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Papers/On Improving Temporal Consistency for Online Face Liveness...

On Improving Temporal Consistency for Online Face Liveness Detection

Xiang Xu, Yuanjun Xiong, Wei Xia

2020-06-11Face RecognitionFace Anti-Spoofing
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Abstract

In this paper, we focus on improving the online face liveness detection system to enhance the security of the downstream face recognition system. Most of the existing frame-based methods are suffering from the prediction inconsistency across time. To address the issue, a simple yet effective solution based on temporal consistency is proposed. Specifically, in the training stage, to integrate the temporal consistency constraint, a temporal self-supervision loss and a class consistency loss are proposed in addition to the softmax cross-entropy loss. In the deployment stage, a training-free non-parametric uncertainty estimation module is developed to smooth the predictions adaptively. Beyond the common evaluation approach, a video segment-based evaluation is proposed to accommodate more practical scenarios. Extensive experiments demonstrated that our solution is more robust against several presentation attacks in various scenarios, and significantly outperformed the state-of-the-art on multiple public datasets by at least 40% in terms of ACER. Besides, with much less computational complexity (33% fewer FLOPs), it provides great potential for low-latency online applications.

Results

TaskDatasetMetricValueModel
Depth EstimationSiW (Protocol 3)ACER28.7FasTCo
Facial Recognition and ModellingSiW (Protocol 3)ACER28.7FasTCo
Visual OdometrySiW (Protocol 3)ACER28.7FasTCo
Face ReconstructionSiW (Protocol 3)ACER28.7FasTCo
3DSiW (Protocol 3)ACER28.7FasTCo
3D Face ModellingSiW (Protocol 3)ACER28.7FasTCo
3D Face ReconstructionSiW (Protocol 3)ACER28.7FasTCo
Depth And Camera MotionSiW (Protocol 3)ACER28.7FasTCo

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