论文标题
基于波浪控制的基于元图的可重构智能表面
Wave-Controlled Metasurface-Based Reconfigurable Intelligent Surfaces
论文作者
论文摘要
可重新配置的智能表面(RISS)是可编程的跨度,可以通过使用可控制的相移细胞来适应转向电磁能以所需的方向接收到。除其他用途外,RIS可以修改传播环境,以便为基础站无法接触的用户位置提供无线访问。另外,RIS可以将波浪驱逐出空间中的特定位置,以消除干扰并允许无线网络与其他类型的固定无线服务(例如,雷达,无限制的无线电频段等)共存。这项工作中的新方法是一种波浪控制的架构,可以正确解释相邻RIS元素可以实现的局部反射阶段的最大变化。它消除了对每个RIS元素的个人控制所需的密集接线和信号路径的需求,从而可以大大减少所需的硬件。我们详细介绍了此波浪控制的RIS架构,并讨论了在点对点和多电池MIMO系统中利用它的信号处理和机器学习方法。这种实现可以导致RIS找到广泛应用程序的下一代无线,雷达和导航系统的显着改善。它们有可能通过数量级提高频谱利用率和共存的效率。
Reconfigurable Intelligent Surfaces (RISs) are programmable metasurfaces that can adaptively steer received electromagnetic energy in desired directions by employing controllable phase shifting cells. Among other uses, an RIS can modify the propagation environment in order to provide wireless access to user locations that are not otherwise reachable by a base station. Alternatively, an RIS can steer the waves away from particular locations in space, to eliminate interference and allow for co-existence of the wireless network with other types of fixed wireless services (e.g., radars, unlicensed radio bands, etc.). The novel approach in this work is a wave-controlled architecture that properly accounts for the maximum possible change in the local reflection phase that can be achieved by adjacent RIS elements. It obviates the need for dense wiring and signal paths that would be required for individual control of every RIS element, and thus offers a substantial reduction in the required hardware. We specify this wave-controlled RIS architecture in detail and discuss signal processing and machine learning methods that exploit it in both point-to-point and multicell MIMO systems. Such implementations can lead to a dramatic improvement in next-generation wireless, radar, and navigation systems where RIS finds wide applications. They have the potential to improve the efficiency of spectrum utilization and coexistence by orders of magnitude.