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首页> 外文期刊>IEICE transactions on information and systems >WearAuth: Wristwear-Assisted User Authentication for Smartphones Using Wavelet-Based Multi-Resolution Analysis
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WearAuth: Wristwear-Assisted User Authentication for Smartphones Using Wavelet-Based Multi-Resolution Analysis

机译:WearAuth:使用基于小波的多分辨率分析对智能手机进行腕带辅助的用户身份验证

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Zero-effort bilateral authentication was introduced recently to use a trusted wristwear to continuously authenticate a smartphone user. A user is allowed to use the smartphone if both wristwear and smartphone are determined to be held by the same person by comparing the wristwear's motion with the smartphone's input or motion, depending on the grip — which hand holds the smartphone and which hand provides the input. Unfortunately, the scheme has several shortcomings. First, it may work improperly when the user is walking since the gait can conceal the wrist's motions of making touches. Second, it continuously compares the motions of the two devices, which incurs a heavy communication burden. Third, the acceleration-based grip inference, which assumes that the smartphone is horizontal with the ground is inapplicable in practice. To address these shortcomings, we propose WearAuth , wristwear-assisted user authentication for smartphones in this paper. WearAuth applies wavelet-based multi-resolution analysis to extract the desired touch-specific movements regardless of whether the user is stationary or moving; uses discrete Fourier transform-based approximate correlation to reduce the communication overhead; and takes a new approach to directly compute the relative device orientation without using acceleration to infer the grip more precisely. In two experiments with 50 subjects, WearAuth produced false negative rates of 3.6% or less and false positive rates of 1.69% or less. We conclude that WearAuth operates properly under various usage cases and is robust to sophisticated attacks.
机译:最近引入了零努力双向身份验证,以使用受信任的腕带来连续验证智能手机用户。如果通过将腕带的运动与智能手机的输入或运动(取决于抓地力)进行比较来确定手腕和智能手机都由同一个人握住,则允许用户使用智能手机-哪只手握住智能手机,哪只手提供输入。不幸的是,该计划有几个缺点。首先,由于步态可以掩盖手腕的触摸动作,因此当用户走路时,它可能无法正常工作。其次,它连续比较两个设备的运动,这会增加通信负担。第三,基于加速度的抓地力推断在实际中不适用,该推断假定智能手机与地面水平。为了解决这些缺点,我们在本文中提出了 WearAuth,这是智能手机的腕带辅助用户身份验证。 WearAuth应用基于小波的多分辨率分析来提取所需的特定于触摸的移动,而无论用户是静止还是移动。使用基于离散傅立叶变换的近似相关来减少通信开销;并采用一种新方法直接计算相对设备方向,而无需使用加速度来更精确地推断抓地力。在针对50名受试者的两次实验中,WearAuth产生的假阴性率不超过3.6%,假阳性率不超过1.69%。我们得出的结论是,WearAuth在各种使用情况下都能正常运行,并且对复杂的攻击具有强大的抵抗力。

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