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ITSME: Multi-modal and Unobtrusive Behavioural User Authentication for Smartphones

机译:ITSME:智能手机的多模态和不引人注目的行为用户身份验证

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In this paper, we propose a new multi-modal behavioural biometric that uses features collected while the user slide-unlocks the smartphone to answer a call. In particular, we use the slide swipe, the arm movement in bringing the phone close to the ear and voice recognition to implement our behaviour biometric. We implemented the method on a real phone and we present a controlled user study among 26 participants in multiple scenario's to evaluate our prototype. We show that for each tested modality the Bayesian network classifier outperforms other classifiers (Random Forest algorithm and Sequential Minimal Optimization). The multimodal system using slide and pickup features improved the unimodal result by a factor two, with a FAR of 11.01% and a FRR of 4.12%. The final HTER was 7.57%.
机译:在本文中,我们提出了一种新的多模态行为生物识别,它使用在用户幻灯片解锁智能手机接听呼叫时收集的功能。特别是,我们使用幻灯片刷卡,手臂运动使手机接近耳朵和语音识别来实现我们的行为生物识别。我们在真正的手机上实施了该方法,我们在多种情况下展示了26名参与者之间的受控用户学习来评估我们的原型。我们表明,对于每个测试的方式,贝叶斯网络分类器优于其他分类器(随机林算法和顺序最小优化)。使用载玻片和拾取器的多模式系统具有两个因子两倍的单向结果,远远超过11.01%,而FRR为4.12%。最终的herter是7.57%。

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