Abstract
Recently, neural network (NN)-based methods, including autoencoders, have been proposed for the detection of cyber attacks targeting industrial control systems (ICSs). Such detectors are often retrained, using data collected during system operation, to cope with the natural evolution (i.e., concept drift) of the monitored signals. However, by exploiting this mechanism, an attacker can fake the signals provided by corrupted sensors at training time and poison the learning process of the detector such that cyber attacks go undetected at test time. With this research, we are the first to demonstrate such poisoning attacks on ICS cyber attack online NN detectors. We propose two distinct attack algorithms, namely, interpolation- and back-gradient based poisoning, and demonstrate their effectiveness on both synthetic and real-world ICS data. We also discuss and analyze some potential mitigation strategies.
| Original language | American English |
|---|---|
| Title of host publication | Proceedings of the 36th Annual ACM Symposium on Applied Computing, SAC 2021 |
| Pages | 116-125 |
| Number of pages | 10 |
| ISBN (Electronic) | 9781450381048 |
| DOIs | |
| State | Published - 22 Mar 2021 |
| Event | 36th Annual ACM Symposium on Applied Computing, SAC 2021 - Virtual, Online, Korea, Republic of Duration: 22 Mar 2021 → 26 Mar 2021 |
Publication series
| Name | Proceedings of the ACM Symposium on Applied Computing |
|---|
Conference
| Conference | 36th Annual ACM Symposium on Applied Computing, SAC 2021 |
|---|---|
| Country/Territory | Korea, Republic of |
| City | Virtual, Online |
| Period | 22/03/21 → 26/03/21 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 9 Industry, Innovation, and Infrastructure
Keywords
- adversarial machine learning
- adversarial robustness
- anomaly detection
- autoencoders
- industrial control systems
- poisoning attacks
All Science Journal Classification (ASJC) codes
- Software
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