Wireless virtual reality (VR) imposes new visual and haptic requirements that are directly linked to the quality-of-experience (QoE) of VR users. These QoE requirements can only be met by wireless connectivity that offers high-rate and high-reliability low latency communications (HRLLC), unlike the low rates usually considered in vanilla ultra-reliable low latency communication scenarios. The high rates for VR over short distances can only be supported by an enormous bandwidth, which is available in terahertz (THz) frequency bands. Guaranteeing HRLLC requires dealing with the uncertainty that is specific to the THz channel. To explore the potential of THz for meeting HRLLC requirements, a quantification of the risk for an unreliable VR performance is conducted through a novel and rigorous characterization of the tail of the end-to-end (E2E) delay. Then, a thorough analysis of the tail-value-atrisk (TVaR) is performed to concretely characterize the behavior of extreme wireless events crucial to the real-time VR experience. System reliability for scenarios with guaranteed line-of-sight (LoS) is then derived as a function of THz network parameters after deriving a novel expression for the probability distribution function of the THz transmission delay. Numerical results show that abundant bandwidth and low molecular absorption are necessary to improve the reliability. However, their effect remains secondary compared to the availability of LoS, which significantly affects the THz HRLLC performance. In particular, for scenarios with guaranteed LoS, a reliability of 99.999% (with an E2E delay threshold of 20 ms) for a bandwidth of 15 GHz along with data rates of 18.3 Gbps can be achieved by the THz network (operating at a frequency of 1 THz), compared to a reliability of 96% for twice the bandwidth, when blockages are considered.
翻译:无线虚拟现实(VR) 带来了与 VR 用户经验质量(QoE) 直接相连的新的视觉和机智性能要求。 这些QoE 要求只能通过无线连通性来满足,这种无线连通性能够提供高率和高可靠性的低延迟通信(HRLLC), 不同于香草超可靠低悬浮度通信情景中通常考虑的低速率。 短距离VR 的高率只能得到巨大的带宽的支持, 这在Thahertz (Thz) 频带中是可用的。 保证 HRLLC 需要处理Thz 频道特有的不确定性。 要探索THz 满足 HRLLC 门槛要求的潜力, 通过对终端到终端的尾部(E2E2E) 延迟情景进行新的和严格的描述。 尾值风险(TVaR) 能够用对尾值风险进行彻底分析, 具体地描述对实时 VR 经验至关重要的极端无线事件的行为 。 与保证的S IMLER 值 值 值 值 值 值 值 值 值 递值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值 值