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Multimodal authentication on smartphones: Combining iris and sensor recognition for a double check of user identity

机译:智能手机上的多模式身份验证:结合虹膜和传感器识别功能以双重检查用户身份

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摘要

Iris recognition on mobile devices is a challenging task; performing acquisition via the embedded sensors can introduce the sensor interoperability problem. Biometric systems developed so far are limited in their ability of comparing biometric data originated by different sensors because they operate under the assumption that the data to be compared are obtained using the same sensor. This problem led to the development of biometric recognition algorithms able to work independently from the data source. In this paper, we get around the sensor interoperability problem leveraging on the picture differences due to acquisition by different sensors. We present a novel system that combines the recognition of user's iris and user's device, i.e. something the user is plus something the user has. To do so, we adopted an iris recognition algorithm, namely Cumulative SUMs, and a well-known technique in the image forensic field for camera source identification based on the extraction of the Sensor Pattern Noise. The two identification processes are performed on the same picture leading to a system with a good trade-off between ease of use and accuracy. The approach is tested on MICHE, a database composed by iris images captured with different mobile devices in unconstrained acquisition conditions. (C) 2015 Elsevier B.V. All rights reserved.
机译:在移动设备上进行虹膜识别是一项艰巨的任务。通过嵌入式传感器执行采集会引入传感器互操作性问题。迄今为止开发的生物识别系统在比较由不同传感器产生的生物识别数据方面的能力受到限制,因为它们在假设要比较的数据是使用同一传感器获得的前提下运行的。这个问题导致了能够独立于数据源工作的生物特征识别算法的发展。在本文中,我们利用由于不同传感器采集而导致的图像差异来解决传感器互操作性问题。我们提出了一种新颖的系统,该系统结合了对用户虹膜和用户设备的识别,即用户所拥有的东西加上用户所拥有的东西。为此,我们采用了虹膜识别算法(即累积SUM)和图像取证领域中的一种众所周知的技术,该技术基于传感器图案噪声的提取来进行相机源识别。在同一张图片上执行两个识别过程,从而导致系统在易用性和准确性之间取得良好的权衡。该方法在MICHE上进行了测试,MICHE是由在不受限制的采集条件下用不同移动设备捕获的虹膜图像组成的数据库。 (C)2015 Elsevier B.V.保留所有权利。

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