THz communication is regarded as one of the potential key enablers for next-generation wireless systems. While THz frequency bands provide abundant bandwidths and extremely high data rates, the operation at THz bands is mandated by short communication ranges and narrow pencil beams, which are highly susceptible to user mobility and beam misalignment as well as channel blockages. This raises the need for novel beam tracking methods that take into account the tradeoff between enhancing the received signal strength by increasing beam directivity, and increasing the coverage probability by widening the beam. To address these challenges, a multi-objective optimization problem is formulated with the goal of jointly maximizing the ergodic rate and minimizing the outage probability subject to transmit power and average overhead constraints. Then, a novel parameterized beamformer with dynamic beamwidth adaptation is proposed. In addition to the precoder, an event-based beam tracking approach is introduced that enables reacting to outages caused by beam misalignment and dynamic blockage while maintaining a low pilot overhead. Simulation results show that our proposed beamforming scheme improves average rate performance and reduces the amount of communication outages caused by beam misalignment. Moreover, the proposed event-triggered channel estimation approach enables low-overhead yet reliable communication.
翻译:THZ 通信被视为下一代无线系统的潜在关键推进器之一。THZ频带提供丰富的带宽和极高的数据率,而THZ频带的运行则由短通信范围和狭窄的铅笔束来授权,这些光束极易受到用户流动性和波束错配以及通道阻隔的影响。这就要求采用新颖的光束跟踪方法,其中考虑到通过增加光束直径增强接收信号强度和通过扩大光束增加覆盖概率而提高信号强度之间的权衡。为应对这些挑战,制定了多目标优化问题,目的是共同最大限度地提高电流率,并尽可能减少传输电源和平均间接费用限制的超出概率。随后,提出了具有动态光线宽度适应的新型参数光束。除了前科外,还引入了以事件为基础的波束跟踪方法,以便能够在保持低试管管理的同时,对因光线错联和动态阻隔断而导致的超值作出反应。模拟结果显示,我们提议的光速优化计划的目标是将电流速率和平均电流限制的概率最大化,从而降低电路段的预期率。