针对异步采样的能量受限多传感器系统的基于事件的概率保证集合成员安全融合估计

IF 6.4 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Haiyu Song;Meichen Lai;Zhen Hong;Bo Chen;Wen-An Zhang;Li Yu
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引用次数: 0

摘要

研究了具有多速率异步采样的能量约束多传感器系统的概率保证集成员安全估计算法的设计问题。采用事件触发策略(ETS)来最小化数据传输开销,同时通过仅传输必要的数据来保持估计的准确性。针对影响通信能耗和数据安全的高能量传输(HLET)模式、低能传输(HLET)模式和随机拒绝服务(DoS)攻击,提出了一种新的测量模型,以准确表征ETS下多传感器系统的运行情况。针对采样周期不确定带来的挑战,建立了一种新的融合估计模型,包括重新定义融合估计权矩阵和概率保证集隶属度安全融合估计算法。在此基础上,利用基于线性矩阵不等式的递归优化算法确定设计参数的最小椭球。通过仿真研究验证了该算法的有效性。给从业人员的说明——本文致力于解决实际应用中的状态估计问题,如自治系统、智能电网和工业自动化。在这些领域,确保真实状态保持在一定概率范围内是至关重要的,特别是在武器发射测试和无人机飞行等应用中。为了满足这一需求,引入了概率保证集隶属度滤波,它不仅提供了状态估计区间,而且保证了这些区间以一定的概率包含真实状态。然而,在实际系统中,传感器采样率通常是异步的,这增加了设计算法的复杂性。此外,无线网络往往面临带宽的限制,不同的通信协议有不同的能耗,这影响了数据传输的安全性和可靠性。当受到网络攻击时,这些不同的能耗协议可能会引入不同的安全风险,进一步使系统性能复杂化。为此,本文引入了ETS来降低通信负荷,同时设计了一种兼顾HLET模式和通信通道DoS攻击的融合估计算法。初步的仿真结果验证了该算法的可行性。考虑到现实系统中存在的混合攻击、不完全测量和时滞等潜在的复杂性,未来的研究将侧重于提高融合估计系统的抗干扰能力和鲁棒性,确保即使在恶劣条件下也能高效准确地进行状态估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Event-Based Probability-Guaranteed Set-Membership Secure Fusion Estimation for Energy-Constrained Multi-Sensor Systems With Asynchronous Samplings
This paper addresses the problem of designing probability-guaranteed set-membership secure estimation algorithms for energy-constrained multi-sensor systems with multi-rate asynchronous samplings. An event-triggered strategy (ETS) is employed to minimize data transmission overhead while maintaining estimation accuracy by transmitting only essential data. A novel measurement model is proposed to accurately characterize the operation of the multi-sensor system under ETS, taking into account both high- and low-energy transmission (HLET) modes and random denial-of-service (DoS) attacks, which impact communication energy consumption and data security. To cope with the challenges posed by uncertain sampling periods, a new fusion estimation model is established, including a redefined fusion estimation weight matrix and the formulation of a probability-guaranteed set-membership secure fusion estimation algorithm. Furthermore, a recursive optimization algorithm based on linear matrix inequalities is utilized to determine the minimum ellipsoid of the design parameters. The effectiveness of the proposed algorithm is validated through simulation studies. Note to Practitioners—This paper is dedicated to addressing the state estimation problem in practical applications such as autonomous systems, smart grids, and industrial automation. In these fields, ensuring that the true state remains bounded within a certain probability is crucial, especially in applications such as weapon firing tests and drone flights. To meet this need, probability-guaranteed set-membership filtering is introduced, which not only provides state estimation intervals but also ensures that these intervals contain the true state with a certain probability. However, in practical systems, sensor sampling rates are typically asynchronous, which increases the complexity of the design algorithm. Moreover, wireless networks often face bandwidth limitations, and different communication protocols have varying energy consumption, which affect the security and reliability of data transmission. When subjected to cyber-attacks, these varying energy consumption protocols can introduce different security risks, further complicating system performance. Therefore, this paper introduces an ETS to reduce communication load, while designing a fusion estimation algorithm that accounts for both HLET modes and DoS attacks on communication channels. Preliminary simulation results demonstrate the feasibility of the proposed algorithm. Considering the potential complexities such as hybrid attacks, incomplete measurements, and time-delays in real-world systems, future research will focus on improving the interference resilience and robustness of the fusion estimation system, ensuring efficient and accurate state estimation even under harsh conditions.
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来源期刊
IEEE Transactions on Automation Science and Engineering
IEEE Transactions on Automation Science and Engineering 工程技术-自动化与控制系统
CiteScore
12.50
自引率
14.30%
发文量
404
审稿时长
3.0 months
期刊介绍: The IEEE Transactions on Automation Science and Engineering (T-ASE) publishes fundamental papers on Automation, emphasizing scientific results that advance efficiency, quality, productivity, and reliability. T-ASE encourages interdisciplinary approaches from computer science, control systems, electrical engineering, mathematics, mechanical engineering, operations research, and other fields. T-ASE welcomes results relevant to industries such as agriculture, biotechnology, healthcare, home automation, maintenance, manufacturing, pharmaceuticals, retail, security, service, supply chains, and transportation. T-ASE addresses a research community willing to integrate knowledge across disciplines and industries. For this purpose, each paper includes a Note to Practitioners that summarizes how its results can be applied or how they might be extended to apply in practice.
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