网络物理系统参数不确定条件下的虚假数据注入攻击检测

IF 8.6 1区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Yu Shi;Lingli Cheng;Xisheng Zhan;Huaicheng Yan
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引用次数: 0

摘要

研究了在不确定参数下具有离散时间信息的网络物理系统中检测虚假数据注入(FDI)攻击的问题。在实际场景中,值得注意的是,准确地建模系统矩阵通常具有挑战性,传统的检测方法经常导致误报和漏检。因此,本文介绍了一种在存在参数不确定性的情况下准确检测FDI攻击的新方法。假设系统参数位于凸多面体内,提出了三种不同性能水平的FDI攻击检测估计器。随后,建立了一个凸优化问题,以获得探测器所需的增益。结果表明,该方法在参数不确定的情况下具有较高的检测精度。此外,该方法允许基于应用程序特定需求的灵活选择,无论是优先考虑准确性还是效率。最后,通过F-404航空发动机系统模型的仿真实例,验证了所提技术的有效性和适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
False Data Injection Attack Detection Under Uncertain Parameters in Cyber-Physical Systems
The problem of detecting false data injection (FDI) attacks in a class of cyber-physical systems with discrete-time information under uncertain parameters is investigated in this article. In practical scenarios, it is noteworthy that accurately modeling the system matrix is often challenging, and traditional detection methods frequently result in false positives and missed detections. Therefore, this article introduces a novel approach for accurately detecting FDI attacks in the presence of parameter uncertainties. Assuming that system parameters reside within a convex polytope, three distinct FDI attack detection estimators with varying performance levels are proposed. Subsequently, a convex optimization problem is established to obtain the necessary gains for the detectors. The results demonstrate that the proposed detection method achieves higher accuracy under uncertain parameters. Furthermore, the method allows for flexible selection based on application-specific requirements, whether prioritizing accuracy or efficiency. Finally, the effectiveness and applicability of the proposed techniques are demonstrated through simulation examples using the F-404 aerospace engine system model.
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来源期刊
IEEE Transactions on Systems Man Cybernetics-Systems
IEEE Transactions on Systems Man Cybernetics-Systems AUTOMATION & CONTROL SYSTEMS-COMPUTER SCIENCE, CYBERNETICS
CiteScore
18.50
自引率
11.50%
发文量
812
审稿时长
6 months
期刊介绍: The IEEE Transactions on Systems, Man, and Cybernetics: Systems encompasses the fields of systems engineering, covering issue formulation, analysis, and modeling throughout the systems engineering lifecycle phases. It addresses decision-making, issue interpretation, systems management, processes, and various methods such as optimization, modeling, and simulation in the development and deployment of large systems.
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