We propose an alternating optimization framework for maximizing energy efficiency (EE) in reconfigurable intelligent surface (RIS) assisted distributed MIMO (D-MIMO) systems under both coherent and non-coherent reception modes. The framework jointly optimizes access point (AP) power allocation and RIS phase configurations to improve EE under per-AP power and signal-to-interference-plus-noise ratio (SINR) constraints. Using majorization-minimization for power allocation together with per-element RIS adaptation, the framework achieves tractable optimization of this non-convex problem. Simulation results for indoor deployments with realistic power-consumption models show that the proposed scheme outperforms equal-power and random-scatterer baselines, with clear EE gains. We evaluate the performance of both reception modes and quantify the impact of RIS phase-shift optimization, RIS controller architectures (centralized vs. per-RIS control), and RIS size, providing design insights for practical RIS-assisted D-MIMO deployments in future 6G networks.
@article{arxiv.2603.24180,
title = {RIS-Assisted D-MIMO for Energy-Efficient 6G Indoor Networks},
author = {Akshay Vayal Parambath and Jose Flordelis and Venkatesh Tentu and Charitha Madapatha and Fredrik Rusek and Erik Bengtsson and Tommy Svensson},
journal= {arXiv preprint arXiv:2603.24180},
year = {2026}
}
Comments
6 pages, 5 figures, Accepted to the IEEE International Conference on Communications (ICC) 2026