Navigating the Digital Twin Network landscape: A survey on architecture, applications, privacy and security

IF 3.2 Q2 COMPUTER SCIENCE, INFORMATION SYSTEMS High-Confidence Computing Pub Date : 2024-09-11 DOI:10.1016/j.hcc.2024.100269
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Abstract

In recent years, immense developments have occurred in the field of Artificial Intelligence (AI) and the spread of broadband and ubiquitous connectivity technologies. This has led to the development and commercialization of Digital Twin (DT) technology. The widespread adoption of DT has resulted in a new network paradigm called Digital Twin Networks (DTNs), which orchestrate through the networks of ubiquitous DTs and their corresponding physical assets. DTNs create virtual twins of physical objects via DT technology and realize the co-evolution between physical and virtual spaces through data processing, computing, and DT modeling. The high volume of user data and the ubiquitous communication systems in DTNs come with their own set of challenges. The most serious issue here is with respect to user data privacy and security because users of most applications are unaware of the data that they are sharing with these platforms and are naive in understanding the implications of the data breaches. Also, currently, there is not enough literature that focuses on privacy and security issues in DTN applications. In this survey, we first provide a clear idea of the components of DTNs and the common metrics used in literature to assess their performance. Next, we offer a standard network model that applies to most DTN applications to provide a better understanding of DTN’s complex and interleaved communications and the respective components. We then shed light on the common applications where DTNs have been adapted heavily and the privacy and security issues arising from the DTNs. We also provide different privacy and security countermeasures to address the previously mentioned issues in DTNs and list some state-of-the-art tools to mitigate the issues. Finally, we provide some open research issues and problems in the field of DTN privacy and security.
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数字孪生网络景观导航:架构、应用、隐私和安全调查
近年来,人工智能(AI)领域取得了巨大发展,宽带和无处不在的连接技术也在不断普及。这导致了数字孪生(DT)技术的发展和商业化。数字孪生技术的广泛应用产生了一种新的网络范式,即数字孪生网络(DTN),它通过无处不在的数字孪生网络及其相应的物理资产进行协调。DTN 通过 DT 技术创建物理对象的虚拟双胞胎,并通过数据处理、计算和 DT 建模实现物理空间和虚拟空间的共同演化。DTN 中的大量用户数据和无处不在的通信系统也带来了一系列挑战。其中最严重的问题是用户数据隐私和安全,因为大多数应用的用户并不知道他们正在与这些平台共享数据,而且对数据泄露的影响也缺乏足够的认识。此外,目前关注 DTN 应用中隐私和安全问题的文献还不够多。在本调查报告中,我们首先清楚地介绍了 DTN 的组成部分以及文献中用于评估其性能的常用指标。接下来,我们提供了一个适用于大多数 DTN 应用的标准网络模型,以便更好地理解 DTN 复杂而交错的通信和各自的组件。然后,我们阐明了 DTN 被大量采用的常见应用,以及 DTN 带来的隐私和安全问题。我们还提供了不同的隐私和安全对策来解决前面提到的 DTN 问题,并列出了一些最先进的工具来缓解这些问题。最后,我们提出了 DTN 隐私和安全领域的一些开放研究课题和问题。
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