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Toward Green and Resilient Cell-Free Massive MIMO Networks: Radio Deployment Optimization and Resource Orchestration
KTH, School of Electrical Engineering and Computer Science (EECS), Communication Systems.ORCID iD: 0000-0002-4640-7020
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Sustainable development
SDG 9: Industry, innovation and infrastructure, SDG 11: Sustainable cities and communities
Abstract [en]

Mobile networks are evolving into critical societal infrastructure, while the energy footprint, deployment cost, and resilience of the radio access network (RAN) are emerging as the most pressing design constraints of the path toward future generations of mobile networks. Modular network design combined with intelligent resource orchestration holds the solution for these emerging challenges. Cell-free massive multiple-input multiple-output (MIMO) relies on coherent joint transmission by densely distributed low-cost radio units (RUs) and offers fairness among user equipment (UEs). Its distributed nature provides the required modularity for the radio access part, but efficient deployment and network orchestration frameworks are necessary to harness this modularity. To address this gap, this thesis develops deployment and resource-orchestration frameworks for cell-free massive MIMO networks. The work is structured along three research directions.

The first direction addresses efficient radio deployment for cell-free massive MIMO networks. Ray-tracing-based propagation modeling at 28, 39, and 60 GHz characterizes the millimeter-wave channel under different geometries, frame materials, and passenger configurations. Building on this channel model, a joint RU placement and resource allocation framework is formulated as a mixed-integer optimization problem that minimizes the number of deployed RUs while guaranteeing UE rate requirements under access point cooperation and precoding schemes. Numerical results on an airplane-cabin scenario show an 80% reduction in the number of RUs compared to a line-of-sight-based baseline.

The second direction develops an end-to-end power-consumption model and joint orchestration of radio, fronthaul, and cloud-processing resources for cell-free massive MIMO deployed over an open-RAN architecture with both optical and wireless fronthaul. Scenario-sampling-based group-Lasso optimization for centralized precoding and a block-coordinate-descent method for distributed precoding jointly minimize the active number of antennas, radio units, processors, and fronthaul resources. The proposed orchestration achieves up to 70% end-to-end power savings over cloud-only, and 15% over radio-only orchestration. The results reveal that distributing antennas across the coverage area is structurally more energy-efficient than concentrating them at a few sites.

The third direction addresses survivability in cell-free massive MIMO and discusses resilient network design challenges. The analysis demonstrates that dense small-radio deployment is shown to be critical for simple connectivity during disasters, whereas cell-free massive MIMO also enables high capacity in the impacted region.

Abstract [sv]

Mobilnät utvecklas till kritisk samhällsinfrastruktur, samtidigt som energiavtrycket, utbyggnadskostnaden och resiliensen hos radioaccessnätet (RAN) framträder som de mest angelägna designbegränsningarna på vägen mot framtida generationer av mobilnät. Modulär nätverksdesign i kombination med intelligent resursorkestrering utgör lösningen på dessa framväxande utmaningar.

Cellfri massiv MIMO (multiple-input multiple-output) bygger på koherent gemensam sändning från tätt distribuerade lågkostnadsradioenheter (RU:er) och erbjuder rättvisa mellan användarutrustningar (UE:er). Dess distribuerade natur ger den modularitet som krävs för radioaccessdelen, men effektiva ramverk för utbyggnad och nätverksorkestrering är nödvändiga för att dra nytta av denna modularitet. För att adressera denna lucka utvecklar denna avhandling ramverk för utbyggnad och resursorkestrering för cellfria massiva MIMO-nät. Arbetet är strukturerat längs tre forskningsinriktningar.

Den första inriktningen behandlar effektiv radioutbyggnad för cellfria massiva MIMO-nät. Strålföljningsbaserad (ray tracing) propagationsmodellering vid 28, 39 och 60 GHz millimetervågskanalen under olika geometrier, rammaterial och passagerarkonfigurationer. Med utgångspunkt i denna kanalmodell formuleras ett gemensamt ramverk för RU-placering och resursallokering som ett blandat heltalsoptimeringsproblem, vilket minimerar antalet utplacerade RU:er samtidigt som UE:ernas datahastighetskrav garanteras under samverkans- och förkodningsscheman för access-punkter. Numeriska resultat för ett flygplanskabinsscenario visar en minskning på 80% av antalet RU:er jämfört med en referenslösning baserad på fri sikt.

