A Compositional Resilience Index for Computationally Efficient Safety Analysis of Interconnected Systems

Fuente: arXiv
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Autori principali: Niu, Luyao, Maruf, Abdullah Al, Clark, Andrew, Mertoguno, J. Sukarno, Poovendran, Radha
Natura: Preprint
Pubblicazione: 2023
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author Niu, Luyao
Maruf, Abdullah Al
Clark, Andrew
Mertoguno, J. Sukarno
Poovendran, Radha
author_facet Niu, Luyao
Maruf, Abdullah Al
Clark, Andrew
Mertoguno, J. Sukarno
Poovendran, Radha
contents Interconnected systems such as power systems and chemical processes are often required to satisfy safety properties in the presence of faults and attacks. Verifying safety of these systems, however, is computationally challenging due to nonlinear dynamics, high dimensionality, and combinatorial number of possible faults and attacks that can be incurred by the subsystems interconnected within the network. In this paper, we develop a compositional resilience index to verify safety properties of interconnected systems under faults and attacks. The resilience index is a tuple serving the following two purposes. First, it quantifies how a safety property is impacted when a subsystem is compromised by faults and attacks. Second, the resilience index characterizes the needed behavior of a subsystem during normal operations to ensure safety violations will not occur when future adverse events occur. We develop a set of sufficient conditions on the dynamics of each subsystem to satisfy its safety constraint, and leverage these conditions to formulate an optimization program to compute the resilience index. When multiple subsystems are interconnected and their resilience indices are given, we show that the safety constraints of the interconnected system can be efficiently verified by solving a system of linear inequalities. We demonstrate our developed resilience index using a numerical case study on chemical reactors connected in series.
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spellingShingle A Compositional Resilience Index for Computationally Efficient Safety Analysis of Interconnected Systems
Niu, Luyao
Maruf, Abdullah Al
Clark, Andrew
Mertoguno, J. Sukarno
Poovendran, Radha
Systems and Control
Interconnected systems such as power systems and chemical processes are often required to satisfy safety properties in the presence of faults and attacks. Verifying safety of these systems, however, is computationally challenging due to nonlinear dynamics, high dimensionality, and combinatorial number of possible faults and attacks that can be incurred by the subsystems interconnected within the network. In this paper, we develop a compositional resilience index to verify safety properties of interconnected systems under faults and attacks. The resilience index is a tuple serving the following two purposes. First, it quantifies how a safety property is impacted when a subsystem is compromised by faults and attacks. Second, the resilience index characterizes the needed behavior of a subsystem during normal operations to ensure safety violations will not occur when future adverse events occur. We develop a set of sufficient conditions on the dynamics of each subsystem to satisfy its safety constraint, and leverage these conditions to formulate an optimization program to compute the resilience index. When multiple subsystems are interconnected and their resilience indices are given, we show that the safety constraints of the interconnected system can be efficiently verified by solving a system of linear inequalities. We demonstrate our developed resilience index using a numerical case study on chemical reactors connected in series.
title A Compositional Resilience Index for Computationally Efficient Safety Analysis of Interconnected Systems
topic Systems and Control
url https://arxiv.org/abs/2304.02058