English

Reliable and Private Anonymous Routing for Satellite Constellations

Cryptography and Security 2026-02-13 v1 Emerging Technologies Information Retrieval Networking and Internet Architecture

Abstract

Shared, dynamic network infrastructures, such as dual-use LEO satellite constellations, pose critical threats to metadata privacy, particularly for state actors operating in mixed-trust environments. This work proposes an enhanced anonymity architecture, evolving the Loopix mix-network, to provide robust security and reliability in these volatile topologies. We introduce three primary contributions: (1) A multi-path transport protocol utilizing (n,k)(n, k) erasure codes, which is demonstrated to counteract the high link volatility and intermittent connectivity that renders standard mix-networks unreliable. (2) The integration of a computationally efficient Private Information Retrieval (PIR) protocol during route discovery. (3) The introduction of adaptive, centrality-based delay strategies that efficiently mitigate the inherent topological bias of LEO networks, providing a superior anonymity-to-latency trade-off. This mechanism provably prevents metadata leakage at the user-provider directory, mitigating profiling and correlation attacks. We validate this architecture via high-fidelity, packet-level simulations of a LEO constellation. Empirical results show our multi-path transport achieves near-zero message loss, establishing a quantifiable trade-off between reliability and bandwidth overhead. Furthermore, microbenchmarks of the PIR protocol quantify its computational and latency overheads, confirming its feasibility for practical deployment. This work provides a validated blueprint for deployable high-anonymity communication systems, demonstrating the viability of securely multiplexing sensitive operations within large-scale commercial network infrastructures.

Keywords

Cite

@article{arxiv.2602.11764,
  title  = {Reliable and Private Anonymous Routing for Satellite Constellations},
  author = {Nilesh Vyas and Fabien Geyer and Svetoslav Duhovnikov},
  journal= {arXiv preprint arXiv:2602.11764},
  year   = {2026}
}

Comments

14 Pages, 16 Figures

R2 v1 2026-07-01T10:33:21.499Z