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High-accurate and robust fingerprint anti-spoofing system using Optical Coherence Tomography

机译:使用光学相干断层扫描的高准确和坚固的指纹防欺骗系统

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摘要

Traditional commercial automated fingerprint recognition systems (AFRSs) are vulnerable to fake attacks by the use of artificial fingerprints, due to its limitation on resolution and the difficulty of obtaining depth information. Developing new systems with strong anti-spoofing ability are of increasing concern in the current digital age. Inspired by the observation and comparison of fingertip skin structure and the one dimensional (1D) depth signals derived from OCT acquisition images between real finger and artificial fingerprints, two novel anti-spoofing features, namely depth-double-peak feature and sub-single-peak feature, were specifically defined. Depth-double-peak feature refers that there must be two and only two peaks in the 1D depth signal which reflects the double-peak structure of real fingertip skin. While sub single-peak feature means that there must be a peak in the ID depth signal intercepted before the maximum peak which distinguishes the extra layer covered on a real finger. Real and fake images could be presented by these two features and classified by a pre-learned threshold. Four types of artificial fingerprint, i.e., Normal Thickness Fingerprint Layer (NTFL), thin Fingerprint Layer (TFL), Ultra-Thin Fingerprint Layer (UTFL and Artificial Fingers Model (AFM) were collected to verify system robustness. 30 sets of real finger data (each set includes 400 images) and 60 sets of artificial fingerprint data (15 sets of each type) were collected by our designed OCT device. Experimental results show that our proposed anti-spoofing system could achieve 100% accuracy over all four types of artificial fingerprints and outperform the other automated anti-spoofing method in comparison. (C) 2019 Elsevier Ltd. All rights reserved.
机译:传统的商业自动化指纹识别系统(AFRSS)由于利用人工指纹而易受虚拟攻击,这是由于其对分辨率的限制和获取深度信息的难度来实现假攻击。开发具有强大反欺骗能力的新系统在目前的数字时代令人担忧。灵感来自指尖皮肤结构的观察和比较和从OCT获取图像衍生的Real Finger和人工指纹之间的一维(1D)深度信号,两种新的防欺骗功能,即深度双峰特征和分单 - 峰值特征,具体定义。深度双峰特征是指1D深度信号中必须有两个且仅两个峰值,反映了真正指尖皮肤的双峰结构。虽然副单峰特征意味着在最大峰值之前必须存在峰值中的峰值,其区分真实手指上覆盖的额外层。真实和假图像可以由这两个特征呈现,并由预先学习的阈值分类。收集了四种人工指纹,即常规厚度指纹层(NTFL),薄指纹层(TFL),超薄指纹层(UTFL和人工指纹模型(AFM),以验证系统鲁棒性。30套真正的手指数据(每组包括400图像),我们设计的OCT设备收集了60套人工指纹数据(每种类型的15套)。实验结果表明,我们提出的防欺骗系统可以在所有四种人工中获得100%的精度。指纹和优于其他自动抗欺骗方法相比之下。(c)2019 Elsevier有限公司保留所有权利。

著录项

  • 来源
    《Expert systems with applications》 |2019年第9期|31-44|共14页
  • 作者单位

    Shenzhen Univ Natl Engn Lab Big Data Syst Comp Technol Shenzhen 518060 Peoples R China|Shenzhen Univ Coll Comp Sci & Software Engn Shenzhen 518060 Peoples R China|Shenzhen Univ Guangdong Key Lab Intelligent Informat Proc Shenzhen 518060 Peoples R China;

    Shenzhen Univ Natl Engn Lab Big Data Syst Comp Technol Shenzhen 518060 Peoples R China|Shenzhen Univ Guangdong Key Lab Intelligent Informat Proc Shenzhen 518060 Peoples R China;

    Shenzhen Univ Coll Mechatron & Control Engn Shenzhen 518060 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fingerprint; Anti-spoofing; Optical Coherence Tomography (OCT);

    机译:指纹;反欺骗;光学相干断层扫描(OCT);

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