Digital Twin for Cybersecurity Incident Prediction: A Multivocal Literature Review

Abhishek Pokhrel, Vikash Katta, Ricardo Colomo Palacios
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引用次数: 16

Abstract

The advancements in the field of internet of things, artificial intelligence, machine learning, and data analytics has laid the path to the evolution of digital twin technology. The digital twin is a high-fidelity digital model of a physical system or asset that can be used e.g. to optimize operations and predict faults of the physical system. To understand different use cases of digital twin and its potential for cybersecurity incident prediction, we have performed a Systematic Literature Review (SLR). In this paper, we summarize the definition of digital twin and state-of-the-art on the development of digital twin including reported work on the usability of a digital twin for cybersecurity. Existing tools and technologies for developing digital twin is discussed.
网络安全事件预测的数字孪生:多声音文献综述
物联网、人工智能、机器学习、数据分析等领域的进步为数字孪生技术的发展奠定了基础。数字孪生是物理系统或资产的高保真数字模型,可用于优化操作和预测物理系统的故障。为了了解数字孪生的不同用例及其在网络安全事件预测方面的潜力,我们进行了系统文献综述(SLR)。在本文中,我们总结了数字孪生的定义和数字孪生发展的最新进展,包括关于网络安全数字孪生可用性的报告工作。讨论了开发数字孪生的现有工具和技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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