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ScanNet++: A High-Fidelity Dataset of 3D Indoor Scenes (2308.11417v1)

Published 22 Aug 2023 in cs.CV

Abstract: We present ScanNet++, a large-scale dataset that couples together capture of high-quality and commodity-level geometry and color of indoor scenes. Each scene is captured with a high-end laser scanner at sub-millimeter resolution, along with registered 33-megapixel images from a DSLR camera, and RGB-D streams from an iPhone. Scene reconstructions are further annotated with an open vocabulary of semantics, with label-ambiguous scenarios explicitly annotated for comprehensive semantic understanding. ScanNet++ enables a new real-world benchmark for novel view synthesis, both from high-quality RGB capture, and importantly also from commodity-level images, in addition to a new benchmark for 3D semantic scene understanding that comprehensively encapsulates diverse and ambiguous semantic labeling scenarios. Currently, ScanNet++ contains 460 scenes, 280,000 captured DSLR images, and over 3.7M iPhone RGBD frames.

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Authors (4)
  1. Chandan Yeshwanth (6 papers)
  2. Yueh-Cheng Liu (15 papers)
  3. Matthias Nießner (177 papers)
  4. Angela Dai (84 papers)
Citations (118)

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