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  4. Video-to-Video face recognition for low-quality surveillance data
 
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2018
Doctoral Thesis
Titel

Video-to-Video face recognition for low-quality surveillance data

Abstract
The availability of video data is an opportunity and a challenge for law enforcement agencies. Face recognition methods can play a key role in the automated search for persons in the data. This work targets efficient representations of low-quality face sequences to enable fast and accurate face search. Novel concepts for multi-scale analysis, dataset augmentation, CNN loss function, and sequence description lead to improvements over state-of-the-art methods on surveillance video footage.
ThesisNote
Zugl.: Karlsruhe, Inst. für Technologie (KIT), Diss., 2018
Author(s)
Herrmann, Christian
Beteiligt
Beyerer, Jürgen
Verlag
KIT Scientific Publishing
Verlagsort
Karlsruhe
DOI
10.5445/KSP/1000083168
File(s)
N-506470.pdf (41.02 MB)
Language
English
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Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB
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