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Person Re-identification: Past, Present and Future

About

Person re-identification (re-ID) has become increasingly popular in the community due to its application and research significance. It aims at spotting a person of interest in other cameras. In the early days, hand-crafted algorithms and small-scale evaluation were predominantly reported. Recent years have witnessed the emergence of large-scale datasets and deep learning systems which make use of large data volumes. Considering different tasks, we classify most current re-ID methods into two classes, i.e., image-based and video-based; in both tasks, hand-crafted and deep learning systems will be reviewed. Moreover, two new re-ID tasks which are much closer to real-world applications are described and discussed, i.e., end-to-end re-ID and fast re-ID in very large galleries. This paper: 1) introduces the history of person re-ID and its relationship with image classification and instance retrieval; 2) surveys a broad selection of the hand-crafted systems and the large-scale methods in both image- and video-based re-ID; 3) describes critical future directions in end-to-end re-ID and fast retrieval in large galleries; and 4) finally briefs some important yet under-developed issues.

Liang Zheng, Yi Yang, Alexander G. Hauptmann• 2016

Related benchmarks

TaskDatasetResultRank
Person Re-IdentificationMarket1501 (test)
Rank-1 Accuracy72.54
1264
Person Re-IdentificationDuke MTMC-reID (test)
Rank-180.1
1018
Person Re-IdentificationDukeMTMC-reID
Rank-1 Acc85.2
648
Person Re-IdentificationCUHK03 (Detected)
Rank-1 Accuracy21.3
219
Person Re-IdentificationCUHK03
R171.5
184
Person Re-IdentificationCUHK03 (Labeled)
Rank-1 Rate22.2
180
Person Re-IdentificationMarket-1501 1.0 (test)
Rank-173.9
131
Person Re-IdentificationCUHK03 (test)
Rank-1 Accuracy21.3
108
Person Re-IdentificationCUHK03 NP (new protocol) (test)
mAP21
98
Person Re-IdentificationMarket-1501 single query (test)
Rank-189
68
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