论文标题
智能表面授权感应和交流:一种新颖的相互帮助设计
Intelligent Surface Empowered Sensing and Communication: A Novel Mutual Assistance Design
论文作者
论文摘要
集成感应和通信(ISAC)是在车辆网络中提供感应和通信(标准普尔)服务的有前途的范式。但是,由于具有随机反射/散射系数的车辆的雷达横截面实际上很小,因此从车辆反射的回声信号的功率可能太弱,无法用于将来的精确定位。为了解决这个问题,我们为智能的表面式车辆提出了一种新颖的相互援助计划,在该方案中,S&C的创新设计旨在互相协助,以实现有效的双赢整合,即感官辅助的相移设计和沟通辅助辅助的高级抗气感。具体而言,我们首先在不确定的角度信息下得出回声功率和可实现速率的封闭形式表达式。然后,在满足感应要求的同时最大程度地提高了通信率,这被证明是时间分配的单调优化问题。此外,我们揭示了问题的可行条件,并提出了一种基于多块的最佳算法。仿真结果验证了S&C的性能权衡约束,这种新型设计在智能表面辅助车辆网络中利用了相互援助的新设计大大扩大。
Integrated sensing and communication (ISAC) is a promising paradigm to provide both sensing and communication (S&C) services in vehicular networks. However, the power of echo signals reflected from vehicles may be too weak to be used for future precise positioning, due to the practically small radar cross section of vehicles with random reflection/scattering coefficient. To tackle this issue, we propose a novel mutual assistance scheme for intelligent surface-mounted vehicles, where S&C are innovatively designed to assist each other for achieving an efficient win-win integration, i.e., sensing-assisted phase shift design and communication-assisted high-precision sensing. Specifically, we first derive closed-form expressions of the echo power and achievable rate under uncertain angle information. Then, the communication rate is maximized while satisfying sensing requirements, which is proved to be a monotonic optimization problem on time allocation. Furthermore, we unveil the feasible condition of the problem and propose a polyblock-based optimal algorithm. Simulation results validate that the performance trade-off bound of S&C is significantly enlarged by the novel design exploiting mutual assistance in intelligent surface-aided vehicular networks.