Reconfigurable Intelligent Surfaces (RIS) are considered a key enabler to achieve the vision of Smart Radio Environments, where the propagation environment can be programmed and controlled to enhance the efficiency of wireless systems. These surfaces correspond to planar sheets comprising a large number of small and low-cost reflecting elements whose parameters are adaptively selected with a programmable controller. Hence, by optimizing these coefficients, the information signals can be directed in a customized fashion. On the other hand, the initial access procedure used in 5G is beam sweeping, where the base station sequentially changes the active beam direction in order to scan all users in the cell. This conventional protocol results in an initial access latency. The aim of this paper is to minimize this delay by optimizing the activated beams in each timeslot, while leveraging the presence of the RIS in the network. The problem is formulated as a hard optimization problem. We propose an efficient solution based on jointly alternating optimization and Semi Definite Relaxation (SDR) techniques. Numerical results are provided to assess the superiority of our scheme as compared to conventional beam sweeping.
翻译:可以重新配置的智能表面(RIS)被认为是实现智能无线电环境愿景的关键推进器,在这个环境中,传播环境可以被编程和控制,以提高无线系统的效率。这些表面相当于由大量小型和低成本的反映元素组成的平面表,这些元素的参数通过可编程控制器来适应性地选择。因此,通过优化这些系数,信息信号可以按用户要求的方式传递。另一方面,5G中使用的初始访问程序是波束扫扫荡,基站依次改变主动波束方向,以扫描细胞中的所有用户。这一常规协议导致初始访问延时。本文的目的是通过优化每个时间的激活波束来尽量减少这种延迟,同时利用网络中的放射性波束。将问题表述为硬优化问题。我们提出一个基于联合交替优化和半阻断放松技术的有效解决方案。提供了数字结果,用以评估我们计划优于常规扫瞄的优势。