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A relative depth-guided multiview stereo reconstruction framework for remote sensing imagery

  • Key Laboratory of Smart Earth
  • Northwestern Polytechnical University Xian

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

The use of satellite imagery for automated 3D reconstruction plays a crucial role in various fields and has emerged as a key area of research at the intersection of photogrammetry and computer vision. The recent deep learning techniques have significantly enhanced stereo matching and feature representation, driving progress in this field. The recent deep learning techniques have significantly enhanced multi-view stereo (MVS), driving progress in this field. However, the current methods for constructing the cost volume of remote sensing images through deep learning lack effective information transfer and correlation and have high computational complexity. This paper proposes an efficient 3Dreconstruction method for satellite imagery, which utilizes a dynamic MVS framework for cross-scale information propagation and enables rapid height inference. The proposed method incorporates relative depth maps as priors into the multi-scale feature representations within the framework, thereby enabling more accurate extraction of geometric structures. The experiments validated the effectiveness of the method on WHU-TLC datasets, outperforming existing methods by significantly improving computational efficiency while maintaining accuracy.

源语言英语
主期刊名Third International Conference on Remote Sensing, Mapping, and Geographic Information Systems, RSMG 2025
编辑Zhi Gao
出版商SPIE
ISBN(电子版)9781510694613
DOI
出版状态已出版 - 26 9月 2025
活动3rd International Conference on Remote Sensing, Mapping, and Geographic Information Systems, RSMG 2025 - Zhengzhou, 中国
期限: 11 7月 202513 7月 2025

丛书

姓名Proceedings of SPIE - The International Society for Optical Engineering
13791
ISSN(印刷版)0277-786X
ISSN(电子版)1996-756X

会议

会议3rd International Conference on Remote Sensing, Mapping, and Geographic Information Systems, RSMG 2025
国家/地区中国
Zhengzhou
时期11/07/2513/07/25

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