English

Resilience Through Escalation: A Graph-Based PACE Architecture for Satellite Threat Response

Systems and Control 2026-04-07 v3 Systems and Control

Abstract

Modern satellite systems face increasing operational risks from jamming, cyberattacks, and electromagnetic disruptions in contested space environments. Traditional redundancy strategies often fall short against such dynamic and multi-vector threats. This paper introduces a resilience-by-design framework grounded in the PACE methodology, which stands for Primary, Alternate, Contingency, and Emergency, originally developed for tactical communications in military operations. It adapts this framework to satellite systems through a layered state-transition model informed by threat scoring frameworks such as CVSS, DREAD, and NASA's risk matrix. We define a dynamic resilience index to quantify system adaptability and implement three PACE variants including static, adaptive, and epsilon-greedy reward-optimized to evaluate resilience under diverse disruption scenarios. Results show that lightweight, decision-aware fallback mechanisms can substantially improve survivability and operational continuity for next-generation space assets.

Keywords

Cite

@article{arxiv.2506.20882,
  title  = {Resilience Through Escalation: A Graph-Based PACE Architecture for Satellite Threat Response},
  author = {Anouar Boumeftah and Sarah McKenzie-Picot and Peter Klimas and Gunes Karabulut Kurt},
  journal= {arXiv preprint arXiv:2506.20882},
  year   = {2026}
}
R2 v1 2026-07-01T03:33:48.424Z