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Spoofing attacks mainly include printing artifacts, electronic screens and ultra-realistic face masks or models. In this paper, we propose a component-based face coding approach for liveness detection. The proposed method consists of four steps: (1) locating the components of face; (2) coding the low-level features respectively for all the components; (3) deriving the high-level face representation by pooling the codes with weights derived from Fisher criterion; (4) concatenating the histograms from all components into a classifier for identification. The proposed framework makes good use of micro differences between genuine faces and fake faces. Meanwhile, the inherent appearance differences among different components are retained. Extensive experiments on three published standard databases demonstrate that the method can achieve the best liveness detection performance in three databases.
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Jianwei Yang
Beijing Normal University
Zhen Lei
Macau University of Science and Technology
Shengcai Liao
Central South University
Chinese Academy of Sciences
Institute of Automation
Shandong Institute of Automation
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Yang et al. (Sat,) studied this question.
synapsesocial.com/papers/6a153dab5347fbb1739f7502 — DOI: https://doi.org/10.1109/icb.2013.6612955