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Practical Cross-Layer Radio Frequency-Based Authentication Scheme for Internet of Things

机译:基于实用的跨层无线电频率的互联网认证方案

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摘要

The Internet of Things world is in need of practical solutions for its security. Existing security mechanisms for IoT are mostly not implemented due to complexity, budget, and energy-saving issues. This is especially true for IoT devices that are battery powered, and they should be cost effective to be deployed extensively in the field. In this work, we propose a new cross-layer approach combining existing authentication protocols and existing Physical Layer Radio Frequency Fingerprinting technologies to provide hybrid authentication mechanisms that are practically proved efficient in the field. Even though several Radio Frequency Fingerprinting methods have been proposed so far, as a support for multi-factor authentication or even on their own, practical solutions are still a challenge. The accuracy results achieved with even the best systems using expensive equipment are still not sufficient on real-life systems. Our approach proposes a hybrid protocol that can save energy and computation time on the IoT devices side, proportionally to the accuracy of the Radio Frequency Fingerprinting used, which has a measurable benefit while keeping an acceptable security level. We implemented a full system operating in real time and achieved an accuracy of 99.8% for the additional cost of energy, leading to a decrease of only ~20% in battery life.
机译:事情互联网世界适用于其安全性的实用解决方案。由于复杂性,预算和节能问题,由于复杂性,预算和节能问题,因此,IOT的现有安全机制主要不实现。这对于电池供电的IOT设备尤其如此,并且它们应该在现场广泛部署成本效益。在这项工作中,我们提出了一种新的交叉层方法,组合现有的认证协议和现有物理层射频指纹技术以提供在现场实际证明的混合身份验证机制。尽管迄今为止已经提出了几种射频指纹方法,但作为对多因素认证的支持甚至是自己,实用的解决方案仍然是一个挑战。甚至使用昂贵设备的最佳系统实现的准确性结果仍然不足以足够的现实系统。我们的方法提出了一种混合协议,其可以节省IOT设备侧的能量和计算时间,以比例地与所使用的射频指纹识别的准确性,这在保持可接受的安全级别的同时具有可测量的益处。我们实施了一整时间运行的完整系统,实现了99.8%的准确性,以获得额外的能量成本,导致电池寿命仅降低约20%。

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