论文标题
在具有挑战性的环境中可重新配置的智能表面:水下,地下,工业和灾难
Reconfigurable Intelligent Surfaces in Challenging Environments: Underwater, Underground, Industrial and Disaster
论文作者
论文摘要
具有挑战性的环境包括一系列场景,这些方案共享一个事实,即由于许多与传播介质相关的许多障碍和增加的信号散射,使用常规技术建立通信链接非常困难。具体而言,已知水下和地下培养基吸收电磁辐射,从而严重影响整体路径损失。工业和灾难环境可以看作是丰富的散射环境,具有相应的大量多径传播,从而导致隔膜间干扰和信号质量的恶化。尽管已知通信网络,尤其是物联网(IoT)的设计挑战,但在这种环境中,对于所有这些应用程序都没有共同的推动因素或解决方案。引入了可重新配置的智能表面(RISS),以通过将信号功率集中在首选方向上,从而使通信环境“智能”来提高信号传播特性。尽管RIS的通常应用与避免阻塞有关,但可以使用相同的技术来减少多径的效果,甚至可以通过被动边际形成部分补偿信号吸收。由于RI的有益特性,其在挑战性环境中的使用可能会成为上述启用器和改变游戏的技术。在本文中,我们讨论了水下物联网,地下物联网以及行业4.0和紧急网络的RIS设备的潜在用例,部署策略和设计方面。此外,我们提供潜在的硬件体系结构并得出预期的信号质量。数值结果表明,每十年最多可达到20 dB的性能。此外,描述了在这种情况下要解决的新研究挑战。
Challenging environments comprise a range of scenarios, which share the fact that it is extremely difficult to establish a communication link using conventional technology due to many impairments typically associated with the propagation medium and increased signal scattering. Specifically, underwater and underground media are known to absorb electromagnetic radiation, which heavily affects the overall path loss. Industrial and disaster environments can be viewed as rich scattering environments with corresponding substantial multipath propagation leading to intersymbol interference and deterioration of signal quality. Although the challenges for the design of communication networks, and specifically the Internet of Things (IoT), in such environments are known, there is no common enabler or solution for all these applications. Reconfigurable intelligent surfaces (RISs) have been introduced to improve the signal propagation characteristics by focusing the signal power in the preferred direction, thus making the communication environment 'smart'. While the usual application of RIS is related to blockage avoidance, the very same technique can be used to reduce the effect of multipath and even partially compensate the signal absorption via passive beamforming. Due to the beneficial properties of RIS, its use in challenging environments can become the aforementioned enabler and a game changing technology. In this paper, we discuss potential use cases, deployment strategies and design aspects for RIS devices in underwater IoT, underground IoT as well as Industry 4.0 and emergency networks. Furthermore, we provide a potential hardware architecture and derive the expected signal quality. The numerical results reveal substantial performance gains of up to 20 dB per decade. In addition, novel research challenges to be addressed in this context are described.