QSKA: A Quantum Secured Privacy-Preserving Mutual Authentication Scheme for Energy Internet-Based Vehicle-to-Grid Communication

IF 4.7 2区 计算机科学 Q1 COMPUTER SCIENCE, INFORMATION SYSTEMS IEEE Transactions on Network and Service Management Pub Date : 2024-08-20 DOI:10.1109/TNSM.2024.3445972
Kumar Prateek;Soumyadev Maity;Neetesh Saxena
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Abstract

Energy Internet is well-known nowadays for enabling bidirectional V2G communication; however, with communication and computation abilities, V2G systems become vulnerable to cyber-attacks and unauthorised access. An authentication protocol verifies the identity of an entity, establishes trust, and allows access to authorized resources while preventing unauthorized access. Research challenges for vehicle-to-grid authentication protocols include quantum security, privacy, resilience to attacks, and interoperability. The majority of authentication protocols in V2G systems are based on public-key cryptography and depend on some hard problems like integer factorization and discrete logs to guarantee security, which can be easily broken by a quantum adversary. Besides, ensuring both information security and entity privacy is equally crucial in V2G scenarios. Consequently, this work proposes a quantum-secured privacy-preserving key authentication and communication (QSKA) protocol using superdense coding and a hash function for unconditionally secure V2G communication and privacy. QSKA uses a password-based authentication mechanism, enabling V2G entities to securely transfer passwords using superdense coding. The QSKA security verification is performed in proof-assistant Coq. The security analysis and performance evaluation of the QSKA show its resiliency against well-known security attacks and reveal its enhanced reliability and efficiency with respect to state-of-the-art protocols in terms of computation, communication, and energy overhead.
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QSKA:一种基于能源互联网的车辆与电网通信的量子安全隐私保护互认证方案
目前,能源互联网以实现双向V2G通信而闻名;然而,由于通讯和计算能力,V2G系统很容易受到网络攻击和未经授权的访问。身份验证协议验证实体的身份,建立信任,允许访问授权的资源,同时防止未经授权的访问。车辆到电网认证协议的研究挑战包括量子安全性、隐私性、抗攻击能力和互操作性。V2G系统中的大多数身份验证协议都基于公钥加密,并依赖于一些难题(如整数分解和离散日志)来保证安全性,这很容易被量子对手破坏。此外,在V2G场景中,确保信息安全和实体隐私同样重要。因此,本工作提出了一种量子安全的隐私保护密钥认证和通信(QSKA)协议,该协议使用超密集编码和哈希函数,用于无条件安全的V2G通信和隐私。QSKA使用基于密码的身份验证机制,使V2G实体能够使用超密集编码安全地传输密码。QSKA安全验证在证明辅助Coq中执行。QSKA的安全性分析和性能评估显示了它对众所周知的安全攻击的弹性,并揭示了它在计算、通信和能量开销方面相对于最先进的协议具有更高的可靠性和效率。
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来源期刊
IEEE Transactions on Network and Service Management
IEEE Transactions on Network and Service Management Computer Science-Computer Networks and Communications
CiteScore
9.30
自引率
15.10%
发文量
325
期刊介绍: IEEE Transactions on Network and Service Management will publish (online only) peerreviewed archival quality papers that advance the state-of-the-art and practical applications of network and service management. Theoretical research contributions (presenting new concepts and techniques) and applied contributions (reporting on experiences and experiments with actual systems) will be encouraged. These transactions will focus on the key technical issues related to: Management Models, Architectures and Frameworks; Service Provisioning, Reliability and Quality Assurance; Management Functions; Enabling Technologies; Information and Communication Models; Policies; Applications and Case Studies; Emerging Technologies and Standards.
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