论文标题

电质量人体交流中的体内耦合:安全性和干扰特性的理论和分析

Inter-Body Coupling in Electro-Quasistatic Human Body Communication: Theory and Analysis of Security and Interference Properties

论文作者

Nath, Mayukh, Maity, Shovan, Avlani, Shitij, Weigand, Scott, Sen, Shreyas

论文摘要

使用电磁场的辐射通信是当今无线连接世界的骨干,这意味着物理信号可用于恶意拦截器在5-10 m的距离内偷窥,还可以增加干扰和减少通道容量。最近,演示了电质量(EQS)人体交流,该传播利用人体的导电特性在不辐射体内信号的情况下进行通信。先前的实验表明,对天线的攻击不成功,超过1 cm的身体表面和15 cm的EQS-HBC设备。但是,由于这是一种新的通信方式,因此它要求调查新的攻击方式 - 该模式可能会利用EQS -HBC中使用的物理学来破坏系统。在这项研究中,我们使用攻击者本身作为耦合表面和用户与攻击者之间的体内耦合,为EQS-HBC设备提供了一种新颖的攻击方法。我们发展了理论理解,并以实验结果的体型耦合为支持,这是受试者之间距离的函数。我们利用这种新开发的理解来设计EQS-HBC发射器,以通过体内耦合来最大程度地降低攻击距离,并最大程度地减少由于体内耦合而导致多个EQS-HBC用户的干扰。这种理解使我们将来可以开发基于EQS-HBC的更安全和强大的人体区域网络。

Radiative communication using electromagnetic fields is the backbone of today's wirelessly connected world, which implies that the physical signals are available for malicious interceptors to snoop within a 5-10 m distance, also increasing interference and reducing channel capacity. Recently, Electro-quasistatic (EQS) human body communication was demonstrated which utilizes the human body's conductive properties to communicate without radiating the signals outside the body. Previous experiments showed that an attack with an antenna is unsuccessful, more than 1 cm of the body surface and 15 cm of an EQS-HBC device. However, since this is a new communication modality, it calls for investigation of new attack modalities - that can potentially exploit the physics utilized in the EQS-HBC to break the system. In this study, we present a novel attack method for EQS-HBC devices, using the body of the attacker itself as a coupling surface and capacitive inter-body coupling between the user and the attacker. We develop theoretical understanding backed by experimental results for inter-body coupling, as a function of distance between the subjects. We utilize this newly developed understanding to design EQS-HBC transmitters to minimize the attack distance through inter-body coupling as well as minimize the interference among multiple EQS-HBC users due to inter-body coupling. This understanding allows us to develop more secure and robust EQS-HBC based body area networks in the future.

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