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RF Propagation and Channel Modeling for UWB Wearable Devices

机译:超宽带可穿戴设备的射频传播和信道建模

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摘要

Wireless body area network for sensing and monitoring of vital signs is the one of most rapidly growing wireless communication system and Ultra Wide-Band (UWB) is a favorable technology for wearable medical sensors. The wireless body area networks promise to revolutionize health monitoring. However, designers of such systems face a number of challenging tasks. Efficient transceiver design requires in-depth understanding of the propagation media which in this case is the human body surface. The human body is not an ideal medium for RF wave transmission; it is partially conductive and consists of materials of different dielectric constants, thickness and characteristic impedance. The results of the few measurement experiments in recent publications point to varying conclusions in the derived parameters of the channel model. As obtaining large amount of data for many scenarios and use-cases is difficult for this channel, a detailed simulation platform can be extremely beneficial in highlighting the propagation behavior of the body surface and determining the best scenarios for limited physical measurements. In this paper, an immersive visualization environment is presented, which is used as a scientific instrument that gives us the ability to observe three-dimensional RF propagation from wearable medical sensors around a human body. We have used this virtual environment to further study UWB channels over the surface of a human body. Parameters of a simple statistical path-loss model and their sensitivity to frequency and the location of the sensors on the body are discussed.
机译:用于感测和监视生命体征的无线人体局域网是发展最快的无线通信系统之一,而超宽带(UWB)是可穿戴医疗传感器的一项有利技术。无线体域网有望彻底改变健康监控。但是,这种系统的设计人员面临许多艰巨的任务。高效的收发器设计需要深入了解传播介质,在这种情况下,传播介质就是人体表面。人体不是用于射频波传输的理想介质。它是部分导电的,由介电常数,厚度和特性阻抗不同的材料组成。在最近的出版物中,少数测量实验的结果指出了在信道模型的导出参数中得出的不同结论。由于该通道很难在许多场景和用例中获取大量数据,因此详细的仿真平台在突出人体表面的传播行为并确定有限的物理测量的最佳场景方面可能非常有益。在本文中,提出了一种身临其境的可视化环境,该环境用作科学仪器,使我们能够观察到可穿戴式医疗传感器在人体周围的三维RF传播。我们已经使用这种虚拟环境进一步研究了人体表面的UWB通道。讨论了简单的统计路径损耗模型的参数及其对频率的敏感性以及传感器在人体上的位置。

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