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Evaluating Secrecy Capacity for In-Body Wireless Channels

机译:评估身体内无线通道的保密容量

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摘要

The next generation of implanted medical devices is expected to be wireless, bringing along new security threats. Thus, it is critical to secure the communication between legitimate nodes inside the body from a possible eavesdropper. This work assesses the feasibility of securing next generation multi-nodal leadless cardiac pacemakers using physical layer security methods. The secure communication rate without leakage of information to an eavesdropper, referred to as secrecy capacity, depends on the signal-to-noise ratios (SNRs) of the eavesdropper and legitimate channels and will be used as a performance metric. Numerical electromagnetic simulations are utilized to compute the wireless channel models for the respective links. These channel models can be approximated with a log-normal distribution which can be used to evaluate the probability of positive secrecy capacity and the outage probability of this secrecy capacity. The channels are modeled for three different frequency bands and a comparison between their secrecy capacities is provided with respect to the eavesdropper distance. It has been found that the positive secrecy capacity is achievable within the personal space of the human body for all the frequency bands, with the medical implant communication systems (MICS) band outperforming others.
机译:预计下一代植入医疗设备将是无线的,沿着新的安全威胁带来。因此,从可能的窃听器中确保身体内的合法节点之间的通信至关重要。这项工作评估了使用物理层安全方法确保下一代多节点无铅心脏起搏器的可行性。没有向窃听者泄漏的安全通信速率,被称为秘密容量,取决于窃听器和合法信道的信噪比比(SNR),并且将用作性能度量。使用数值电磁模拟来计算各个链路的无线信道模型。这些频道模型可以用对数正态分布近似,可用于评估积极保密容量的概率和这种保密容量的概率。通道被建模用于三个不同的频带,并且它们的保密容量之间的比较相对于窃听器距离。已经发现,对于所有频带的人体的个人空间,可以在人体的个人空间内实现积极的保密能力,并且医疗植入物通信系统(MICS)频带优于其他频带。

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