论文标题
RIS辅助通信雷达共存:联合波束形成设计和分析
RIS-Assisted Communication Radar Coexistence: Joint Beamforming Design and Analysis
论文作者
论文摘要
集成的传感和通信(ISAC)被视为未来无线通信的最有希望的技术之一。但是,通信雷达共存系统中的相互干扰不能忽略。受到可重构智能表面(RIS)的研究的启发,我们提出了一个双层辅助共存系统,其中部署了两个RIS,以增强通信信号和抑制相互的干扰。我们旨在共同优化RIS和雷达的横梁,以最大程度地提高沟通性能,同时保持雷达检测性能。调查的问题具有挑战性,因此我们通过引入辅助变量将其转变为同等但更可牵引的形式。然后,我们提出了基于罚款双重分解(PDD)算法来解决所得问题。此外,我们考虑了两种特殊情况:大雷达传输功率方案和低雷达传输功率方案。对于前者,我们证明波束形成设计仅由通信通道确定,并且可以以封闭形式获得相应的最佳关节光束策略。对于后者,我们通过块坐标下降(BCD)方法最小化相互干扰。通过结合这两种情况的溶液,还会开发出低复杂性算法。最后,仿真结果表明,基于PDD的和低复合算法的表现优于基准算法。
Integrated sensing and communication (ISAC) has been regarded as one of the most promising technologies for future wireless communications. However, the mutual interference in the communication radar coexistence system cannot be ignored. Inspired by the studies of reconfigurable intelligent surface (RIS), we propose a double-RIS-assisted coexistence system where two RISs are deployed for enhancing communication signals and suppressing mutual interference. We aim to jointly optimize the beamforming of RISs and radar to maximize communication performance while maintaining radar detection performance. The investigated problem is challenging, and thus we transform it into an equivalent but more tractable form by introducing auxiliary variables. Then, we propose a penalty dual decomposition (PDD)-based algorithm to solve the resultant problem. Moreover, we consider two special cases: the large radar transmit power scenario and the low radar transmit power scenario. For the former, we prove that the beamforming design is only determined by the communication channel and the corresponding optimal joint beamforming strategy can be obtained in closed-form. For the latter, we minimize the mutual interference via the block coordinate descent (BCD) method. By combining the solutions of these two cases, a low-complexity algorithm is also developed. Finally, simulation results show that both the PDD-based and low-complexity algorithms outperform benchmark algorithms.