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Hierarchical Aggregation of Semantic Uncertainty in 3D Scene Graphs

arXiv · AI, language, vision and robotics · article · Sep 17, 2026 · UTC

Open-vocabulary 3D Scene Graphs (3DSGs) ground each object node in a vision-language embedding, yet they record every entry as equally certain, so a robot querying the map cannot tell which of its entries are unreliable. Estimators of semantic uncertainty could supply that distinction, but they require repeated sampling of a model, training, or held-out labels, none of which are available to a deployed system at query time. We present a framework that exploits the detector confidence and the embeddings a 3DSG already stores, converts them into a probability that an entry is correct, and propag

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First collected: 2026-09-23T16:01:56.171Z. This is not the publication date.