Publication | Closed Access
Adversarial machine learning
1.2K
Citations
148
References
2011
Year
Unknown Venue
Artificial IntelligencePrivacy ProtectionEngineeringMachine LearningEvasion TechniqueInformation SecurityMachine Learning AlgorithmsInformation ForensicsHardware SecurityData ScienceAdversarial Machine LearningMachine Learning ModelData PrivacyComputer ScienceDeep LearningPrivacyData SecurityCryptographyEvasion ChallengeGenerative Adversarial NetworkAttack Model
In this paper (expanded from an invited talk at AISEC 2010), we discuss an emerging field of study: adversarial machine learning---the study of effective machine learning techniques against an adversarial opponent. In this paper, we: give a taxonomy for classifying attacks against online machine learning algorithms; discuss application-specific factors that limit an adversary's capabilities; introduce two models for modeling an adversary's capabilities; explore the limits of an adversary's knowledge about the algorithm, feature space, training, and input data; explore vulnerabilities in machine learning algorithms; discuss countermeasures against attacks; introduce the evasion challenge; and discuss privacy-preserving learning techniques.
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