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Fingerprint presentation attacks detection based on the user-specific effect

Conference Paper
Publication Date:
2017
Short description:
Fingerprint presentation attacks detection based on the user-specific effect / Ghiani, L.; Marcialis, G. L.; Roli, F.. - 2018-:(2017), pp. 352-358. ( 2017 IEEE International Joint Conference on Biometrics, IJCB 2017 usa 2017) [10.1109/BTAS.2017.8272717].
abstract:
The similarities among different acquisitions of the same fingerprint have never been taken into account, so far, in the feature space designed to detect fingerprint presentation attacks. Actually, the existence of such resemblances has only been shown in a recent work where the authors have been able to describe what they called the "user-specific effect". We present in this paper a first attempt to take advantage of this in order to improve the performance of a FPAD system. In particular, we conceived a binary code of three bits aimed to "detect" such effect. Coupled with a classifier trained according to the standard protocol followed, for example, in the LivDet competition, this approach allowed us to get a better accuracy compared to that obtained with the "generic users" classifier alone.
Iris type:
4.1 Contributo in Atti di convegno
List of contributors:
Ghiani, L.; Marcialis, G. L.; Roli, F.
Authors of the University:
GHIANI Luca
Handle:
https://iris.uniss.it/handle/11388/348911
Book title:
IEEE International Joint Conference on Biometrics, IJCB 2017
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