时变环境中的 RIS 配置老化

IF 0.4 4区 计算机科学 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Communications Technology and Electronics Pub Date : 2024-07-29 DOI:10.1134/s1064226924700116
I. A. Burtakov, A. O. Gorbunova, A. A. Kureev, E. M. Khorov
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引用次数: 0

摘要

摘要-可重新配置的智能表面(RIS)是一种很有前途的技术,可以提高无线网络的容量和覆盖范围。RIS 的有效性取决于其配置,而配置可根据收发设备的位置信息进行。在实践中,有两种主要的 RIS 配置:将 RIS 反射的信号集中到接收器位置,以及将信号转向接收器。由于收发器设备和周围环境中其他物体的移动导致环境参数发生变化,这两种类型的 RIS 配置都会随着时间的推移而过时。本文研究了在具有空间静态收发器设备的系统中,通过聚焦和重定向程序所做的 RIS 配置的过时情况。论文表明,这两种配置的信噪比差异可达 8 dB,而且具有非单调性特征,可以通过考虑 RIS 的近场区域来解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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RIS Configuration Aging in a Time-Varying Environment

Abstract—Reconfigurable intelligent surface (RIS) is a promising technology that can increase the capacity and coverage of wireless networks. The effectiveness of a RIS is determined by its configuration, which can be made based on the information about location of the transceiver devices. In practice, there are two main types of RIS configurations: focusing the signal reflected from the RIS at the receiver location and redirecting the signal towards the receiver. Both types of RIS configuration become outdated in time due to changes in environmental parameters caused by the movement of transceiver devices and other objects in the surrounding environment. This paper examines outdating of RIS configurations made by focusing and redirection procedures in a system with spatially static transceiver devices. The paper shows that the difference in signal-to-noise ratio for the two types of configurations can reach up to 8 dB and has nonmonotonic features that can be explained by considering the near-field region of a RIS.

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来源期刊
CiteScore
1.00
自引率
20.00%
发文量
170
审稿时长
10.5 months
期刊介绍: Journal of Communications Technology and Electronics is a journal that publishes articles on a broad spectrum of theoretical, fundamental, and applied issues of radio engineering, communication, and electron physics. It publishes original articles from the leading scientific and research centers. The journal covers all essential branches of electromagnetics, wave propagation theory, signal processing, transmission lines, telecommunications, physics of semiconductors, and physical processes in electron devices, as well as applications in biology, medicine, microelectronics, nanoelectronics, electron and ion emission, etc.
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