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Feasibility of biometric authentication using wearable ECG body sensor based on higher-order statistics

机译:使用基于高阶统计数据的可穿戴式ECG人体传感器进行生物特征认证的可行性

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Besides its principal purpose in the field of biomedical applications, ECG can also serve as a biometric trait due to its unique identity properties, including user-specific deviations in ECG morphology and heart rate variability. In this paper, we exploit the possibility to use long-term ECG data acquired by unobtrusive chest-worn ECG body sensor during daily living for accurate user authentication and identification. Therefore, we propose a novel framework for wearable ECG-based user recognition. The core of the framework is based on the approach that employs higher-order statistics on cyclostationary data, already efficiently applied for inertial-sensor-based gait recognition. Experimental data was collected by four subjects during their regular daily activities with more than 6 hours of ECG data per subject and then applied to the proposed framework. Preliminary results (equal error rate from 6% to 13%, depending on the experimental parameters) indicate that such authentication is feasible and reveal clear guidelines towards future work.
机译:除了其在生物医学应用领域的主要目的外,由于其独特的身份特性,包括用户特定的ECG形态偏差和心率变异性,ECG还可作为生物特征。在本文中,我们利用在日常生活中使用不显眼的胸戴式心电图身体传感器获取的长期心电图数据进行准确的用户身份验证和识别的可能性。因此,我们提出了一种基于可穿戴式ECG的用户识别的新颖框架。该框架的核心是基于对循环平稳数据采用高阶统计的方法,该方法已经有效地应用于基于惯性传感器的步态识别。由四名受试者在日常活动中收集的实验数据,每名受试者的心电图数据超过6小时,然后应用于建议的框架。初步结果(根据实验参数,平均错误率从6%到13%)表明这种身份验证是可行的,并为今后的工作提供了清晰的指导原则。

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