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抗量子攻击的强前向安全签名方案研究

Research on Quantum-Attack-Resistant Strong Forward-Secure Signature Schemes.

作者信息

Li Fengyin, Wang Junhui, Shang Mengxue, Zhang Dandan, Li Tao

机构信息

School of Computer Science, Qufu Normal University, Rizhao 276800, China.

出版信息

Entropy (Basel). 2023 Aug 2;25(8):1159. doi: 10.3390/e25081159.

Abstract

The security of digital signatures depends significantly on the signature key. Therefore, to reduce the impact of leaked keys upon existing signatures and subsequent ones, a digital signature scheme with strong forward security could be an effective solution. Most existing strong forward-secure digital signature schemes rely on traditional cryptosystems, which cannot effectively resist quantum attacks. By introducing lattice-based delegation technology into the key-iteration process, a two-direction and lattice-based key-iteration algorithm with strong forward security is proposed. In the proposed algorithm, a unique key pair is assigned to the signer in every period. Based on the proposed algorithm, a strong forward-secure signature scheme is further put forward, which achieves resistance to quantum attacks. Performance analysis shows that under the security assumption of the SIS problem on the lattice, the proposed strong forward-secure signature scheme is existentially unforgeable under the random oracle model. Ultimately, based on the proposed strong forward-secure signature scheme, a remote identity-authentication scheme that is resistant to quantum attacks is proposed, ensuring post-quantum security in the user-authentication process.

摘要

数字签名的安全性在很大程度上取决于签名密钥。因此,为了减少密钥泄露对现有签名及后续签名的影响,具有强前向安全性的数字签名方案可能是一种有效的解决方案。现有的大多数强前向安全数字签名方案都依赖于传统密码系统,而这些系统无法有效抵御量子攻击。通过将基于格的委托技术引入密钥迭代过程,提出了一种具有强前向安全性的双向且基于格的密钥迭代算法。在所提出的算法中,在每个周期为签名者分配唯一的密钥对。基于该算法,进一步提出了一种强前向安全签名方案,该方案实现了对量子攻击的抗性。性能分析表明,在格上的SIS问题的安全假设下,所提出的强前向安全签名方案在随机预言模型下是存在不可伪造的。最终,基于所提出的强前向安全签名方案,提出了一种抗量子攻击的远程身份认证方案,确保了用户认证过程中的后量子安全性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d1d/10453694/4059a0915d85/entropy-25-01159-g001.jpg

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