Channel Estimation for Semi-Passive Reconfigurable Intelligent Surfaces With Enhanced Deep Residual Networks

被引:64
作者
Jin, Yu [1 ,2 ]
Zhang, Jiayi [1 ,2 ]
Zhang, Xiaodan [3 ]
Xiao, Huahua [4 ,5 ]
Ai, Bo [2 ,6 ,7 ,8 ]
Ng, Derrick Wing Kwan [9 ]
机构
[1] Beijing Jiaotong Univ, Sch Elect & Informat Engn, Beijing 100044, Peoples R China
[2] Beijing Jiaotong Univ, Frontiers Sci Ctr Smart High Speed Railway Syst, Beijing 100044, Peoples R China
[3] Shenzhen Inst Informat Technol, Sch Management, Shenzhen 518172, Peoples R China
[4] ZTE Corp, Shenzhen 518057, Peoples R China
[5] State Key Lab Mobile Network & Mobile Multimedia, Shenzhen 518057, Peoples R China
[6] Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China
[7] Zhengzhou Univ, Henan Joint Int Res Lab Intelligent Networking &, Zhengzhou 450001, Peoples R China
[8] Peng Cheng Lab, Res Ctr Networks & Commun, Shenzhen, Peoples R China
[9] Univ New South Wales, Sch Elect Engn & Telecommun, Kensington, NSW 2052, Australia
基金
中国国家自然科学基金; 澳大利亚研究理事会; 国家重点研发计划; 北京市自然科学基金;
关键词
Channel estimation; Sensors; Radio frequency; Estimation; Residual neural networks; Superresolution; Receiving antennas; deep learning; reconfigurable intelligent surface; residual networks; DESIGN; MIMO;
D O I
10.1109/TVT.2021.3109937
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Reconfigurable intelligent surface (RIS) is envisioned as an essential paradigm for realizing the sixth-generation networks, due to the use of low-cost reflecting elements for establishing programmable and favourable wireless environment. However, accurate channel estimation is a fundamental technical challenge for achieving large performance gains brought by RIS. To address this challenge, we first integrate a RIS with a small number of uniformly distributed active sensing devices, which are equipped with active radio frequency chains for acquiring partial channel state information (CSI). Then, by leveraging the rank-deficient structure of RIS channels, two practical residual neural networks, named single-scale enhanced deep residual (EDSR) and multi-scale enhanced deep residual (MDSR), are proposed to obtain accurate CSI, which can strike a balance between the system complexity and estimation performance. Simulation results reveal the cost-performance trade-off of the two proposed methods and unveil their superior performance compared with existing baseline schemes.
引用
收藏
页码:11083 / 11088
页数:6
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