SSDCN: Spatial-Spectral Dual-Clustering-based Network for Hyperspectral Image Super-resolution
Yong Yang, Xuran Zhang, Shuying Huang, Xiaozheng Wang, Weiguo Wan, Hangyuan Lu
摘要
Hyperspectral Image Single Image Super-Resolution (HSI-SISR) faces a conflict between computational efficiency and global non-local modeling. Existing Transformers suffer from quadratic complexity, while window-based methods compromise global capture. To address this, we propose the Spatial-Spectral Dual-Clustering-based Network (SSDCN). Our method introduces three innovations. First, we design a Spatial-Spectral Dual-Cluster Block (SSDCB). Replacing expensive point-to-point attention, it uses content-driven clustering to learn low-rank structural bases, achieving global modeling with linear complexity . Second, we propose a pyramid progressive hierarchical architecture with a Feature Reuse Reconstruction Block (FRRB). It reuses the core tensor and spectral factors from coarse levels, updating only spatial factors to minimize redundancy. Third, we propose a Pyramid Hierarchical Reconstruction Joint Loss to supervise intermediate levels, ensuring structural accuracy and preventing error accumulation. Experiments demonstrate that SSDCN surpasses SOTA methods in metrics and visual quality with significantly fewer parameters and FLOPs, achieving an optimal efficiency-performance balance.
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- ESSAformer: Efficient Transformer for Hyperspectral Image Super-resolutionMingjin Zhang, Chi Zhang, Qiming Zhang, Jie Guo 等ICCV 2023 · 被引用 73 次
- SCPSN: Spectral Clustering-based Pyramid Super-resolution Network for Hyperspectral ImagesYong Yang, Aoqi Zhao, Shuying Huang, Xiaozheng Wang 等ACM MM 2024 · 被引用 5 次
- MFTN: A Multi-scale Feature Transfer Network Based on IMatchFormer for Hyperspectral Image Super-ResolutionShuying Huang, Mingyang Ren, Yong Yang, Xiaozheng Wang 等ICML 2024 · 被引用 2 次
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