4.7 Article

Energy Efficiency and Spectral Efficiency Tradeoff in RIS-Aided Multiuser MIMO Uplink Transmission

Journal

IEEE TRANSACTIONS ON SIGNAL PROCESSING
Volume 69, Issue -, Pages 1407-1421

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TSP.2020.3047474

Keywords

Reconfigurable intelligent surface (RIS); intelligent reflecting surface (IRS); discrete phase shifts; partial channel state information (CSI); energy efficiency; spectral efficiency

Funding

  1. National Key RAMP
  2. D Program of China [2019YFB1803102]
  3. National Natural Science Foundation of China [61801114, 61761136016, 61631018]
  4. Jiangsu Province Basic Research Project [BK20192002]
  5. Fundamental Research Funds for the Central Universities
  6. UNSW Digital Grid Futures Institute, UNSW, Sydney
  7. Australian Research Council [DP190101363]

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The study focuses on the tradeoff between energy efficiency and spectral efficiency in multiuser MIMO uplink communications aided by reconfigurable intelligent surfaces. A transmission strategy based on partial channel state information and joint optimization of transmit precoding and reflective beamforming is developed to maximize resource efficiency. Numerical results show the effectiveness and rapid convergence rate of the proposed optimization framework.
The emergence of reconfigurable intelligent surfaces (RISs) enables us to establish programmable radio wave propagation that caters for wireless communications, via employing low-cost passive reflecting units. This work studies the non-trivial tradeoff between energy efficiency (EE) and spectral efficiency (SE) in multiuser multiple-input multiple-output (MIMO) uplink communications aided by a RIS equipped with discrete phase shifters. For reducing the required signaling overhead and energy consumption, our transmission strategy design is based on the partial channel state information (CSI), including the statistical CSI between the RIS and user terminals (UTs) and the instantaneous CSI between the RIS and the base station. To investigate the EE-SE tradeoff, we develop a framework for the joint optimization of UTs' transmit precoding and RIS reflective beamforming to maximize a performance metric called resource efficiency (RE). For the design of UT's precoding, it is simplified into that of UTs' transmit powers with the aid of the closed-form solutions of UTs' optimal transmit directions. To avoid the high complexity in computing the nested integrals involved in the expectations, we derive an asymptotic deterministic objective expression. For the design of the RIS phases, an iterative mean-square error minimization approach is proposed via capitalizing on the homotopy, accelerated projected gradient, and majorization-minimization methods. Numerical results illustrate the effectiveness and rapid convergence rate of our proposed optimization framework.

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