A New Stereo Benchmarking Dataset for Satellite Images
Sonali Patil, Bharath Comandur, Tanmay Prakash, Avinash C. Kak

TL;DR
This paper introduces a comprehensive stereo benchmarking dataset for satellite images, including groundtruth disparities, quality evaluations, and metadata, to advance research in satellite stereo reconstruction.
Contribution
It provides a new publicly available satellite stereo dataset with groundtruth disparities, quality assessments, and diverse metadata, addressing limitations of existing datasets.
Findings
Groundtruth disparities validated with human annotations
Rectification accuracy comparable to state-of-the-art datasets
Dataset includes multi-season images with building masks
Abstract
In order to facilitate further research in stereo reconstruction with multi-date satellite images, the goal of this paper is to provide a set of stereo-rectified images and the associated groundtruthed disparities for 10 AOIs (Area of Interest) drawn from two sources: 8 AOIs from IARPA's MVS Challenge dataset and 2 AOIs from the CORE3D-Public dataset. The disparities were groundtruthed by first constructing a fused DSM from the stereo pairs and by aligning 30 cm LiDAR with the fused DSM. Unlike the existing benckmarking datasets, we have also carried out a quantitative evaluation of our groundtruthed disparities using human annotated points in two of the AOIs. Additionally, the rectification accuracy in our dataset is comparable to the same in the existing state-of-the-art stereo datasets. In general, we have used the WorldView-3 (WV3) images for the dataset, the exception being the…
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Taxonomy
TopicsAdvanced Vision and Imaging · Satellite Image Processing and Photogrammetry · Advanced Image and Video Retrieval Techniques
