Limiting the Impact of Stealthy Attacks on Industrial Control Systems
David I. Urbina, Jairo Alonso Giraldo, Alvaro A. Cárdenas, Nils Ole Tippenhauer, Junia Valente, Mustafa Amir Faisal, Justin Ruths, Richard Candell, Henrik Sandberg
摘要
While attacks on information systems have for most practical purposes binary outcomes (information was manipulated/eavesdropped, or not), attacks manipulating the sensor or control signals of Industrial Control Systems (ICS) can be tuned by the attacker to cause a continuous spectrum in damages. Attackers that want to remain undetected can attempt to hide their manipulation of the system by following closely the expected behavior of the system, while injecting just enough false information at each time step to achieve their goals. In this work, we study if physics-based attack detection can limit the impact of such stealthy attacks. We start with a comprehensive review of related work on attack detection schemes in the security and control systems community. We then show that many of these works use detection schemes that are not limiting the impact of stealthy attacks. We propose a new metric to measure the impact of stealthy attacks and how they relate to our selection on an upper bound on false alarms. We finally show that the impact of such attacks can be mitigated in several cases by the proper combination and configuration of detection schemes. We demonstrate the e↵ectiveness of our algorithms through simulations and experiments using real ICS testbeds and real ICS systems.
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引用它的顶会 Paper16
- A Systematic Framework to Generate Invariants for Anomaly Detection in Industrial Control SystemsCheng Feng, Venkata Reddy Palleti, Aditya Mathur, Deeph ChanaNDSS 2019 · 被引用 135 次
- Truth Will Out: Departure-Based Process-Level Detection of Stealthy Attacks on Control SystemsWissam Aoudi, Mikel Iturbe, Magnus AlmgrenCCS 2018 · 被引用 110 次
- ICSFuzz: Manipulating I/Os and Repurposing Binary Code to Enable Instrumented Fuzzing in ICS Control ApplicationsDimitrios Tychalas, Hadjer Benkraouda, Michail ManiatakosUSENIX Security 2021 · 被引用 42 次
- Active fuzzing for testing and securing cyber-physical systemsYuqi Chen, Bohan Xuan, Christopher M. Poskitt, Jun Sun 等ISSTA 2020 · 被引用 25 次
- Code integrity attestation for PLCs using black box neural network predictionsYuqi Chen, Christopher M. Poskitt, Jun SunFSE 2021 · 被引用 16 次
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