Two-Timescale Design for Reconfigurable Intelligent Surface-Aided Massive MIMO Systems with Imperfect CSI
Kangda Zhi, Cunhua Pan, Hong Ren, Kezhi Wang, Maged Elkashlan, Marco, Di Renzo, Robert Schober, H. Vincent Poor, Jiangzhou Wang, and Lajos Hanzo

TL;DR
This paper proposes a two-timescale transmission design for RIS-assisted massive MIMO systems with imperfect CSI, deriving achievable rates and power scaling laws, and optimizing passive beamforming to enhance performance.
Contribution
It introduces a novel two-timescale beamforming scheme with theoretical analysis and power scaling laws for RIS-assisted massive MIMO under imperfect CSI.
Findings
Transmit power scales as 1/M for Rician channels
Power scales as 1/√M or 1/N for Rayleigh channels
RIS placement closer to users improves performance
Abstract
This paper investigates the two-timescale transmission design for reconfigurable intelligent surface (RIS)-aided massive multiple-input multiple-output (MIMO) systems, where the beamforming at the base station (BS) is adapted to the rapidly-changing instantaneous channel state information (CSI), while the passive beamforming at the RIS is adapted to the slowly-changing statistical CSI. Specifically, we first propose a linear minimum mean square error (LMMSE) estimator to obtain the aggregated channel from the users to the BS in each channel coherence interval. Based on the estimated channel, we apply the low-complexity maximal ratio combining (MRC) beamforming at the BS, and then derive the ergodic achievable rate in a closed form expression. To draw design insights, we perform a detailed theoretical analysis departing from the derived ergodic achievable rate. If the BS-RIS channel…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Antenna Design and Analysis · Indoor and Outdoor Localization Technologies
