Next-generation wireless systems are rapidly evolving from communication-only systems to multi-modal systems with integrated sensing and communications. In this paper a novel joint sensing and communication framework is proposed for enabling wireless extended reality (XR) at terahertz (THz) bands. To gather rich sensing information and a higher line-of-sight (LoS) availability, THz-operated reconfigurable intelligent surfaces (RISs) acting as base stations are deployed. The sensing parameters are extracted by leveraging THz's quasi-opticality and opportunistically utilizing uplink communication waveforms. This enables the use of the same waveform, spectrum, and hardware for both sensing and communication purposes. The environmental sensing parameters are then derived by exploiting the sparsity of THz channels via tensor decomposition. Hence, a high-resolution indoor mapping is derived so as to characterize the spatial availability of communications and the mobility of users. Simulation results show that in the proposed framework, the resolution and data rate of the overall system are positively correlated, thus allowing a joint optimization between these metrics with no tradeoffs. Results also show that the proposed framework improves the system reliability in static and mobile systems. In particular, the highest reliability gains of 10% in reliability are achieved in a walking speed mobile environment compared to communication only systems with beam tracking.
翻译:下一代无线系统正在从通信专用系统迅速演变为综合遥感和通信的多模式系统。本文件提出一个新的联合遥感和通信框架,以便在特拉赫茨(Thz)波段建立无线扩展现实(XR);为了收集丰富的遥感信息和更高的视觉线(LOS)可用性,将采用THZ操作的可重新配置智能表面作为基地站。遥感参数是通过利用Thz的准光度和机会性地利用上链接通信波形来提取的。这样就可以利用同样的波形、频谱和硬件进行感应和通信。然后,通过利用高压分位利用THz频道的广度来得出环境遥感参数。因此,将利用高分辨率的室内绘图,以确定通信空间可用性和用户的流动性。模拟结果显示,在拟议框架中,整个系统的分辨率和数据率是正面的,从而使得这些测量系统之间能够联合优化,而没有交易。结果还表明,在移动速度方面,最可靠的框架将改进为最稳定的10%。在移动的可靠性方面,在移动系统中,最可靠的是比较的可靠性。