Cryptography with Certified Deletion
James Bartusek, Dakshita Khurana
摘要
We propose a unifying framework that yields an array of cryptographic primitives with certified deletion. These primitives enable a party in possession of a quantum ciphertext to generate a classical certificate that the encrypted plaintext has been information-theoretically deleted, and cannot be recovered even given unbounded computational resources.
• For X ∈ public-key, attribute-based, fully-homomorphic, witness, timed-release, our compiler converts any (post-quantum) X encryption to X encryption with certified deletion.
In addition, we compile statistically-binding commitments to statistically-binding commitments with certified everlasting hiding. As a corollary, we also obtain statisticallysound zero-knowledge proofs for QMA with certified everlasting zero-knowledge assuming statistically-binding commitments.
• We also obtain a strong form of everlasting security for two-party and multi-party computation in the dishonest majority setting. While simultaneously achieving everlasting security against all parties in this setting is known to be impossible, we introduce everlasting security transfer (EST). This enables any one party (or a subset of parties) to dynamically and certifiably information-theoretically delete other participants' data after protocol execution. We construct general-purpose secure computation with EST assuming statistically-binding commitments, which can be based on one-way functions or pseudorandom quantum states.
We obtain our results by developing a novel proof technique to argue that a bit b has been information-theoretically deleted from an adversary's view once they output a valid deletion certificate, despite having been previously information-theoretically determined by the ciphertext they held in their view. This technique may be of independent interest.
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引用它的顶会 Paper17
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- Software with Certified DeletionJames Bartusek, Vipul Goyal, Dakshita Khurana, Giulio Malavolta 等EUROCRYPT 2024 · 被引用 13 次
- A New Framework for Quantum Oblivious TransferAmit Agarwal, James Bartusek, Dakshita Khurana, Nishant KumarEUROCRYPT 2023 · 被引用 11 次
- Robust Quantum Public-Key Encryption with Applications to Quantum Key DistributionGiulio Malavolta, Michael WalterCRYPTO 2024 · 被引用 11 次
它引用的顶会 Paper8
- Cryptography from Pseudorandom Quantum StatesPrabhanjan Ananth, Luowen Qian, Henry YuenCRYPTO 2022 · 被引用 78 次
- Quantum Commitments and Signatures Without One-Way FunctionsTomoyuki Morimae, Takashi YamakawaCRYPTO 2022 · 被引用 74 次
- One-Way Functions Imply Secure Computation in a Quantum WorldJames Bartusek, Andrea Coladangelo, Dakshita Khurana, Fermi MaCRYPTO 2021 · 被引用 57 次
- Oblivious Transfer Is in MiniQCryptAlex B. Grilo, Huijia Lin, Fang Song, Vinod VaikuntanathanEUROCRYPT 2021 · 被引用 56 次
- Secure Multi-party Quantum Computation with a Dishonest MajorityYfke Dulek, Alex B. Grilo, Stacey Jeffery, Christian Majenz 等EUROCRYPT 2020 · 被引用 41 次
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