QDBFT: A Dynamic Consensus Algorithm for Quantum-Secured Blockchain

Fuente: arXiv
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Hauptverfasser: Xu, Fei, Ye, Cheng, OuYang, Jie, Wu, Ziqiang, Chen, Haoze, Hua, An, Gao, Meifeng, Zhang, Qiandong, Li, Minghan, Li, Feilong, Miao, Yajun, Qi, Wei
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Veröffentlicht: 2026
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author Xu, Fei
Ye, Cheng
OuYang, Jie
Wu, Ziqiang
Chen, Haoze
Hua, An
Gao, Meifeng
Zhang, Qiandong
Li, Minghan
Li, Feilong
Miao, Yajun
Qi, Wei
author_facet Xu, Fei
Ye, Cheng
OuYang, Jie
Wu, Ziqiang
Chen, Haoze
Hua, An
Gao, Meifeng
Zhang, Qiandong
Li, Minghan
Li, Feilong
Miao, Yajun
Qi, Wei
contents The security foundation of blockchain system relies primarily on classical cryptographic methods and consensus algorithms. However, the advent of quantum computing poses a significant threat to conventional public-key cryptosystems based on computational hardness assumptions. In particular, Shor's algorithm can efficiently solve discrete logarithm and integer factorization problems in polynomial time, thereby undermining the immutability and security guarantees of existing systems. Moreover, current Practical Byzantine Fault Tolerance (PBFT) protocols, widely adopted in consortium blockchains, suffer from high communication overhead and limited efficiency when coping with dynamic node reconfigurations, while offering no intrinsic protection against quantum adversaries. To address these challenges, we propose QDBFT, a quantum-secured dynamic consensus algorithm, with two main contributions: first,we design a primary node automatic rotation mechanism based on a consistent hash ring to enable consensus under dynamic membership changes, ensuring equitable authority distribution; second, we integrate Quantum Key Distribution (QKD) networks to provide message authentication for inter-node communication, thereby achieving information-theoretic security in the consensus process. Experimental evaluations demonstrate that QDBFT achieves performance comparable to traditional PBFT while delivering strong resilience against quantum attacks, making it a promising solution for future quantum-secure decentralized infrastructures.
format Preprint
id arxiv_https___arxiv_org_abs_2602_11606
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle QDBFT: A Dynamic Consensus Algorithm for Quantum-Secured Blockchain
Xu, Fei
Ye, Cheng
OuYang, Jie
Wu, Ziqiang
Chen, Haoze
Hua, An
Gao, Meifeng
Zhang, Qiandong
Li, Minghan
Li, Feilong
Miao, Yajun
Qi, Wei
Cryptography and Security
The security foundation of blockchain system relies primarily on classical cryptographic methods and consensus algorithms. However, the advent of quantum computing poses a significant threat to conventional public-key cryptosystems based on computational hardness assumptions. In particular, Shor's algorithm can efficiently solve discrete logarithm and integer factorization problems in polynomial time, thereby undermining the immutability and security guarantees of existing systems. Moreover, current Practical Byzantine Fault Tolerance (PBFT) protocols, widely adopted in consortium blockchains, suffer from high communication overhead and limited efficiency when coping with dynamic node reconfigurations, while offering no intrinsic protection against quantum adversaries. To address these challenges, we propose QDBFT, a quantum-secured dynamic consensus algorithm, with two main contributions: first,we design a primary node automatic rotation mechanism based on a consistent hash ring to enable consensus under dynamic membership changes, ensuring equitable authority distribution; second, we integrate Quantum Key Distribution (QKD) networks to provide message authentication for inter-node communication, thereby achieving information-theoretic security in the consensus process. Experimental evaluations demonstrate that QDBFT achieves performance comparable to traditional PBFT while delivering strong resilience against quantum attacks, making it a promising solution for future quantum-secure decentralized infrastructures.
title QDBFT: A Dynamic Consensus Algorithm for Quantum-Secured Blockchain
topic Cryptography and Security
url https://arxiv.org/abs/2602.11606