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CaNViS: A cardiac and neurological-based verification system that uses wearable sensors

机译:帆布:一种使用可穿戴传感器的心脏和神经系统的验证系统

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The prevalence of more portable physiological sensors in medical, lifestyle and security fields have ushered in more viable biometric attributes that can be used for the task of identification and authentication. The portability of these sensors also allows systems that require more than one signal source to be feasible and more practical. Once these biological signals are captured, they can then be combined for the purposes of authentication. The study proposes such a multi-factor biometric system, by fusing cardiac and neurological components captured with an electrocardiograph (ECG) and electroencephalograph (EEG) respectively and using them as a biometric attribute. Representing each of these components in a common format and fusing them at a feature level allows one to create a novel biometric system that is interoperable with different biological signal sources. The results indicate the system portrays a sufficient false rejection (FRR) and false acceptance rates (FAR). The results also show there is value in implementing multi-factor biological signal-based biometric systems using wearable sensors.
机译:在医疗,生活方式和安全领域中更具便携式生理传感器的流行已经迎来了更加可行的生物识别属性,可用于识别和认证的任务。这些传感器的可移植性还允许需要多个信号源的系统可行且更实用。一旦捕获了这些生物信号,然后可以组合它们以用于认证的目的。该研究提出了这种多因素生物识别系统,通过分别用心电图(ECG)和脑电图(EEG)捕获并使用它们作为生物识别属性来融合心脏和神经系统分量。以公共格式表示这些组件中的每一个,并在特征级别融合它们允许人员创建具有不同生物信号源可互操作的新型生物识别系统。结果表明系统描绘了足够的错误拒绝(FRR)和错误接受率(FAR)。结果还显示了使用可穿戴传感器实现基于多因素生物信号的生物识别系统的值。

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