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Understanding visual lip-based biometric authentication for mobile devices

机译:了解移动设备的基于视觉唇的生物认证

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This paper explores the suitability of lip-based authentication as a behavioural biometric for mobile devices. Lip-based biometric authentication is the process of verifying an individual based on visual information taken from the lips while speaking. It is particularly suited to mobile devices because it contains unique information; its potential for liveness over existing popular biometrics such as face and fingerprint and lip movements can be captured using a device’s front-facing camera, requiring no dedicated hardware. Despite its potential, research and progress into lip-based biometric authentication has been significantly slower than other biometrics such as face, fingerprints, or iris.This paper investigates a state-of-the-art approach using a deep Siamese network, trained with the triplet loss for one-shot lip-based biometric authentication with real-world challenges. The proposed system, LipAuth, is rigourously examined with real-world data and challenges that could be expected on lip-based solution deployed on a mobile device. The work in this paper shows for the first time how a lip-based authentication system performs beyond a closed-set protocol, benchmarking a new open-set protocol with an equal error rates of 1.65% on the XM2VTS dataset.New datasets, qFace and FAVLIPS, were collected for the work in this paper, which push the field forward by enabling systematic testing of the content and quantities of data needed for lip-based biometric authentication and highlight problematic areas for future work. The FAVLIPS dataset was designed to mimic some of the hardest challenges that could be expected in a deployment scenario and include varied spoken content, miming and a wide range of challenging lighting conditions. The datasets captured for this work are available to other university research groups on request.
机译:本文探讨了基于唇部的身份验证作为移动设备的行为生物识别的适用性。基于唇的生物认证是基于在说话时从嘴唇拍摄的视觉信息来验证个人的过程。它特别适用于移动设备,因为它包含唯一的信息;它可以使用设备的正面相机捕获其对现有流行生物识别性的最活跃的潜力,并且可以使用设备的正面相机捕获,要求没有专用硬件。尽管有潜力,研究和进展,以唇部的生物识别认证显着慢于其他生物识别,如面部,指纹或虹膜等其他生物识别。本文使用深暹罗网络调查了最先进的方法,与具有真实挑战的一次性唇部生物识别的三重态损失。拟议的系统,Lipauth,利用现实世界的数据和挑战进行了严格检查,这些挑战可以在移动设备上部署的基于唇部的解决方案。本文的工作首次显示了唇部的身份验证系统首次执行超出闭合组协议,在XM2VTS DataSet上的相同误差率为1.65%的新开放式协议.New数据集,qface和Favlips,在本文中收集了该论文的工作,该工作通过启用基于唇部的生物认证所需的数据的内容和数量来推动该领域,并突出有问题的区域以供将来的工作。 Favlips DataSet旨在模仿部署方案中可以预期的最艰难的挑战,包括各种口语内容,Miming和广泛的具有挑战性的照明条件。根据要求提供用于此工作的数据集可根据要求提供其他大学研究组。

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