A Universal Anti-Spoofing Approach for Contactless Fingerprint Biometric Systems
Banafsheh Adami, Sara Tehranipoor, Nasser Nasrabadi, and Nima Karimian

TL;DR
This paper introduces a universal anti-spoofing method for contactless fingerprint systems using synthetic data and a novel loss function, achieving high accuracy in detecting unseen spoof attacks.
Contribution
It proposes a semi-supervised deep learning approach with synthetic fingerprint generation and a combined Arcface and Center loss for improved spoof detection.
Findings
Achieved an ACER of 0.37% on unseen spoof data.
Demonstrated the effectiveness of synthetic data in training.
Validated the robustness of the joint loss function.
Abstract
With the increasing integration of smartphones into our daily lives, fingerphotos are becoming a potential contactless authentication method. While it offers convenience, it is also more vulnerable to spoofing using various presentation attack instruments (PAI). The contactless fingerprint is an emerging biometric authentication but has not yet been heavily investigated for anti-spoofing. While existing anti-spoofing approaches demonstrated fair results, they have encountered challenges in terms of universality and scalability to detect any unseen/unknown spoofed samples. To address this issue, we propose a universal presentation attack detection method for contactless fingerprints, despite having limited knowledge of presentation attack samples. We generated synthetic contactless fingerprints using StyleGAN from live finger photos and integrating them to train a semi-supervised…
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Taxonomy
TopicsBiometric Identification and Security
MethodsDense Connections · Convolution · R1 Regularization · Adaptive Instance Normalization · Feedforward Network · StyleGAN · Additive Angular Margin Loss · HuMan(Expedia)||How do I get a human at Expedia?
