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Thomas Gabor

3 accepted papers

2023

Attention-Based Recurrence for Multi-Agent Reinforcement Learning under Stochastic Partial Observability

ICML 2023poster

Stochastic partial observability poses a major challenge for decentralized coordination in multi-agent reinforcement learning but is largely neglected in state-of-the-art research due to a strong focus on state-based centralized training for decentralized execution (CTDE) and benchmarks that lack su…

2021

Resilient Multi-Agent Reinforcement Learning with Adversarial Value Decomposition

AAAI 2021technical

We focus on resilience in cooperative multi-agent systems, where agents can change their behavior due to udpates or failures of hardware and software components. Current state-of-the-art approaches to cooperative multi-agent reinforcement learning (MARL) have either focused on idealized settings wit…

2021

VAST: Value Function Factorization with Variable Agent Sub-Teams

NeurIPS 2021poster

Value function factorization (VFF) is a popular approach to cooperative multi-agent reinforcement learning in order to learn local value functions from global rewards. However, state-of-the-art VFF is limited to a handful of agents in most domains. We hypothesize that this is due to the flat factori…