基于区块链的物联网轻量级认证方案,采用点阵加密算法

IF 4.1 2区 计算机科学 Q1 COMPUTER SCIENCE, HARDWARE & ARCHITECTURE
Yingpan Kuang, Qiwen Wu, Riqing Chen, Xiaolong Liu
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引用次数: 0

摘要

随着物联网的快速发展,互联设备之间的鲁棒性和安全性认证变得越来越重要。现有的加密方法尽管有效,但在可扩展性、量子脆弱性和高计算需求方面面临挑战,这对于资源受限的物联网设备来说尤其成问题。本文为物联网设备提出了一种新颖的轻量级身份验证方案,该方案将区块链的去中心化与基于格的加密的效率相结合,以解决这些安全问题。该方案采用基于区块链的去中心化身份管理模型,消除了易受攻击的中心点,增强了系统的弹性。对于用户和设备认证,引入了一种高效的基于格的协议,利用简化的哈希操作和矩阵向量乘法进行密钥协商和认证。与传统方法(如基于ecc的方案)相比,该方法显著降低了计算复杂度和通信开销。具体来说,在100位安全级别下,我们的方案在大约257.401μs内实现身份验证和密钥协议,并且每个身份验证会话的通信开销为1052位。综合性能分析表明,该方案能够抵御典型的密码攻击,并具有抗量子计算的优势。此外,基于区块链的设计确保了高可扩展性,使该方案非常适合大规模物联网部署,而不会降低性能。实验结果进一步验证了该方案在资源受限的物联网环境中的实际适用性,与现有物联网认证解决方案相比,突出了其优越的计算响应时间和更低的通信成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Blockchain based lightweight authentication scheme for internet of things using lattice encryption algorithm
With the rapid development of the Internet of Things (IoT), robust and secure authentication among interconnected devices has become increasingly significant. Existing cryptographic methods, despite their effectiveness, face challenges in scalability, quantum vulnerability, and high computational demands, which are particularly problematic for resource-constrained IoT devices. This paper proposes a novel and lightweight authentication scheme for IoT devices that combines the decentralization of blockchain with the efficiency of lattice-based cryptography to address these security concerns. The proposed scheme employs a decentralized identity management model built on blockchain, eliminating vulnerable central points and enhancing system resilience. For user and device authentication, an efficient lattice-based protocol is introduced, utilizing simplified hash operations and matrix–vector multiplication for key negotiation and authentication. This approach significantly reduces both computational complexity and communication overhead compared to traditional methods such as ECC-based schemes. Specifically, at a 100-bit security level, our scheme achieves authentication and key agreement in approximately 257.401μs and maintains a communication cost of 1052 bits per authentication session. Comprehensive performance analyses demonstrate that the proposed scheme can withstand typical cryptographic attacks and offers advantages in quantum computing resistance. Additionally, the blockchain-based design ensures high scalability, making the scheme ideal for large-scale IoT deployments without performance degradation. Experimental results further validate the scheme’s practical applicability in resource-constrained IoT environments, highlighting its superior computational response times and lower communication costs compared to existing IoT authentication solutions.
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来源期刊
Computer Standards & Interfaces
Computer Standards & Interfaces 工程技术-计算机:软件工程
CiteScore
11.90
自引率
16.00%
发文量
67
审稿时长
6 months
期刊介绍: The quality of software, well-defined interfaces (hardware and software), the process of digitalisation, and accepted standards in these fields are essential for building and exploiting complex computing, communication, multimedia and measuring systems. Standards can simplify the design and construction of individual hardware and software components and help to ensure satisfactory interworking. Computer Standards & Interfaces is an international journal dealing specifically with these topics. The journal • Provides information about activities and progress on the definition of computer standards, software quality, interfaces and methods, at national, European and international levels • Publishes critical comments on standards and standards activities • Disseminates user''s experiences and case studies in the application and exploitation of established or emerging standards, interfaces and methods • Offers a forum for discussion on actual projects, standards, interfaces and methods by recognised experts • Stimulates relevant research by providing a specialised refereed medium.
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