Unsupervised Pan-Sharpening via Mutually Guided Detail Restoration
Huangxing Lin, Yuhang Dong, Xinghao Ding, Tianpeng Liu, Yongxiang Liu
摘要
Pan-sharpening is a task that aims to super-resolve the low-resolution multispectral (LRMS) image with the guidance of a corresponding high-resolution panchromatic (PAN) image. The key challenge in pan-sharpening is to accurately modeling the relationship between the MS and PAN images. While supervised deep learning methods are commonly employed to address this task, the unavailability of ground-truth severely limits their effectiveness. In this paper, we propose a mutually guided detail restoration method for unsupervised pan-sharpening. Specifically, we treat pan-sharpening as a blind image deblurring task, in which the blur kernel can be estimated by a CNN. Constrained by the blur kernel, the pan-sharpened image retains spectral information consistent with the LRMS image. Once the pan-sharpened image is obtained, the PAN image is blurred using a pre-defined blur operator. The pan-sharpened image, in turn, is used to guide the detail restoration of the blurred PAN image. By leveraging the mutual guidance between MS and PAN images, the pan-sharpening network can implicitly learn the spatial relationship between the two modalities. Extensive experiments show that the proposed method significantly outperforms existing unsupervised pan-sharpening methods.
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引用它的顶会 Paper3
- Laboring on Less Labors: RPCA Paradigm for Pan-SharpeningHonghui Xu, Chuangjie Fang, Yibin Wang, Jie Wu 等ICCV 2025 · 被引用 3 次
- Deep Adaptive Unfolded Network via Spatial Morphology Stripping and Spectral Filtration for Pan-SharpeningHebaixu Wang, Jiayi MaICCV 2025 · 被引用 1 次
- CLIPPan: Adapting CLIP as a Supervisor for Unsupervised PansharpeningLihua Jian, Jiabo Liu, Shaowu Wu, Lihui ChenAAAI 2026
它引用的顶会 Paper2
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