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Windowed DMD as a Microtexture Descriptor for Finger Vein Counter-spoofing in Biometrics

机译:窗口DMD作为生物识别中的手指静脉反击的微纹理描述符

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摘要

Recent studies have shown that it is possible to attack a finger vein (FV) based biometric system using printed materials. In this study, we propose a novel method to detect spoofing of static finger vein images using Windowed Dynamic mode decomposition (W-DMD). This is an atemporal variant of the recently proposed Dynamic Mode Decomposition for image sequences. The proposed method achieves better results when compared to established methods such as local binary patterns (LBP), discrete wavelet transforms (DWT), histogram of gradients (HoG), and filter methods such as range-filters, standard deviation filters (STD) and entropy filters, when using SVM with a minimum intersection kernel. The overall pipeline which consists of W-DMD and SVM, proves to be efficient, and convenient to use, given the absence of additional parameter tuning requirements. The effectiveness of our methodology is demonstrated using FV-Spoofing-Attack database which is publicly available. Our test results show that W-DMD can successfully detect printed finger vein images because they contain micro-level artefacts that not only differ in quality but also in light reflection properties compared to valid/live finger vein images.
机译:最近的研究表明,可以使用印刷材料攻击基于指静脉(FV)的生物识别系统。在这项研究中,我们提出了一种使用窗口动态模式分解(W-DMD)来检测静电手指静脉图像欺骗的新方法。这是最近提出的图像序列的动态模式分解的局部变体。与诸如局部二进制模式(LBP),离散小波变换(DWT),梯度(HOG)的直方图(HOG)的直立图和诸如范围滤波器,标准偏差滤波器(STD)等的滤波器方法(标准偏差滤波器(STD)和滤波器方法等方法,所提出的方法使用SVM具有最小交叉内核时的熵过滤器。鉴于缺乏其他参数调整要求,由W-DMD和SVM组成的整体管道是有效的,使用,并且使用方便使用。使用公开可用的FV-Spoofing-Attack数据库来证明我们的方法的有效性。我们的测试结果表明,W-DMD可以成功地检测印刷手指静脉图像,因为它们含有与有效/活手指静脉图像相比的质量而且在光反射特性中不仅不同的微观艺术品。

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