke MTMC-reID (test)
Rank-130.8
1018
Person Re-IdentificationMarket 1501
mAP22.22
999
Person Re-IdentificationDukeMTMC-reID
Rank-1 Acc30.8
648
Person Re-IdentificationMarket-1501 (test)
Rank-127.2
384
Person Re-IdentificationCUHK03 (Detected)
Rank-1 Accuracy46.3
219
Person Re-IdentificationCUHK03
R152.2
184
Person Re-IdentificationVIPeR
Rank-140
182
Person Re-IdentificationCUHK03 (Labeled)
Rank-1 Rate55.2
180
Person Re-IdentificationOccluded-Duke (test)
Rank-1 Acc8.1
177
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