Publication | Closed Access
Unsupervised feature learning for 3D scene labeling
322
Citations
32
References
2014
Year
Unknown Venue
Scene LabelingMachine LearningEngineeringPoint Cloud ProcessingHmp3d ClassifiersComputer-aided DesignPoint Cloud3D Computer VisionImage AnalysisData SciencePattern RecognitionRobot LearningComputational GeometryGeometric ModelingMachine VisionObject LabelPoint Cloud DataComputer ScienceDeep Learning3D Object RecognitionComputer VisionNatural SciencesExtended RealityScene Modeling
This paper presents an approach for labeling objects in 3D scenes. We introduce HMP3D, a hierarchical sparse coding technique for learning features from 3D point cloud data. HMP3D classifiers are trained using a synthetic dataset of virtual scenes generated using CAD models from an online database. Our scene labeling system combines features learned from raw RGB-D images and 3D point clouds directly, without any hand-designed features, to assign an object label to every 3D point in the scene. Experiments on the RGB-D Scenes Dataset v.2 demonstrate that the proposed approach can be used to label indoor scenes containing both small tabletop objects and large furniture pieces.
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