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Temporal Model Adaptation for Person Re-Identification

MARTINEL, Niki
•
Das, Abir
•
MICHELONI, Christian
•
Roy Chowdhury, Amit K.
2016
  • conference object

Abstract
Person re-identification is an open and challenging problem in computer vision. Majority of the efforts have been spent either to design the best feature representation or to learn the optimal matching metric. Most approaches have neglected the problem of adapting the selected features or the learned model over time. To address such a problem, we propose a temporal model adaptation scheme with human in the loop. We first introduce a similarity-dissimilarity learning method which can be trained in an incremental fashion by means of a stochastic alternating directions methods of multipliers optimization procedure. Then, to achieve temporal adaptation with limited human effort, we exploit a graph-based approach to present the user only the most informative probe-gallery matches that should be used to update the model. Results on three datasets have shown that our approach performs on par or even better than state-of-the-art approaches while reducing the manual pairwise labeling effort by about 80%.
DOI
10.1007/978-3-319-46493-0_52
WOS
WOS:000389385100052
Archivio
http://hdl.handle.net/11390/1093865
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-84990029639
http://link.springer.com/chapter/10.1007%2F978-3-319-46493-0_52
Diritti
closed access
Soggetti
  • Active learning

  • Metric learning

  • Person re-identificai...

  • Theoretical Computer ...

  • Computer Science (all...

Scopus© citazioni
11
Data di acquisizione
Jun 2, 2022
Vedi dettagli
Web of Science© citazioni
82
Data di acquisizione
Mar 23, 2024
Visualizzazioni
1
Data di acquisizione
Apr 19, 2024
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