English

From Connectivity to Multi-Orbit Intelligence: Space-Based Data Center Architectures for 6G and Beyond

Emerging Technologies 2026-03-20 v1

Abstract

Direct handset-to-satellite (DHTS) communication is emerging as a core capability of 6G non-terrestrial networks, enabling standard devices to directly access low Earth orbit (LEO) satellites. While LEO provides the physical access layer for DHTS, large-scale device connectivity introduces challenges in mobility management, interference control, spectrum efficiency, and constellation-wide coordination. Relay-only LEO architectures are insufficient to manage massive handset access under dynamic traffic and energy constraints. This article introduces a hierarchical architecture in which direct handset-to-LEO access is supported by multi-orbit space-based data centers (SBDCs) spanning LEO, medium Earth orbit (MEO), and geostationary Earth orbit (GEO). In this framework, LEO satellites handle radio access and real-time inference, while higher orbital layers provide regional aggregation, global orchestration, and compute-aware routing. By embedding distributed in-orbit computing, energy-aware scheduling, and AI-driven hierarchical control, the constellation evolves from a passive relay network into an intelligent multi-layer system capable of supporting large-scale DHTS services. We discuss key enabling technologies, envisioned multi-orbit integrated Earth-space compute architecture, and open research challenges in integrating multi-orbit computing, highlighting pathways toward scalable and resilient 6G DHTS networks.

Keywords

Cite

@article{arxiv.2603.18601,
  title  = {From Connectivity to Multi-Orbit Intelligence: Space-Based Data Center Architectures for 6G and Beyond},
  author = {Shimaa Naser and Maryam Tariq and Raneem Abdel-Rahim and De Mi and Azzam Mourad and Hadi Otrok and Mahmoud Al-Qutayri and Ayman Elnashar and Sami Muhaidat},
  journal= {arXiv preprint arXiv:2603.18601},
  year   = {2026}
}
R2 v1 2026-07-01T11:27:38.388Z