论文标题

Terahertz网络的启用ISAC的光束对齐:方案设计和覆盖分析

ISAC-Enabled Beam Alignment for Terahertz Networks: Scheme Design and Coverage Analysis

论文作者

Chen, Wenrong, Li, Lingxiang, Chen, Zhi, Liu, Yuanwei, Ning, Boyu, Quek, Tony

论文摘要

作为未来6G网络的关键支柱技术,Terahertz(THZ)通信可以提供高容量的传输,但遭受了限制网络覆盖范围的严重传播损失和视线(LOS)阻塞。需要狭窄的光束来补偿损失,但它们又带来了光束未对准的挑战并降低THZ网络覆盖范围。 THZ信号的高传感分辨率使集成的传感和通信(ISAC)技术有助于LOS阻塞和用户移动性诱导的光束未对准,从而增强了THZ网络的覆盖范围。基于5G光束管理,我们提出了一个联合同步信号块(SSB)和参考信号(RS)基于基于的传感(JSRS)方案,以协助光束对齐。 JSR启用了预测和预防程序,为及时的梁开关提供了早期干预措施。为了最大程度地提高JSR的性能,我们提供了最佳的传感信号插入和频率分配,以改善关节范围和速度分辨率。我们得出了支持JSRS网络的覆盖范围概率,以评估其在光束未对准和覆盖范围增强中的能力。该表达式还指示网络密度部署和梁宽选择。数值结果表明,JSRS方案有效,并且与5G空气界面高度兼容。与具有5G要求的定位能力的网络相比,在经过测试的城市用例中,JSR达到了近乎理想的性能,并降低了大约80%的光束未对准,并使覆盖率概率提高了约75%。

As a key pillar technology for the future 6G networks, Terahertz (THz) communications can provide high-capacity transmissions, but suffers from severe propagation loss and line-of-sight (LoS) blockage that limits the network coverage. Narrow beams are required to compensate for the loss, but they in turn bring in beam misalignment challenge and degrade the THz network coverage. The high sensing resolution of THz signals enables integrated sensing and communications (ISAC) technology to assist the LoS blockage and user mobility-induced beam misalignment, enhancing THz network coverage. Based on the 5G beam management, we propose a joint synchronization signal block (SSB) and reference signal (RS)-based sensing (JSRS) scheme to assist beam alignment. JSRS enables a predict-and-prevent procedure that provides early interventions for timely beam switches. To maximize performance of JSRS, we provide an optimal sensing signal insertion and time-to-frequency allocation to improve the joint range and velocity resolutions. We derive the coverage probability of the JSRS-enabled network to evaluate its abilities in beam misalignment reduction and coverage enhancement. The expression also instructs the network density deployment and beamwidth selection. Numerical results show that the JSRS scheme is effective and highly compatible with the 5G air interface. Averaged in the tested urban use cases, JSRS achieves near-ideal performance and reduces around 80% of beam misalignment, and enhances the coverage probability by about 75%, compared to the network with 5G-required positioning ability.

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