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Anomaly Detection-Based Unknown Face Presentation Attack Detection

About

Anomaly detection-based spoof attack detection is a recent development in face Presentation Attack Detection (fPAD), where a spoof detector is learned using only non-attacked images of users. These detectors are of practical importance as they are shown to generalize well to new attack types. In this paper, we present a deep-learning solution for anomaly detection-based spoof attack detection where both classifier and feature representations are learned together end-to-end. First, we introduce a pseudo-negative class during training in the absence of attacked images. The pseudo-negative class is modeled using a Gaussian distribution whose mean is calculated by a weighted running mean. Secondly, we use pairwise confusion loss to further regularize the training process. The proposed approach benefits from the representation learning power of the CNNs and learns better features for fPAD task as shown in our ablation study. We perform extensive experiments on four publicly available datasets: Replay-Attack, Rose-Youtu, OULU-NPU and Spoof in Wild to show the effectiveness of the proposed approach over the previous methods. Code is available at: \url{https://github.com/yashasvi97/IJCB2020_anomaly}

Yashasvi Baweja, Poojan Oza, Pramuditha Perera, Vishal M. Patel• 2020

Related benchmarks

TaskDatasetResultRank
Face Anti-SpoofingMSU-MFSD (M) & Replay-Attack (I) to CASIA-MFSD (C) (test)
HTER (%)27.33
35
Face Anti-SpoofingMSU-MFSD (M) & Replay-Attack (I) to OULU-NPU (O) (test)
HTER32.01
25
Face Anti-SpoofingReplay-Attack CR Protocol (Train on CASIA-MFSD) (test)
HTER46.29
22
Face Anti-SpoofingIdiap Replay-Attack to CASIA-MFSD I → C (test)
HTER29.44
10
Face Anti-Spoofing3DMAD (D) Cross-domain from O, S (test)
HTER37.86
9
Face Anti-SpoofingCASIA-SURF (U) [Cross-domain from O, S] (test)
HTER41.74
9
Face Anti-SpoofingHKBU-MARs H Cross-domain from O, S (test)
HTER35.65
9
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