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Papers/Learn Convolutional Neural Network for Face Anti-Spoofing

Learn Convolutional Neural Network for Face Anti-Spoofing

Jianwei Yang, Zhen Lei, Stan Z. Li

2014-08-24Face Anti-Spoofing
PaperPDFCodeCodeCodeCode

Abstract

Though having achieved some progresses, the hand-crafted texture features, e.g., LBP [23], LBP-TOP [11] are still unable to capture the most discriminative cues between genuine and fake faces. In this paper, instead of designing feature by ourselves, we rely on the deep convolutional neural network (CNN) to learn features of high discriminative ability in a supervised manner. Combined with some data pre-processing, the face anti-spoofing performance improves drastically. In the experiments, over 70% relative decrease of Half Total Error Rate (HTER) is achieved on two challenging datasets, CASIA [36] and REPLAY-ATTACK [7] compared with the state-of-the-art. Meanwhile, the experimental results from inter-tests between two datasets indicates CNN can obtain features with better generalization ability. Moreover, the nets trained using combined data from two datasets have less biases between two datasets.

Results

TaskDatasetMetricValueModel
Depth EstimationCASIA-MFSDEER4.92Multi-Scale
Depth EstimationReplay-AttackEER2.14Multi-Scale
Facial Recognition and ModellingCASIA-MFSDEER4.92Multi-Scale
Facial Recognition and ModellingReplay-AttackEER2.14Multi-Scale
Visual OdometryCASIA-MFSDEER4.92Multi-Scale
Visual OdometryReplay-AttackEER2.14Multi-Scale
Face ReconstructionCASIA-MFSDEER4.92Multi-Scale
Face ReconstructionReplay-AttackEER2.14Multi-Scale
3DCASIA-MFSDEER4.92Multi-Scale
3DReplay-AttackEER2.14Multi-Scale
3D Face ModellingCASIA-MFSDEER4.92Multi-Scale
3D Face ModellingReplay-AttackEER2.14Multi-Scale
3D Face ReconstructionCASIA-MFSDEER4.92Multi-Scale
3D Face ReconstructionReplay-AttackEER2.14Multi-Scale
Depth And Camera MotionCASIA-MFSDEER4.92Multi-Scale
Depth And Camera MotionReplay-AttackEER2.14Multi-Scale

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