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Dynamical Fusion Model With Joint Variational and Deep Priors for Hyperspectral Image Super-Resolution

Academic Article
Publication Date:
2023
abstract:
In this letter, we propose a novel dynamic fusion model (DFM) with joint variational and deep priors for the task of hyperspectral image super-resolution (HISR). The given model can benefit from both the advantages of traditional modeling and deep learning (DL) methods, thus achieving significant improvements based on existing deep pretrained models. Specifically, the given model mainly contains two newly designed terms, i.e., the weighted spatial fidelity (WSF) term and the deep fusion (DF) term. The WSF term focuses on the spatial recovery of the low-resolution hyperspectral image (LR-HSI) through the high-resolution multispectral image (HR-MSI) without the knowledge of the spectral response matrix, thus the proposed DFM can be viewed as a semi-blind model for HISR. Moreover, the DF term relied upon DF with a designed adaptive weight matrix, which can effectively inject the deep priors into the traditional minimization model. Besides, the proposed DFM can be quickly and effectively solved using the alternating direction method of multipliers (ADMM). Experimental results on widely used datasets demonstrate the superiority of our approach compared with state-of-the-art HISR methods.
Iris type:
01.01 Articolo in rivista
Keywords:
Deep priors; dynamical fusion model; hyperspectral image super-resolution (HISR); optimization model
List of contributors:
Vivone, Gemine
Authors of the University:
VIVONE GEMINE
Handle:
https://iris.cnr.it/handle/20.500.14243/456654
Published in:
IEEE GEOSCIENCE AND REMOTE SENSING LETTERS (PRINT)
Journal
  • Overview

Overview

URL

https://ieeexplore.ieee.org/document/10156889
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