We propose a general framework for keyed learning, where a secret key is used as an additional input of an adversarial learning system. We also define models and formal challenges for an adversary who knows the learning algorithm and its input data but has no access to the key value. This adversarial learning framework is subsequently applied to a more specific context of anomaly detection, where the secret key finds additional practical uses and guides the entire learning and alarm‐generating procedure.

Keyed learning: An adversarial learning framework -- formalization, challenges, and anomaly detection applications

Francesco Bergadano
2019-01-01

Abstract

We propose a general framework for keyed learning, where a secret key is used as an additional input of an adversarial learning system. We also define models and formal challenges for an adversary who knows the learning algorithm and its input data but has no access to the key value. This adversarial learning framework is subsequently applied to a more specific context of anomaly detection, where the secret key finds additional practical uses and guides the entire learning and alarm‐generating procedure.
2019
41
5
608
618
https://onlinelibrary.wiley.com/doi/epdf/10.4218/etrij.2019-0140
adversarial learning, anomaly detection, keyed learning
Francesco Bergadano
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2318/1713805
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