Learning to Produce Semi-Dense Correspondences for Visual Localization
- Authors
- Giang, Khang Truong; Song, Soohwan; Jo, Sungho
- Issue Date
- 2024
- Publisher
- IEEE
- Keywords
- 3D reconstruction; deep neural network; depth estimation; feature matching; visual localization
- Citation
- 2024 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR), pp 19468 - 19478
- Pages
- 11
- Indexed
- SCOPUS
- Journal Title
- 2024 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)
- Start Page
- 19468
- End Page
- 19478
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/56176
- DOI
- 10.1109/CVPR52733.2024.01841
- ISSN
- 1063-6919
2575-7075
- Abstract
- This study addresses the challenge of performing visual localization in demanding conditions such as night-time scenarios, adverse weather, and seasonal changes. While many prior studies have focused on improving image matching performance to facilitate reliable dense keypoint matching between images, existing methods often heavily rely on predefined feature points on a reconstructed 3D model. Consequently, they tend to overlook unobserved keypoints during the matching process. Therefore, dense keypoint matches are not fully exploited, leading to a no-table reduction in accuracy, particularly in noisy scenes. To tackle this issue, we propose a novel localization method that extracts reliable semi-dense 2D-3D matching points based on dense keypoint matches. This approach involves regressing semi-dense 2D keypoints into 3D scene coordinates using a point inference network. The network utilizes both geometric and visual cues to effectively in-fer 3D coordinates for unobserved keypoints from the observed ones. The abundance of matching information significantly enhances the accuracy of camera pose estimation, even in scenarios involving noisy or sparse 3D models. Comprehensive evaluations demonstrate that the proposed method outperforms other methods in challenging scenes and achieves competitive results in large-scale visual localization benchmarks. The code will be available at https://github.com/TruongKhang/DeViLoc. © 2024 IEEE.
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Collections - College of Advanced Convergence Engineering > Department of Computer Science and Artificial Intelligence > 1. Journal Articles

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