Outdoor-to-indoor communications in millimeter-wave (mmWave) cellular networks have been one challenging research problem due to the severe attenuation and the high penetration loss caused by the propagation characteristics of mmWave signals. We propose a viable solution to implement the outdoor-to-indoor mmWave communication system with the aid of an active intelligent transmitting surface (active-ITS), where the active-ITS allows the incoming signal from an outdoor base station (BS) to pass through the surface and be received by the indoor user-equipments (UEs) after shifting its phase and magnifying its amplitude. Then, the problem of joint precoding of the BS and active-ITS is investigated to maximize the weighted sum-rate (WSR) of the communication system. An efficient block coordinate descent (BCD) based algorithm is developed to solve it with the suboptimal solutions in nearly closed-forms. In addition, to reduce the size and hardware cost of an active-ITS, we provide a block-amplifying architecture to partially remove the circuit components for power-amplifying, where multiple transmissive-type elements (TEs) in each block share a same power amplifier. Simulations indicate that active-ITS has the potential of achieving a given performance with much fewer TEs compared to the passive-ITS under the same total system power consumption, which makes it suitable for application to the size-limited and aesthetic-needed scenario, and the inevitable performance degradation caused by the block-amplifying architecture is acceptable.
翻译:毫米波(mmWave)蜂窝网络的门到门通信是一个具有挑战性的研究问题,原因是毫米波信号的传播特性造成严重的减速和高渗透率损失。我们提出了一个可行的解决方案,以便在一个活跃的智能传输表面(主动-ITS)的帮助下,实施户外到室内网络通信系统(室外通信系统),让户外基地站(BS)发出信号通过地面,并在移动阶段和放大放大其振幅后,由室内用户设备接收。然后,调查BS和主动-ITS的联合预编码问题,以最大限度地实现通信系统的加权总和速率(WSR),开发一个高效的区间协调底部(BCD)算法,以近乎封闭式的形式用亚优的解决方案解决这个问题。此外,为了降低主动-端基站的大小和硬件成本,我们提供了一个阻隔加结构,以部分去除用于增能化的电路段组件。在此情况下,多盘压型的电路段和固定性能结构使得每组的平面性能结构在比上,使硬度结构下的电压结构在最大程度下实现。