Papers › Large-scale 6D Object Pose Estimation Dataset for Industrial Bin-Picking

Large-scale 6D Object Pose Estimation Dataset for Industrial Bin-Picking

6 Dec 2019arXiv:1912.12125archive 2025-07-28

Kilian Kleeberger, Christian Landgraf, Marco F. Huber

In this paper, we introduce a new public dataset for 6D object pose estimation and instance segmentation for industrial bin-picking. The dataset comprises both synthetic and real-world scenes. For both, point clouds, depth images, and annotations comprising the 6D pose (position and orientation), a visibility score, and a segmentation mask for each object are provided. Along with the raw data, a method for precisely annotating real-world scenes is proposed. To the best of our knowledge, this is the first public dataset for 6D object pose estimation and instance segmentation for bin-picking containing sufficiently annotated data for learning-based approaches. Furthermore, it is one of the largest public datasets for object pose estimation in general. The dataset is publicly available at http://www.bin-picking.ai/en/dataset.html.

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6D Pose Estimation using RGBInstance SegmentationObjectPose EstimationSegmentationSemantic Segmentation

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Fraunhofer IPA Bin-Picking

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