One-shot representational learning for joint biometric and device authentication

S Banerjee, A Ross - 2020 25th International Conference on …, 2021 - ieeexplore.ieee.org
2020 25th International Conference on Pattern Recognition (ICPR), 2021ieeexplore.ieee.org
In this work, we propose a method to simultaneously perform (i) biometric recognition (ie,
identify the individual), and (ii) device recognition,(ie, identify the device) from a single
biometric image, say, a face image, using a one-shot schema. Such a joint recognition
scheme can be useful in devices such as smartphones for enhancing security as well as
privacy. We propose to automatically learn a joint representation that encapsulates both
biometric-specific and sensor-specific features. We evaluate the proposed approach using …
In this work, we propose a method to simultaneously perform (i) biometric recognition (i.e., identify the individual), and (ii) device recognition, (i.e., identify the device) from a single biometric image, say, a face image, using a one-shot schema. Such a joint recognition scheme can be useful in devices such as smartphones for enhancing security as well as privacy. We propose to automatically learn a joint representation that encapsulates both biometric-specific and sensor-specific features. We evaluate the proposed approach using iris, face and periocular images acquired using near-infrared iris sensors and smartphone cameras. Experiments conducted using 14,451 images from 13 sensors resulted in a rank-1 identification accuracy of upto 99.81% and a verification accuracy of upto 100% at a false match rate of 1%.
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