Large-Scale Localization Datasets in Crowded Indoor Spaces
Donghwan Lee, Soo-Hyun Ryu, Suyong Yeon, Yonghan Lee, Deokhwa Kim, Cheolho Han, Yohann Cabon, Philippe Weinzaepfel, Nicolas Guérin, Gabriela Csurka, Martin Humenberger
摘要
Estimating the precise location of a camera using visual localization enables interesting applications such as augmented reality or robot navigation. This is particularly useful in indoor environments where other localization technologies, such as GNSS, fail. Indoor spaces impose interesting challenges on visual localization algorithms: occlusions due to people, textureless surfaces, large viewpoint changes, low light, repetitive textures, etc. Existing indoor datasets are either comparably small or do only cover a subset of the mentioned challenges. In this paper, we introduce 5 new indoor datasets for visual localization in challenging real-world environments. They were captured in a large shopping mall and a large metro station in Seoul, South Korea, using a dedicated mapping platform consisting of 10 cameras and 2 laser scanners. In order to obtain accurate ground truth camera poses, we developed a robust LiDAR SLAM which provides initial poses that are then refined using a novel structure-from-motion based optimization. We present a benchmark of modern visual localization algorithms on these challenging datasets showing superior performance of structure-based methods using robust image features. The datasets are available at: https://naverlabs.com/datasets
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引用它的顶会 Paper11
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- DnD: Dense Depth Estimation in Crowded Dynamic Indoor ScenesDongki Jung, Jaehoon Choi, Yonghan Lee, Deokhwa Kim 等ICCV 2021 · 被引用 7 次
- IM360: Large-Scale Indoor Mapping with 360 CamerasDongki Jung, Jaehoon Choi, Yonghan Lee, Dinesh ManochaICCV 2025 · 被引用 3 次
- CroCoDL: Cross-device Collaborative Dataset for LocalizationHermann Blum, Alessandro Mercurio, Joshua O'Reilly, Tim Engelbracht 等CVPR 2025
- Reasoning in Visual Navigation of End-to-end Trained Agents: A Dynamical Systems ApproachSteeven Janny, Hervé Poirier, Leonid Antsfeld, Guillaume Bono 等CVPR 2025
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- Learning With Average Precision: Training Image Retrieval With a Listwise LossJérôme Revaud, Jon Almazán, Rafael S. Rezende, César Roberto de SouzaICCV 2019 · 被引用 424 次
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- SuperGlue: Learning Feature Matching With Graph Neural NetworksPaul-Edouard Sarlin, Daniel DeTone, Tomasz Malisiewicz, Andrew RabinovichCVPR 2020
- Hierarchical Scene Coordinate Classification and Regression for Visual LocalizationXiaotian Li, Shuzhe Wang, Yi Zhao, Jakob Verbeek 等CVPR 2020
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