太赫兹(THz)频率无线虚拟现实可靠性研究

Christina Chaccour, Ramy Amer, Bo Zhou, W. Saad
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引用次数: 45

摘要

为虚拟现实(VR)服务保证具有高数据速率的超可靠低延迟通信(URLLC)是实现虚拟现实双重感知(视觉和触觉)的关键挑战。在本文中,太赫兹(THz)蜂窝网络被认为可以提供高速率的VR服务,从而实现成功的视觉感知。对于该网络,保证高速率的URLLC需要克服太赫兹信道产生的不确定性。为此,对太赫兹链路上VR业务可实现的可靠性和延迟进行了表征。特别地,导出了传输延迟的概率分布函数作为系统参数的函数的新表达式。随后,找到了同时考虑处理和传输延迟的端到端(E2E)延迟分布,并推导出系统可靠性作为太赫兹网络参数(如分子吸收损耗和噪声、发射功率以及VR用户与其各自的小基站(SBS)之间的距离)的函数的易于处理的表达式。数值结果表明了带宽和不可忽略干扰区域等系统参数对系统可靠性的影响。特别是,结果表明,如果通过相应的致密化网络来减轻分子吸收对太赫兹链路的影响,那么太赫兹链路的传输速率可达16.4 Gbps,可靠性可达99.999%(延迟阈值为30 ms)。太赫兹链路实质上限制了SBS的通信范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Reliability of Wireless Virtual Reality at Terahertz (THz) Frequencies
Guaranteeing ultra reliable low latency communications (URLLC) with high data rates for virtual reality (VR) services is a key challenge to enable a dual VR perception: visual and haptic. In this paper, a terahertz (THz) cellular network is considered to provide high-rate VR services, thus enabling a successful visual perception. For this network, guaranteeing URLLC with high rates requires overcoming the uncertainty stemming from the THz channel. To this end, the achievable reliability and latency of VR services over THz links are characterized. In particular, a novel expression for the probability distribution function of the transmission delay is derived as a function of the system parameters. Subsequently, the end-to-end (E2E) delay distribution that takes into account both processing and transmission delay is found and a tractable expression of the reliability of the system is derived as a function of the THz network parameters such as the molecular absorption loss and noise, the transmitted power, and the distance between the VR user and its respective small base station (SBS). Numerical results show the effects of various system parameters such as the bandwidth and the region of non-negligible interference on the reliability of the system. In particular, the results show that THz can deliver rates up to 16.4 Gbps and a reliability of 99.999% (with a delay threshold of 30 ms) provided that the impact of the molecular absorption on the THz links, which substantially limits the communication range of the SBS, is alleviated by densifying the network accordingly.
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