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3D Mask Face Anti-spoofing with Remote Photoplethysmography

机译:3D面膜脸部反欺骗与远程光增性近似的画影

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3D mask spoofing attack has been one of the main challenges in face recognition. Among existing methods, texture-based approaches show powerful abilities and achieve encouraging results on 3D mask face anti-spoofing. However, these approaches may not be robust enough in application scenarios and could fail to detect imposters with hyper-real masks. In this paper, we propose a novel approach to 3D mask face anti-spoofing from a new perspective, by analysing heartbeat signal through remote Photoplethysmography (rPPG). We develop a novel local rPPG correlation model to extract discriminative local heartbeat signal patterns so that an imposter can better be detected regardless of the material and quality of the mask. To further exploit the characteristic of rPPG distribution on real faces, we learn a confidence map through heartbeat signal strength to weight local rPPG correlation pattern for classification. Experiments on both public and self-collected datasets validate that the proposed method achieves promising results under intra and cross dataset scenario.
机译:3D面膜欺骗攻击是人脸识别的主要挑战之一。在现有方法中,基于纹理的方法表现出强大的能力,实现3D面膜面部反欺骗的令人鼓舞的结果。然而,这些方法可能在应用方案中可能不够强大,并且可能无法检测到具有超真实面具的冒名顶替。在本文中,我们通过远程光增读数(RPPG)分析心跳信号来提出一种新的3D掩模面反欺骗的方法。我们开发了一种新颖的局部RPPG相关模型,以提取判别局部心跳信号模式,使得无论面罩的材料和质量如何,都可以更好地检测到冒险体。为了进一步利用RPPG分布在真实面上的特性,我们通过心跳信号强度来学习置信地图,以重量局部RPPG相关模式进行分类。对公共和自收集数据集的实验验证了该方法在内部和交叉数据集方案下实现了有希望的结果。

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