抗量子安全通信协议,用于数字双支持的上下文感知物联网医疗保健应用

IF 6.7 2区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
Basudeb Bera;Ashok Kumar Das;Biplab Sikdar
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引用次数: 0

摘要

数字孪生(dt)在医疗保健行业(包括工业医疗保健领域)的环境感知物联网(IoT)应用程序中发挥着至关重要的作用,促进了来自物理对象的敏感和机密患者数据的实时持续共享。这些共享数据对于治疗计划和决策过程至关重要,通常由授权用户远程访问。然而,传统的安全机制依赖于整数分解问题(IFP)和椭圆曲线离散对数问题(ECDLP),容易受到使用Shor算法的量子攻击,对数据保护构成重大风险。因此,医疗保健行业面临着若干安全挑战,包括敏感患者数据容易受到网络攻击、量子威胁、未经授权访问医疗设备和物联网系统的风险,以及利用薄弱身份验证方法的网络犯罪分子越来越复杂。为了解决这些问题,我们提出了一种抗量子协议,以保护支持dt的物联网医疗保健应用中的数据隐私,确保信息的安全传输,维护患者信任,支持长期数据机密性,并保护医疗设备和物联网系统免受潜在的破坏。通过采用基于格的加密技术,特别是带错误的环学习(RLWE)问题,所提出的方案有效地解决了当代的安全挑战,包括量子计算带来的挑战。在Raspberry Pi 4设备上进行的实时实验,以及计算开销分析,证明了该协议的效率。此外,使用Scyther工具的正式安全性验证和使用RoR模型的安全性分析增强了所提议协议的鲁棒性。对现有方案的全面比较评估突出了其轻量级、可扩展和高效的性质。此外,在未知攻击背景下的性能评估表明,所提出的方案在有效性方面显着优于当前的替代方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantum-Resistant Secure Communication Protocol for Digital Twin-Enabled Context-Aware IoT-Based Healthcare Applications
Digital Twins (DTs) play a crucial role in context-aware Internet of Things (IoT) applications within the healthcare sector, including the industrial healthcare domain, by facilitating the continuous sharing of sensitive and confidential patient data from physical objects in real time. This shared data is essential for treatment planning and decision-making processes, often being accessed remotely by authorized users. However, traditional security mechanisms, which rely on the integer factorization problem (IFP) and the elliptic curve discrete logarithm problem (ECDLP), are vulnerable to quantum attacks using algorithms like Shor's, posing significant risks to data protection. As a result, the healthcare sector faces several security challenges, including the vulnerability of sensitive patient data to cyberattacks, quantum threats, the risk of unauthorized access to medical devices and IoT systems, and the increasing sophistication of cybercriminals exploiting weak authentication methods. To address these issues, we propose a quantum-resistant protocol that safeguards data privacy in DT-enabled IoT healthcare applications, ensures secure transmission of information, maintains patient trust, supports long-term data confidentiality, and protects medical devices and IoT systems from potential breaches. By employing lattice-based cryptographic techniques, particularly the ring learning with errors (RLWE) problem, the proposed scheme effectively addresses contemporary security challenges, including those posed by quantum computing. Real-time experiments conducted on Raspberry Pi 4 devices, along with computational overhead analysis, demonstrate the protocol's efficiency. Additionally, formal security validation using the Scyther tool and security analysis with the RoR model reinforce the robustness of the proposed protocol. A comprehensive comparative evaluation against existing schemes highlights its lightweight, scalable, and efficient nature. Furthermore, performance evaluations in the context of unknown attacks show that the proposed scheme significantly outperforms current alternatives in terms of effectiveness.
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来源期刊
IEEE Transactions on Network Science and Engineering
IEEE Transactions on Network Science and Engineering Engineering-Control and Systems Engineering
CiteScore
12.60
自引率
9.10%
发文量
393
期刊介绍: The proposed journal, called the IEEE Transactions on Network Science and Engineering (TNSE), is committed to timely publishing of peer-reviewed technical articles that deal with the theory and applications of network science and the interconnections among the elements in a system that form a network. In particular, the IEEE Transactions on Network Science and Engineering publishes articles on understanding, prediction, and control of structures and behaviors of networks at the fundamental level. The types of networks covered include physical or engineered networks, information networks, biological networks, semantic networks, economic networks, social networks, and ecological networks. Aimed at discovering common principles that govern network structures, network functionalities and behaviors of networks, the journal seeks articles on understanding, prediction, and control of structures and behaviors of networks. Another trans-disciplinary focus of the IEEE Transactions on Network Science and Engineering is the interactions between and co-evolution of different genres of networks.
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