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Rich Macfarlane, Edinburgh Napier University
Madjid Tehrani, Edinburgh Napier University
The decentralisation of autonomous Unmanned Aircraft Systems (UAS) introduces significant challenges for establishing secure communication and consensus in contested, resource-constrained environments. This research addresses these challenges by conducting a comprehensive performance evaluation of two cryptographic technologies: Messaging Layer Security (MLS) for group key exchange, and threshold signatures (FROST and BLS) for decentralised consensus. Seven leading open-source libraries were methodically assessed through a series of static, network-simulated, and novel bulk-signing benchmarks to measure their computational efficiency and practical resilience. This paper confirms that MLS is a viable solution, capable of supporting the group sizes and throughput requirements of a UAS swarm. It corroborates prior work by identifying the Cisco MLSpp library as unsuitable for dynamic environments due to poorly scaling group management functions, while demonstrating that OpenMLS is a highly performant and scalable alternative. Furthermore, the findings show that operating MLS in a 'Key Management' mode offers a dramatic increase in performance and resilience, a critical trade-off for UAS operations. For consensus, the benchmarks reveal a range of compromises for developers to consider, while identifying the Zcash FROST implementation as the most effective all-around performer for sustained, high-volume use cases due to its balance of security features and efficient verification.
BibTeX
@misc{cryptoeprint:2026/512,
author = {Paul Rochford and William J Buchanan and Rich Macfarlane and Madjid Tehrani},
title = {Securely Scaling Autonomy: The Role of Cryptography in Future Unmanned Aircraft Systems ({UAS})},
howpublished = {Cryptology {ePrint} Archive, Paper 2026/512},
year = {2026},
url = {https://eprint.iacr.org/2026/512}
}
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