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SceneGraphFusion: Incremental 3D Scene Graph Prediction from RGB-D Sequences

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arxiv 2103.14898 v3 pith:2FO5YP3I submitted 2021-03-27 cs.CV cs.LG

classification cs.CVcs.LG
keywords scenegraphgraphsincrementalmethodmethodspredictionrgb-d
verification ladder T0 review T1 audit T2 compute T3 formal
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Scene graphs are a compact and explicit representation successfully used in a variety of 2D scene understanding tasks. This work proposes a method to incrementally build up semantic scene graphs from a 3D environment given a sequence of RGB-D frames. To this end, we aggregate PointNet features from primitive scene components by means of a graph neural network. We also propose a novel attention mechanism well suited for partial and missing graph data present in such an incremental reconstruction scenario. Although our proposed method is designed to run on submaps of the scene, we show it also transfers to entire 3D scenes. Experiments show that our approach outperforms 3D scene graph prediction methods by a large margin and its accuracy is on par with other 3D semantic and panoptic segmentation methods while running at 35 Hz.

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Cited by 1 Pith paper

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  1. Online Knowledge Integration for 3D Semantic Mapping: A Survey

    cs.RO 2024-11 conditional novelty 2.0 of 10

    The paper provides a structured overview of online knowledge integration techniques for 3D semantic mapping, focusing on semantic scene graphs and language models.

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