Integrated sensing and communication (ISAC) has been recognized as one of the key technologies capable of simultaneously improving communication and sensing services in future wireless networks. Moreover, the introduction of recently developed movable antennas (MAs) has the potential to further increase the performance gains of ISAC systems. Achieving these gains can pose a significant challenge for MA-enabled ISAC systems operating in the near-field due to the corresponding spherical wave propagation. Motivated by this, in this paper we maximize the weighted sum rate (WSR) for communication users while maintaining a minimal sensing requirement in an MA-enabled near-field ISAC system. To achieve this goal, we propose an algorithm that optimizes the sensing receive combiner, the communication precoding matrices, the sensing transmit beamformer and the positions of the users' MAs in an alternating manner. Simulation results show that using MAs in near-field ISAC systems provides a substantial performance advantage compared to near-field ISAC systems with only fixed antennas. Additionally, we demonstrate that the highest WSR is obtained when larger weights are allocated to the users placed closer to the BS, and that the sensing performance is significantly more affected by the minimum sensing signal-to-interference-plus-noise ratio (SINR) threshold compared to the communication performance.
翻译:集成感知与通信(ISAC)已被认为是未来无线网络中能够同时提升通信与感知服务的关键技术之一。此外,近期发展的可移动天线(MAs)的引入有望进一步提升ISAC系统的性能增益。对于在近场区域运行、对应球面波传播的MA使能ISAC系统而言,实现这些增益可能构成重大挑战。受此启发,本文在MA使能的近场ISAC系统中,在维持最低感知要求的同时,最大化通信用户的加权和速率(WSR)。为实现该目标,我们提出一种算法,交替优化感知接收合并器、通信预编码矩阵、感知发射波束成形器以及用户可移动天线的位置。仿真结果表明,与仅配备固定天线的近场ISAC系统相比,在近场ISAC系统中使用可移动天线能带来显著的性能优势。此外,我们证明当为更靠近基站的用户分配较大权重时,可获得最高的加权和速率;并且与通信性能相比,感知性能受最小感知信号与干扰加噪声比(SINR)阈值的影响显著更大。