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An integrated resilience assessment methodology for emergency response systems based on multi-stage STAMP and dynamic Bayesian networks

机译:基于多阶段STAMP和动态贝叶斯网络的应急响应系统综合弹性评估方法

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摘要

? 2023 Elsevier LtdThe interactions of external disruptions and technical-human-organizational factors in emergency operations are usually observed. Resilience assessment of emergency systems can improve emergency response capability and system functional recovery. The increasing complexity and coupling of factors in emergency response systems need to be investigated from a system resilience perspective. In this paper, we propose to integrate a multi-stage System-Theoretic Accident Model and Processes (STAMP) with a dynamic Bayesian network (DBN) for the resilience assessment of emergency response systems. In the proposed methodology, emergency response systems are viewed as multi-step emergency operations for STAMP to analyze the hierarchical control and feedback structures. The output of multi-stage STAMP in controllers, actuators, sensors, and controlled processes is applied to develop a DBN for resilience assessment. For known external shocks (e.g., natural disasters), the effects of external shocks on the system are decomposed into subsystems or components. System degradation and recovery models are established. Regarding unknown external disruption (e.g., unforeseen failure modes), degeneration and recovery are temporally integrated into the analysis of system functionality. System performance is evaluated through the combination of socio-technical factors and external disasters. Eventually, the resilience of emergency response systems is obtained from the performance curves. The results demonstrate that the proposed model can evaluate system resilience after the system suffers from external disasters.
机译:?2023 Elsevier Ltd在应急行动中通常会观察到外部中断和技术-人-组织因素的相互作用。应急系统弹性评估可以提高应急响应能力和系统功能恢复能力。需要从系统弹性的角度来研究应急响应系统中日益增加的复杂性和各种因素的耦合性。本文提出将多阶段系统理论事故模型和过程(STAMP)与动态贝叶斯网络(DBN)相结合,用于应急响应系统的弹性评估。在所提出的方法中,应急响应系统被视为STAMP分析分层控制和反馈结构的多步骤应急操作。将多级STAMP应用于控制器、执行器、传感器和受控过程的输出,用于开发用于弹性评估的DBN。对于已知的外部冲击(例如,自然灾害),外部冲击对系统的影响被分解为子系统或组件。建立了系统降级和恢复模型。对于未知的外部中断(例如,不可预见的故障模式),退化和恢复在时间上被整合到系统功能的分析中。系统性能是通过社会技术因素和外部灾害的结合来评估的。最终,从性能曲线中获得应急响应系统的弹性。结果表明,所提模型能够评估系统遭受外部灾害后的系统弹性。

著录项

  • 来源
    《Reliability engineering & system safety》 |2023年第10期|1.1-1.21|共21页
  • 作者单位

    State Key Laboratory of Explosion Science and Technology Beijing Institute of Technology;

    CNOOC Research Institute Co. Ltd;

    Department of Civil and Systems Engineering Johns Hopkins UniversityLaboratoire Génie Industriel CentraleSupélec université Paris-SaclaySafety and Security Science Section Department of Values Technology and Innovation Faculty of Technology Policy and Management Delft University of Technology;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类
  • 关键词

    Dynamic Bayesian network; Emergency operations; Multi-stage STAMP; Resilience assessment;

    机译:动态贝叶斯网络;应急行动;多级印章;弹性评估;
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