Active World-Model with 4D-informed Retrieval for Exploration and Awareness
arXiv cs.CV / 4/21/2026
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Key Points
- The paper frames physical awareness in large dynamic environments as a difficult decision problem under partial observability, where sensing choices determine what is observable and observations in turn affect future sensing decisions.
- It introduces AW4RE (Active World-model with 4D-informed Retrieval for Exploration), an awareness-centric generative world model that acts as a sensor-native surrogate environment for exploring sensing queries.
- AW4RE estimates the action-conditioned observation process by integrating 4D-informed evidence retrieval, action-conditioned geometric support with temporal coherence, and conditional generative completion.
- Experiments show AW4RE yields more grounded and consistent predictions than geometry-aware generative baselines, especially under extreme viewpoint shifts, temporal gaps, and sparse geometric information.
- The work targets key limitations of real-world exploration costs and sim-to-real failures caused by unobserved viewpoints, aiming to improve decision-making for observation planning.
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