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Understanding deep face anti-spoofing: from the perspective of data

机译:了解深脸反欺骗:从数据的角度来看

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摘要

Face biometrics systems are increasingly used by many business applications, which can be vulnerable to malicious attacks, leading to serious consequences. How to effectively detect spoofing faces is a critical problem. Traditional methods rely on handcraft features to distinguish real faces from fraud ones, but it is difficult for feature descriptors to handle all attack variations. More recently, in order to overcome the limitation of traditional methods, newly emerging CNN-based approaches were proposed, most of which, if not all, carefully design different network architectures. To make CNN-related approaches effective, data and learning strategies are both indispensable. In this paper, instead of focusing on network design, we explore more from the perspective of data. We present that appropriate nonlinear adjustment and hair geometry can amplify the contrast between real faces and attacks. Given our exploration, a simple convolutional neural network can solve the face anti-spoofing problem under different attack scenarios and achieve state-of-the-art performance on well-known face anti-spoofing benchmarks.
机译:面部生物识别系统越来越多地用于许多业务应用程序,这可能很容易受到恶意攻击,导致严重后果。如何有效地检测欺骗面是一个关键问题。传统方法依赖于手工特征来区分真实面从欺诈,但功能描述符难以处理所有攻击变化。最近,为了克服传统方法的限制,提出了新的新兴的基于CNN的方法,其中大多数是,如果不是全部,请仔细设计不同的网络架构。为了使CNN相关的方法有效,数据和学习策略都是必不可少的。在本文中,从数据的角度来看,我们探讨了更多的网络设计。我们展示适当的非线性调节和毛发几何形状可以放大真实面和攻击之间的对比度。鉴于我们的探索,一个简单的卷积神经网络可以在不同的攻击情景下解决脸部反欺骗问题,实现众所周知的脸部防欺骗基准测试的最先进的性能。

著录项

  • 来源
    《The Visual Computer》 |2021年第5期|1015-1028|共14页
  • 作者单位

    Univ Hong Kong Dept Comp Sci Pok Fu Lam Hong Kong Peoples R China;

    Univ Hong Kong Dept Comp Sci Pok Fu Lam Hong Kong Peoples R China;

    Univ Hong Kong Dept Comp Sci Pok Fu Lam Hong Kong Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Face anti-spoofing; Biometrics; Image adjustment; Image processing;

    机译:面部反欺骗;生物识别;图像调整;图像处理;

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