论文标题

Terahertz(THZ)通信中基于事件的梁跟踪,并具有动态梁宽度的适应

Event-Based Beam Tracking with Dynamic Beamwidth Adaptation in Terahertz (THz) Communications

论文作者

Karacora, Yasemin, Chaccour, Christina, Sezgin, Aydin, Saad, Walid

论文摘要

Terahertz(THZ)通信将成为下一代无线系统的关键推动力。虽然THZ频带提供丰富的带宽和极高的数据速率,但它们的有效操作受到短沟通范围和狭窄的光束的抑制,因此导致与用户移动性,梁对准和移交有关的重大挑战。特别是,需要新颖的梁跟踪方法,这些方法考虑通过增加光束方向性增强接收的信号强度的权衡,并通过扩大梁来增加覆盖率的概率。在本文中,提出了一个多目标优化问题,目的是共同提高预期率并最大程度地减少出现电源和架空限制因素的中断概率。随后,提出了具有动态光束宽度适应的新型参数化光束器。除了预编码器外,还介绍了一种基于事件的梁跟踪方法,该方法有效地防止了由光束错位和动态阻塞引起的中断,同时保持了低驾驶员的头顶。仿真结果表明,提出的波束形成方案提高了平均速率性能,并减少了脆性THZ未对准过程和THZ频段中特别严重的路径损失所引起的中断量。此外,提出的事件触发的THZ通道估计方法可与THZ频段的最小开销和可靠的通信连通性。

Terahertz (THz) communication will be a key enabler for next-generation wireless systems. While THz frequency bands provide abundant bandwidth and extremely high data rates, their effective operation is inhibited by short communication ranges and narrow beams, thus, leading to major challenges pertaining to user mobility, beam alignment, and handover. In particular, there is a strong need for novel beam tracking methods that consider the tradeoff between enhancing the received signal strength via increasing beam directivity, and increasing the coverage probability by widening the beam. In this paper, a multi-objective optimization problem is formulated with the goal of jointly maximizing the expected rate and minimizing the outage probability subject to transmit power and overhead constraints. Subsequently, a novel parameterized beamformer with dynamic beamwidth adaptation is proposed. In addition to the precoder, an event-based beam tracking approach is introduced that efficiently prevents outages caused by beam misalignment and dynamic blockage while maintaining a low pilot overhead. Simulation results show that the proposed beamforming scheme improves average rate performance and reduces the amount of outages caused by the brittle THz misalignment process and the particularly severe path loss in the THz band. Moreover, the proposed event-triggered THz channel estimation approach enables connectivity with minimal overhead and reliable communication at THz bands.

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