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Oral
in
Workshop: 2nd ICML Workshop on New Frontiers in Adversarial Machine Learning

The Future of Cyber Systems: Human-AI Reinforcement Learning with Adversarial Robustness

Keywords: [ adversarial machine learning ] [ Human-Computer Teaming ] [ Autonomous Cyber Security Agents ]


Abstract:

Integrating adversarial machine learning (AML) with cyber data representations that support reinforcement learning would unlock human-ai systems with a capacity to dynamically defend against novel attacks, robustly, at machine speed, and with human intelligence.All machine learning (ML) has an underpinning need for robustness to natural errors and malicious tampering. However, unlike many consumer/commercial models, all ML systems built for cyber will be operating in an inherently adversarial environment with skilled adversaries taking advantage of any flaw. This paper outlines the research challenges, integration points, and programmatic importanceof such a system, while highlighting the social and scientific benefits of pursuing this ambitious program.

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