Tri-modal person re-identification with rgb, depth and thermal features

Andreas Mogelmose, Chris Bahnsen, Thomas B. Moeslund, Albert Clapes, Sergio EscalerA

Research output: Contribution to book/anthology/report/conference proceedingArticle in proceedingResearchpeer-review

69 Citations (Scopus)

Abstract

Person re-identification is about recognizing people who have passed by a sensor earlier. Previous work is mainly based on RGB data, but in this work we for the first time present a system where we combine RGB, depth, and thermal data for re-identification purposes. First, from each of the three modalities, we obtain some particular features: from RGB data, we model color information from different regions of the body, from depth data, we compute different soft body biometrics, and from thermal data, we extract local structural information. Then, the three information types are combined in a joined classifier. The tri-modal system is evaluated on a new RGB-D-T dataset, showing successful results in re-identification scenarios.

Original languageEnglish
Title of host publicationProceedings - 2013 IEEE Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2013
Number of pages7
PublisherIEEE
Publication date2013
Pages301-307
Article number6595891
ISBN (Print)9780769549903
DOIs
Publication statusPublished - 2013
Event2013 IEEE Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2013 - Portland, OR, United States
Duration: 23 Jun 201328 Jun 2013

Conference

Conference2013 IEEE Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2013
Country/TerritoryUnited States
CityPortland, OR
Period23/06/201328/06/2013
SeriesIEEE Computer Society Conference on Computer Vision and Pattern Recognition Workshops
ISSN2160-7508

Keywords

  • Depth Features
  • Multi-modal data
  • Reidentification
  • Thermal Features

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