计算机科学 ›› 2026, Vol. 53 ›› Issue (6A): 250800060-8.doi: 10.11896/jsjkx.250800060

• 信息安全 • 上一篇    下一篇

ChainGrid-V:面向跨域车联网的高可扩展区块链存储与共识框架

张茜倩, 陈思宇, 张瀚文, 王德广, 田宏   

  1. 大连交通大学轨道智能工程学院 辽宁 大连 116028
  • 出版日期:2026-06-16 发布日期:2026-06-12
  • 通讯作者: 田宏(th@djtu.edu.cn)
  • 作者简介:(xiqianz9@163.com)
  • 基金资助:
    辽宁省应用基础研究计划(2023JH2/101300188,2022JH2/101300269)

ChainGrid-V:A Highly Scalable Blockchain Storage and Consensus Framework for Cross-domainInternet of Vehicles

ZHANG Xiqian, CHEN Siyu, ZHANG Hanwen, WANG Deguang, TIAN Hong   

  1. School of Railway Intelligent Engineering,Dalian Jiaotong University,Dalian,Liaoning 116028,China
  • Published:2026-06-16 Online:2026-06-12
  • About author:ZHANG Xiqian,born in 2001,master.Her main research interests include security and privacy protection for IoT and blockchain.
    TIAN Hong,born in 1968,Ph.D,professor.Her main research interests include blockchain,industrial Internet of Things and intelligent information system.
  • Supported by:
    Applied Basic Research Program of Liaoning Province(2023JH2/101300188,2022JH2/101300269).

摘要: 车联网实时共享对“高可信、高隐私、高并发”提出苛刻要求,现有区块链在存储开销、链下篡改与动态拓扑鲁棒性方面难以兼顾。为此,提出ChainGrid-V高可扩展框架,其核心由3项技术构成:去中心化双重Merkle验证,以局部-全局树型结构将一致性校验复杂度降至O(log n+log k),在30%分片篡改下检测率保持80%(单节点)与65%(多节点协同),修复延迟小于等于8.5 s;RAW混合共识,融合权威选举PoA、信誉加权投票PoR与轻量PoW兜底,配合双衰减指数信誉恢复函数,实现毫秒级失信节点权重回收与可信节点补位,70节点规模吞吐维持大于500 TPS,面对30%拜占庭节点共识成功率达93.5%,系统恢复仅1.6 s;轻量级隐私栈,车载单元本地生成零知识证明,链上验证时间低于10 ms,无需可信硬件即可完成原始数据隐私保护与完整性校验。基于200辆OBU、50个RSU与30个存储节点的联合仿真显示,ChainGrid-V在吞吐量与延迟上与Raft-PoA,DAG-IoV差距小于7%,安全裕度提升15%~20%,完全满足车规级高频低延迟需求,具备大规模工程部署潜力。

关键词: 车联网, 区块链存储, 动态共识机制, 零知识证明, 抗篡改验证, 信誉模型

Abstract: Real-time sharing in IoVs imposes stringent demands for high trust,high privacy,and high concurrency,whereas exis-ting blockchains struggle to simultaneously address storage overhead,off-chain tampering,and robustness under dynamic topologies.To this end,this paper proposes ChainGrid-V,a highly scalable framework built upon three core technologies:decentralized dual-Merkle verification that leverages a local-global tree structure to reduce consistency-check complexity to O(log n+log k),sustaining an 80% detection rate under 30% shard tampering for single nodes and 65% under multi-node collusion with repair latency ≤8.5 s;RAW hybrid consensus that fuses Proof-of-Authority for leader election,Proof-of-Reputation for weighted voting,and lightweight Proof-of-Work as a fallback,augmented by a dual-decay exponential reputation-recovery function enabling millisecond-level weight reclamation for dishonest nodes and seamless replacement by trusted ones,maintaining >500 TPS in a 70-node network and achieving 93.5% consensus success even with 30% Byzantine nodes,with system recovery in only 1.6 s;a lightweight privacy stack where on-board units locally generate zero-knowledge proofs whose on-chain verification latency is below 10 ms,enabling raw-data privacy protection and integrity verification without trusted hardware.Joint simulations with 200 OBUs,50 RSUs,and 30 storage nodes show that ChainGrid-V's throughput and latency differ by <7% from Raft-PoA and DAG-IoV,while its security margin improves by 15%~20%,fully satisfying automotive-grade high-frequency low-latency requirements and demonstrating large-scale deployment potential.

Key words: IoV, Blockchain storage, Dynamic consensus mechanism, Zero-knowledge proof, Tamper-resistant verification, Reputation model

中图分类号: 

  • TP311
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