AtLoc: Attention Guided Camera Localization
Bing Wang, Changhao Chen, Chris Xiaoxuan Lu, Peijun Zhao, Niki Trigoni, Andrew Markham
Abstract
Deep learning has achieved impressive results in camera localization, but current single-image techniques typically suffer from a lack of robustness, leading to large outliers. To some extent, this has been tackled by sequential (multi-images) or geometry constraint approaches, which can learn to reject dynamic objects and illumination conditions to achieve better performance. In this work, we show that attention can be used to force the network to focus on more geometrically robust objects and features, achieving state-of-the-art performance in common benchmark, even if using only a single image as input. Extensive experimental evidence is provided through public indoor and outdoor datasets. Through visualization of the saliency maps, we demonstrate how the network learns to reject dynamic objects, yielding superior global camera pose regression performance. The source code is avaliable at https://github.com/BingCS/AtLoc .
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Install the CLIlune papers fulltext a48731a9-663d-4b1b-864e-7792e33ae813Cited by top-tier papers34
- CroCo: Self-Supervised Pre-training for 3D Vision Tasks by Cross-View CompletionPhilippe Weinzaepfel, Vincent Leroy, Thomas Lucas, Romain Brégier et al.NeurIPS 2022 · 189 citations
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Builds on2
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- Prior Guided Dropout for Robust Visual Localization in Dynamic EnvironmentsZhaoyang Huang, Yan Xu, Jianping Shi, Xiaowei Zhou et al.ICCV 2019 · 54 citations
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