Enhancing active reconfigurable intelligent surface

Muhammad I. Khalil
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引用次数: 2

Abstract

A Reconfigurable Intelligent Surface (RIS) panel comprises many independent Reflective Elements (REs). One possible way to implement an RIS is to use a binary passive load impedance connected to an antenna element to achieve the modulation of reflected radio waves. Each RE reflects incoming waves (incident signal) by using on/off modulation between two passive loads and adjusting its phase using a Phase Shifter (PS). However, this modulation process reduces the amplitude of the reflected output signal to less than unity. Therefore, recent RIS works have employed Reflection Amplifiers (RAs) to compensate for the losses incurred during the modulation process. However, these systems only improve the reflection coefficient for a single modulation state, resulting in suboptimal RE efficacy. Thus, this paper proposes a strategy for optimising RE by continuously activating the RA regardless of the switching load state. The performance of the proposed scheme is evaluated in two scenarios: (1) In the first scenario (Sc1), the RA only operates to compensate for high-impedance loads, and (2) in the second scenario (Sc2), the RA runs continuously regardless of the RE loads. To benchmark the performance of Sc1 and Sc2, various metrics are compared, including signal-to-noise ratio, insertion loss, noise figure, communication range, and power-added efficiency. Numerical examples are provided to demonstrate the effectiveness of the proposed scheme. It is found that the proposed system in Sc2 leads to better overall performance compared to Sc1 due to the increased gain of the RIS reflection.
增强主动可重构智能表面
可重构智能表面(RIS)面板由许多独立的反射元件(REs)组成。实现RIS的一种可能方法是使用连接到天线元件的二进制无源负载阻抗来实现反射无线电波的调制。每个RE通过在两个无源负载之间使用开/关调制并使用移相器(PS)调整其相位来反射入射波(入射信号)。然而,这种调制过程将反射输出信号的幅度降低到小于1。因此,最近的RIS工作采用反射放大器(RAs)来补偿调制过程中产生的损失。然而,这些系统只能提高单一调制状态下的反射系数,从而导致非最佳的RE效率。因此,本文提出了一种无论切换负载状态如何,通过持续激活RA来优化RE的策略。在两种情况下对该方案的性能进行了评估:(1)在第一种情况(Sc1)中,RA仅补偿高阻抗负载;(2)在第二种情况(Sc2)中,RA不受RE负载的影响而持续运行。为了对Sc1和Sc2的性能进行基准测试,我们比较了各种指标,包括信噪比、插入损耗、噪声系数、通信范围和功率附加效率。数值算例验证了该方法的有效性。研究发现,由于RIS反射的增益增加,在Sc2中提出的系统与Sc1相比具有更好的整体性能。
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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