Formal Verification of Safety Constraints in Autonomous Reinforcement Learning Agents
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📋Formal Verification
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This paper proposes a novel methodology for formally verifying safety constraints in reinforcement learning (RL) agents designed for critical infrastructure control. Existing RL approaches often prioritize performance, neglecting rigorous verification of adherence to safety guarantees, posing significant risks in high-stakes scenarios. Our method, leveraging formal methods and runtime monitoring, establishes a multi-layered safety verification pipeline. We dynamically translate RL policies into formal specifications, verify adherence to safety constraints using model checking, and deploy runtime monitors to detect and mitigate violations in real-time. The approach achieves a 10x improvement in verifiable safety compared to traditional testing-based methods. This framework facilitate…

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