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Safe Multi-Agent Reinforcement Learning via Shielding

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arxiv 2101.11196 v2 pith:3X2LP3LP submitted 2021-01-27 cs.LG cs.FL

classification cs.LGcs.FL
keywords agentsshieldinglearningmarlsafetyapproachescentralizedduring
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Multi-agent reinforcement learning (MARL) has been increasingly used in a wide range of safety-critical applications, which require guaranteed safety (e.g., no unsafe states are ever visited) during the learning process.Unfortunately, current MARL methods do not have safety guarantees. Therefore, we present two shielding approaches for safe MARL. In centralized shielding, we synthesize a single shield to monitor all agents' joint actions and correct any unsafe action if necessary. In factored shielding, we synthesize multiple shields based on a factorization of the joint state space observed by all agents; the set of shields monitors agents concurrently and each shield is only responsible for a subset of agents at each step.Experimental results show that both approaches can guarantee the safety of agents during learning without compromising the quality of learned policies; moreover, factored shielding is more scalable in the number of agents than centralized shielding.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 30 citations worldwide. Full citation record

  1. Efficient Dynamic Shielding for Parametric Safety Specifications

    cs.AI 2025-05 conditional novelty 5.0 of 10

    Dynamic shields precompute atomic safety controllers offline and compose them online, so a changing safety specification can be enforced in seconds instead of recomputing a full shield.

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