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Distributed Antenna Array and RIS-Assisted Planning Framework for Intelligent Coverage Optimization in B5G/6G
Valdemar Farre1, José Vega-Sánchez2, Alejandro Cama-Pinto3
1Escuela de Doctorado de Ciencia, Tecnologías e Ingenierías, Tecnologías de Información y Comunicación (TIC-UGR), University of Granada, 18071 Granada, Spain.
Sensors (Basel, Switzerland)
|August 13, 2026
Summary
This study introduces a new radio network framework for future wireless networks (B5G/6G) that significantly boosts spectral efficiency and coverage by optimizing antenna arrays and reconfigurable intelligent surfaces (RIS). The approach reduces interference and coverage holes, offering a cost-effective solution for enhanced non-line-of-sight (NLOS) connectivity.
Area of Science:
- Wireless communication networks
- Radio network planning
- Intelligent reflecting surfaces
Background:
- Conventional cell-centric architectures face limitations in Beyond 5G (B5G) and 6G networks, particularly concerning interference and coverage.
- The transition to higher frequency bands exacerbates these challenges, necessitating novel network designs.
Purpose of the Study:
- To present a scalable four-layer radio network planning framework for B5G/6G.
- To jointly optimize the deployment of distributed active antenna arrays and passive reconfigurable intelligent surfaces (RISs).
- To enhance spectral efficiency and coverage while reducing interference and capital expenditure (CAPEX).
Main Methods:
- Integration of a digital twin (DT) loop within an Open-RAN (O-RAN) architecture.
- Application of multi-agent deep reinforcement learning (MADRL) and fractional programming (FP) for joint optimization.
- Extensive Monte Carlo simulations in a dense urban environment.
Main Results:
- Achieved a 45% increase in spectral efficiency compared to legacy 5G networks.
- Demonstrated an 84% reduction in coverage holes and a 30% decrease in uplink interference.
- Extended non-line-of-sight (NLOS) coverage by 40% with reduced CAPEX.
- Showcased a 10-15% spectral efficiency improvement over existing DRL-based RIS frameworks.
Conclusions:
- The proposed framework offers a cost-effective, standards-compliant solution for future wireless networks.
- Joint optimization of active and passive components is crucial for overcoming B5G/6G limitations.
- The DT-integrated O-RAN architecture with MADRL and FP provides significant performance gains.