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January 24, 2026Quantum0 citationsOpen Access

How to Sign Quantum Messages

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MBMohammed BarhoushLSLouis Salvail

Key Points

  • This work aims to challenge the belief that signing quantum messages is impossible and presents methods for achieving public verifiability.
  • Introduce time-dependent signatures based on time of signing and reception
  • Construct signatures using post-quantum secure one-way functions and time-lock puzzles
  • Develop dynamic verification keys to eliminate the need for time-lock puzzles
  • Examine signing methods under the bounded quantum storage model for security analysis
  • Time-dependent signatures allow verification based on signing time and received time
  • Dynamic verification keys simplify signature construction without time-lock puzzles
  • Achieved information-theoretic security in the bounded quantum storage model
  • Developed a public key encryption scheme with authenticated quantum public keys
  • Introduced a novel time-dependent public-key quantum money scheme

Abstract

Signing quantum messages has long been considered impossible even under computational assumptions. In this work, we challenge this notion and provide three innovative approaches to sign quantum messages that are the first to ensure authenticity with public verifiability. Our contributions can be summarized as follows: 1) We introduce the concept of time-dependent (TD) signatures, where the signature of a quantum message depends on the time of signing and the verification process depends on the time of the signature reception. We construct this primitive assuming the existence of post-quantum secure one-way functions (pq-OWFs) and time-lock puzzles (TLPs). 2) By utilizing verification keys that evolve over time, we eliminate the need for TLPs in our construction. This leads to TD signatures from pq-OWFs with dynamic verification keys. 3) We then consider the bounded quantum storage model, where adversaries are limited with respect to their quantum memories. We show that quantum messages can be signed with information-theoretic security in this model. Moreover, we leverage TD signatures to achieve the following objectives, relying solely on pq-OWFs: (a) We design a public key encryption scheme featuring authenticated quantum public keys that resist adversarial tampering. (b) We present a novel TD public-key quantum money scheme.

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Cite This Study

Barhoush et al. (2026) studied this question.

synapsesocial.com/papers/6974610cbb9d90c67120ae10https://doi.org/10.22331/q-2026-01-22-1980
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