论文标题

RIS辅助的联合定位和与单人体接收器同步:波束形成设计和低复杂性估计

RIS-aided Joint Localization and Synchronization with a Single-Antenna Receiver: Beamforming Design and Low-Complexity Estimation

论文作者

Fascista, Alessio, Keskin, Musa Furkan, Coluccia, Angelo, Wymeersch, Henk, Seco-Granados, Gonzalo

论文摘要

可重新配置的智能表面(RISS)由于能够克服MMWave系统中的视线阻塞的能力而引起了极大的兴趣,从而依次准确地通过最少的基础架构进行了精确定位。但是,研究不太研究的好处是通过适当设计的波束形成策略利用RIS来优化定位和同步性能。在本文中,提出了一种新型的低复杂方法,用于基于基础站(BS)主动编码的优化设计和RIS被动相位剖面的优化设计,并提出了单个Antenna接收器的具有挑战性的情况。绑定的理论位置误差首先被得出并用作指标,以共同优化BS-RIS波束成形,假设对用户位置有先验知识。通过利用解决方案的低维结构,提出了一种基于新颖的代码簿的强大设计策略,并提出了优化的梁功率分配,该策略在考虑到用户位置的不确定性时提供了低复杂性。最后,设计了基于最大可能性的估计过程,以共同恢复用户位置和同步偏移。广泛的数值分析表明,与现有溶液相比,所提出的联合BS-RIS波束形成方案与现有溶液相比提供了增强的定位和同步性能,即使在低信噪比下,提出的估计器达到了理论界限,并且在存在其他不可传感的多径元传播的情况下。

Reconfigurable intelligent surfaces (RISs) have attracted enormous interest thanks to their ability to overcome line-of-sight blockages in mmWave systems, enabling in turn accurate localization with minimal infrastructure. Less investigated are however the benefits of exploiting RIS with suitably designed beamforming strategies for optimized localization and synchronization performance. In this paper, a novel low-complexity method for joint localization and synchronization based on an optimized design of the base station (BS) active precoding and RIS passive phase profiles is proposed, for the challenging case of a single-antenna receiver. The theoretical position error bound is first derived and used as metric to jointly optimize the BS-RIS beamforming, assuming a priori knowledge of the user position. By exploiting the low-dimensional structure of the solution, a novel codebook-based robust design strategy with optimized beam power allocation is then proposed, which provides low-complexity while taking into account the uncertainty on the user position. Finally, a reduced-complexity maximum-likelihood based estimation procedure is devised to jointly recover the user position and the synchronization offset. Extensive numerical analysis shows that the proposed joint BS-RIS beamforming scheme provides enhanced localization and synchronization performance compared to existing solutions, with the proposed estimator attaining the theoretical bounds even at low signal-to-noise-ratio and in the presence of additional uncontrollable multipath propagation.

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