区块链共识算法的后量子委托运气证明

Q1 Mathematics
Hyunjun Kim, Wonwoong Kim, Yeajun Kang, Hyunji Kim, Hwajeong Seo
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引用次数: 0

摘要

量子计算的进步以及利用肖尔算法对传统公钥密码学(即 Rivest-Shamir-Adleman (RSA) 和椭圆曲线密码学 (ECC))提出多项式时间解决方案的潜力,对前量子区块链技术的安全性构成了严重威胁。本文提出了一种高效的量子安全区块链,其中融合了新的量子安全共识算法。我们将后量子签名方案集成到区块链的交易签名和验证过程中,以增强对量子攻击的抵御能力。具体来说,我们采用了 Falcon 签名方案,该方案是在 NIST 后量子加密(PQC)标准化过程中选定的。虽然整合后量子签名方案会导致区块链的每秒交易次数(TPS)减少,但我们引入了有效的方法来缓解这种性能下降。我们提出的后量子委托运气证明(PQ-DPoL)将运气证明(PoL)机制与委托方法相结合,确保了区块生成过程中的量子抗性、能效和公平性。实验结果表明,虽然 Falcon 等后量子加密算法会带来更大的签名大小和更慢的处理时间,但 PQ-DPoL 算法有效地平衡了安全性和性能,为后量子时代的安全区块链操作提供了可行的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Post-Quantum Delegated Proof of Luck for Blockchain Consensus Algorithm
The advancements in quantum computing and the potential for polynomial-time solutions to traditional public key cryptography (i.e., Rivest–Shamir–Adleman (RSA) and elliptic-curve cryptography (ECC)) using Shor’s algorithm pose a serious threat to the security of pre-quantum blockchain technologies. This paper proposes an efficient quantum-safe blockchain that incorporates new quantum-safe consensus algorithms. We integrate post-quantum signature schemes into the blockchain’s transaction signing and verification processes to enhance resistance against quantum attacks. Specifically, we employ the Falcon signature scheme, which was selected during the NIST post-quantum cryptography (PQC) standardization process. Although the integration of the post-quantum signature scheme results in a reduction in the blockchain’s transactions per second (TPSs), we introduce efficient approaches to mitigate this performance degradation. Our proposed post-quantum delegated proof of luck (PQ-DPoL) combines a proof of luck (PoL) mechanism with a delegated approach, ensuring quantum resistance, energy efficiency, and fairness in block generation. Experimental results demonstrate that while post-quantum cryptographic algorithms like Falcon introduce larger signature sizes and slower processing times, the PQ-DPoL algorithm effectively balances security and performance, providing a viable solution for secure blockchain operations in a post-quantum era.
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来源期刊
Applied Sciences
Applied Sciences Mathematics-Applied Mathematics
CiteScore
6.40
自引率
0.00%
发文量
0
审稿时长
11 weeks
期刊介绍: APPS is an international journal. APPS covers a wide spectrum of pure and applied mathematics in science and technology, promoting especially papers presented at Carpato-Balkan meetings. The Editorial Board of APPS takes a very active role in selecting and refereeing papers, ensuring the best quality of contemporary mathematics and its applications. APPS is abstracted in Zentralblatt für Mathematik. The APPS journal uses Double blind peer review.
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