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DenseFuse: A Fusion Approach to Infrared and Visible Images

IEEE Transactions on Image Processing · 2018 · Vol. 28(5) · pp. 2614–2623
Hui LiXiao-Jun Wu

Abstract

In this paper, we present a novel deep learning architecture for infrared and visible images fusion problem. In contrast to conventional convolutional networks, our encoding network is combined by convolutional layers, fusion layer and dense block in which the output of each layer is connected to every other layer. We attempt to use this architecture to get more useful features from source images in encoding process. And two fusion layers(fusion strategies) are designed to fuse these features. Finally, the fused image is reconstructed by decoder. Compared with existing fusion methods, the proposed fusion method achieves state-of-the-art performance in objective and subjective assessment.

Advanced Image Fusion TechniquesImage Enhancement TechniquesAdvanced Image Processing TechniquesFuse (electrical)FusionImage fusionConvolutional neural networkEncoding (memory)InfraredBlock (permutation group theory)Pattern recognition (psychology)Layer (electronics)
Citations
1,744
FWCI
50.28
field-weighted impact
References
30
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References
Perceptual Quality Assessment for Multi-Exposure Image Fusion
IEEE Transactions on Image Processing · 2015 · 1,078 citations
Objective image fusion performance measure
Electronics Letters · 2000 · 1,919 citations
Image Fusion With Guided Filtering
IEEE Transactions on Image Processing · 2013 · 1,723 citations
Image quality assessment: from error visibility to structural similarity
IEEE Transactions on Image Processing · 2004 · 54,590 citations
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