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The Effectiveness of Depth Data in Liveness Face Authentication Using 3D Sensor Cameras ?

机译:深度数据在使用3D传感器摄像机进行的人脸识别中的有效性?

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Even though biometric technology increases the security of systems that use it, they are prone to spoof attacks where attempts of fraudulent biometrics are used. To overcome these risks, techniques on detecting liveness of the biometric measure are employed. For example, in systems that utilise face authentication as biometrics, a liveness is assured using an estimation of blood flow, or analysis of quality of the face image. Liveness assurance of the face using real depth technique is rarely used in biometric devices and in the literature, even with the availability of depth datasets. Therefore, this technique of employing 3D cameras for liveness of face authentication is underexplored for its vulnerabilities to spoofing attacks. This research reviews the literature on this aspect and then evaluates the liveness detection to suggest solutions that account for the weaknesses found in detecting spoofing attacks. We conduct a proof-of-concept study to assess the liveness detection of 3D cameras in three devices, where the results show that having more flexibility resulted in achieving a higher rate in detecting spoofing attacks. Nonetheless, it was found that selecting a wide depth range of the 3D camera is important for anti-spoofing security recognition systems such as surveillance cameras used in airports. Therefore, to utilise the depth information and implement techniques that detect faces regardless of the distance, a 3D camera with long maximum depth range (e.g., 20 m) and high resolution stereo cameras could be selected, which can have a positive impact on accuracy.
机译:即使生物特征识别技术提高了使用它的系统的安全性,但在使用欺诈性生物特征识别的尝试中,它们也容易受到欺骗攻击。为了克服这些风险,采用了检测生物特征测量的活跃度的技术。例如,在将面部认证用作生物特征的系统中,使用血流估计或面部图像质量分析来确保生命力。即使在具有深度数据集的情况下,也很少在生物识别设备和文献中使用使用真实深度技术的面部活动性保证。因此,对于利用3D摄像机进行人脸验证的活泼性的技术,由于其容易受到欺骗攻击,因此尚未得到充分利用。这项研究回顾了这方面的文献,然后评估了活动性检测,以提出解决方案,该解决方案可解决检测欺骗性攻击中发现的弱点。我们进行了概念验证研究,以评估三种设备中3D摄像机的活动性检测,结果表明,具有更大的灵活性导致检测欺骗攻击的比率更高。但是,已经发现,选择3D摄像机的较宽深度范围对于反欺骗安全识别系统(例如机场中使用的监视摄像机)很重要。因此,为了利用深度信息并实施不管距离如何都可以检测面部的技术,可以选择具有长的最大深度范围(例如20m)的3D相机和高分辨率的立体相机,这可以对精度产生积极影响。

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