论文标题

高级生物物理模型以捕获EQS电容HBC的通道变异性

Advanced Biophysical Model to Capture Channel Variability for EQS Capacitive HBC

论文作者

Datta, Arunashish, Nath, Mayukh, Yang, David, Sen, Shreyas

论文摘要

人体交流(HBC)已成为传统射频(RF)无线身体网络(WBAN)技术的有前途的替代方案。从本质上讲,这是由于HBC提供了一个宽带通信通道,并且与RF对应物相比,由于人体的辐射较低,物理层的信号安全性增强。需要在EQS-HBC更频繁地用于WBAR消费者和医疗应用中,需要开发对通道损失变异性和相关生物物理模型机制的深入了解。长期以来,文献中不存在将人体作为通信通道的生物物理模型。最近的事态发展显示了捕获人体上固定发射器和接收器位置的通道响应的模型。这些生物物理模型不会捕获HBC通道中对人体各个位置的不同位置的变异性。在这项研究中,我们对电量值(EQS)域中电容HBC通道中路径损失的变化进行了详细分析。通道损失变异性的原因,即:研究由于身体阴影效应引起的边缘场偶联和效应。基于FEM的仿真结果用于分析人体在不同位置和大小的设备大小的通道响应中,使用测量结果进一步验证,以验证开发的生物物理模型。使用生物物理模型,我们为电容性HBC通道中的路径损失开发了一个封闭形式方程,然后将其分析为设备的几何特性以及相对于人体的位置的函数,这将有助于铺平道路的未来EQSHBC WBAR设计。

Human Body Communication (HBC) has come up as a promising alternative to traditional radio frequency (RF) Wireless Body Area Network (WBAN) technologies. This is essentially due to HBC providing a broadband communication channel with enhanced signal security in the physical layer due to lower radiation from the human body as compared to its RF counterparts. An in-depth understanding of the mechanism for the channel loss variability and associated biophysical model needs to be developed before EQS-HBC can be used more frequently in WBAN consumer and medical applications. Biophysical models characterizing the human body as a communication channel didn't exist in literature for a long time. Recent developments have shown models that capture the channel response for fixed transmitter and receiver positions on the human body. These biophysical models do not capture the variability in the HBC channel for varying positions of the devices with respect to the human body. In this study, we provide a detailed analysis of the change in path loss in a capacitive-HBC channel in the electroquasistatic (EQS) domain. Causes of channel loss variability namely: inter-device coupling and effects of fringe fields due to body's shadowing effects are investigated. FEM based simulation results are used to analyze the channel response of human body for different positions and sizes of the device which are further verified using measurement results to validate the developed biophysical model. Using the bio-physical model, we develop a closed form equation for the path loss in a capacitive HBC channel which is then analyzed as a function of the geometric properties of the device and the position with respect to the human body which will help pave the path towards future EQSHBC WBAN design.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源