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基于扩散模型的卫星图像同步超分辨率与深度估计

Simultaneous Super-resolution and Depth Estimation for Satellite Images Based on Diffusion Model.

作者信息

Zhou Yuwei, Lee Yangming

机构信息

Rochester Institute of Technology.

出版信息

Rep U S. 2024 Oct;2024:411-418. doi: 10.1109/iros58592.2024.10802345. Epub 2024 Dec 25.

Abstract

Satellite images provide an effective way to observe the earth surface on a large scale. 3D landscape models can provide critical structural information, such as forestry and crop growth. However, there has been very limited research to estimate the depth and the 3D models of the earth based on satellite images. LiDAR measurements on satellites are usually quite sparse. RGB images have higher resolution than LiDAR, but there has been little research on 3D surface measurements based on satellite RGB images. In comparison with in-situ sensing, satellite RGB images are usually low resolution. In this research, we explore the method that can enhance the satellite image resolution to generate super-resolution images and then conduct depth estimation and 3D reconstruction based on higher-resolution satellite images. Leveraging the strong generation capability of diffusion models, we developed a simultaneous diffusion model learning framework that can train diffusion models for both super-resolution images and depth estimation. With the super-resolution images and the corresponding depth maps, 3D surface reconstruction models with detailed landscape information can be generated. We evaluated the proposed methodology on multiple satellite datasets for both super-resolution and depth estimation tasks, which have demonstrated the effectiveness of our methodology.

摘要

卫星图像提供了一种在大尺度上观测地球表面的有效方式。三维景观模型能够提供关键的结构信息,比如林业和作物生长情况。然而,基于卫星图像来估计地球深度和三维模型的研究非常有限。卫星上的激光雷达测量数据通常很稀疏。RGB图像的分辨率高于激光雷达,但基于卫星RGB图像进行三维表面测量的研究很少。与原位传感相比,卫星RGB图像通常分辨率较低。在本研究中,我们探索了一种方法,该方法可以提高卫星图像分辨率以生成超分辨率图像,然后基于更高分辨率的卫星图像进行深度估计和三维重建。利用扩散模型强大的生成能力,我们开发了一个同步扩散模型学习框架,该框架可以针对超分辨率图像和深度估计训练扩散模型。借助超分辨率图像和相应的深度图,可以生成具有详细景观信息的三维表面重建模型。我们在多个卫星数据集上对所提出的方法进行了超分辨率和深度估计任务的评估,结果证明了我们方法的有效性。

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