Den andra inriktningen utvecklar en end-to-end-modell för effektförbrukning samt gemensam orkestrering av radio-, fronthaul- och molnbearbetningsresurser för cell-fri massiv MIMO utbyggd över en Open RAN-arkitektur med både optisk och trådlös fronthaul. Scenariosamplingsbaserad grupp-Lasso-optimering för centraliserad förkodning och en blockkoordinatnedstigningsmetod för distribuerad förkodning minimerar gemensamt det aktiva antalet antenner, radioenheter, processorer och fronthaul-resurser. Den föreslagna orkestreringen uppnår upp till 70% end-to-end-effektbesparingar jämfört med enbart molnorkestrering, och 15% jämfört med enbart radioorkestrering. Resultaten visar att en fördelning av antenner över täckningsområdet är strukturellt mer energieffektiv än att koncentrera dem till ett fåtal platser.

Den tredje inriktningen behandlar överlevnadsförmåga i cellfri massiv MIMO och diskuterar utmaningar vid design av resilienta nät. Analysen visar att tät utbyggnad av små radioenheter är nödvändig för enkel uppkoppling under katastrofer, medan cellfri massiv MIMO dessutom möjliggör hög kapacitet i det drabbade området.

Place, publisher, year, edition, pages
KTH Royal Institute of Technology, 2026. , p. 89
Series
TRITA-EECS-AVL ; 2026:66
Keywords [en]
cell-free massive MIMO, energy efficiency, network resiliency, O-RAN, functional splits, wireless fronthaul, indoor dense spaces, access-point deployment, resource orchestration, ray tracing
Keywords [sv]
Cellfri massiv MIMO, energieffektivitet, nätverksrobusthet, O-RAN, funktionella uppdelningar, trådlös fronthaul, täta inomhusmiljöer, accesspunktsplacering, resursorkestration, strålspårning
National Category
Electrical Engineering, Electronic Engineering, Information Engineering
Research subject
Information and Communication Technology
Identifiers
URN: urn:nbn:se:kth:diva-387106ISBN: 978-91-8106-658-6 (print)OAI: oai:DiVA.org:kth-387106DiVA, id: diva2:2091786
Public defence
2026-09-03, https://kth-se.zoom.us/s/66064285928, Kollegiesalen , Brinellvägen 8, Stockholm, 13:30 (English)
Opponent
Supervisors
Funder
Vinnova
Note

QC 20260813

Available from: 2026-08-13 Created: 2026-08-12 Last updated: 2026-08-19Bibliographically approved
List of papers
1. Millimeter-Wave Channel Modeling and Coverage Analysis for Indoor Dense Spaces
Open this publication in new window or tab >>Millimeter-Wave Channel Modeling and Coverage Analysis for Indoor Dense Spaces
Show others...
2025 (English)In: IEEE Transactions on Vehicular Technology, ISSN 0018-9545, E-ISSN 1939-9359, Vol. 74, no 1, p. 5-20Article in journal (Refereed) Published
Abstract [en]

Millimeter-wave channel modeling for airplanes, trains, and other in-vehicle environments can be considered jointly as different variations of a general site, namely an indoor dense space (IDS). In this work, by using ray-tracing (RT) simulations, we compare the effect of frame material, user density, and geometry on the channel characteristics at 28, 39, and 60 GHz bands. We observe that temporal and spatial parameters in IDS have unique distributions some depending on the transmitter (TX)-receiver (RX) separation in comparison to the indoor office (IO) channel model. The frame material is the main determining factor of the channel characteristics, while variations in frequency bands and geometries have only a minor impact. We extend our channel modeling effort to MIMO deployment analysis to compare the validity of the proposed model in terms of coverage and spectral efficiency with the IO model. Several dominant angular intervals in the channel cause five times higher spectral efficiency gained by digital beamforming (BF) in comparison to analog BF. We observe that the path loss in IDS is more severe compared with IO, resulting in at least a 50% reduction in the coverage area.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2025
Keywords
Geometry, Millimeter wave communication, Airplanes, Atmospheric modeling, Production facilities, Frequency measurement, Transmitters, Spectral efficiency, Reflection, OFDM, 5G, 6G, in-cabin, intra-wagon, millimeter-wave, channel modeling, ray-tracing (RT)
National Category
Communication Systems
Identifiers
urn:nbn:se:kth:diva-359517 (URN)10.1109/TVT.2024.3463193 (DOI)001396985700030 ()2-s2.0-85205779134 (Scopus ID)
Note

