On the assessment of face image quality based on handcrafted features
Zusammenfassung
This paper studies the assessment of the quality of face images, predicting the utility of
face images for automated recognition. The utility of frontal face images from a publicly available
dataset was assessed by comparing them with each other using commercial off-the-shelf face recognition
systems. Multiple face image features delineating face symmetry and characteristics of the
capture process were analysed to find features predictive of utility. The selected features were used
to build system-specific and generic random forest classifiers.
- Vollständige Referenz
- BibTeX
Henniger, O., Fu, B. & Chen, C.,
(2020).
On the assessment of face image quality based on handcrafted features.
In:
Brömme, A., Busch, C., Dantcheva, A., Raja, K., Rathgeb, C. & Uhl, A.
(Hrsg.),
BIOSIG 2020 - Proceedings of the 19th International Conference of the Biometrics Special Interest Group.
Bonn:
Gesellschaft für Informatik e.V..
(S. 273-280).
@inproceedings{mci/Henniger2020,
author = {Henniger, Olaf AND Fu, Biying AND Chen, Cong},
title = {On the assessment of face image quality based on handcrafted features},
booktitle = {BIOSIG 2020 - Proceedings of the 19th International Conference of the Biometrics Special Interest Group},
year = {2020},
editor = {Brömme, Arslan AND Busch, Christoph AND Dantcheva, Antitza AND Raja, Kiran AND Rathgeb, Christian AND Uhl, Andreas} ,
pages = { 273-280 },
publisher = {Gesellschaft für Informatik e.V.},
address = {Bonn}
}
author = {Henniger, Olaf AND Fu, Biying AND Chen, Cong},
title = {On the assessment of face image quality based on handcrafted features},
booktitle = {BIOSIG 2020 - Proceedings of the 19th International Conference of the Biometrics Special Interest Group},
year = {2020},
editor = {Brömme, Arslan AND Busch, Christoph AND Dantcheva, Antitza AND Raja, Kiran AND Rathgeb, Christian AND Uhl, Andreas} ,
pages = { 273-280 },
publisher = {Gesellschaft für Informatik e.V.},
address = {Bonn}
}
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| BIOSIG_2020_paper_38_update.pdf | 725.1Kb | Öffnen |
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Mehr Information
ISBN: 978-3-88579-700-5
ISSN: 1617-5468
Datum: 2020
Sprache:
(en)
(en)
Typ: Text/Conference Paper

