Reliability and Resilience of AI-Driven Critical Network Infrastructure under Cyber-Physical Threats
Abstract
The increasing reliance on AI-driven 5G/6G network infrastructures for mission-critical services highlights the need for reliability and resilience against sophisticated cyber-physical threats. These networks are highly exposed to novel attack surfaces due to their distributed intelligence, virtualized resources, and cross-domain integration. This paper proposes a fault-tolerant and resilience-aware framework that integrates AI-driven anomaly detection, adaptive routing, and redundancy mechanisms to mitigate cascading failures under cyber-physical attack conditions. A comprehensive validation is carried out using NS-3 simulations, where key performance indicators such as reliability, latency, resilience index, and packet loss rate are analyzed under various attack scenarios. The deduced results demonstrate that the proposed framework significantly improves fault recovery, stabilizes packet delivery, and reduces service disruption compared to baseline approaches.
Keywords
Cite
@article{arxiv.2510.19295,
title = {Reliability and Resilience of AI-Driven Critical Network Infrastructure under Cyber-Physical Threats},
author = {Konstantinos A. Lizos and Leandros Maglaras and Elena Petrovik and Saied M. Abd El-atty and Georgios Tsachtsiris and Mohamed Amine Ferrag},
journal= {arXiv preprint arXiv:2510.19295},
year = {2025}
}
Comments
11 pages