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Toward an Intrusion Detection Approach for IoT Based on Radio Communications Profiling

机译:基于无线电通信分析的IOT入侵检测方法

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Nowadays, more and more Internet-of-Things (IoT) smart products, interconnected through various wireless communication technologies (Wifi, Bluetooth, Zigbee, Z-wave, etc.) are integrated in daily life, especially in homes, factories, cities, etc. Such IoT technologies have become very attractive with a large variety of new services offered to improve the quality of life of the endusers or to create new economic markets.However, the security of such connected objects is a real concern due to weak or flawed security designs, configuration errors or imperfect maintenance. Moreover, the vulnerabilities discovered in IoT products are often difficult to eliminate because, most of the time, they cannot be patched easily. Therefore, protection mechanisms are needed to mitigate the potential risks induced by such objects in private and public connected areas.In this paper, we propose a novel approach to detect potential attacks in smart places (e.g. smart homes) by detecting deviations from legitimate communication behavior, in particular at the physical layer. The proposed solution is based on the profiling and monitoring of the Radio Signal Strenght Indication (RSSI) associated to the wireless transmissions of the connected objects. A machine learning neural network algorithm is used to characterize legitimate communications and to identify suspiscious scenarios. We show the feasibility of this approach and discuss some possible application cases.
机译:如今,越来越多的互联网(物联网)智能产品,通过各种无线通信技术(WiFi,蓝牙,Zigbee,Z波等)互连。在日常生活中,尤其是在家庭,工厂,城市,等等,这种技术已经非常有吸引力,提供了各种各样的新服务,以提高恩天置企业的生活质量或创造新的经济市场。然而,这种连接物体的安全性是由于弱或有缺陷的真正关注安全设计,配置错误或不完美的维护。此外,IOT产品中发现的漏洞通常很难消除,因为大多数时候,它们都无法轻易修补。因此,需要保护机制来减轻私人和公共连接区域中这些物体引起的潜在风险。在本文中,我们提出了一种通过检测合法通信行为的偏差来检测智能场所(例如智能家庭)中潜在攻击的新方法,特别是在物理层。所提出的解决方案基于与连接对象的无线传输相关的无线电信号力量指示(RSSI)的分析和监视。一种机器学习神经网络算法用于表征合法通信并识别暂停方案。我们展示了这种方法的可行性,并讨论了一些可能的应用案例。

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