一种新的无线光通信射频信号波束形成方案

Jiang Liu, Wasinee Noonpakdee, H. Takano, S. Shimamoto
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引用次数: 3

摘要

在本文中,我们提出了一种新的中继系统,其中射频(RF)信号在光介质上中继,以提供射频敏感区域的无线通信。我们将其称为RF over Optical (RFoO)。与传统中继系统不同,我们采用射频波段移相波束形成,在将射频信号调制到光波段之前对其初始相位进行调整。作为一个好处,我们能够控制传输信号的能量,将其集中在所需的区域。为了减少开销和器件损耗,我们设计了一种基于预定义波束码本的简化波束形成过程。中继站使用每个预先定义的波束模式发送一系列“训练序列”。移动设备估计这些“训练序列”的信噪比(SNR),以确定最佳波束方向图,然后通知中继站最佳方向图。通过合理设计波束码本,所提出的系统能够以多波束覆盖更广的服务区域,并且在移动终端获得比非波束形成辐射系统更强的接收功率。与其他波束控制方案相比,该方案易于实现,并允许非常快速的波束变化。我们首先进行了理论分析,然后进行了计算机模拟。仿真结果表明,该系统能有效地提高无线光通信的接收功率,提高误码率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel RF signal beamforming scheme over Optical Wireless Communications
In this paper, we present a novel relay system in which a radio frequency (RF) signal is relayed over optical media to provide wireless communications in RF sensitive areas. We refer to this as RF over Optical (RFoO). Different from conventional relay systems, we adopt RF band phase shift beamforming to adjust the initial phases of the RF signal before modulating it into the optical band. As a benefit, we are able to control the energy of the transmitted signal to concentrate it in desired areas. To reduce overhead and device loss we designed a simplified beamforming process which is based upon a predefined beam codebook. The relay station sends a series of ‘training sequences’ using each pre-defined beam pattern. Mobile devices estimate the Signal-To-Noise (SNR) ratio of these ‘training sequences’ to determine the optimal beam pattern, then informs the relay station of the optimal pattern. By properly designing the beam codebook, the proposed system is capable of providing wider coverage of a service area with multiple beams, and achieving stronger received power at the mobile terminal than non-beamformed radiation system. Compared to other beam control schemes, the proposed scheme is easy to implement and allows for very quick beam changes. We provide a theoretical analysis followed by computer simulation. Our simulation results show that this system can effectively enhance the received power and improve the BER performance of Optical Wireless Communications.
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