Joint Routing, Resource Allocation, and Energy Optimization for Integrated Access and Backhaul with Open RAN

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Main Authors: Prasad, Reshma, Elkael, Maxime, Gemmi, Gabriele, Bushnaq, Osama M., Mishra, Debashisha, Raut, Prasanna, Simonjan, Jennifer, Polese, Michele, Melodia, Tommaso
Format: Preprint
Published: 2025
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author Prasad, Reshma
Elkael, Maxime
Gemmi, Gabriele
Bushnaq, Osama M.
Mishra, Debashisha
Raut, Prasanna
Simonjan, Jennifer
Polese, Michele
Melodia, Tommaso
author_facet Prasad, Reshma
Elkael, Maxime
Gemmi, Gabriele
Bushnaq, Osama M.
Mishra, Debashisha
Raut, Prasanna
Simonjan, Jennifer
Polese, Michele
Melodia, Tommaso
contents As networks evolve towards 6G, Mobile Network Operators (MNOs) must accommodate diverse requirements and at the same time manage rising energy consumption. Integrated Access and Backhaul (IAB) networks facilitate dense cellular deployments with reduced infrastructure complexity. However, the multi-hop wireless backhauling in IAB networks necessitates proper routing and resource allocation decisions to meet the performance requirements. At the same time, cell densification makes energy optimization crucial. This paper addresses the joint optimization of routing and resource allocation in IAB networks through two distinct objectives: energy minimization and throughput maximization. We develop a novel capacity model that links power levels to achievable data rates. We propose two practical large-scale approaches to solve the optimization problems and leverage the closed-loop control framework introduced by the Open Radio Access Network (O-RAN) architecture to integrate the solutions. The approaches are evaluated on diverse scenarios built upon open data of two months of traffic collected by network operators in the city of Milan, Italy. Results show that the proposed approaches effectively reduces number of activated nodes to save energy and achieves approximately 100 Mbps of minimum data rate per User Equipment (UE) during peak hours of the day using spectrum within the Frequency Range (FR) 3, or upper midband. The results validate the practical applicability of our framework for next-generation IAB network deployment and optimization.
format Preprint
id arxiv_https___arxiv_org_abs_2509_05467
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Joint Routing, Resource Allocation, and Energy Optimization for Integrated Access and Backhaul with Open RAN
Prasad, Reshma
Elkael, Maxime
Gemmi, Gabriele
Bushnaq, Osama M.
Mishra, Debashisha
Raut, Prasanna
Simonjan, Jennifer
Polese, Michele
Melodia, Tommaso
Networking and Internet Architecture
As networks evolve towards 6G, Mobile Network Operators (MNOs) must accommodate diverse requirements and at the same time manage rising energy consumption. Integrated Access and Backhaul (IAB) networks facilitate dense cellular deployments with reduced infrastructure complexity. However, the multi-hop wireless backhauling in IAB networks necessitates proper routing and resource allocation decisions to meet the performance requirements. At the same time, cell densification makes energy optimization crucial. This paper addresses the joint optimization of routing and resource allocation in IAB networks through two distinct objectives: energy minimization and throughput maximization. We develop a novel capacity model that links power levels to achievable data rates. We propose two practical large-scale approaches to solve the optimization problems and leverage the closed-loop control framework introduced by the Open Radio Access Network (O-RAN) architecture to integrate the solutions. The approaches are evaluated on diverse scenarios built upon open data of two months of traffic collected by network operators in the city of Milan, Italy. Results show that the proposed approaches effectively reduces number of activated nodes to save energy and achieves approximately 100 Mbps of minimum data rate per User Equipment (UE) during peak hours of the day using spectrum within the Frequency Range (FR) 3, or upper midband. The results validate the practical applicability of our framework for next-generation IAB network deployment and optimization.
title Joint Routing, Resource Allocation, and Energy Optimization for Integrated Access and Backhaul with Open RAN
topic Networking and Internet Architecture
url https://arxiv.org/abs/2509.05467