北京邮电大学学报

  • EI核心期刊

北京邮电大学学报 ›› 2024, Vol. 47 ›› Issue (1): 38-44.

• 无线通信技术 • 上一篇    下一篇

RIS 辅助通信系统中基于深度压缩感知的信道估计

刘峰,杨柳,赵磊   

  1. 上海电机学院
  • 收稿日期:2022-12-14 修回日期:2023-02-21 出版日期:2024-02-26 发布日期:2024-02-26
  • 通讯作者: 杨柳 E-mail:yangliu0806@126.com
  • 基金资助:
    国家自然科学基金上项目;上海市科技计划项目

Channel Estimation Based on Deep Compression Sensing in RIS Assisted Communication System

LIU Feng, YANG Liu, ZHAO Lei   

  • Received:2022-12-14 Revised:2023-02-21 Online:2024-02-26 Published:2024-02-26

摘要: 针对可重构智能表面(RIS)辅助多用户通信系统中信道估计导频开销大和精度有限的问题,提出一种基于深度压缩感知的信道估计算法。为了降低传统正交匹配追踪(OMP)算法的导频开销,利用级联信道特有的双结构稀疏性质,提出改进 OMP 算法,获得级联信道的粗估计值;为了进一步提升信道估计的精度,设计了一种深度学习模型,将粗估计信道矩阵视为低分辨的图像,通过多路卷积网络最大程度地隐式学习噪声特征;最后,提出了基于残差连接的多路卷积网络(RMCN)结构,利用噪声的空间特性和可加性,去除噪声对信道矩阵的影响,输出一个高分辨率的级联信道矩阵,从而完成信道估计。仿真结果表明,相比于传统 OMP 算法,所提 RMCN-OMP 算法的归一化均方误差减小了约 2.5 dB,在降低导频开销的同时,具有更高的估计精度。

关键词: 可重构智能表面, 信道估计, 深度压缩感知, 多路卷积网络

Abstract:  A channel estimation algorithm based on deep compressed sensing is proposed to solve the problem of high cost and limited accuracy of channel estimation pilots in reconfigurable intelligent surface (RIS) assisted multi-user communication system. To reduce the pilot cost of the traditional orthogonal matching pursuit (OMP) algorithm, an improved OMP algorithm is proposed by using the unique double-structured sparse property of cascaded channels to obtain rough estimation of the cascaded channel. In order to further improve the accuracy of channel estimation, a deep learning model is designed, which regards the coarsely estimated channel matrix as a low-resolution image, and uses the multi-convolutional network to learn the implicit noise features to the maximum extent. Finally, the multi-convolutional network structure based on residual connection (RMCN) is proposed. By using the spatial characteristics and additivity of noise, the influence of noise on the channel matrix is eliminated, and a cascade channel matrix with high resolution is output to complete the channel estimation. The simulation results show that compared with the traditional OMP scheme, the normalized mean square error of the proposed RMCN-OMP algorithm is reduced by about 2.5 dB while reducing pilot overhead and achieving higher estimation accuracy.

Key words: reconfigurable intelligent surface, channel estimation, deep compression sensing , multi-convolutional network

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