Post-Quantum Secure Aggregation via Code-Based Homomorphic Encryption
Abstract
Secure aggregation enables aggregation of inputs from multiple parties without revealing individual contributions to the server or other clients. Existing post-quantum approaches based on homomorphic encryption offer practical efficiency but predominantly rely on lattice-based hardness assumptions. We present a code-based alternative for secure aggregation by instantiating a general framework based on key- and message-additive homomorphic encryption under the Learning Parity with Noise (LPN) assumption. Our construction employs a committee-based decryptor realized via secret sharing and incorporates a Chinese Remainder Theorem (CRT)-based optimization to reduce the communication costs of LPN-based instantiations. We analyze the security of the proposed scheme under a new Hint-LPN assumption and show that it is equivalent to standard LPN for suitable parameters. Finally, we evaluate performance and identify regimes in which our approach outperforms information-theoretically secure aggregation protocols.
Cite
@article{arxiv.2601.13031,
title = {Post-Quantum Secure Aggregation via Code-Based Homomorphic Encryption},
author = {Sebastian Bitzer and Maximilian Egger and Mumin Liu and Antonia Wachter-Zeh},
journal= {arXiv preprint arXiv:2601.13031},
year = {2026}
}