QC 20250205

Available from: 2025-02-05 Created: 2025-02-05 Last updated: 2026-08-13Bibliographically approved
2. A Novel Access Point Deployment Framework for mmWave Cell-Free Massive MIMO Networks
Open this publication in new window or tab >>A Novel Access Point Deployment Framework for mmWave Cell-Free Massive MIMO Networks
2025 (English)In: IEEE Transactions on Wireless Communications, ISSN 1536-1276, E-ISSN 1558-2248, Vol. 24, no 6, p. 4581-4597Article in journal (Refereed) Published
Abstract [en]

Millimeter-wave network deployment is an essential and ongoing problem due to the limited coverage and expensive network infrastructure. In this work, we solve a joint network deployment and resource allocation optimization problem for a mmWave cell-free massive MIMO network considering indoor environments. The objective is to minimize the number of deployed access points (APs) for a given environment, bandwidth, AP cooperation, and precoding scheme while guaranteeing the rate requirements of the user equipments (UEs). Considering coherent joint transmission (C-JT) and non-coherent joint transmission (NC-JT), we solve the problem of AP placement, UE-AP association, and power allocation among the UEs and resource blocks jointly. For numerical analysis, we model a mid-sized airplane cabin in ray-tracing as an exemplary case for IDS. Results demonstrate that a minimum data rate of 1 Gbps can be guaranteed with less than 10 APs with C-JT. From a holistic network design perspective, we analyze the trade-off between the required fronthaul capacity and the processing capacity per AP, under different network functional split options. We observe an above 600 Gbps fronthaul rate requirement, once all network operations are centralized, which can be reduced to 200 Gbps under physical layer functional splits.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2025
Keywords
Access point deployment, functional splitting, millimeter wave communications, mixed-integer optimization, ray-tracing
National Category
Telecommunications Communication Systems Signal Processing
Identifiers
urn:nbn:se:kth:diva-385798 (URN)10.1109/TWC.2025.3542900 (DOI)001506722000042 ()2-s2.0-85219560935 (Scopus ID)
Note

QC 20260720

Available from: 2026-07-20 Created: 2026-07-20 Last updated: 2026-08-13Bibliographically approved
3. Unlocking the Energy-Saving Potential in O-RAN Cell-Free Massive MIMO by Joint Orchestration of Radio, Wireless Fronthaul, and Cloud Resources
Open this publication in new window or tab >>Unlocking the Energy-Saving Potential in O-RAN Cell-Free Massive MIMO by Joint Orchestration of Radio, Wireless Fronthaul, and Cloud Resources
(English)Manuscript (preprint) (Other academic)
Abstract [en]

Network virtualization and cloudification in Open Radio Access Networks (O-RAN) enable joint orchestration of the processing and fronthaul resources, which are essential for realizing the energy-saving potential of cell-free massive MIMO networks. To harness this potential, we investigate cell-free massive MIMO deployed over an O-RAN architecture with a wireless fronthaul that removes the need for fiber deployment. We first model the end-to-end power consumption under wireless fronthaul. Then, we propose a joint orchestration framework for radio, fronthaul, and processing resources that minimizes end-to-end power consumption while satisfying user-equipment (UE) rate requirements and wireless-fronthaul constraints. Two algorithms are developed: a scenario-sampling/group-Lasso method for centralized precoding and a block-coordinate descent method for distributed precoding. Numerical results show that centralized precoding significantly outperforms distributed precoding. End-to-end resource orchestration provides up to 70% energy savings compared to cloud-only orchestration and up to 15% compared to radio-only orchestration. Moreover, distributing the same total number of antennas across the coverage area, rather than concentrating them at a few radio units (RUs), substantially reduces network power consumption, demonstrating that cell-free massive MIMO can deliver both high performance and high energy efficiency in future mobile networks.

