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GOMA: Proactive Embodied Cooperative Communication via Goal-Oriented Mental Alignment

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arxiv 2403.11075 v2 pith:3RM5EX5I submitted 2024-03-17 cs.HC cs.AIcs.MA

classification cs.HCcs.AIcs.MA
keywords communicationmentalapproachassistantcooperationembodiedgomaverbal
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Verbal communication plays a crucial role in human cooperation, particularly when the partners only have incomplete information about the task, environment, and each other's mental state. In this paper, we propose a novel cooperative communication framework, Goal-Oriented Mental Alignment (GOMA). GOMA formulates verbal communication as a planning problem that minimizes the misalignment between the parts of agents' mental states that are relevant to the goals. This approach enables an embodied assistant to reason about when and how to proactively initialize communication with humans verbally using natural language to help achieve better cooperation. We evaluate our approach against strong baselines in two challenging environments, Overcooked (a multiplayer game) and VirtualHome (a household simulator). Our experimental results demonstrate that large language models struggle with generating meaningful communication that is grounded in the social and physical context. In contrast, our approach can successfully generate concise verbal communication for the embodied assistant to effectively boost the performance of the cooperation as well as human users' perception of the assistant.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. BeliefNest: A Joint Action Simulator for Embodied Agents with Theory of Mind

    cs.AI 2025-05 conditional novelty 6.0 of 10

    BeliefNest represents nested beliefs as hierarchical Minecraft simulators and shows LLM agents can use them to pass false-belief tasks.

  2. Cross-environment Cooperation Enables Zero-shot Multi-agent Coordination

    cs.MA 2025-04 conditional novelty 6.0 of 10

    Training a self-play agent across many procedurally generated cooperative tasks yields better zero-shot coordination with novel partners and novel layouts than training on one task with many partners.

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