Paper 2026/1800

Separating Quantum Indistinguishability Obfuscation from Falsifiable Assumptions

Mohammed Barhoush, IonQ Inc.
Tomoyuki Morimae, Kyoto University
Ramis Movassagh, IonQ Inc.
Abstract

Quantum indistinguishability obfuscation (qIO) aims to make a quantum circuit unintelligible while preserving its functionality. It serves as a foundational primitive for advanced applications, such as witness encryption (WE) for QMA, non-interactive zero-knowledge arguments for QMA, and attribute-based encryption for BQP. Despite its importance, constructing qIO from standard assumptions remains a major open problem. In this work, we prove that the security of WE for QMA cannot be based on any falsifiable cryptographic assumption via a restricted class of quantum black-box reductions. Because qIO for null quantum circuits implies WE for QMA, this also separates null-qIO from falsifiable assumptions. Since almost all standard cryptographic assumptions are falsifiable, our result presents a barrier to basing qIO on standard cryptographic assumptions. The reductions we rule out are restricted: the reduction must query the adversary classically, non-adaptively, at the same security parameter, and only on honestly generated ciphertexts. Moreover, our impossibility applies only to WE with classical ciphertexts, and therefore does not rule out qIO with obfuscators whose output is a quantum state. Ruling out more general reductions, as well as more general forms of WE and qIO, remains open. Our impossibility relies on the existence of a QMA-QCIP[2] gap problem, an average-case assumption postulating a QMA language that cannot be verified with two messages of classical communication.

Metadata
Available format(s)
PDF
Category
Foundations
Publication info
Preprint.
Keywords
Quantum cryptographyBlack-box separationQuantum indistinguishability obfuscation
Contact author(s)
mbarhoush18 @ gmail com
History
2026-08-28: approved
2026-08-25: received
See all versions
Short URL
https://ia.cr/2026/1800
License
Creative Commons Attribution
CC BY

BibTeX

@misc{cryptoeprint:2026/1800,
      author = {Mohammed Barhoush and Tomoyuki Morimae and Ramis Movassagh},
      title = {Separating Quantum Indistinguishability Obfuscation from Falsifiable Assumptions},
      howpublished = {Cryptology {ePrint} Archive, Paper 2026/1800},
      year = {2026},
      url = {https://eprint.iacr.org/2026/1800}
}
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