Physically Secure Wearable–Wearable Through-Body Interhuman Body Communication

IF 1.9 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
David Yang, Shovan Maity, Shreyas Sen
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Abstract

Human body communication (HBC) has recently emerged as an alternative method to connect devices on and around the human body utilizing the electrical conductivity properties of the human body. HBC can be utilized to enable new interaction modalities between computing devices by enhancing the natural interaction of touch. It also provides the inherent benefit of security and energy-efficiency compared to a traditional wireless communication, such as Bluetooth, making it an attractive alternative. However, most state-of-the-art HBC demonstrations show communication between a wearable and an Earth ground–connected device, and there have been very few implementations of HBC systems demonstrating communication between two wearable devices. Also, most of the HBC implementations suffer from the problem of signal leakage out of the body which enables communication even without direct contact with the body. In this article, we present BodyWire which uses an electro-quasistatic HBC (EQS-HBC) technique to enable communication between two wearable devices and also confine the signal to a very close proximity to the body. We characterize the human body channel loss under different environment (office desk, laboratory, and outdoors), posture, and body location conditions to ascertain the effect of each of these on the overall channel loss. The measurement results show that the channel loss varies within a range of 15dB across all different posture, environmental conditions, and body location variation, illustrating the dynamic range of the signal available at the input of any receiver. Leakage measurements are also carried out from the devices to show the distance over which the signal is available away from the body to illustrate the security aspect of HBC and show its effect on the channel loss measurements. For the first time, a through-body interhuman channel loss characterization is presented. Finally, a demonstration of secure interhuman information exchange between two battery-operated wearable devices is shown through the BodyWire prototype, which shows the smallest form factor HBC demonstration according to the authors’ best knowledge.
物理安全可穿戴-可穿戴的人体间通信
人体通信(HBC)最近已经成为一种利用人体的导电特性连接人体上和周围设备的替代方法。HBC可以用于通过增强触摸的自然交互来实现计算设备之间的新交互模式。与蓝牙等传统无线通信相比,它还提供了安全性和能效方面的固有优势,使其成为一种有吸引力的替代方案。然而,大多数最先进的HBC演示显示了可穿戴设备和接地设备之间的通信,并且很少有HBC系统实现演示两个可穿戴设备之间的通讯。此外,大多数HBC实现都存在信号泄漏到身体之外的问题,这使得即使在不与身体直接接触的情况下也能够进行通信。在这篇文章中,我们介绍了BodyWire,它使用电准静态HBC(EQS-HBC)技术来实现两个可穿戴设备之间的通信,并将信号限制在离身体很近的地方。我们对不同环境(办公桌、实验室和户外)、姿势和身体位置条件下的人体通道损失进行了表征,以确定每种情况对整体通道损失的影响。测量结果表明,在所有不同的姿势、环境条件和身体位置变化中,信道损耗在15dB的范围内变化,说明了在任何接收器的输入处可用的信号的动态范围。还从设备进行泄漏测量,以显示信号离开身体的距离,从而说明HBC的安全方面,并显示其对信道损耗测量的影响。首次提出了人体通道损耗的表征。最后,通过BodyWire原型展示了两个电池操作的可穿戴设备之间的安全人机信息交换,根据作者的最佳知识,该原型展示了最小的形状因子HBC演示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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