From Sparse to Dense: Camera Relocalization with Scene-Specific Detector from Feature Gaussian Splatting
Zhiwei Huang, Hailin Yu, Yichun Shentu, Jin Yuan, Guofeng Zhang
摘要
This paper presents a novel camera relocalization method, STDLoc, which leverages Feature Gaussian as scene representation. STDLoc is a full relocalization pipeline that can achieve accurate relocalization without relying on any pose prior. Unlike previous coarse-to-fine localization methods that require image retrieval first and then feature matching, we propose a novel sparse-to-dense localization paradigm. Based on this scene representation, we introduce a novel matching-oriented Gaussian sampling strategy and a scenespecific detector to achieve efficient and robust initial pose estimation. Furthermore, based on the initial localization results, we align the query feature map to the Gaussian feature field by dense feature matching to enable accurate localization. The experiments on indoor and outdoor datasets show that STDLoc outperforms current state-ofthe-art localization methods in terms of localization accuracy and recall. Our code is available on the project website: https://zju3dv.github.io/STDLoc.
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引用它的顶会 Paper7
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它引用的顶会 Paper22
- 3D Gaussian Splatting for Real-Time Radiance Field RenderingBernhard Kerbl, Georgios Kopanas, Thomas Leimkühler, George DrettakisSIGGRAPH 2023 · 被引用 5,687 次
- LightGlue: Local Feature Matching at Light SpeedPhilipp Lindenberger, Paul-Edouard Sarlin, Marc PollefeysICCV 2023 · 被引用 936 次
- 2D Gaussian Splatting for Geometrically Accurate Radiance FieldsBinbin Huang, Zehao Yu, Anpei Chen, Andreas Geiger 等SIGGRAPH 2024 · 被引用 660 次
- Feature 3DGS: Supercharging 3D Gaussian Splatting to Enable Distilled Feature FieldsShijie Zhou, Haoran Chang, Sicheng Jiang, Zhiwen Fan 等CVPR 2024 · 被引用 145 次
- On the Limits of Pseudo Ground Truth in Visual Camera Re-localisationEric Brachmann, Martin Humenberger, Carsten Rother, Torsten SattlerICCV 2021 · 被引用 82 次
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