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Self-Pair: Synthesizing Changes from Single Source for Object Change Detection in Remote Sensing Imagery
December 20, 2022 ยท Entered Twilight ยท ๐ IEEE Workshop/Winter Conference on Applications of Computer Vision
Repo contents: LICENSE, README.md, configs, opencd.egg-info, opencd, requirements.txt, requirements, resources, setup.py, tools, vsait
Authors
Minseok Seo, Hakjin Lee, Yongjin Jeon, Junghoon Seo
arXiv ID
2212.10236
Category
cs.CV: Computer Vision
Citations
26
Venue
IEEE Workshop/Winter Conference on Applications of Computer Vision
Repository
https://github.com/seominseok0429/Self-Pair-for-Change-Detection
โญ 26
Last Checked
1 month ago
Abstract
For change detection in remote sensing, constructing a training dataset for deep learning models is difficult due to the requirements of bi-temporal supervision. To overcome this issue, single-temporal supervision which treats change labels as the difference of two semantic masks has been proposed. This novel method trains a change detector using two spatially unrelated images with corresponding semantic labels such as building. However, training on unpaired datasets could confuse the change detector in the case of pixels that are labeled unchanged but are visually significantly different. In order to maintain the visual similarity in unchanged area, in this paper, we emphasize that the change originates from the source image and show that manipulating the source image as an after-image is crucial to the performance of change detection. Extensive experiments demonstrate the importance of maintaining visual information between pre- and post-event images, and our method outperforms existing methods based on single-temporal supervision. code is available at https://github.com/seominseok0429/Self-Pair-for-Change-Detection.
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