光学智能反射面辅助 VLC 系统的信道估计:时空联合采样方法

Shiyuan Sun;Fang Yang;Weidong Mei;Jian Song;Zhu Han;Rui Zhang
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引用次数: 0

摘要

光学智能反射面(OIRS)作为下一代先进收发器的新兴技术,因其克服可见光通信(VLC)信号阻塞的能力而受到越来越多的关注。然而,目前的研究主要是假设已知信道状态信息(CSI),而其估计问题尚未得到研究。为了弥补这一缺陷,本文在基于对准的OIRS信道模型下,提出了一种新的自定义的联合空时采样OIRS信道估计协议。首先,揭示了红外光谱的时空相干特性,推导了红外光谱的相干距离和相干时间。接下来,为了在相干时间内实现导频传输的动态光束对准,我们建议在基于几何光学的非均匀码本之后调整OIRS反射元件的旋转角度。然后,在考虑相干时间内的波束对准情况下,提出了一种基于相干距离将相干波束划分为多个子阵列的序列OIRS信道估计方法。每个子阵列的CSI是依次估计的,然后是一个时空插值来检索其他未对准的收发器天线的完整CSI。数值结果验证了我们的理论分析,并证明了与基准方案相比,所提出的OIRS信道估计协议的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Channel Estimation for Optical Intelligent Reflecting Surface-Assisted VLC System: A Joint Space-Time Sampling Approach
Optical intelligent reflecting surface (OIRS) has attracted increasing attention due to its capability of overcoming signal blockages in visible light communication (VLC), an emerging technology for the next-generation advanced transceivers. However, current works on OIRS predominantly assume known channel state information (CSI), while its estimation problem has not been studied yet. To bridge such a gap, this paper proposes a new and customized OIRS channel estimation protocol with joint space-time sampling under the alignment-based OIRS channel model. First, we unveil the spatial and temporal coherence characteristics and derive OIRS coherence distance and coherence time in closed form. Next, to achieve dynamic beam alignment for pilot transmission within the coherence time, we propose to tune the rotation angles of the OIRS reflecting elements following a geometric optics-based non-uniform codebook. Then, given the beam alignment within the considered coherence time, a sequential OIRS channel estimation method is proposed, where the OIRS is divided into multiple subarrays based on the coherence distance. The CSI for each subarray is estimated sequentially, followed by a space-time interpolation to retrieve full CSI for other non-aligned transceiver antennas. Numerical results validate our theoretical analyses and demonstrate the efficacy of the proposed OIRS channel estimation protocol as compared to benchmark schemes.
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