Keywords
Cell-free massive MIMO, power minimization, resource allocation, energy-saving, O-RAN
National Category
Communication Systems
Research subject
Electrical Engineering
Identifiers
urn:nbn:se:kth:diva-386979 (URN)
Funder
Vinnova, C2023/1-9
Note

QC 20260812

Under review in IEEE Transactions on Wireless Communications

Available from: 2026-08-11 Created: 2026-08-11 Last updated: 2026-08-13Bibliographically approved
4. Joint Access and Fronthaul Resource Allocation for Cell-Free Massive MIMO with Wireless Fronthaul
Open this publication in new window or tab >>Joint Access and Fronthaul Resource Allocation for Cell-Free Massive MIMO with Wireless Fronthaul
2026 (English)Conference paper, Published paper (Refereed)
Abstract [en]

Wireless fronthaul is a key enabler of flexible and scalable cell-free massive MIMO systems, but its limited capacity poses significant challenges for maintaining high and uniform user performance. In this work, we analyze the performance of a cell-free massive MIMO network with wireless fronthaul under realistic low physical layer functional splits. We propose a joint access and fronthaul resource allocation algorithm that maximizes the minimum user equipment (UE) spectral efficiency while satisfying fronthaul load constraints. Our analysis reveals that power allocation over the wireless fronthaul follows a modified water-filling structure, where the water level is jointly determined by the access and fronthaul channel gains. Furthermore, we show that severe fronthaul limitations not only reduce UE rates but also introduce spatial performance disparities depending on the cloud location. Finally, we demonstrate that split option 8 is impractical under wireless fronthaul constraints, underscoring the importance of dynamic fronthaul bit allocation to reduce fronthaul load and enable efficient system operation.

Keywords
cell-free massive MIMO, wireless fronthaul, power allocation
National Category
Communication Systems
Identifiers
urn:nbn:se:kth:diva-386981 (URN)
Conference
IEEE International Workshop on Signal Processing and Artificial Intelligence for Wireless Communications (SPAWC'26)
Funder
Vinnova, C2023/1-9
Note

QC 20260812

Available from: 2026-08-11 Created: 2026-08-11 Last updated: 2026-08-13Bibliographically approved
5. Rethinking Energy Efficiency in Cell-Free Massive MIMO: The Role of Processing and Optical Fronthaul
Open this publication in new window or tab >>Rethinking Energy Efficiency in Cell-Free Massive MIMO: The Role of Processing and Optical Fronthaul
2026 (English)Conference paper, Published paper (Refereed)
Abstract [en]

Cell-free massive MIMO promises uniformly high performance by combining densely distributed radio units, coherent transmission, and centralized processing. Unlike earlier radio generations, it depends on dense fronthaul connectivity and a virtualized cloud-RAN architecture. In this setting, energy use is no longer driven primarily by active radio components; instead, fronthaul and processing play a dominant role, calling for a fresh perspective on what defines energy efficiency. This work introduces a modular power model that captures the interplay between radios, fronthaul, and cloud processing. The analysis highlights how design choices, such as functional splits and precoding strategies, shape both fronthaul data load and total power consumption. Centralized precoding provides stronger performance with less resource utilization, while flexible activation of radios and processing elements avoids unnecessary overhead. Overall, the energy efficiency of cell-free massive MIMO grows as antennas are more densely distributed across the coverage area, particularly when combined with end-to-end resource allocation.

Keywords
Cell-free massive MIMO, virtualized cloud-RAN, end-to-end resource allocation, joint network orchestration
National Category
Communication Systems
Identifiers
urn:nbn:se:kth:diva-386980 (URN)
Conference
International Conference on Transparent Optical Networks (ICTON 2026), Prague, Czech Republic, July 12-16, 2026
Funder
Vinnova
Note

QC 20260813

Available from: 2026-08-11 Created: 2026-08-11 Last updated: 2026-08-13Bibliographically approved

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