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Home » [2403.04588] Zero-shot cross-modal transfer of Reinforcement Learning policies through a Global Workspace
arXiv AI

[2403.04588] Zero-shot cross-modal transfer of Reinforcement Learning policies through a Global Workspace

Advanced AI BotBy Advanced AI BotJune 5, 2025No Comments2 Mins Read
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[Submitted on 7 Mar 2024 (v1), last revised 4 Jun 2025 (this version, v2)]

View a PDF of the paper titled Zero-shot cross-modal transfer of Reinforcement Learning policies through a Global Workspace, by L\’eopold Mayti\’e and 3 other authors

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Abstract:Humans perceive the world through multiple senses, enabling them to create a comprehensive representation of their surroundings and to generalize information across domains. For instance, when a textual description of a scene is given, humans can mentally visualize it. In fields like robotics and Reinforcement Learning (RL), agents can also access information about the environment through multiple sensors; yet redundancy and complementarity between sensors is difficult to exploit as a source of robustness (e.g. against sensor failure) or generalization (e.g. transfer across domains). Prior research demonstrated that a robust and flexible multimodal representation can be efficiently constructed based on the cognitive science notion of a ‘Global Workspace’: a unique representation trained to combine information across modalities, and to broadcast its signal back to each modality. Here, we explore whether such a brain-inspired multimodal representation could be advantageous for RL agents. First, we train a ‘Global Workspace’ to exploit information collected about the environment via two input modalities (a visual input, or an attribute vector representing the state of the agent and/or its environment). Then, we train a RL agent policy using this frozen Global Workspace. In two distinct environments and tasks, our results reveal the model’s ability to perform zero-shot cross-modal transfer between input modalities, i.e. to apply to image inputs a policy previously trained on attribute vectors (and vice-versa), without additional training or fine-tuning. Variants and ablations of the full Global Workspace (including a CLIP-like multimodal representation trained via contrastive learning) did not display the same generalization abilities.

Submission history

From: Léopold Maytié [view email]
[v1]
Thu, 7 Mar 2024 15:35:29 UTC (378 KB)
[v2]
Wed, 4 Jun 2025 15:52:00 UTC (3,522 KB)



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