Towards the Impossibility of Imperfectly Complete Key Agreement in the QROM

📅 2026-08-18
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研究通过构建无条件攻击,探讨了在量子随机预言模型中实现不完全完备密钥协议的不可能性,使用了重查询学习技术和重编程技术。
📝 Abstract
We make progress towards the impossibility of imperfectly complete quantum-computation, classical-communication (QCCC) key agreement by constructing the first unconditional attacks on quantum key agreement in the following restricted settings. In the two-message setting, we assume that Alice makes only classical queries to the oracle in the first round and that her message to Bob is classical, but otherwise both parties may perform arbitrary quantum computation, make quantum queries, and send a quantum state in the second round. Our attack and analysis are based on the heavy-query learning techniques from Austrin et al. (CRYPTO 2022) and the reprogramming techniques of Katz and Sela (arXiv 2401.14319). In the round-independent setting, we show that the attack of Barak and Mahmoody (CRYPTO 2009; J. Cryptology 2017) can be extended to multiple rounds when Alice and Bob share classical communication and make only classical queries in all but the final round. In both settings, the attacker is computationally unbounded and makes $poly(λ)$ queries to recover the key whenever each honest query bound is at most $poly(λ)$ and the valid agreement probability is inverse-polynomial. As a consequence, we rule out imperfectly correct quantum public-key encryption for classical messages whose length is bounded by a polynomial in $λ$ in the QROM when key generation has classical oracle access, even if encryption, decryption, and the ciphertext are quantum. In particular, the one-bit case applies to the imperfectly correct PKE obtained from two-round OSP by Bartusek and Khurana (CRYPTO 2025) whenever the classical OSP sender makes only classical random-oracle queries.
Problem

Research questions and friction points this paper is trying to address.

quantum key agreement
QROM
imperfectly complete
unconditional attacks
classical communication
Innovation

Methods, ideas, or system contributions that make the work stand out.

Quantum Key Agreement
Heavy-Query Learning
Reprogramming Techniques
Quantum Random Oracle Model (QROM)
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