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A New Authentication Approach for People with Upper Extremity Impairment

机译:上肢残障人士的一种新的身份验证方法

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In recent years, people with upper extremity impairment (UEI) have been using wearable Internet of Things (wIoT) devices like head-mounted devices (HMDs) for a variety of purposes such as rehabilitation, assistive technology, and gaming. Often such wIoT devices collect and display sensitive information such as information related to medical care and rehabilitation. It is therefore crucial that HMDs can authenticate the person wearing them so that appropriate access control can be implemented for the sensitive information they manage. In this paper, we explore a new authentication approach for people with upper extremity impairment (UEI) for wIoT devices head-mounted devices (HMDs). The approach works by leveraging ballistocardiograms - representations of the cardiac rhythm - derived from an accelerometer and a gyroscope, mounted on an HMD for authentication. The derived ballistocardiograms are then fed into six participant-specific convolutional neural networks (CNNs) which act as our authentication models. Analysis of our approach shows its viability. Using data from 6 participants with UEI (and 22 able-bodied participants, for evaluation), we show that we can authenticate a participant in 4 seconds with an average equal error rate of 4.02% and 10.02%, immediately after training and ~2 months later, respectively.
机译:近年来,患有上肢损伤(UEI)的人们一直在使用可穿戴物联网(热情)设备,如头戴式设备(HMDS),用于各种目的,如康复,辅助技术和游戏。通常,这种豚鼠可以收集和显示与医疗和康复有关的信息等敏感信息。因此,HMD可以对佩戴它们的人进行认证,以便可以为他们管理的敏感信息实现适当的访问控制。在本文中,我们探索了对肢体设备上肢损伤(UEI)的人们进行了新的认证方法,用于防豚设备头戴式设备(HMDS)。该方法通过利用芭蕾舞通知 - 从加速度计和陀螺仪中源的心脏节律和陀螺仪,安装在HMD上进行认证。然后将衍生的滚珠网图送入六个参与者特定的卷积神经网络(CNNS),其充当我们的认证模型。对我们的方法分析显示其可行性。使用来自UEI的6名参与者的数据(和22位能够进行评估),我们表明我们可以在4秒内以4秒内的参与者验证参与者,平均误差率为4.02%和10.02%,训练后〜2个月分别为后。

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