Towards Federated, Green, and Resilient 6G Non-Terrestrial Networks

📅 2026-09-04
📈 Citations: 0
Influential: 0
📄 PDF
🤖 AI Summary
本文研究了通过联邦、绿色和弹性方法解决5G/6G系统中地面与非地面网络集成的问题,采用统一控制管理及开放无线电接入网架构提升性能。
📝 Abstract
This study focuses on future Non-Terrestrial Networks (NTN) integrated with Terrestrial Networks (TN) for future 5G/6G systems. NTN envisions a 3D architecture, where Low Earth Orbit (LEO) satellite networks will play a key role in bridging the digital divide, complementing the gradual terrestrial 5G/6G rollout concentrated in high-density and high-traffic areas, by ensuring service continuity across broad geographic regions and providing coverage in case of emergencies or in remote areas. In this context, we address networking issues for the integration and federation of Terrestrial and Non-Terrestrial Network (T-NTN) in line with the IMT-2030 vision, focusing on interoperability, spectrum coexistence, unified control and management, and service continuity. Federation is a complementary approach to integration that enables distinct satellite systems to cooperate through agreements, potentially unified satellite terminals, and common resource management. We show that system federation significantly enhances both latency performance and connectivity robustness compared with non-federated LEO architectures. This paper also investigates the challenges and possible solutions for adopting the Open-RAN architecture for T-NTN, including routing options for mega-LEO systems, edge intelligence, and energy efficiency as critical elements for sustainability. Finally, we address the security, privacy, and resilience aspects of federated T-NTN architectures with emphasis on zero-trust, secure routing, trustworthy edge intelligence, Post-Quantum Cryptography (PQC), and Quantum Key Distribution (QKD).
Problem

Research questions and friction points this paper is trying to address.

Non-Terrestrial Networks
Federation
Interoperability
Open-RAN
Security
Innovation

Methods, ideas, or system contributions that make the work stand out.

Federation
Interoperability
Open-RAN
Post-Quantum Cryptography (PQC)
Quantum Key Distribution (QKD)
🔎 Similar Papers
No similar papers found.
Sarath Babu
Sarath Babu
Iowa State University, USA
V
Victor Baños-Gonzalez
iABG, Germany
M
Mario Cordina
Department of Communications & Computer Engineering, University of Malta
D
Debabrata Dalai
Indian Institute of Space Science and Technology, India
Tomaso de Cola
Tomaso de Cola
DLR
satellitespace communicationsDTNICN
Franco Davoli
Franco Davoli
DITEN-University of Genoa / CNIT National Laboratory of Smart and Secure Networks (S2N), Genoa, Italy
E
Etienne Victor Depasquale
Department of Communications & Computer Engineering, University of Malta
Ashutosh Dutta
Ashutosh Dutta
Johns Hopkins University, USA
H
Hesham ElBakoury
Independent Consultant, Santa Clara, CA, USA
M
Michael A. Enright
Quantum Dimension, Inc., USA
Giovanni Giambene
Giovanni Giambene
Department of Information Engineering and Mathematics, University of Siena, Italy
S
Sumit Goswami
Centre for Quantum Engineering, Research and Education, TCG Crest, Kolkata 700091, India
R
Ramesh Gupta
IEEE MTT-S, USA
Wael Jaafar
Wael Jaafar
Professor, Software and IT Engineering, École de technologie supérieure (ÉTS)
Wireless communicationscachingcomputingmachine learning
Eman Hammad
Eman Hammad
Texas A&M University, University of Toronto, PwC Alumni
Resilience & ReliabilityCyber-Physical SystemsCPS Security & ResilienceFuture Networks
B
B. S. Manoj
Indian Institute of Space Science and Technology, India
T
Tony Li
Hewlett Packard Enterprise, USA
M
Manuel M. H. Roth
German Aerospace Center (DLR), Germany
P
Paresh Saxena
BITS Pilani, Hyderabad Campus, India
P
Pat Scanlan
Scanlanavia.com, Ireland
Z
Zhili Sun
University of Surrey, UK
Daniele Tarchi
Daniele Tarchi
University of Florence
Wireless CommunicationsWireless NetworkingEdge/Fog Computing
S
Saviour Zammit
Department of Communications & Computer Engineering, University of Malta