Paper 2026/548

Post-Quantum Cryptography from Quantum Stabilizer Decoding

Jonathan Z. Lu, Massachusetts Institute of Technology
Alexander Poremba, Boston University
Yihui Quek, École Polytechnique Fédérale de Lausanne
Akshar Ramkumar, California Institute of Technology
Abstract

Post-quantum cryptography currently rests on a small number of hardness assumptions, posing significant risks should any one of them be compromised. This vulnerability motivates the search for new and cryptographically versatile assumptions that make a convincing case for quantum hardness. In this work, we argue that decoding random quantum stabilizer codes---a quantum analog of the well-studied LPN problem---is an excellent candidate. This task occupies a unique middle ground: it is inherently native to quantum computation, yet admits an equivalent formulation with purely classical input and output, as recently shown by Khesin et al. (STOC '26). We prove that the average-case hardness of quantum stabilizer decoding implies the core primitives of classical Cryptomania, including public-key encryption (PKE) and oblivious transfer (OT), as well as one-way functions. Our constructions are moreover practical: our PKE scheme achieves essentially the same efficiency as state-of-the-art LPN-based PKE, and our OT is round-optimal. We also provide substantial evidence that stabilizer decoding does not reduce to LPN, suggesting that the former problem constitutes a genuinely new post-quantum assumption. Our primary technical contributions are twofold. First, we give a reduction from random quantum stabilizer decoding to an average-case problem closely resembling LPN, but which is equipped with additional symplectic algebraic structure. While this structure is essential to the quantum nature of the problem, it raises significant barriers to cryptographic security reductions. Second, we develop a new suit of scrambling techniques for such structured linear spaces, and use them to produce rigorous security proofs for all of our constructions.

Note: 49 pages.

Metadata
Available format(s)
PDF
Category
Public-key cryptography
Publication info
Preprint.
Keywords
quantum stabilizer codeslearning parity with noisepublic-key encryptionoblivious transferone-way functions
Contact author(s)
lujz @ mit edu
poremba @ bu edu
yihui quek @ epfl ch
aramkuma @ caltech edu
History
2026-03-22: approved
2026-03-19: received
See all versions
Short URL
https://ia.cr/2026/548
License
Creative Commons Attribution
CC BY

BibTeX

@misc{cryptoeprint:2026/548,
      author = {Jonathan Z. Lu and Alexander Poremba and Yihui Quek and Akshar Ramkumar},
      title = {Post-Quantum Cryptography from Quantum Stabilizer Decoding},
      howpublished = {Cryptology {ePrint} Archive, Paper 2026/548},
      year = {2026},
      url = {https://eprint.iacr.org/2026/548}
}
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