计算机科学 ›› 2026, Vol. 53 ›› Issue (6A): 250700017-8.doi: 10.11896/jsjkx.250700017

• 计算机软件&体系结构 • 上一篇    下一篇

面向不确定性的信息物理系统鲁棒性研究综述

韩丽萍1,2, 于乐1, 胡明哲1, 聂婷婷1   

  1. 1 南京邮电大学计算机学院、软件学院、网络空间安全学院 南京 210023
    2 南京大学计算机软件新技术全国重点实验室 南京 210023
  • 出版日期:2026-06-16 发布日期:2026-06-12
  • 通讯作者: 于乐(yulele08@njupt.edu.cn)
  • 作者简介:(liping@njupt.edu.cn)
  • 基金资助:
    国家自然科学基金青年基金(62202406);南京大学计算机软件新技术全国重点实验室开放课题(KFKT2025B66);江苏省高等学校基础科学(自然科学)研究面上项目(24KJB520030);南京邮电大学引进人才科研启动基金项目(NY224023,NY224001,NY224026);南京邮电大学校级自然科学基金项目(NY224143)

Challenges and Methods for Robust Cyber-Physical Systems Under Uncertainty:A Systematic Review

HAN Liping1,2, YU Le1, HU Mingzhe1, NIE Tingting1   

  1. 1 School of Computer Science,Nanjing University of Posts and Telecommunications,Nanjing 210023,China
    2 State Key Laboratory for Novel Software Technology,Nanjing University,Nanjing 210023,China
  • Published:2026-06-16 Online:2026-06-12
  • About author:HAN Liping,born in 1993,Ph.D,lectu-rer,is a member of CCF(No.F6760M).Her main research interests include uncertainty-aware software engineering and software quality assurance.
    YU Le,born in 1990,Ph.D,professor,Ph.D supervisor,is a member of CCF(No.42155M).His main research interests include system security and privacy protection.
  • Supported by:
    National Natural Science Foundation of China(62202406),Open Research Fund of The State Key Laboratory for Novel Software Technology(KFKT2025B66),Natural Science Foundation of the Jiangsu Higher Education Institutions of China(24KJB520030),Natural Science Research Start-up Foundation of Recruiting Talents of Nanjing University of Posts and Telecommunications(NY224023,NY224001,NY224026) and Natural Science Foundation of Nanjing University of Posts and Telecommunications(NY224143).

摘要: 信息物理系统(Cyber-Physical Systems,CPSs)是物理世界与数字世界深度耦合的复杂系统,目前已被广泛应用于智能交通、工业控制、智慧能源等领域。然而,信息物理系统的设计和运行通常面临诸多的不确定性,相应地,其应对不确定性的鲁棒性成为保障系统稳定运行的核心需求。目前,保障信息物理系统鲁棒性的关键技术主要包括不确定性测试、鲁棒性评估以及鲁棒性优化。不确定性测试聚焦于构建多样化的扰动场景,揭示系统在复杂、不确定条件下的潜在脆弱性;鲁棒性评估则通过多维指标对系统在不同干扰下的稳定性与可靠性进行量化分析;而鲁棒性优化则主要针对识别出的薄弱环节,通过调整系统结构、控制策略或资源配置提升系统的抗干扰与自适应能力。系统综述了上述3个方向的研究进展,并深入探讨了现有技术方法,下信息物理系统鲁棒性保障面临的关键挑战,包括多源不确定性识别与建模困难、鲁棒性评估缺乏统一标准与高效方法,以及鲁棒性优化策略实施复杂。在此基础上,进一步展望了未来研究的潜在方向,包括面向多源不确定性演化的测试用例生成、基于预测的智能化鲁棒性评估以及自适应鲁棒性修复策略。该研究旨在为信息物理系统鲁棒性研究提供系统性的技术参考,推动高可靠信息物理系统的设计与实践。

关键词: 不确定性, 信息物理系统, 鲁棒性, 可靠性, 系统研究

Abstract: Cyber-Physical Systems(CPSs) are complex systems that are deeply coupled between the physical and digital worlds.They have been widely applied in fields such as intelligent transportation,industrial automation,and smart energy.However,the design and operation of CPS often involve various uncertainties.As a result,robustness against these uncertainties has become a critical requirement for ensuring stable and reliable system performance.Currently,the key technologies for ensuring CPS robustness include uncertainty testing,robustness evaluation,and robustness optimization.Uncertainty testing focuses on constructing diverse disturbance scenarios to reveal potential vulnerabilities of the system under complex and uncertain conditions.Robustness evaluation quantifies the system's stability and reliability under various disturbances using multi-dimensional metrics.Robustness optimization,in turn,targets the identified weak points by adjusting system architecture,control strategies,or resource configurations to enhance the system's resilience and adaptability.This paper reviews the progress in these three research areas.It also analyzes the major challenges in current CPS robustness assurance.These include difficulties in identifying and modeling multi-source uncertainties,the absence of unified standards and efficient evaluation methods,and the complexity of deploying robustness optimization strategies in practice.On this basis,the paper outlines potential future research directions,such as test case generation for evolving multi-source uncertainties,AI-driven predictive robustness evaluation,and adaptive robustness repair strategies.This paper aims to provide a structured technical reference for CPS robustness research and promote the development of highly reliable CPS applications.

Key words: Uncertainty, Cyber-physical systems, Robustness, Reliability, Systematic study

中图分类号: 

  • TP311
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