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A continuous user authentication scheme for mobile devices

机译:用于移动设备的连续用户认证方案

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Face and touch modalities have independently been shown to yield promising results for continuous user authentication. In this study, we present a novel framework that combines these modalities. We show a stacked classifier approach can be used to improve the continuous authentication on mobile devices and address some prevalent issues with the current state-of-the-art. We use a state-of-the-art public dataset containing face and touch-gesture modalities for 50 users. Features are extracted from each modality for each user. We train a set of classifiers for user modalities to provide probability scores on a sample. The scores capture the nuances of each sample and are concatenated into a vector. This vector is used in a meta-level classifier. The scores we obtain from the meta-level classifiers show our approach performs better than previous continuous authentication approaches. We achieve an equal error rate of 3.77% for a single sample. We also show the added robustness a multi-modal approach provides if one modality is compromised.
机译:面部和触摸模式已独立地显示出持续用户认证的有希望的结果。在这项研究中,我们提出了一种结合这些方式的新框架。我们显示堆叠的分类器方法可用于改善移动设备上的连续身份验证,并通过当前最先进的问题解决一些普遍的问题。我们使用最先进的公共数据集包含50个用户的脸部和触摸手势模态。针对每个用户的每个模态提取功能。我们培训一组用于用户模式的分类器,以提供样本的概率分数。分数捕获每个样品的细微差异,并串联成载体。该矢量用于元级分类器。我们从Meta级分类器获得的分数显示我们的方法比以前的连续身份验证方法更好。我们达到单个样本的平等错误率为3.77%。我们还显示了额外的稳健性,多模态方法提供了一个模态是否受到损害。

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